Endoscope POM Snakebone Mold Injection Molding
Endoscope POM SnakebOne Mold Injection Molding

Mastering the Snake Bone: Inside Ansix Tech's Precision Manufacturing Ecosystem for Endoscope Components
How 28 Years of Injection Molding Expertise is Solving the Complex Challenges of Single-Use Medical Devices Through Material Science, Advanced Tooling, and Relentless Cost Optimization
SHENZHEN, CHINA – March 13, 2026 – In the sterile, high-stakes environment of a modern operating room, the tools of minimally invasive surgery have undergone a quiet revolution. The reusable endoscope—once a million-dollar capital asset requiring meticulous sterilization between patients—is increasingly being challenged by a new generation of single-use devices. These disposable scopes promise the elimination of cross-contamination risks, simplified hospital workflows, and expanded access to diagnostic procedures. But behind this clinical promise lies one of the most demanding manufacturing challenges in the medical device industry: the mass production of the intricate, flexible "snake bone" mechanism that gives an endoscope its Steering capability.
At the heart of every articulating endoscope—whether used for gastroscopy, colonoscopy, or bronchoscopy—is this snake bone structure: a series of interlinked segments that must flex in precise directions, house delicate optical fibers and working channels, and survive the rigors of intra-body manipulation, all while being manufactured at a cost point that makes single-use economics viable. For years, this component was often machined from metal or assembled from numerous tiny parts, processes that were labor-intensive, expensive, and ill-suited to high-volume production.
Enter Ansix Tech Limited, a company with over 28 years of injection molding heritage that is redefining what's possible in medical device manufacturing. With more than 30,000 mold sets delivered since its founding in 1998 and a workforce exceeding 1,200 employees—including over 200 design engineers—Ansix Tech has positioned itself as a critical partner for medical OEMs navigating the transition to disposable endoscopes . Through an integrated approach that spans material selection, digital prototyping, precision tooling, and data-driven production, the company is not merely manufacturing snake bone components; it is engineering cost out of the supply chain while building reliability into every micron .
This in-depth report examines how Ansix Tech's end-to-end capabilities—from Design for Manufacturability (DFM) and mold flow analysis to conformal cooling systems and ISO 13485-certified quality assurance—are delivering measurable value to customers. It explores the technical hurdles of molding polyoxymethylene (POM) and other engineering plastics into snake bone geometries, the strategies employed to guarantee on-time delivery even at scale, and the philosophy of "co-engineering" that transforms a supplier relationship into a strategic partnership .
The Snake Bone Challenge: Why Precision Matters
To understand the significance of Ansix Tech's achievements, one must first appreciate the complexity of the snake bone component itself. Typically measuring just a few millimeters in diameter and several centimeters in length, a molded snake bone consists of dozens of individual segments—or "vertebrae"—connected through living hinges or interlocking features that allow controlled articulation in one or two planes .
Within this tiny structure, multiple functions must be integrated. There are channels for steering wires that run the length of the component, allowing the surgeon to deflect the tip. There is a working channel for instruments or suction, and often additional lumens for light guides and imaging cables. The walls between these features can be paper-thin—sometimes less than 0.3 millimeters—yet must possess the strength to withstand tensile and compressive forces during articulation .
When these components are manufactured from metal—typically stainless steel or Nitinol—the processes involve electrical discharge machining (EDM), laser cutting, or even manual assembly of individual links. The costs are prohibitive for disposable applications. The shift to injection molding using engineering thermoplastics like POM (polyoxymethylene), also known as acetal, represents the only viable path to the volume and cost targets required by the single-use market.
POM offers an attractive combination of properties for snake bone applications: high mechanical strength and stiffness, excellent fatigue resistance (essential for repeated articulation), low friction for smooth steering wire movement, and good dimensional stability. However, molding POM into snake bone geometries pushes the boundaries of conventional injection molding. The high aspect ratio of the part, the thin wall sections, the need for multiple hollow channels, and the precision required for interlocking features all demand a level of mold engineering and process control that separates specialized manufacturers from commodity molders .
The Ansix Tech Approach: Co-Engineering from Concept to Production
Ansix Tech's engagement model begins not with a request for quote, but with a collaborative engineering dialogue. The company's "co-engineering" philosophy invites clients to partner from the earliest stages of product development, ensuring that designs are not only clinically effective but also manufacturable at scale .
