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  • Failure Analysis and Countermeasures for Automated Deburring of Die Castings
    Failure Analysis and Countermeasures for Automated Deburring of Die Castings
    Sep 03, 2026
    Failure Analysis and Countermeasures for Automated Deburring of Die Castings AbstractAutomated deburring of die castings is theoretically considered easier to implement than for iron or steel castings because die castings have better surface quality and burrs are concentrated at relatively fixed locations such as parting lines, gates, vents, and ejector pin marks. However, actual operating data from multiple die casting shops show that robot deburring cells commonly experience missed spots, over-grinding, tool collisions, and yield degradation after only three to six months of production, with some equipment eventually idled or reverted to manual operation. This article analyzes the process characteristics of die casting production and identifies three core factors causing automation failure: burr size variation due to die wear, lack of reliable positioning datums on raw parts, and insufficient deburring tool management. The study argues that the prerequisite for successful die casting deburring automation is not higher robot accuracy or faster force control response, but rather the establishment of a preventive die maintenance system, reliable workpiece positioning solutions, and closed-loop tool life management. The article concludes with improvement paths and implementation recommendations for different die casting production scenarios. Keywordsdie casting deburring automation; burr consistency; die wear; positioning datum; tool management 1 IntroductionDie casting produces parts with relatively high dimensional accuracy, good surface finish, and fast cycle times, widely used in automotive, telecommunications, power tools, and home appliance industries. After ejection, die castings typically require removal of gates, vents, flash, and ejector pin protrusions, collectively referred to as burrs. Manual deburring has long relied on pneumatic files, rotary burrs, and sandpaper, with high labor intensity, obvious dust and noise hazards, and poor consistency. Therefore, the die casting industry has a strong practical demand for deburring automation. From a technical perspective, burr positions on die castings are relatively fixed, theoretically making them suitable for automated removal by robots with floating tools. However, in actual projects, many die casting plants have invested hundreds of thousands or even millions of RMB in robot deburring cells, only to encounter various problems after a few months of operation: some products show rising missed-spot rates requiring full manual inspection and repair; some suffer over-grinding leading to scrap; some experience frequent tool collisions causing spindle damage. These problems erode management confidence in automation, and equipment gradually sits idle. This article analyzes the deep causes of die casting deburring automation failure based on investigations and project reviews in multiple die casting shops. The analysis is not limited to the robot itself but covers die casting molds, raw part condition, positioning methods, tool consumption, and on-site management, aiming to provide actionable improvement directions for die casting plants. 2 Burr Size Variation: The Direct Consequence of Die WearBurrs on die castings primarily form at the parting surface. Die casting molds are subjected to alternating clamping force and thermal stress from high-speed, high-pressure molten metal injection, causing wear, edge collapse, and localized depression on the parting surface. New molds or freshly repaired molds have tightly closed parting surfaces, with flash thickness typically between 0.1 mm and 0.3 mm—thin and uniform, allowing robots to remove it stably with fixed trajectories and minimal floating compensation. But as mold usage accumulates, the parting surface gap gradually increases, and flash thickness can grow from 0.3 mm to over 1 mm, sometimes exceeding 2 mm in severe local areas. This variation in burr thickness is devastating to robot deburring. Under fixed trajectory mode, the robot follows preset paths and pressure. When burrs suddenly thicken, if the force control system does not respond quickly enough, the tool will either over-cut the workpiece body or under-cut the burr. Even with force-controlled spindles, response time is typically in the tens of milliseconds, offering limited adaptability to sudden burr changes. Moreover, if force control parameters are set too sensitively, vibration occurs even in normal burr areas, affecting surface quality. The fundamental solution is die maintenance. Die casting plants should establish a preventive die maintenance system, incorporating parting surface flatness inspection into daily checks. Specific practices include: inspecting parting surface wear every certain number of shots (e.g., 5,000 to 10,000 shots, depending on product size and alloy type), measuring parting surface gap with feeler gauges, repairing collapsed edges by welding and grinding, and promptly replacing worn inserts and ejector pins. The goal is to control burr thickness within a preset range, such as no more than 0.5 mm. Only when burr size is stable can robot trajectories and