Shenzhen ganzoo prototype manufacture co.,ltd

Shenzhen ganzoo prototype manufacture co.,ltd

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  • Merry Christmas from GanZoo Prototype
    As the year comes to an end, we would like to take a moment to thank all of our customers, partners, and friends for your trust and support throughout the year. At GanZoo Prototype, we have had the opportunity to work on a wide range of projects across automation, robotics, medical devices, and industrial equipment. Every drawing, discussion, and challenge has helped us continue improving our machining capability, quality control, and engineering support. Christmas is a time to pause, reflect, and appreciate the partnerships we have built. We are grateful for the collaboration and communication we share with our customers around the world, and we look forward to supporting more projects in the coming year. From all of us at GanZoo Prototype, we wish you and your loved ones a Merry Christmas and a successful, healthy New Year. If you have projects planned for the new year, our team will be ready to support you with engineering feedback and precision manufacturing.

    2025 12/23

  • A new 5 axis CNC coming
    The year of sake began, we introduced 2sets of 5 axis CNC to increase our capacity. One arrived before holiday, working normally, the other arrived today under adjustment. As the leading CNC machining company, we are dedication to 3/4/5 axis machining for Automotive, Electronics, Medical Device, Oil and Gas Equipment industry etc.,   The leader said there would be no end for increasing our capacity, no end for making parts better and better, no end for improving our service.  

    2025 02/18

  • Chinese New Year Holiday Notice
    Dear Customers:   Thanks for your continued support. Our company will be closed from 26th Jan to 2nd Feb for Chinese New Year. Workshop reopen on 3rd Feb.    During holiday, sales team and quoting team would work from home, and come back to your emails in 24 hours, any urgent case, please contact them by phone directly.    Let enjoy a fantastic Festival.

    2025 01/22

  • GZ Group 2024 Annual Ceremony
    GZ, a prototype machining company, recently hosted a company ceremony to celebrate its achievements and strengthen connections with employees, partners, and stakeholders for 2024. The event was extremely successful, reflecting GZ commitment to innovation, excellence, and collaboration. A Celebration of Milestones The program kick off with a speech by Ms Wang, the CEO of GZ. Highlighting its journey, especially 2024 relocation. Ms Wang said, “This event is not just a celebration of our achievements but also a testament to the hard work and dedication of our employees and partners. Together, we are building a brilliant future for the machining industry.” Awards and Recognitions A key highlight of the evening was the awards ceremony, where outstanding employees were recognized for their exceptional contributions. Awards such as  “Excellent operator”, “Excellent hand maker”, “Excellent QC” etc., were presented, celebrating the talent and dedication within the company. Entertainment and Networking The ceremony also featured captivating entertainment, including live performances and interactive activities that added a festive atmosphere to the event. Attendees enjoyed a big dinner, providing opportunities for networking and strengthening professional relationships in an informal environment.

    2025 01/16

  • Creating a Winning Promotional Video for CNC Machining: A Comprehensive Guide to Marketing Success
    In today's competitive manufacturing landscape, creating a promotional video for our CNC machining services is one of the most effective ways to showcase our capabilities, build brand awareness, and attract new clients. A well-crafted video can effectively communicate the precision, efficiency, and innovation your company brings to the table.   Videos offer a dynamic way to convey complex concepts. With CNC machining involving intricate processes like milling, turning, and drilling, a visual format can simplify the technicalities, making them more accessible to potential clients. Moreover, videos enhance engagement and are easily shareable across platforms like LinkedIn, YouTube, and company websites, reaching a broader audience.   Key Elements of a Successful CNC Machining Video   1. Define Your Audience Identify who you are targeting: is it aerospace engineers, automotive manufacturers, Understanding your audience helps tailor the video's tone, style, and content.     2. Showcase Precision and Quality Highlight what sets your CNC machining services apart. Use close-up shots of the machines in action to demonstrate precision and detail. Include examples of complex projects to show your capabilities.   3. Focus on Innovation CNC machining is synonymous with cutting-edge technology. Showcase advanced equipment, software, or techniques like 5-axis machining or automated quality control to emphasize your technological edge.     4. Include Testimonials from satisfied customers add credibility and help build trust. A brief interview with a client can communicate the reliability and quality of your services.     5. Professional Production Values High-quality visuals and clear audio are crucial. Invest in professional lighting, a good camera, and skilled editing to ensure the video looks polished and professional.   Looking forward to our final video.

    2024 11/20

  • Innovation and precision are equally important
    In the rapidly developing manufacturing sector, precision prototype models have become increasingly important as a vital link in product development. Shenzhen Guanzeprecision Model Co., Ltd. has announced the launch of its official website, marking a step forward in providing high-quality services while enhancing online interaction and communication with customers. Shenzhen Guanzeprecision Model Co., Ltd. is an enterprise dedicated to providing high-precision, high-quality prototype model design and manufacturing services to customers. With advanced technology, rich industry experience, and a deep understanding of customer needs, the company has won widespread market recognition. The newly launched website not only showcases the company's core strengths and service scope but also offers a wealth of case studies, online consulting services, and convenient channels for customer feedback. The website provides detailed introductions to the company's service processes, technological advantages, industry case studies, and customer reviews, allowing potential customers to fully understand our professional capabilities and service quality. The general manager stated, "We are very pleased to launch our new official website. This is not only an important step in our digital transformation but also a bridge for communication with our customers. We hope that through this platform, more customers will learn about our services and experience our professionalism and enthusiasm." For more details on activities and additional product information, customers can visit the official website directly. About Shenzhen Guanzeprecision Model Co., Ltd.: Shenzhen Guanzeprecision Model Co., Ltd. was established in 2016. It is a high-tech enterprise that integrates design, manufacturing, sales, and services. The company specializes in providing high-precision prototype models, which are widely used in industries such as automobiles, aviation, consumer electronics, and medical devices. With its outstanding technology and quality services, Shenzhen Guanzeprecision Model Co., Ltd. has become a leader in the industry.   Official website: www.gz-proto.com        -END-

    2024 11/06

  • CNC machining commonly used processing technology
    Numerical Control Machining (Numerical Control Machining) is a method of machining using a digital control system. It controls the movement of the machine tool and the path of the tool through pre-programmed instructions to manufacture parts in an automated and precise manner. CNC machining is widely used in the manufacturing industry, especially in the fields of aerospace, automotive, mold manufacturing and precision instruments. The following is the process commonly used in CNC machining: CNC turning: by CNC lathe, suitable for rotating parts, such as shaft, disk and sleeve parts. CNC milling: suitable for processing a variety of complex shapes of the plane, boss, groove, etc., especially the manufacture of molds. CNC drilling: The use of special CNC drilling machine for hole processing, suitable for a variety of materials. CNC grinding: used for precision machining of parts, such as cylindrical grinding, internal grinding, surface grinding, etc. Numerical control electrical machining: including numerical control electrical discharge machining (EDM) and numerical control electrical discharge wire cutting (WEDM), suitable for hard materials such as carbide, high-speed steel and complex shape parts. CNC laser processing: the use of laser high energy for cutting, welding, marking and engraving. CNC water jet cutting: The use of high pressure water jet plus abrasive material cutting, suitable for soft materials and composite materials. CNC composite machining: A variety of processing methods are integrated on a machine tool, such as turn-milling composite, milling composite, etc., to improve processing efficiency and accuracy.