"We don't just build tools to print," explains the company's leadership in its published materials. "We look at every project through the lens of manufacturability, cost optimization, and long-term reliability. For snake bone components, where the tolerances are measured in thousandths of a millimeter and the consequences of failure are clinical, that collaborative approach is essential" .
This journey from concept to certified production follows a structured pathway that leverages Ansix Tech's full spectrum of capabilities.
Phase 1: Digital Prototyping and Design for Manufacturability (DFM)
Before any steel is cut for a mold, Ansix Tech invests heavily in the digital front end. Using advanced Computer-Aided Engineering (CAE) software, the company's design team conducts exhaustive DFM analyses on the snake bone geometry. They scrutinize wall thickness uniformity to prevent sink marks or incomplete fill, evaluate draft angles to ensure clean ejection from the mold, and identify any undercuts that would require complex side-action cores—features that add cost and complexity to the tool .
"We treat prototyping as our first line of defense against costly mold revisions," a lead design engineer notes in company documentation. "We physically and digitally test to ensure the design is flawless for production" .
For snake bone molds, this phase is particularly critical. The intricate network of channels within the component must be formed by core pins in the mold—tiny steel rods, sometimes less than a millimeter in diameter, that create the lumens for steering wires and working instruments. The placement and support of these pins, the flow of plastic around them, and the ejection of the finished part without damaging either the component or the pins require meticulous planning .
Phase 2: Mold Flow Analysis (MFA) as a Predictive Tool
With the basic design validated, Ansix Tech engineers deploy advanced Mold Flow Analysis (MFA) software to simulate the injection process itself. This is where the virtual rubber meets the road. The software predicts how the molten POM will flow into the cavity, where it will cool, and where potential defects may arise .
For a snake bone component, several critical questions are answered through MFA:
Weld Line Management: Where do the flow fronts meet as plastic fills around the core pins? If weld lines form in structurally significant areas—such as the thin bridges between snake bone segments—they could become failure points during articulation. Ansix Tech uses simulation to reposition gates or adjust flow rates, moving these inevitable weld lines to low-stress regions .
Air Trap Prevention: The complex geometry of a snake bone can create pockets where air becomes trapped during injection, leading to burn marks or incomplete filling (short shots). MFA identifies these areas, allowing engineers to add venting features to the mold design before any steel is machined .
Shrinkage and Warpage Prediction: POM is a semi-crystalline material, meaning it shrinks as it cools in a predictable but significant manner—typically 1.5% to 3% depending on grade and processing conditions. In a long, slender snake bone, differential cooling can cause warpage that renders the component useless. MFA predicts these distortions, enabling engineers to design compensation into the mold cavity or adjust cooling channel layouts to ensure uniform heat extraction .
The result of this digital rigor is measurable: Ansix Tech reports an average of just two mold trials before customer approval, a testament to the accuracy of its simulations and a major factor in compressing development timelines and avoiding the exorbitant costs of physical tooling rework .
Phase 3: Strategic Material Selection for Life-Critical Performance
While POM is a common choice for snake bone applications due to its strength, lubricity, and fatigue resistance, Ansix Tech's material expertise extends across the full spectrum of medical-grade engineering thermoplastics. The selection process is treated as a strategic engineering discipline, weighing not only mechanical properties but also biocompatibility, sterilizability, and total lifecycle cost .
Polyoxymethylene (POM/Acetal): For many disposable snake bone applications, POM (specific grades such as Delrin® or Hostaform®) offers the optimal balance. It provides high tensile strength (typically 60-70 MPa), low friction coefficient (0.2-0.3 against steel), and excellent fatigue endurance—essential for components that may be articulated hundreds of times during a procedure. Medical-grade POM formulations meet USP Class VI and ISO 10993 biocompatibility standards, though manufacturers must verify compatibility with specific sterilization methods .
Polyether Ether Ketone (PEEK): For applications demanding higher temperature resistance or enhanced chemical compatibility, PEEK is specified. This high-performance thermoplastic maintains structural integrity at temperatures up to 250°C, withstands aggressive sterilization agents, and offers exceptional fatigue performance for millions of cycles. While more expensive than POM, PEEK's properties may justify the premium for reusable components or particularly demanding single-use designs .
Thermoplastic Polyurethane (TPU): Some snake bone designs, particularly those requiring integrated flexibility without mechanical hinges, utilize TPU. The material's tunable hardness (from Shore 60A to 75D) allows engineers to dial in exactly the right flexural modulus, while its bondability makes it suitable for overmolding or multi-material assemblies .