force control parameters remain effective over the long term. 3 Lack of Positioning Datum: Strict Requirements on Raw PartsRobot deburring demands far higher workpiece positioning accuracy than manual work. Manual operators can watch the workpiece and adjust file angles accordingly, while robots rely on preset coordinate systems. If the workpiece is not placed in a consistent position each time, the robot grinding trajectory will deviate from the actual burr location. Die cast raw parts usually enter deburring directly without machining, lacking precision datum surfaces. Fixtures often locate on raw surfaces, ejector pin bosses, gate stubs, or sidewall profiles. These features have draft angles, ejection deformation, and position deviations. For example, ejector pin boss height may vary due to ejector mechanism wear, gate stub length differs due to injection parameter fluctuations, and raw surfaces warp from uneven shrinkage. These accumulated deviations can cause the actual workpiece position on the fixture to differ from the theoretical position by 0.5 mm to 2 mm. For deburring processes requiring accuracy within 0.3 mm, such positioning error is unacceptable. There are several ways to solve the positioning problem. First, control the tolerances of key locating features at the die casting stage, such as designing dedicated locating bosses on the mold and stabilizing their dimensions through injection parameters. Second, add a simple machining operation before deburring to mill a flat datum or drill a locating hole, providing a stable reference for the robot. Third, use vision guidance for rough position compensation, where cameras recognize workpiece contours or feature points, calculate offsets, and correct robot trajectories. Vision solutions face interference from oil, reflections, and surface oxidation color differences in die casting shops, and their recognition stability still needs improvement, making them more suitable as auxiliary means rather than the sole dependency. 4 Lack of Tool Management: An Open-Loop System Causes Yield DecayDie castings are primarily aluminum and zinc alloys with relatively low hardness, but rotary burrs, grinding discs, and flap wheels still wear. Aluminum has a special problem: aluminum chips tend to adhere to tool surfaces, forming built-up edges that reduce cutting efficiency and scratch workpiece surfaces. If tool condition is not managed, robot deburring quality gradually declines with running time, dropping from initial pass rates above 95% to 80% or lower. Most die casting plants pay insufficient attention to tool management. In manual deburring, workers judge tool sharpness by feel and replace dull tools casually without cost awareness. But once a robot deburring cell is established, tool replacement must be institutionalized. Without tool life records and condition monitoring, the robot becomes an open-loop system: inputs are raw parts and tools, output is the deburred workpiece, but there is no feedback in between, and quality decay cannot be detected in time. Improvement measures include: establishing a tool life statistics table recording the number of parts ground and replacement time for each tool; monitoring spindle current trends and prompting tool replacement when current drops significantly or fluctuates abnormally; for high-volume products, configuring automatic tool changers or multi-station tool magazines to reduce manual intervention. Tool costs should be included in the operating cost accounting of the automation system, and die casting plants must not ignore this item when calculating return on investment. 5 Application Scenario Analysis and Implementation RecommendationsDie casting deburring automation is not suitable for every product. Conditions favoring automation include: single product with high volume, annual output exceeding 50,000 pieces; a sound die maintenance system with controlled burr thickness variation; burr positions concentrated in robot-reachable areas; and product geometry allowing reliable positioning; product design tolerating certain deburring variation. For multi-variety small-batch production or severely worn dies, blindly adopting robot deburring carries high risk. It is better to start with local automation on the most regular and concentrated burr locations, such as gate sawing or parting line grinding, while keeping other areas manual and transitioning gradually. Before investment, conduct a burr consistency test: collect burr height data from at least three batches with thirty pieces per batch, calculate mean and standard deviation, and use the results to set trajectory compensation amounts and force control parameters. 6 ConclusionThe main reason die casting deburring automation fails is not immature robot technology but insufficient process stability. The solution path must address die maintenance, raw part positioning, and tool management to establish a closed-loop control system. Only when burr size variation is controlled, positioning is reliable, and tool condition is manageable can robot deburring achieve long-term stable operation. Die casting plants should include die maintenance costs and tool management costs in total investment evaluation when making automation decisions, avoiding the mistake of only calculating equipment purchase price while ignoring operating costs.