    2024 06/17

  • Advantages of CNC pin milling
    Numerical control pin milling, that is, the use of numerical control (CNC) technology for pin hole milling, has the following advantages: High precision: The CNC milling machine can very precisely control the position and movement of the tool, so as to achieve high precision hole processing, ensuring that the size and shape errors of the hole are minimal. High consistency: For mass production, CNC pin milling ensures that the holes on each part are extremely consistent, reducing differences caused by human operation. Complex shape processing ability: CNC milling machine can process complex shape, non-standard pin holes, such as elliptical holes, keyway holes, etc., which is difficult to achieve traditional processing methods. Machining efficiency: CNC milling machine has a high degree of automation, and can be continuously processed, reducing the auxiliary time such as tool change, measurement and adjustment, and improving the processing efficiency. Material adaptability: CNC pin milling can process a variety of materials, including a variety of metal and non-metal materials, suitable for a variety of industrial applications. Labor saving: Due to the high degree of automation, the CNC milling machine does not need or only a small amount of manual intervention during operation, saving labor costs. Reduce tool wear: By optimizing tool paths and cutting parameters, CNC machining can reduce tool wear and extend tool life. Quality stability: The machining process of CNC milling machine is controlled by computer, which reduces human error and ensures the stability and reliability of parts processing quality. Flexible machining: CNC milling machine can quickly change the tool and adjust the program to adapt to the production of different products, with good processing flexibility. Automation integration: CNC milling machines can be integrated with other automation equipment to form automated production lines, further improving production efficiency and automation level. In summary, CNC pin milling has been widely used in modern manufacturing industry because of its high precision, high efficiency and degree of automation, especially in industries that require high precision and consistent hole machining. As a high precision and high efficiency machining technology, CNC pin milling is widely used in many industries. The following are some of the main industries where CNC pin milling technology is applied: Automotive manufacturing industry: CNC pin milling in the automotive industry for processing engine cylinder block, cylinder head, crankshaft, connecting rod, transmission gear and other components of the pin holes and keyways, as well as a variety of suspension systems, brake system components of the precision hole processing. Aerospace industry: Parts in the aerospace field have high requirements for accuracy and reliability, and CNC pin milling is used to process precision holes and slots for engine parts, fuselage structural components, landing devices and other components. Machinery manufacturing: CNC pin milling is used in machinery manufacturing to process precision parts of various mechanical equipment, such as gears, shafts, bearing seats, couplings, etc. Electronics Industry: Many components in the electronics industry, such as circuit boards, electronic packages, connectors, etc., require CNC pin milling to process precision holes and slots. Medical Device Industry: Many implants, surgical tools and diagnostic devices in the medical device industry require precision hole machining, and CNC pin milling can provide the required precision and consistency. Energy industry: In the field of renewable energy such as wind energy, hydro energy and nuclear energy, CNC pin milling is used to process precision holes of turbine blades, bearing seats, gear boxes and other components. Mold manufacturing: Complex hole and groove processing in mold manufacturing, such as plastic molds, die casting molds, etc., often need CNC pin milling to complete. Robot industry: Precision parts and assembly parts in the robot industry, such as joints, sensor mounting holes, etc., also need CNC pin milling to process. The application of CNC pin milling technology is very wide, covering almost all industries requiring high-precision hole machining. With the advancement of technology and the increasing demand for automation, the application field of CNC pin milling is still expanding.

    2024 06/06

  • The difference between CNC milling and CNC turning
    Pin milling and turning are common cutting processes in metal processing, and they have different applications and characteristics in the processing process. Turning is a method of removing material by rotating the workpiece and using a single-edge tool. In the turning process, the tool moves in a straight line or curve relative to the workpiece to obtain the desired size and shape. This processing method is suitable for processing shaft, disk and other rotating parts, and can process outer circle, inner hole, end face, thread and so on. High precision, good surface quality, suitable for a variety of materials processing. Pin milling usually refers to a machining method that uses a multi-edge tool to mill on a milling machine. In pin milling, the rotation of the tool is the main movement, and the workpiece or tool is fed to remove the material. Milling can process plane, groove, forming surface, etc., suitable for processing mold, box parts. Pin milling is efficient, but the accuracy and surface quality may be slightly lower than turning. To summarize the main differences: Exercise mode: Turning: The workpiece rotates, the tool does the feed movement. Pin milling: The tool rotates, the workpiece does the feed movement or the tool does the feed movement. Processing object: Turning: suitable for processing shaft, disk and other rotary parts. Pin milling: suitable for machining plane, groove, forming surface, etc. Machining accuracy and surface quality: Turning: Usually high machining accuracy and better surface quality can be achieved. Pin milling: Machining efficiency is high, but accuracy and surface quality may be slightly lower than turning. Scope of application: Turning: Widely used in all kinds of metal and non-metal parts processing. Pin milling: Often used in mold manufacturing, machining complex shapes and mass production. Both have their own advantages, in the actual production, often according to the structural characteristics of the parts and technical requirements to choose the appropriate processing method.