Polycarbonate (PC) and PC/ABS Blends: For handle components, housings, and connectors that attach to the snake bone, Ansix Tech frequently recommends medical-grade polycarbonates (e.g., Makrolon® Rx1805) or PC/ABS blends. These materials offer high impact strength, clarity for visual inspection of internal assemblies, and compatibility with gamma and EtO sterilization methods .
Crucially, Ansix Tech's value engineering approach involves rigorous analysis to avoid over-specification. "Cost reduction isn't just about negotiating material prices," the company's CEO has stated. "It's about selecting the exact grade that meets all performance and regulatory requirements without unnecessary premium properties that inflate unit cost" . This may involve recommending a glass-filled compound for added stiffness in specific sections or a customized formulation to achieve the perfect balance of flexibility and pushability for the endoscopic shaft.
Table: Key Material Considerations for Endoscope Snake Bone Components
Material Key Properties Typical Applications Sterilization Compatibility Cost Profile
POM (Acetal) High strength, low friction, fatigue resistant Snake bone segments, articulation joints EtO, Gamma (grade-dependent) Moderate
PEEK High temp resistance, chemical inertness High-performance snake bones, reusable components Autoclave, EtO, Gamma High
TPU Tunable flexibility, bondable Flexible sections, overmolded seals EtO, Gamma Moderate
PC/ABS Impact strength, dimensional stability Handles, housings, connectors EtO, Gamma (may yellow) Low-Moderate
The Heart of the Process: Precision Mold Engineering
If material selection is the foundation, the injection mold is the engine of value creation. For snake bone components, where tolerances can be as tight as ±0.002mm and surface finishes must prevent bacterial adhesion while ensuring smooth articulation, mold engineering reaches its apex . Ansix Tech's mold design philosophy treats every system—cooling, gating, ejection—as an opportunity to enhance quality, reduce cycle time, and lower per-part cost.
Mold Steel Selection and Construction
The choice of steel for a snake bone mold is determined by production volume, the abrasiveness of the resin, and the required surface finish. For high-volume medical production (hundreds of thousands to millions of parts), Ansix Tech specifies premium corrosion-resistant steels such as Stainless 420 or S136. These materials maintain a perfect, polished cavity surface over extended production runs and resist degradation from potentially corrosive cleaning agents used on the tool itself .
For the tiny core pins that form the snake bone's internal channels, the requirements are even more demanding. These pins must be strong enough to withstand injection pressures (often exceeding 1,000 bar) yet slender enough to create sub-millimeter lumens. Ansix Tech employs high-speed steel or carbide pins, precision-ground to diameter tolerances of ±0.001mm, and supports them with meticulous mold design to prevent deflection during injection .
Revolutionary Cooling Systems: The Conformal Cooling Advantage
In injection molding, cooling typically accounts for 50% to 80% of the total cycle time . An inefficient cooling system directly increases the cost per part and can introduce quality issues through uneven shrinkage and warpage. For snake bone molds, with their long, slender cavities and complex geometries, uniform cooling is both critical and challenging.
Ansix Tech addresses this through the application of conformal cooling channels. Unlike traditional straight-drilled cooling lines, which run in fixed paths and may not follow the contour of the part, conformal channels are designed to snake precisely along the shape of the mold cavity .
These channels are often manufactured through additive manufacturing (metal 3D printing), which allows geometries impossible to achieve with conventional drilling. For a snake bone mold, conformal cooling might involve channels that spiral around the long cavity, maintaining a consistent distance from the part surface and extracting heat uniformly along its entire length .
The benefits are substantial:
Cycle Time Reduction: By accelerating heat transfer, conformal cooling can reduce cycle times by 20-30% compared to conventional cooling .
Improved Part Quality: Uniform cooling minimizes differential shrinkage, reducing warpage and ensuring that the snake bone's critical geometry—the precise spacing and alignment of articulation segments—is maintained .
Energy Efficiency: Faster cycles mean less energy consumed per part, contributing to lower operational costs and a reduced carbon footprint .
Ansix Tech has documented cases where conformal cooling improved production efficiency by 28% or more, a compelling advantage when multiplied across millions of parts .
Gating and Runner System Design
The gate—the point where molten plastic enters the mold cavity—must be strategically located and precisely sized for snake bone components. Given the part's small size and complex features, gate vestige (the small mark left after the gate is separated) must be minimized and positioned where it won't interfere with function or aesthetics.