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  • Key Issues in Selecting Grinding Robots for Castings — A Practical Shop-Floor Perspective
    Key Issues in Selecting Grinding Robots for Castings — A Practical Shop-Floor Perspective
    Sep 03, 2026
    Key Issues in Selecting Grinding Robots for Castings — A Practical Shop-Floor Perspective AbstractImproper selection of grinding robots for castings is a common problem in foundry automation projects. This article systematically examines three critical factors from an engineering application standpoint: workpiece positioning and raw casting dimensional consistency, abrasive wear compensation, and the match between programming/maintenance capability and production volume. The analysis shows that robot arm specifications are not the primary selection criterion. Instead, peripheral process design and production characteristics determine project success. The article concludes with selection recommendations for different production scenarios. Keywordscasting grinding robot selection; workpiece positioning; abrasive wear compensation; production batch size; automated grinding 1、IntroductionFoundries typically adopt grinding robots due to labor shortages, rising manual grinding costs, and harsh working conditions. However, field observations show that a significant portion of installed grinding robots operate at low utilization or sit idle. Most failures are not caused by insufficient robot performance, but by inadequate evaluation of process conditions, product characteristics, and in-house maintenance capability during the selection stage. This article discusses the often-overlooked aspects of grinding robot selection based on real foundry situations. 2、Workpiece Positioning: An Underestimated Prerequisite for AutomationManual grinding allows workers to adjust part position and orientation flexibly to accommodate raw casting deformation and dimensional variation. Robot grinding requires the workpiece to enter the working zone in a repeatable position every time. If positioning error exceeds the grinding trajectory tolerance, the result is missed spots, over-grinding, or tool collision. In production, sand casting raw dimensions often fluctuate by ±2 mm or more, and thin-wall parts warp further after heat treatment. If the fixture design is poor — for example, using two rigid pins when the cored holes are offset — loading becomes difficult, or forced loading shifts the part out of position. Therefore, before selection, foundries must statistically evaluate raw casting dimensional consistency. If necessary, add a rough machining operation to create a stable datum, or adopt flexible positioning solutions. 3、Abrasive Wear Compensation: The Core Dynamic Process ChallengeGrinding discs, rotary burrs, and flap wheels used in casting cleanup are high-consumption tools with much faster wear rates than metal cutting tools. Under fixed-path programming, tool diameter reduction changes the contact position and grinding pressure, causing deburring quality to degrade over time. Some systems use floating spindles or force control for passive compensation, but these only mitigate uniform wear and respond poorly to sudden burr thickness changes. A more reliable approach is to establish abrasive life management, including scheduled replacement intervals, spindle current monitoring, or vision-based remaining tool size detection. When selecting a system, pay close attention to whether the controller supports parameterized wear compensation and tool life statistics. 4、Programming and Maintenance Capability: The Overlooked Long-Term CostGrinding robot trajectory programming is more complex than welding or material handling. Curved surfaces, hole openings, and corners require frequent orientation adjustments and collision avoidance, leading to long commissioning times — from several days to several weeks per product. After startup, product tweaks, abrasive changes, and batch variations all require program parameter modifications. If the foundry has no dedicated person responsible, and relies entirely on the integrator's remote support, downtime increases significantly. Maintainability should be a key selection criterion, including programming interface usability, parameter backup and recovery functions, and training duration. At the same time, the plant should train at least one technician who can handle basic alarms and program adjustments. 5、Production Volume and Part Complexity: The Boundary of Automation EconomicsA common misconception is that more complex castings automatically justify higher-configuration robots. In reality, automation economics depend first on production volume, then on geometric complexity. For annual volumes below a few thousand pieces, programming and commissioning costs amortize poorly, and frequent changeovers reduce equipment utilization. Conversely, products with annual volumes above tens of thousands, stable dimensions, and fixed burr locations offer strong automation value even if moderately complex. Before selection, conduct a product-process match analysis: count grinding points, evaluate reachability, measure dimensional variation range, and record monthly output. Then decide on robot type (standard six-axis, collaborative, or dedicated grinding cell) and peripheral configuration level.   6、ConclusionThe core of casting grinding robot selection is not comparing arm payload and repeatability. The real issues are workpiece positioning reliability, abrasive wear compensation strategy, in-house programming/maintenance capability, and the match between product volume and complexity. Foundries should complete raw casting statistical analysis, grinding point reachability mapping, and payback period calculation before procurement to avoid idle equipment caused by inadequate peripheral support.