    2024 05/28

  • Advantages and applications of 5-axis CNC machining in the industry
    5-axis CNC machining refers to the use of computer numerical control machine tools with five-axis control. These axes allow the tool to be positioned and moved in five different directions, typically consisting of three linear axes (X, Y, Z) and two rotational axes (A and B, or A and C). 5-axis CNC machining has the following advantages: Complex shape processing ability: 5-axis CNC machine can process parts with complex shapes and precise contours. This processing capability is particularly important for the aerospace, automotive, mold making and precision machinery industries. Reduced machining steps: Because it can be machined in multiple directions, 5-axis CNC machining can reduce setup and machining steps, saving time and cost. Improve machining accuracy: 5-axis machining can reduce the contact point between the workpiece and the tool, thereby reducing the error and improving the machining accuracy. Better surface quality: Multi-axis machining can use more reasonable tool paths, reduce vibration and repeat cutting, resulting in better surface quality. Tool life extension: Since the tool can approach the workpiece at the best Angle, cutting forces and wear are reduced, so the service life of the tool can be extended. Reduced fixture requirements: 5-axis machining can complete the machining of multiple faces in a single setting, reducing the use of fixtures and the need for workpiece repositioning. Improve material utilization and productivity: 5-axis machining can make more efficient use of materials, reduce waste of raw materials, and improve production efficiency. Programming of complex tool paths: Modern CAM software can generate complex tool paths, making 5-axis machining more efficient and accurate. 5-axis CNC machining is widely used in various industries requiring precision and complex parts due to its high precision and complex machining capabilities. Here are some of the main application industries: Aerospace: The aerospace industry is one of the main application areas for 5-axis CNC machining. Aircraft and spacecraft parts often have complex geometry and strict tolerance requirements, and 5-axis machining can meet these requirements. Automotive Manufacturing: The automotive industry, especially racing and performance car manufacturing, uses 5-axis CNC machining to produce engine components, transmission gears and other complex mechanical parts. Mold manufacturing: Plastic injection and die casting molds often have complex 3D shapes that can be precisely machined by 5-axis CNC machining. Medical equipment: Many devices in the medical industry, such as artificial joints, surgical tools and implants, require high-precision machining, and 5-axis CNC machining is able to meet these requirements. Energy: Parts for wind turbines and oil drilling equipment are often machined using 5-axis CNC because these parts are often large, complex in shape, and require high durability. Scientific research and military: Many parts in scientific research facilities and military equipment also require high-precision and complex machining, and 5-axis CNC machining is very useful in this regard. Precision machinery: Parts in watches, cameras and other precision mechanical equipment often require a high degree of precision machining, and 5-axis CNC machining provides the required precision. Art and sculpture: Artists and sculptors also sometimes use 5-axis CNC machining to create complex artworks. Our company mainly provides CNC machining services CNC machining metal plastic turning parts lathe machining services CNC milling, CNC turning, sheet metal,3D printing and so on

    2024 05/16

  • The number of shafts commonly used in CNC milling, CNC turning and sheet metal machining
    The number of axes used in CNC milling, CNC turning and sheet metal machining depends on the complexity of the machining task and the required machining accuracy. The following is the number of shafts commonly used for each machining method: CNC milling: 3-axis CNC milling: This is the most common configuration, including X, Y, Z three linear axes. For machining flat or slightly complex 3D surfaces. 4-axis CNC milling: In addition to the X, Y, and Z axes, there is A rotating axis (usually the A or C axis) for machining complex parts with rotational symmetry. 5-axis CNC milling: includes X, Y, Z three linear axes and two rotating axes (usually A and B or C axis). 5-axis milling is used to process very complex parts, such as aircraft structures, turbine blades, etc. CNC turning: 2-axis CNC turning: This is the most basic lathe configuration and usually includes the X-axis (transverse) and Z-axis (longitudinal). Used for machining axisymmetric parts. 3-axis CNC turning: In addition to the X and Z axes, a Y axis has been added. The Y-axis allows the tool to operate more in the lateral (radial) direction, increasing machining flexibility.4-axis CNC turning: A rotating axis (usually the C-axis) is added to the 3-axis for machining complex parts with many facets. 5-axis CNC turning: This configuration usually consists of three linear axes X, Y, and Z and two rotating axes (the C-axis and the A-axis or B-axis). Used for machining very complex axisymmetric parts. Sheet metal processing: 2-axis or 3-axis CNC sheet metal machining: Sheet metal machining usually uses 2-axis or 3-axis CNC bending machines, where the X-axis and Y-axis are used to control the movement of the workpiece, and the Z-axis is used to control the up and down movement of the bending die. Multi-axis CNC sheet metal machining: For more complex sheet metal parts, multi-axis control, including rotation and tilt shafts, may be required for 3D bending and other complex forming operations. It is important to note that the actual number and type of shaft used depends on the specific machine design and processing needs.

    2024 05/10

  • The operation of CNC machining
    Overview of CNC machining processes In CNC machining, a CAD (computer-aided design) model of the desired part is created as a blueprint for the machining process. The CAD model is then converted into a CNC program that contains the instructions the machine needs to follow. Design CAD model A CNC machine tool is a programmable machine tool, but before programming, the geometry, structure and design of the parts are done in CAD software. You can choose to build your own 3D CAD model or insert a 3D image that can be converted to a 2D model. Convert CAD files to CNC programs CNC machines are compatible with computer-aided manufacturing software and can convert 3D parts into CNC machine-specific codes. The code tells the machine how to move the cutting tool, adjust the speed of machining parts during rotation, movement, cutting Angle and depth, etc. Here's an overview of the process: Import CAD file: In the CAM software, import the CAD file that contains the 3D model of the part. The software should support common CAD file formats such as STEP, IGES, or STL. Define machining operations: In CAM software, machining operations are specified according to the requirements of the part. This includes selecting cutting tools, defining tool parameters, and specifying machining strategies. Generate tool path: CAM software calculates the optimal tool path based on the selected operation, taking into account factors such as tool geometry, cutting conditions, materials and machine functions. It offers custom options to optimize the tool path to improve efficiency and quality. Set machining parameters: Machining parameters such as cutting depth, step length, clearance and tool change position are specified to ensure safe and efficient tool movement and prevent collisions and excessive material removal. Post-processing: CAM software performs post-processing to convert the tool path into a CNC program suitable for your specific CNC machine. The post-processor generates G-code instructions to control machine movements, tool changes, and other machine-specific commands. Before the material is removed from a CNC machine, many checks and practices need to be carried out to ensure the best performance and the right tool. Usually, there is more than one way to process a part, and the CNC mechanic first chooses the machining operation. Next is the processing sequence, which breaks down the steps and tools to be used. In the end, he chose machines that could be adapted to CNC machines and manufacturing processes. Perform machining operations The blank or workpiece is placed in a chuck or claw and the process code is transmitted to the CNC machine. Machines began removing material in an automatic and repetitive manner, automating the entire process to speed up production.

    2024 05/02

  • Application of CNC machining technology in automotive industry
    CNC Machining Services CNC Machining Turning Parts Lathe Processing Services CNC milling, CNC turning, sheet metal is widely used in the automotive industry, covering a wide range of component production from engine parts to body and interior parts CNC machining of engine components: CNC machining technology is used to manufacture many important parts of an engine, such as pistons, cylinder heads and camshafts. These components need to be machined with high precision to ensure optimal electrical performance and reliability. For example, a large cylinder block made of aluminum alloy can be converted into an engine block by CNC machining, which is the metal frame of the engine cylinder that allows the piston to move and change position. CNC machining technology is also commonly used to produce cylinder heads, which are the vehicle components that surround the cylinder block CNC machining of transmission systems: CNC machines are used to manufacture transmission components such as gears, shafts and bearings. These components must be produced with extreme precision to ensure smooth and efficient power transmission inside the vehicle. The precision and efficiency of CNC machining are crucial to the performance and durability of the drivetrain. CNC machining of brake systems and suspension systems: CNC machining is essential for the production of brake system components such as calipers, rotors and brake pads. These components need to be extremely reliable and able to withstand high levels of stress. Similarly, CNC machines are used to manufacture suspension components such as control arms, bushings and ball joints, which require high precision to ensure proper alignment and handling. CNC machining of body and interior parts: CNC machining technology is also used to produce various body and interior parts, such as door handles, trim pieces and instrument panel parts. These parts often require complex geometry and fine surface finishes, and CNC machining provides the precision and consistency required CNC machining of customized automotive parts: The flexibility and customization capabilities of CNC machining make it possible to create custom parts based on specific vehicle models or individual customer requirements. This is particularly important for high-performance racing and special automotive applications, where there are strict requirements for specific properties and dimensions of parts