Ansix Tech uses MFA results to optimize gate location. For many snake bone designs, a pinpoint gate or submarine gate at one end of the component provides the best flow characteristics while allowing for automatic degating during ejection—eliminating a secondary operation .
For multi-cavity snake bone molds (producing multiple parts per cycle), the runner system that distributes plastic to each cavity must be perfectly balanced. An imbalanced runner would cause some cavities to fill before others, leading to inconsistent part quality and potential short shots in the last cavities to fill. Ansix Tech's mold designers use flow simulation to ensure that runners are geometrically balanced, delivering molten plastic to each cavity simultaneously and at the same pressure and temperature .
Hot runner systems, which keep the plastic molten in the manifold and eliminate solid runner waste, are frequently employed for snake bone molds. While more expensive upfront, hot runners save material (critical when using premium medical-grade resins) and reduce cycle times by eliminating the need to cool and eject a solid runner .
Ejection System Engineering
Ejecting a delicate snake bone from a mold without distortion, breakage, or surface marks is a non-trivial challenge. The part is long, thin, and flexible; improperly applied ejection forces could bend it or break the tiny features that form the articulation joints.
Ansix Tech's ejection system designs feature precisely placed ejector pins, sleeves, or blades that contact the part only on non-critical surfaces—typically at the ends or on thicker reinforcing ribs. Generous draft angles (a minimum of 1-2 degrees) are engineered into the part design to ensure clean release with minimal force .
For snake bones with undercuts—features that would prevent straight ejection—the mold may incorporate lifters or side-action cores that retract before ejection. These mechanisms add complexity and cost but are sometimes unavoidable. Ansix Tech's DFM process often identifies opportunities to redesign the part to eliminate such undercuts, simplifying the mold and reducing both tool cost and maintenance requirements .
Mastering the Injection Molding Process: From Validation to Optimization
With the precision mold designed and manufactured, the focus shifts to the injection molding process itself. This is where virtual predictions meet physical reality, and where Ansix Tech's scientific molding methodology ensures consistent, repeatable production.
The Validation Phase: First Article Inspection and Process Window Development
The initial mold trials are conducted under carefully controlled conditions. Instrumented molds—equipped with cavity pressure sensors and thermocouples—provide real-time data on what is happening inside the tool during each cycle .
Technicians systematically vary key parameters: melt temperature, injection speed, packing pressure, and cooling time. By observing the effects of these variations on part quality—measured through dimensional inspection, weight checks, and visual examination—they establish a robust "process window." This window defines the range of parameters within which the process consistently produces good parts .
For snake bone components, specific challenges are addressed during validation:
Thin-Wall Filling: The thin sections of the snake bone require high injection speeds to fill before the material freezes off. However, excessive speed can cause material degradation or jetting (where the plastic streams into the cavity without contacting the walls). Ansix Tech's process development finds the optimal balance .
Core Pin Protection: The tiny pins that form internal channels are vulnerable to bending or breakage if the flow front hits them asymmetrically. Gate location and injection speed profiles are optimized to ensure balanced flow around these pins .
Dimensional Stability: The snake bone's critical dimensions—segment length, hinge thickness, channel diameters—are measured using Coordinate Measuring Machines (CMM) and optical comparators. Statistical Process Control (SPC) charts track these dimensions over time, detecting any drift before it produces out-of-tolerance parts .
Process Optimization: The Relentless Pursuit of Efficiency
Once a stable process is established, Ansix Tech's continuous improvement methodology takes over. Every element of the production cycle is scrutinized for opportunities to reduce cost and increase capacity without compromising quality .
Cycle Time Reduction: Every second saved in the cycle multiplies across millions of parts. Using the data from validation, engineers fine-tune parameters to minimize cooling time while maintaining dimensional stability. Automated robotics for part removal shave additional seconds from the cycle .
Scrap Elimination: Defects are the enemy of low cost. Real-time monitoring systems, including vision inspection and process parameter tracking, detect anomalies immediately. If a parameter drifts outside the established process window, the machine can alert an operator or automatically reject the suspect part. Ansix Tech reports that such systems can reduce defect rates from industry averages of 3% to as low as 0.5% .
Energy Efficiency: Modern all-electric injection molding machines, which Ansix Tech employs extensively, use up to 60% less energy than traditional hydraulic machines while providing greater precision and repeatability . For high-volume snake bone production, this energy saving directly reduces the cost per part.