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  • Eliminating Downtime: How Offline Programming (OLP) and Digital Twins Enable Seamless Job Changeovers in Robotic Grinding
    Eliminating Downtime: How Offline Programming (OLP) and Digital Twins Enable Seamless Job Changeovers in Robotic Grinding
    Aug 18, 2026
    Eliminating Downtime: How Offline Programming (OLP) and Digital Twins Enable Seamless Job Changeovers in Robotic Grinding For many small-to-medium foundries operating under high-mix, low-volume (HMLV) production models, the primary hesitation when considering grinding automation is: "With our diverse product portfolio, if every job changeover requires hours or days of line downtime for re-programming, overall productivity will actually drop." Traditional hand-teaching or online programming indeed consumes precious cell runtime. However, the integration of Offline Programming (OLP) and Digital Twin technologies has completely resolved this operational bottleneck: Zero-Downtime Virtual Programming: Engineers import the 3D CAD models of castings directly into the OLP environment. Within a virtual simulation, the software automatically detects parting lines, flash, and burrs, generating optimized toolpaths and spindle orientations. The entire programming cycle takes place 100% in the background without stopping the active robot cell. Collision Detection and Cutting Simulation: The digital twin predicts cutting dynamics, joint limit reachability, and potential fixture interferences prior to execution, ensuring that uploaded programs are 100% safe and execution-ready. Near-Instant Job Changeover: When transitioning production to a new casting part number, operators simply load the pre-configured offline program via the HMI touchscreen. The grinding robot resumes operation within seconds. Powered by NEVIEW's intelligent software suite, foundries with highly variable product lines can now fully unlock the speed, repeatability, and flexibility of modern robotic finishing.
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  • Unlocking the Potential of Grinding Robots: How Neview Helps Foundries Transform and Upgrade
    Unlocking the Potential of Grinding Robots: How Neview Helps Foundries Transform and Upgrade
    Jul 01, 2026
    Unlocking the Potential of Grinding Robots: How Neview Helps Foundries Transform and Upgrade Against the backdrop of the global manufacturing industry's accelerated transformation towards intelligence, foundries are facing unprecedented opportunities and challenges. As a key equipment for intelligent manufacturing, Neview's grinding robots provide strong support for foundries to unlock the potential of grinding robots and achieve transformation and upgrade. Through its advanced eight - axis seven - linkage structure, Neview's grinding robots achieve highly automated and precise grinding operations. This structure allows the robot to move freely on the surface of complex castings and complete various complex grinding tasks, greatly reducing manual intervention and improving the stability of production efficiency and product quality. At the same time, the high - speed operation and precise positioning capabilities of the robot significantly shorten the grinding time, meeting the large - scale production needs of foundries. The intelligent programming and teaching functions are another outstanding feature of Neview's grinding robots. Operators can make the robot learn and repeat complex grinding paths and actions simply through programming or manual teaching. This function not only reduces the technical threshold for operators but also improves programming efficiency, enabling foundries to quickly respond to market demands and produce diverse products. For example, when a foundry receives a new casting order, the operator can quickly set the grinding program for the robot through the teaching function. Without complex programming knowledge, the robot can be put into production. In addition, Neview's grinding robots also have powerful data analysis and optimization capabilities. It can collect various data during the grinding process in real - time, such as grinding force, speed, temperature, etc., and conduct in - depth analysis of these data through data analysis algorithms. Based on the analysis results, the robot can automatically adjust the grinding parameters and optimize the grinding process, further improving the grinding quality and efficiency. At the same time, foundry managers can understand the bottlenecks and problems in the production process through data analysis and take timely measures for improvement, achieving continuous optimization of the production process. Neview's grinding robots also focus on integration with the existing production systems of foundries. It can seamlessly connect with the foundry's automated production lines, logistics systems, etc., realizing the intelligence and integration of the entire production process. This not only improves production efficiency but also reduces manual operations in intermediate links, reducing the possibility of errors and enhancing the overall competitiveness of the foundry.
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  • Trend analysis of automation in casting grinding: why grinding robots have become a necessity in the industry?
    Trend analysis of automation in casting grinding: why grinding robots have become a necessity in the industry?