    2024 04/25

  • The 13th China CNC Machine Tool exhibition and the future development of CNC machining industry
    The 13th China CNC Machine Tool Exhibition (CCMT2024). The exhibition, held in Shanghai in April 2024, attracted nearly 2,000 machine tool companies from 28 countries and regions, including well-known machine tool companies from Germany, Japan, Switzerland, the United States and other countries. The theme of the exhibition is "Focus - Digital? The Internet? "Smart Manufacturing" showcases the latest achievements in digital solutions, automation technology applications, and efficient processing technologies China CNC Machine Tool Exhibition (CCMT) was founded in Shanghai in 2000 and has been successfully held for ten consecutive sessions. In April 2018, the 10th China CNC Machine Tool Exhibition (CCMT2018) was held in a total of 1233 exhibitors from 23 countries and regions, with an exhibition area of 120,000 square meters, 707 exhibitors in the domestic exhibition area, 526 exhibitors in the overseas exhibition area, and the number of overseas exhibitors accounted for 42.7%. A total of machine tool associations and trade promotion organizations from 10 countries and regions such as Germany, the United States, Switzerland, Italy and South Korea organized delegations to participate in the exhibition, and the total number of participants reached 126,000, an increase of 19.7%. The total number of visitors reached 171,000, an increase of 17.5% Exhibits: Metal cutting machine tools; Metal forming machine; Special processing machine tools, laser processing equipment, additive manufacturing and special equipment; Manufacturing units/systems, industrial robots and automation equipment; Casting, heat treatment, injection molding, cleaning machine and other peripheral equipment; Functional parts and accessories; Numerical control system, digital display device, machine tool electrical appliances; Abrasives, superhard materials and products, coated abrasives; Tools, jigs and related products; Inspection and measurement equipment; Industrial iot, software, standards, protocol services; Wood and bamboo processing machine; Information consulting, engineering services, etc. The CNC machining industry, including CNC milling, CNC turning and sheet metal machining, is experiencing rapid technological change and changes in market demand. Future developments are likely to focus on the following areas Intelligence and automation: With the advancement of artificial intelligence and machine learning, CNC machine tools will become more intelligent. These technologies can improve production efficiency, reduce human error, and enable more complex processing tasks High-precision and efficient machining: The market demand for high-precision parts is growing, which will promote the development of CNC machining technology in the direction of higher precision and more efficient Digitization and networking: Digital technologies, such as digital twins and cloud computing, will make CNC machines more flexible and manageable. Sustainability and green manufacturing: With the global emphasis on environmental protection, the CNC machining industry will seek more environmentally friendly materials and processes that reduce energy consumption and waste generation Globalization and supply chain integration: With the deepening of globalization, the CNC machining industry will face more challenges of international competition and supply chain integration

    2024 04/18

  • What are the processing technologies for advanced metal materials?
    Advanced manufacturing technology is an important cornerstone supporting the fourth global industrial revolution. Currently, China is focusing on promoting the strategic arrangement of achieving socialist modernization by 2035. Entering the forefront of innovative countries is the strategic goal of socialist modernization, and breaking through key core technologies is the fundamental requirement for entering the forefront of innovative countries. Accelerating the development of advanced manufacturing technology is an important action in tackling key core technologies.Advanced metal material preparation and processing technology is an important direction of industrial development today. Although China has achieved certain results in advanced metal material preparation and processing technology, technological innovation is still needed. In today's industrial environment, the application prospects of advanced metal material preparation and processing technology are broad, which can greatly improve processing quality and product quality. It is a prerequisite for establishing a brand and will greatly promote the transformation from Made in China to Intelligent Manufacturing in China.1、 Additive manufacturing technology.Additive manufacturing is a manufacturing technology that integrates computer-aided design, material processing, and forming technology, and then uses customized materials to stack and solidify digital model files layer by layer through software and CNC systems to manufacture physical products. That is to say, with just one idea, data file, and corresponding materials, direct conversion from idea to entity can be achieved.Additive manufacturing technology has a short production cycle, and compared to traditional metal material preparation methods, it requires lower manufacturing capabilities. It requires fewer operations and is easy to operate. In addition, additive manufacturing technology occupies a small area, is convenient to carry, and can also play a role in certain specific situations. At the same time, additive manufacturing technology can perfectly replicate the production model on 3D software, achieve precise manufacturing, and achieve complex structures that traditional molding methods cannot complete. Moreover, there is no waste material after manufacturing, which improves material utilization.Due to the technological characteristics of additive manufacturing, it has attracted widespread global attention and may bring a series of profound changes to traditional manufacturing. In the past few years, the manufacturing of aviation equipment components and medical devices has always been the application places with the highest growth rate of additive manufacturing products. The global additive manufacturing revenue in 2020 has reached 15.8 billion US dollars, and the revenue forecast for 2022 is expected to climb to 23.9 billion US dollars, reaching 35.6 billion US dollars by 2024. Additive processing and manufacturing technology is still in a period of rapid development and has strong market vitality. However, additive manufacturing technology has relatively high requirements for raw materials, resulting in high raw material costs. At the same time, the equipment for additive manufacturing is relatively expensive, and some key components also rely on imports, which limits the application of this technology in ordinary products. Developing low-cost raw materials and mastering key technologies to reduce equipment costs are important issues to be addressed in promoting additive manufacturing technology. 2、 Femtosecond laser technology Femtosecond laser technology is composed of chemical lasers that operate freely and rapidly in various forms of laser electromagnetic waves or laser pulses. Its processing duration is very short, and it has very high instantaneous motion speed and processing power. During the processing, laser can easily and directly achieve fine laser processing, repair, and laser microwave diffraction treatment of any material. Laser interacts with other chemicals in an extremely short duration of fine processing and a very small action space. The laser temperature within the action time range rapidly rises in an instant, and the femtosecond laser spot is removed by various forms of laser plasma rapid outward movement and spraying.The femtosecond laser technology avoids the quality problems caused by the high-temperature fusion and melting process in traditional processing, significantly reducing and effectively eliminating many other negative impacts that may arise from the high-temperature thermal effects in traditional processing management. It has great application prospects in the field of ultra fine machining and repair.The femtosecond laser technology is still in its early stages, and the development and application of this technology still need to solve a series of key technical problems. For example, there is currently no complete theory to explain the physical essence of the interaction between laser and matter under extreme conditions of ultrafast, ultra short, and ultra strong; Increase investment in the production of femtosecond lasers and microfabrication systems, and further miniaturize their volume; Improve the working environment for its microfabrication and extend its lifespan; Develop software for model design based on the characteristics of femtosecond laser microfabrication and the properties of the processed material, simulate and simulate the machining process, and achieve optimal parameter machining. 3、 Ultrasonic machining technology Ultrasonic machining is a special machining method that uses ultrasonic frequency as a tool for small amplitude vibration, and gradually breaks the surface of the workpiece material through the hammering effect of the abrasive free in the liquid between it and the workpiece on the machined surface. It has unique advantages in cutting, wire drawing dies, deep and small hole machining, and other fields. Ultrasonic machining has experienced rapid development in the past few decades, especially in the field of difficult to machine materials, where many key process problems have been solved and good results have been achieved. Ultrasonic machining has gradually become an important means to improve the energy efficiency of mechanical processing. From the perspective of application industry, ultrasonic machining is currently mainly applied in 3C, aerospace, national defense and military industry, and 5G new materials. In the aerospace field, high product quality is required. Important materials such as carbon carbon composites and carbon fibers have excellent characteristics such as high strength, low density, ultra-high temperature resistance, and corrosion resistance. However, their high strength, high elastic modulus, and wear resistance are difficult to process, and are not easy to cut, prone to edge collapse, and have fast tool wear. Ultrasonic machining can reduce tool load, improve edge and burr phenomena, and improve machining quality and efficiency. With the improvement of processing quality and demand for new materials, difficult to machine materials, difficult to machine structures and surfaces, as well as the combination of ultrasonic machining with electrical discharge machining, electrochemical machining, cutting machining, grinding machining, etc. to form composite machining, ultrasonic machining will have broader application prospects in improving processing efficiency and quality.