Material Efficiency: Hot runner systems eliminate runner waste, and precise shot control ensures that each part uses exactly the required amount of material—no more, no less. For expensive medical-grade resins, this precision translates to significant cost savings .
Quality Assurance and Traceability: Building Confidence
In medical device manufacturing, quality is not inspected in; it is built into the process at every stage. Ansix Tech's quality management system, certified to ISO 13485:2016 for medical devices, ensures that every snake bone component leaving the facility meets the required specifications and is fully traceable .
First Article Inspection (FAI): When production begins, the first parts off the tool undergo comprehensive inspection. Every dimension on the part drawing is verified, often using CMMs capable of measuring to sub-micron accuracy. The results are documented and compared to the design specifications .
In-Process Monitoring: During production, Statistical Process Control (SPC) is applied to critical dimensions. Operators periodically sample parts and measure key features, plotting the results on control charts. If a trend toward the specification limit is detected, the process is adjusted before any non-conforming parts are produced .
Automated Optical Inspection: For high-volume snake bone production, automated vision systems inspect every part at production speed. These systems can detect surface defects, verify the presence and position of features, and measure critical dimensions—all without human intervention .
Full Traceability: Every lot of medical-grade resin is documented from receipt through production. Each batch of snake bone components carries a lot number that links back to the raw material certificate, the molding machine and parameters used, the inspection results, and the date of manufacture. This traceability is essential for FDA-compliant Device History Records and enables rapid root-cause analysis if any issue arises .
The Ansix Tech Value Proposition: Tangible Cost Reduction and Reliable Delivery
For medical device OEMs, the ultimate measure of a manufacturing partner is the total cost per qualified part delivered on schedule. Ansix Tech's integrated approach delivers savings across multiple dimensions, fundamentally improving the economics of disposable endoscope production .
Material Cost Optimization
Through holistic performance analyses, Ansix Tech engineers can often specify a cost-effective material grade that meets all functional requirements, avoiding over-engineering. By matching the material precisely to the application—rather than defaulting to "safe" but expensive choices—they reduce material costs without compromising performance .
For snake bone applications, this might involve selecting a specific POM grade optimized for thin-wall molding, or recommending a glass fiber loading that provides the necessary stiffness without excessive wear on the mold. In some cases, Ansix Tech's expertise in custom formulation can tailor a material to exact needs, optimizing the cost/performance ratio .
Process Efficiency Gains
The combination of conformal cooling, optimized cycle times, and energy-efficient machinery yields substantial reductions in manufacturing cost per part. A 20-30% reduction in cycle time, multiplied across millions of parts, translates directly to lower unit costs and increased production capacity from the same asset base .
Yield Maximization and Scrap Elimination
The predictive power of DFM and MFA, combined with robust process control and automated inspection, results in first-pass yield rates exceeding 99% for mature programs . This virtually eliminates the costs associated with scrap, rework, and production downtime—costs that can easily erase profit margins on high-volume, low-price-per-part components like disposable snake bones.
Tooling Longevity and Reduced Maintenance
The use of premium mold steels, combined with scientific molding that respects the tool's thermal and mechanical limits, extends mold life and reduces maintenance frequency. For high-volume snake bone production, where molds may run millions of cycles per year, reduced downtime for maintenance directly increases available capacity .
Accelerated Time-to-Market
The integrated, concurrent engineering approach—where material, mold, and process experts collaborate from day one—dramatically shortens development cycles. By identifying and resolving manufacturability issues in the digital realm, Ansix Tech compresses the timeline from concept to validated production. Getting a reliable product to market faster provides clients with a critical competitive and financial advantage .
Table: Ansix Tech's Cost-Reduction Framework for Snake Bone Projects
Cost Lever Application to Snake Bone Molding Typical Impact
Material Optimization Precise grade selection, avoiding over-specification 5-15% material cost reduction
Cycle Time Reduction Conformal cooling, automated part handling 20-30% cycle time reduction
Scrap Elimination DFM, SPC, automated inspection 3% → 0.5% defect rate
Energy Efficiency All-electric machines, optimized heating 30-60% energy reduction
Tooling Longevity Premium steels, scientific molding Extended mold life, less downtime
On-Time Delivery Guarantees
In the medical device industry, production delays can have serious consequences—missed product launches, back-ordered supplies to hospitals, and lost revenue. Ansix Tech's commitment to on-time delivery is supported by multiple strategies .