    Aug 02, 2025
    With the continuous improvement of the level of intelligence in the manufacturing industry, automated grinding technology in the post-processing of castings has become a key direction for the technological upgrading of casting enterprises. Grinding robots have gradually become a "standard" in modern casting workshops due to their high stability, repeatability, and intelligence. 1、 Industrial upgrading drives rapid development of grinding automation Currently, the global foundry industry is facing three major trends: 1. Environmental protection requirements are becoming stricter: Traditional grinding dust pollution is severe, and enterprises need to upgrade their equipment to meet emission standards; 2. Changes in employment structure: Young labor force is decreasing, and skilled grinding workers are difficult to recruit and retain; 3. Customer quality requirements are increasing: the requirements for product appearance quality, consistency, and processing accuracy are constantly improving. In this context, industrial grinding robots have become an essential equipment for foundry enterprises due to their high degree of automation and intelligent perception capabilities. 2、 Brief description of grinding robot workflow Neview grinding robots typically complete casting grinding tasks through the following process: 1. Identification and positioning: equipped with a laser detection system to accurately identify the grinding area; 2. Path generation: Using self-developed grinding trajectory algorithm to generate the optimal path, supporting adaptive compensation; 3. Intelligent grinding: By using servo force control and flexible grinding head, the grinding force can be dynamically adjusted to achieve fine processing of complex contours; 4. Automatic dust collection and cleaning: Equipped with dust removal equipment to collect grinding residue and metal dust, protecting the health of workers and equipment. 3、 Neview grinding robot technology highlights • Ultra high rigidity robotic arm design, supporting loads of over 400kg; Fully enclosed grinding chamber structure with built-in dust removal and sound insulation modules; Modular tool quick change, suitable for grinding different types of workpieces; • Support offline programming and remote monitoring, easy deployment and maintenance. 4、 Summary: The 'inevitable path' for future casting grinding Industrial grinding robots can not only significantly improve processing efficiency, but also optimize the overall process flow, achieving digital and green production. As a promoter of casting grinding automation, Neview Automation will continue to be customer-oriented and provide efficient, safe, and sustainable intelligent grinding solutions for the casting industry.
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  • Industrial grinding robot: a key step for foundry towards intelligent manufacturing
    Industrial grinding robot: a key step for foundry towards intelligent manufacturing
    Aug 06, 2025
      With the continuous promotion of the "Made in China 2025" strategy, traditional casting enterprises are increasingly introducing automated grinding solutions in the process of transitioning to intelligent manufacturing. Among them, industrial grinding robots, as an important technology to replace manual grinding, are becoming a key equipment to improve the quality and production efficiency of casting processing.     1、 Pain point of manual grinding: restricting the efficiency improvement of casting production line     • High labor intensity: High dust and high noise environments have a significant impact on workers' health and pose a high risk of occupational diseases; • Poor efficiency and stability: Due to the influence of workers' technical proficiency, the grinding quality fluctuates greatly; High labor costs: With the increasing difficulty and high cost of employment, the operational burden on enterprises has increased; There are many safety hazards: frequent problems such as grinding wheel splashing and workpiece cracking, which can easily lead to work-related accidents.   2、 Industrial grinding robot: reshaping the post-treatment process of casting As a new generation of intelligent manufacturing equipment, the Neview Grinding Robot integrates multiple technologies such as force controlled grinding, laser detection, and flexible clamping to achieve precise and stable grinding of various complex workpieces such as cast iron, cast steel, and aluminum alloy. The main advantages include: Intelligent deburring and corner processing to adapt to shape and position errors such as wrong box and wrong mold; Operating 24/7, significantly reducing downtime; One machine with multiple workstations design, suitable for batch and multi variety production needs; Sealed and dust collection structure effectively reduces dust emissions and optimizes workshop environment   3、 Widely applicable scenarios: helping foundry enterprises reduce costs and increase efficiency At present, industrial grinding robots have been widely used in various casting fields such as automotive parts, engineering machinery, rail transportation, pumps and valves. Many customer feedback indicates that the introduction of new realm grinding robots has increased production line efficiency by an average of over 30%, significantly improved grinding consistency, and optimized personnel configuration by over 50%, providing a solid foundation for enterprises to build long-term core competitiveness.  
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  • How important is the compatibility of grinding equipment in the era of multi variety production?
    How important is the compatibility of grinding equipment in the era of multi variety production?