    2024 04/01

  • 24 commonly used metal materials for mechanical processing and their characteristics!
    24 commonly used metal materials for mechanical processing and their characteristics! Social friends who work with machinery are inevitably involved in dealing with commonly used metal materials. This time, We will share with you 24 commonly used materials for machinery and mold processing. Do you know all of them? 1. 45- High quality carbon structural steel, which is the most commonly used medium carbon quenched and tempered steel Main features: The most commonly used medium carbon quenched and tempered steel has good comprehensive mechanical properties, low hardenability, and is prone to cracking during water quenching. Small parts should be treated with quenching and tempering, while large parts should be treated with normalizing. Application example: Mainly used for manufacturing high-strength moving parts, such as turbine impellers and compressor pistons. Shafts, gears, racks, worms, etc. Pay attention to preheating before welding and stress relief annealing after welding. 2. Q235A (A3 steel) - the most commonly used carbon structural steel Main features: high plasticity, toughness, welding performance, cold stamping performance, as well as certain strength and good cold bending performance. Application example: Widely used for general requirements of parts and welded structures. Such as tension rods, connecting rods, pins, shafts, screws, nuts, collars, brackets, machine bases, building structures, bridges, etc. that are not subjected to significant force. 3. 40Cr - one of the most widely used steel grades, belonging to alloy structural steel Main features: After quenching and tempering treatment, it has good comprehensive mechanical properties, low temperature impact toughness, and low notch sensitivity. It has good hardenability and can achieve high fatigue strength when oil cooled. Complex shaped parts are prone to cracking when water cooled, with moderate cold bending plasticity. After tempering or quenching, it has good machinability, but poor weldability and is prone to cracking. It should be preheated to 100-150 ℃ before welding and is generally used in the quenched and tempered state, Carbon nitrogen co infiltration and high-frequency surface quenching treatment can also be carried out. Application example: After quenching and tempering, it is used to manufacture parts with medium speed and medium load, such as machine tool gears, shafts, worm gears, spline shafts, top pin sleeves, etc. After quenching and high-frequency surface quenching, it is used to manufacture parts with high surface hardness and wear resistance, such as gears, shafts, spindles, crankshafts, mandrels, sleeves, pins, connecting rods, screws and nuts, intake valves, etc. After quenching and medium temperature tempering, it is used to manufacture parts with heavy load and medium speed impact, such as oil pump rotors Sliding blocks, gears, spindles, and collars are used to manufacture heavy-duty, low impact, and wear-resistant parts, such as worms, spindles, shafts, and collars, after quenching and low-temperature tempering. The carbon nitrogen co infiltration area is used to manufacture transmission parts with larger dimensions and higher low-temperature impact toughness, such as shafts and gears. 4. HT150- Grey cast iron Application examples: gear box, machine bed, box, hydraulic cylinder, pump body, valve body, flywheel, cylinder head, pulley, bearing cover, etc. 5. 35- Common materials for various standard parts and fasteners Main features: appropriate strength, good plasticity, high cold plasticity, and acceptable weldability. Under cold conditions, it can be locally upset and drawn. Low hardenability, used after normalizing or quenching. Examples of applications: Suitable for manufacturing small section parts that can withstand large loads, such as crankshafts, levers, connecting rods, hooks, etc., various standard parts, fasteners. 6. 65Mn - commonly used spring steel Application examples: Various small-sized flat and round springs, seat cushion springs, spring springs, can also be made into spring rings, valve springs, clutch springs, brake springs, cold coil coil springs, snap springs, etc. 7. 0Cr18Ni9- The most commonly used stainless steel (American grade 304, Japanese grade SUS304) Characteristics and applications: As a stainless and heat-resistant steel, it is widely used in food equipment, general chemical equipment, and industrial equipment. 8. Cr12- Commonly used cold work mold steel (American grade D3, Japanese grade SKD1) Characteristics and applications: Cr12 steel is a widely used cold work mold steel, belonging to the high carbon and high chromium type of martensitic steel. This steel has good hardenability and good wear resistance; Due to the high carbon content of 2.3% in Cr12 steel, its impact toughness is poor, it is prone to brittle cracking, and uneven eutectic carbides are easily formed; Due to its excellent wear resistance, Cr12 steel is often used to manufacture cold stamping dies, punches, cutting dies, cold heading dies, cold extrusion dies with low impact loads and high wear requirements, as well as punch and concave dies, drill sleeves, gauges, drawing dies, stamping dies, wire drawing plates, deep drawing dies, and cold pressing dies for powder metallurgy. 9. DC53- Commonly Used Cold Work Mold Steel Imported from Japan Features and applications: High strength and toughness cold work mold steel, steel grade from Japanese Datong Special Steel (Company) manufacturer. After high-temperature tempering, it has high hardness, high toughness, and good wire cutting performance. Used for precision cold stamping dies, drawing dies, wire rolling dies, cold punching dies, punches, etc. 10. SM45- ordinary carbon plastic mold steel (Japanese steel grade S45C) 10. DCCr12MoV - wear-resistant chromium steel Domestic. Compared to Cr12 steel, this steel has a lower carbon content and the addition of Mo and V improves the unevenness of carbides. MO can reduce carbide segregation and improve hardenability, while V can refine grains and increase toughness. This steel has high hardenability, with a section below 400mm that can be completely quenched. It can still maintain good hardness and wear resistance at 300-400 ℃, and has higher toughness than Cr12. The volume change during quenching is small, and it also has high wear resistance and good comprehensive mechanical properties. Therefore, it can be manufactured with a large section, Various molds with complex shapes and subjected to significant impacts, such as ordinary drawing dies, punching dies, punching dies, material cutting dies, trimming dies, rolling dies, wire drawing dies, cold extrusion dies, cold cutting scissors, circular saws, standard tools, measuring tools, etc. 11. SKD11- Tough Chromium Steel Hitachi's production in Japan has improved the casting structure in steel and refined the grain size. Compared to Cr12mov, it has improved toughness and wear resistance, and extended the service life of the mold 12. D2- High carbon and high chromium cold working steel Made in the United States, it has high hardenability, hardenability, wear resistance, good high-temperature oxidation resistance, good rust resistance after quenching and polishing, small heat treatment deformation, and is suitable for manufacturing various high-precision and long-life cold working molds, tools and measuring tools, such as stretching molds, cold extrusion molds, cold shear knives, etc. 13. SKD11 (SLD) - Non deformable toughness high chromium steel Production by Hitachi Corporation of Japan. Due to the increase in MO and V content in steel, the casting structure of the steel is improved, the grains are refined, and the morphology of carbides is improved. As a result, the strength and toughness (bending strength, deflection, impact toughness, etc.) of this steel are higher than those of SKD1 and D2, and its wear resistance is also increased. Moreover, it has been proven that the service life of this steel mold is higher than that of Cr12mov. High demand molds such as tensile molds and impact grinding wheel molds are often manufactured. 14. DC53- High toughness high chromium steel Japanese Datong style production. Heat treatment hardness is higher than SKD11. After high-temperature (520-530) tempering, it can reach 62-63HRC high hardness. In terms of strength and wear resistance, DC53 exceeds SKD11. Its toughness is twice that of SKD11 The toughness of DC53 rarely shows cracks and cracks in cold work mold manufacturing, greatly improving its service life. The residual stress is small, and it is reduced after high-temperature turning. Because the cracks and deformation after wire cutting are suppressed, its cutting and grinding properties exceed those of SKD11. It is used for precision stamping molds, cold forging, deep drawing molds, etc. 15. SKH-9- General purpose high-speed steel with high wear resistance and toughness Produced by Hitachi in Japan. Used for cold forging dies, cutting machines, drill bits, reamers, punches, etc. 16. ASP-23- Powder Metallurgical High Speed Steel Made in Sweden. The distribution of carbides is extremely uniform, wear-resistant, high toughness, easy to process, and the size of heat treatment is stable. It is used for various long-life cutting tools such as punches, deep drawing dies, drilling dies, milling cutters, and shear blades. 17. P20- General requirements for the size of plastic molds Made in the United States. Able to be electroplated. Pre hardened HB270-300 in factory condition. Quenched hardness HRC52. 18. 718- High demand size plastic molds Made in Sweden, especially for electro etching operations Factory status pre hard HB290-330 Quenching hardness HRC52 19. Nak80- High mirror surface, high-precision plastic mold Japanese Datong style production Factory state pre hardened HB370-400. Quenched hardness HRC52 20. S136- Anti corrosion and mirror polished plastic molds Made in Sweden Factory condition pre hardening HB < 215. Quenching hardness HRC52. 21. H13- Common Die Casting Dies Used for die casting of aluminum, zinc, magnesium, and alloys. Hot stamping dies, aluminum extrusion dies 22. SKD61- Advanced Die Casting Mold Hitachi, a Japanese company, has significantly improved its service life compared to H13 through electric slag remelting technology Hot stamping die, aluminum extrusion die 23, 8407- Advanced Die Casting Mold Made in Sweden Hot stamping die, aluminum extrusion die 24. FDAC - Added sulfur to enhance its workability Factory pre hardness 338-42HRC, can be directly carved without quenching or tempering treatment. Used for small batch molds, simple molds, various resin products, sliding parts, short lead time mold parts, zipper molds, and glasses frame molds.