Vertical Integration: By controlling the entire value chain—from mold design and manufacturing to production and logistics—Ansix Tech eliminates the coordination gaps that often cause delays when multiple vendors are involved .
Multiple Production Bases: With facilities in China and Vietnam, Ansix Tech offers geographic diversification that mitigates the risk of regional disruptions. Production can be shifted between facilities to balance capacity or respond to local conditions .
Lean Manufacturing Principles: Techniques such as Single-Minute Exchange of Die (SMED) minimize changeover time between production runs, allowing quick response to customer orders and maximizing equipment utilization (reported above 85%) .
Integrated Packaging and Logistics: Understanding that delivery includes not just parts but parts ready for use, Ansix Tech integrates packaging into the production workflow. Components are cleaned, bagged in clean-room conditions (ISO Class 8 where required), and packaged according to client specifications—from bulk packs to customized procedure kits—ensuring they arrive ready for assembly or sterilization .
Industry Experience: The Value of 28 Years in Precision Molding
Ansix Tech's 28-year heritage in injection molding is not merely a number; it represents accumulated knowledge across thousands of projects, hundreds of material grades, and dozens of industries. This experience base provides clients with a crucial advantage: problems that would be novel to a less experienced molder have likely been encountered and solved before at Ansix Tech .
The company's track record—more than 30,000 mold sets delivered—encompasses applications ranging from automotive components to consumer electronics to medical devices . This cross-industry exposure brings diverse problem-solving approaches to bear on medical challenges. A cooling channel design developed for an automotive lighting application might find new life in a snake bone mold. A material handling solution perfected for consumer electronics might streamline medical device packaging.
For snake bone projects specifically, Ansix Tech has developed specialized expertise in:
Micro-molding: Producing features measured in microns, not millimeters.
Multi-material molding: Combining rigid and flexible materials in a single part.
Insert molding: Encapsulating metal components (such as steering wire anchors) within the plastic snake bone.
High-cavitation tooling: Molds with 16, 32, or more cavities for maximum production efficiency.
This depth of experience translates to confidence for clients. When Ansix Tech engineers recommend a particular gate location, a specific material grade, or a change to a part geometry, that recommendation is backed by decades of practical validation across thousands of successful programs .
Conclusion: A Strategic Partnership for the Future of Medical Devices
The transition to single-use endoscopes represents one of the most significant shifts in modern medical device manufacturing. It promises improved patient safety, streamlined hospital operations, and expanded access to minimally invasive diagnostics. But realizing these benefits requires solving the fundamental manufacturing challenge at the heart of every flexible endoscope: producing the intricate snake bone mechanism at a cost, quality, and scale that makes disposable economics viable.
Ansix Tech has positioned itself as a definitive partner in solving this challenge. Through an integrated approach that spans material science, digital engineering, precision tooling, and data-driven production, the company delivers more than just molded components. It delivers certified reliability, accelerated innovation cycles, and measurable cost reduction .
For medical device OEMs developing the next generation of endoscopic tools, the choice of manufacturing partner is strategic. It is a decision that impacts product cost, time-to-market, regulatory success, and ultimately, patient outcomes. Ansix Tech's 28-year track record, its certified quality systems, its deep technical bench, and its unwavering focus on value engineering make a compelling case: that the best way to master the snake bone is to partner with someone who has spent decades mastering the art and science of precision molding .
In an industry where precision, cost, and speed intersect, Ansix Tech is engineering the advantage—one snake bone at a time.
For more information on Ansix Tech's capabilities in medical device injection molding, including Endoscope POM Snake Bone Mold projects, visit www.ansixtech.com or contact the engineering team at info@ansixtech.com.
*About Ansix Tech Limited: Established in 1998, Ansix Tech Limited is a global leader in providing end-to-end injection molding solutions. With over 30,000 molds built and certifications including ISO 13485, IATF 16949, ISO 9001, and ISO 14001, the company operates multiple production bases in China and Vietnam, employing more than 1,200 people, including over 200 designers




Ansix Tech Co Ltd
If you have any plans related to Endoscope POM Snakebone Mold Injection Molding , you can contact us at any time. We will turn your ideas into reality, let you realize your dreams, and obtain large orders from the market. Our contact information is info@ansixtech.com. Or contact our CTO, mail: stephen@ansixtech.com
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