    Jul 24, 2025
    When the workshop needs to switch product models, can your grind equipment "respond" quickly? Behind this is the competition between the equipment's "product compatibility" and "changeover cost" Judging from the data, the "flexibility" advantage of the Neview grinding robot is significant: it adopts the "workpiece positioning + arm grinding" mode, and can adapt to the processing of complex parts and multiple varieties of workpieces by replacing the fixture, with a high grinding completion rate. For companies that need to change models frequently, this "fixture replacement means model change" mode means short downtime and low labor costs. Robotic grinding equipment is caught in a dilemma: it uses the "robot gripping workpiece" method, and complex parts are either not grasped or the gripping position interferes with burrs, resulting in a grinding completion rate that is more than 30% lower than that of the fully automatic system. What's more troublesome is that when changing models, the gripper needs to be replaced and the robot needs to be re-debugged, which not only has high labor costs and long downtime, but may even require "restarting" because the gripper does not match the new product.   Although the five-axis four-link special machine only needs to replace the fixture to change the model, it is limited by the "five-axis four-link" structure and has extremely poor flexibility. It is simply unable to complete the processing of complex parts - for industries with fast product iterations and complex shapes (such as automotive castings and precision machinery), this is almost a "fatal shortcoming." Conclusion: The core of multi-variety production is "low-cost and rapid changeover". The advantages of the new state-of-the-art eight-axis seven-linkage grinding robot in compatibility and changeover efficiency can directly help companies reduce production costs and improve response speed.
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  • Cleaning and Environmental Protection: How can grinding equipment assist in the "5S" upgrade of the workshop?
    Cleaning and Environmental Protection: How can grinding equipment assist in the "5S" upgrade of the workshop?
    Jul 23, 2025
    When the workshop pursues "5S management" (organization, rectification, cleaning, cleanliness, and literacy), the "cleanliness and environmental friendliness" of polishing equipment is no longer an "additional item", but a "mandatory option" The Neview fully automatic grinding robot can be regarded as a "model student" in this regard: the overall protection design+centralized dust removal system, not only can effectively collect grinding dust, but the internal structure is also neat and easy to clean, fully meeting environmental requirements, and can easily integrate into the workshop 5S management system.   Robot grinding equipment is a hindrance: it cannot meet environmental requirements, with dust overflow and disorderly structure, which not only affects the workshop environment but also increases the cleaning workload, contrary to the goal of 5S management. The internal structure of the five axis four linkage special machine is not conducive to cleaning, and after long-term use, dust accumulates, which not only affects equipment accuracy but also poses a hidden danger of "dirty and messy" workshop environment. In today's increasingly strict environmental policies and upgraded workshop management, a "clean and environmentally friendly" grinding equipment can not only make the workshop cleaner, but also reduce the impact of dust on workers' health and lower the risk of environmental penalties - this is the "hidden benefit"
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  • Eight-axis seven-link technology: Why is it the "ceiling" of grinding efficiency?
    Eight-axis seven-link technology: Why is it the "ceiling" of grinding efficiency?
    Jul 22, 2025
    While traditional grinding equipment is still competing on the “number of axes”, the “eight-axis seven-link” technology of the Neview fully automatic grinding system has redefined the grinding industry standard. Compared with the "single-arm grasping" of robot grinding equipment and the simple "straight/oblique line processing" of five-axis four-link special machine, the new state eight-axis seven-link has three core advantages: First, "flexibility": it can continuously process along the curved path, while the five-axis four-link can only do arc processing at most. This means that it can easily handle the curved surface and dead corner grinding of complex parts, while other equipment is often "out of reach". Second, "cooperative efficiency": the "two-handed collaborative operation" mode is adopted, which is similar to two robots working at the same time (one fixing the workpiece and the other grinding), plus the automatic interactive turntable to achieve "separation of loading and unloading and grinding time", which is more than 30% more efficient than the conventional mode. Third, "coverage": the eight-axis seven-link robot arm has a reasonable layout, does not interfere with each other, and can be compatible with about 80% of customers' products; while the five-axis four-link can only cover 40%, and the robot grasping type is only 45%. For enterprises pursuing "high efficiency and high coverage", the eight-axis seven-link technology is not only an "equipment upgrade", but also an "innovation in production mode" - it can replace multiple manual labor, reduce the number of processes, and turn polishing from a "bottleneck link" into a "highlight of efficiency improvement".
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