    2024 03/18

  • Processing Technology and Application of PEEK Materials
    Processing Technology and Application of PEEK Materials In multiple engineering fields, PEEK is often used to achieve performance and demanding applications similar to those provided by metals. For example, in various applications that require long-term compression resistance, wear resistance, tensile strength, and high performance, the potential advantages of PEEK materials can be utilized in the oil and gas industry. Continue reading to learn about the processing techniques and applications suitable for peek materials. Three Common Process Types for PEEK Material Processing One of the reasons why PEEK is widely used in engineering applications is the availability of multiple options and processing conditions, namely processing, fuse manufacturing, 3D printing, and injection molding, to manufacture the required geometric shapes in organic and water environments 1. PEEK CNC machining CNC (Computer Numerical Control) machining consists of different variants of multi axis milling, turning, and electrical discharge machining (EDM) to obtain the desired geometric profile. The main advantage of these machines is that they can be controlled through advanced controllers and computer-generated code. CNC machining provides the opportunity to create complex geometric shapes of different materials, from plastic to metal, while meeting the required geometric tolerance limitations. Mold PEEK materials can be processed to obtain complex geometric contours, as well as medical and industrial grade PEEK. CNC machining provides high precision and repeatability for PEEK parts. PEEK is stronger and harder than most polymers, but softer than most metals. This requires the use of fixtures during the machining process to ensure precise machining. PEEK is a high heat engineering plastic, and the heat generated during the processing cannot be fully dissipated. This requires the use of technology to avoid problems caused by inefficient heat dissipation of materials. These preventive measures include deep hole drilling and the use of sufficient coolant in all machining processes. Petroleum based and water-based coolants can be used. Another important factor to consider is tool wear during processing PEEK, compared to processing a few other compatible plastics. The use of carbon fiber reinforced PEEK grade has a greater adverse effect on the tool. This situation requires the use of hard alloy tools to process ordinary grade PEEK, while diamond tools are used to process carbon fiber reinforced PEEK grades. The use of coolant can also improve tool life. 2. PEEK 3D printing 3D printing, also known as additive manufacturing, typically refers to the use of adding materials in layers to create 3D geometric shapes from computer-aided design models. PEEK material is suitable for 3D printing. Melt deposition modeling (FDM) is the most widely used 3D printing method for PEEK materials. Some progress has also been made in printing PEEK in powder form through selective laser sintering (SLS). 3D printed PEEK products have good wear resistance. Fibers produced by different manufacturers can provide different properties. 3D printing components provide a unique opportunity for healthcare professionals to produce customized implants to meet the needs of individual patients. 3D printed PEEK material components are used in different spatial systems. It also demonstrates the capabilities that 3D printed PEEK materials can provide. However, to print PEEK materials, a high-temperature nozzle with a temperature exceeding 300 ℃ is required. In addition to the high-temperature nozzle, a heating bed is also needed to continuously maintain the heating state of the material. Some printers also use a heating chamber to achieve this goal. The heating chamber can better control the room temperature and continuously provide heat. 3. PEEK injection molding Injection molding refers to the manufacturing of thermoplastic parts by injecting molten material into pre-existing molds. It is used for mass production of parts. The material is melted in the heating chamber, mixed with a spiral screw, and then injected into the mold cavity, where the material cools to form a solid shape. Granular PEEK materials are used for injection molding and compression molding. The drying procedures required for granular PEEK produced by different manufacturers may vary slightly, but typically drying at 150 ° C to 160 ° C for 3 to 4 hours is sufficient. Standard injection molding machines can be used for injection molding of PEEK materials or mold peeks, as these machines can achieve heating temperatures ranging from 350 ° C to 400 ° C, which is sufficient to meet almost all PEEK grades. Special attention should be paid to the cooling of the mold, as any inconsistency can cause changes in the structure of PEEK material. Any deviation from the semi crystalline structure can lead to suboptimal changes in the characteristic characteristics of PEEK. For example, using cold molds can lead to the formation of amorphous structures in PEEK. The optimal mold operating temperature for most grades of PEEK is considered to be between 170 ° C and 200 ° C to obtain a semi crystalline structure. Application scenarios of Peek products 1. Medical field Due to the biocompatibility of PEEK materials, they are widely used in medical applications, including implanting components into the human body at different times. Components made of PEEK material are also used in different drug delivery systems. Other medical applications include dental healing caps, pointed washers, trauma fixation devices, and spinal fusion devices. 2. Aerospace field Due to the compatibility, thermal conductivity, radiation resistance, and chemical resistance of PEEK with ultra-high vacuum applications, parts made of PEEK plastic are widely used in aerospace applications due to their high-performance tensile strength. 3. The automotive industry Bearings and different types of rings are also made of PEEK. Due to its excellent weight to strength ratio, PEEK is used to manufacture parts for racing engine sets 4. Insulation of wires and cables/electronic applications The cable insulation layer is made of PEEK and can be used for applications such as aircraft electrical systems in manufacturing projects. conclusion As a semi crystalline organic polymer belonging to the PAEK family, PEEK has mechanical, thermal, chemical, and electrical properties, making it the preferred material for multiple engineering applications. PEEK comes in various forms (rod shaped, filamentous, granular) and can be processed through CNC machining, 3D printing, and injection molding. WayKen has extensive experience in PEEK processing and is always ready to provide support in your PEEK project. Contact us today to obtain a quote.

    2024 03/01

  • Back to work from new year holiday
    GZ prototype company has been working from new year holiday, it is professional company for CNC MACHINING, CNC MILLING, CNC TURNING, DRILLING, SHEET METAL,3D PRINTING, EDM and so on. The material can be choose: 1, PLASTIC:PEEK, PA,ABS, ABS+PC, ASA, FR+PA, HDPE, POM, PTFE, PPS,Conductive PEEK, flame-retardant ABS, PA66 etc. 2, metal: 304/16 stainless steel, steel, aluminum, copper, alloy etc. Test machines: CMM,Needle gauge, caliper etc Welcome your inquiry.

    2024 02/19

  • How to choose titanium alloys of different grades
    There are many grades of titanium and titanium alloys, including industrial pure titanium TA1, TA2, TA3, TA4, American standard Gr1, Gr2, Gr3, Gr4, titanium alloy TA9, TA9-1, TA10, TC4, American standard Gr7, Gr11, Gr5, Gr23, Gr12, Ti 5Al-2.5Sn, etc. Different grades of titanium alloys may have significant differences in performance. How to choose the appropriate grade for industrial use of titanium alloys? What are the differences and applicable scenarios of these brands? chemical treatment Chlorate manufacturing Stable size anode Desalination of seawater building Medical industry Marine industry Automotive components Fuselage structure TA2 (American Gr2) level Due to its diverse and extensive availability, TA2 grade titanium is known as the "mainstay" of commercial pure titanium industry. It has many similar qualities as TA1 grade titanium alloy, but slightly stronger. Both are equally corrosion-resistant. This brand has good weldability, strength, ductility, and formability. This makes TA2 grade titanium rods and titanium sheets the preferred choice in many application areas: building generation Medical industry Water carbon processing Marine industry Exhaust pipe cover Body skin Desalination of seawater chemical treatment Chlorate manufacturing TA3 (American Gr3) level This grade uses at least commercial pure titanium grade, but this will not reduce its value. TA3 grade is stronger than TA1 grade and TA2 grade, with similar ductility and only slight formability - but it has higher mechanical properties than its predecessor. TA3 level is used in applications that require moderate strength and primary corrosion resistance. These include: Aerospace structures chemical treatment Medical industry Marine industry TA4 (American Gr4) level TA4 grade is considered the strongest among the four commercial pure titanium. It is also known for its excellent corrosion resistance, good formability, and weldability. Although it is commonly used in the following industrial applications, a niche for medical grade titanium has been found in the recent 4th grade. In applications that require high intensity, it is necessary to: Body components Low temperature container Heat exchanger CPI equipment Condenser tube Surgical hardware Pickling basket titanium alloy TA9 (American Gr7) level TA9 is mechanically and physically equivalent to TA2, except for the addition of interstitial element palladium to make it an alloy. Grade 7 has excellent weldability and characteristics, making it the most corrosion-resistant among all titanium alloys. In fact, it is the most corrosion-resistant among reducing acids. TA9 level is used for chemical processes and production equipment components. TA9 has extremely strong corrosion resistance, especially in reducing acidic environments. chemical treatment Chlorate manufacturing Desalination of seawater Marine applications Ti 6Al-4V (National Standard TC4, American Standard Gr5) level The "main force" of titanium alloys is Ti 6Al-4V or grade 5 titanium, which is the most commonly used among all titanium alloys. It accounts for 50% of the world's total titanium usage. Its usability lies in many of its benefits. Ti 6Al-4V can be heat treated to increase its strength. It can be used for welding structures at temperatures up to 600 ° F. This alloy has high strength due to its lightweight, useful formability, and high corrosion resistance. The availability of Ti 6AI-4V makes it the best alloy for multiple industries such as aerospace, medical, shipbuilding, and chemical processing. It can be used to create the following technical content: Aircraft turbine Engine components Aircraft structural components Aerospace fasteners High performance automatic parts Marine applications Sports equipment Ti 6AL-4V ELI (National Standard TC4ELI, American Standard Gr23) level Ti 6AL-4V ELI or TC4ELI grade is a higher purity form of Ti 6Al-4V. It can be made into coils, twisted wires, wires, or flat wires. For any situation that requires high strength, lightweight, good corrosion resistance, and high toughness, it is the first choice. It has excellent damage tolerance for other alloys. These advantages make TC4ELI grade the ultimate dental and medical titanium grade. Due to its biocompatibility, good fatigue strength, and low modulus, it can be used in biomedical applications, such as implantable components. It can also be used for detailed surgical procedures, such as: Orthopedic pins and screws Orthopedic cable Ligature editing Surgical implantation Orthodontic appliances In joint replacement Low temperature container Bone fixation device TA10 (American Gr12) level TA10 grade titanium has an "excellent" grade due to its high-quality weldability. It is a highly durable alloy that can provide great strength at high temperatures. TA10 grade titanium has similar characteristics to 300 series stainless steel. This alloy can be hot or cold formed using compression molding, water pressure molding, tensile molding, or drop hammer method. Its ability to form in various ways makes it useful in many applications. The high corrosion resistance of this alloy also makes it immeasurable for manufacturing equipment that needs to consider crevice corrosion. TA10 level can be used in the following industries and applications: Shell and heat exchanger Wet metallurgical applications High temperature chemical manufacturing Shipping and airfare components Ti 5Al-2.5Sn Ti 5Al-2.5Sn is a non heat treatable alloy that can achieve good weldability and stability. It also has high temperature stability, high strength, good corrosion resistance, and good creep resistance. Creep refers to the phenomenon of plastic strain occurring for a long time at high temperatures. Ti 5Al-2.5Sn is mainly used for aircraft and fuselage applications as well as low-temperature applications. No matter what material you want, we can provide CNC MAHCINING, CNC MILLING, CNC TURNING, SHEET METAL, 3D PRINTING FOR YOUR PROTOTYPE AND LOW VOLUME MANUFACTURING

    2024 01/22

  • 2024 USA CES Exhibition
    CES 2024 Opening: With over 4000 exhibitors, AI becomes the absolute protagonist The 2024 International Consumer Electronics Show (CES 2024) is currently being held in Las Vegas, USA, and unlike in the past, the keyword for this year's show is "AI". Every year, CES is a grand event in the technology industry. The theme of this exhibition is "ALL TOGETHER. ALL ON", and it is expected that this year's CES will attract over 130000 people to participate. The number of participating companies will also exceed 4000, and the exhibition will continue until the 12th. The emergence of ChatGPT has made 2023 known as the first year of AI. Unlike previous CES exhibitions where new energy vehicles were the main theme, this year's CES 2024 will feature "AI" as the absolute focus, making it a milestone exhibition that allows AI technology to bring more possibilities to life. Multiple brands work together to revitalize, and AI is everywhere. All participating brands are working together to showcase the latest technological trends and new product releases. The theme of Samsung's CES 2024 press conference is "AI for All", fully demonstrating its confidence in the future AI era. In the field of smart home appliances, Samsung has released the new generation AI chip NQ8 AI Gen3, which is Samsung's latest and strongest TV processor to date. Its NPU speed is twice that of the previous generation, and the number of neural networks has increased from 64 to 512, allowing all content on the screen to be presented in clear details. The 2024 Neo QLED 8K new TV is equipped with the new NQ8 AI Gen3 chip, ushering Samsung into the "AI screen era". Samsung Electronics also showcases new achievements in AI smart homes. The Ballie spherical projection robot was released as early as the 2020 CES exhibition, and this improvement has increased Ballie's functionality. It is a mobile projector that plays music and videos, makes video calls with others, and can also serve as a monitor. Ballie can also feed and check the condition of pets at home. LG, also a Korean electronics brand, showcases its vision for the future of smart living solutions under the theme of "Reinvent your future". LG launches AI Agent, a companion robot that helps with household chores. This robot has built-in cameras, speakers, and various sensors, which can communicate with users through voice, monitor indoor temperature, humidity, and air quality, and interact with smart home appliances and IoT devices. LG also launched the world's first wireless transparent OLED TV - LG Signature OLED T 4K. It is understood that it adopts an innovative 77 inch transparent display screen, which can seamlessly coordinate with the environment. When the TV is turned off, it is almost invisible, bringing a greater sense of space, and users do not need to consider the problem of "large black screen". At the same time, in this year's CES, TCL is the enterprise that occupies the largest exhibition area among Chinese brands, bringing over 120 products in 23 categories, focusing on showcasing cutting-edge products and technological strength in the two core industries of intelligent terminals and semiconductor displays, and showcasing the world's largest QD Mini LED high-end TV with 115 inches. In the automotive field, Volkswagen Group showcased the first models to integrate ChatGPT into its IDA voice assistant function. After integrating ChatGPT with the Volkswagen IDA voice assistant backend, it can achieve many new functions far beyond voice control. The first batch of models to be equipped with ChatGPT are the European versions of ID.7, ID.4, ID.5, ID.3, the all-new Tiguan, the all-new Passat, and the new Golf. Additionally, the Xiaopeng Huitian Land Air Integrated Flying Car made its debut at the 2024 CES, marking the first public appearance of the Xiaopeng Huitian Integrated Flying Car on the international stage since its release in October 2023. Wang Tan, co-founder and vice president of Xiaopeng Huitian, announced at a press conference that another split type flying car, "Land Aircraft Carrier," will be available for pre order in the fourth quarter of 2024 and is scheduled to begin mass production and delivery in the fourth quarter of 2025. In addition, autonomous driving technology remains one of the highlights of CES 2024. Major manufacturers are showcasing the latest autonomous driving technology and intelligent transportation solutions. For example, chip manufacturer NVIDIA said that four Chinese electric vehicle manufacturers (Ideal Auto, Great Wall Motors, Krypton and Xiaomi) would use NVIDIA's DRIVE technology in their auto drive system. AI will also continue to empower intelligent vehicles and accelerate a new round of transformation for them. In the computer industry, Lenovo Group has made a significant debut in CES 2024 with over 10 AI PCs, including the Yoga Pro 9i that empowers the creative process, the world's first ThinkBook Plus Gen 5 Hybrid that can seamlessly switch between laptop and tablet modes, the world's first business AI PC ThinkPad X1 Carbon AI, and the new generation of ultra small ThinkCentre neo Ultra. Technology changes life, and every year's CES exhibition is like giving a new key, providing new ways to open the world. No matter what industry you are specializing, if you need prototype manufacturing, pls do feel free to contact GZ-PROTO, MAIN SERVICE INCLUDED: CNC MACHINING, CNC MILLING, CNC TURNING, WELDING, BENDING, SHEET METAL AND SO ON.

    2024 01/10

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