血液透析器外壳用什么尼龙?高透明抗冲击灭菌都要稳定

应用领域 发布时间: 2026-09-13 2865 阅读

97 What is the modified nylon used for the hemodialysis shell ?

Dialyzer housing components

Hemodialyzer shell divided into membrane (dialysis membrane outer sleeve) + end cap + inlet/outlet are three parts, with completely different materials. The membrane shell must be highly transparent + shock-resistant + sterilized and stable—mainstream uses PSU or PES transparent special engineering plastics.

End cap and inlet/outlet use PP or ABS—structural parts + sealing parts. PA is not used for dialyzer housings—biocompatibility is not met, and any plastic entering the bloodstream cannot use PA.

On-site reproduction

In September two years ago, in the potting workshop of a dialyzer factory, engineers showed us data: two batches of the same membrane shell had bubble rates four times different after potting. Bubbles at the interface between the membrane shell and potting agent showed that small bubbles did not affect performance, but larger bubbles expanded after sterilization, resulting in product failure.

The two batches of transparent material showed no visible difference from the appearance, with melt index differences of just a fraction. This potting process is much more sensitive to materials than typical injection molding; flow, wetting, curing, and shrinkage all need to be stable; if any one floats, the bubble rate jumps.

Later, they recorded the fluctuation of the inter-batch melt index of the potting material into the feed standard, bringing bubble rates back to stable ranges and halving the rejection rate.

Specifics of the Dialysis Shell

The dialysis membrane shell is the core of the dialyzer—containing thousands of hollow fiber dialysis membranes—blood and dialysate exchange substances on both sides of the membrane.

The membrane shell must be transparent—making it easy to visually check for fiber rupture; The membrane shell must be high-strength—able to withstand a pressure difference of 0.3 MPa across membranes. The mainstream uses PSU or PES—the optimal balance of transparency, strength, and sterilization stability.

The unit price is more than 10 times that of PP—but this is a high-value medical consumable and cannot be replaced by PP.

End cap and inlet/outlet ports

End cap and inlet/outlet are structural components + seals—mainstream uses PP + glass fiber—PA66-GF30 cannot be used (biocompatible), pure PP strength is insufficient. Must be PP-GF20—moderate glass fiber content and sufficient strength.

Sealing ring uses silicone rubber—must not contain BPA/phthalene. The Luer connector at the inlet and outlet must be PP + stainless steel—the Luer connector is the international standard.

Strict requirements for biocompatibility

Direct contact with blood from the dialyzer—highest biocompatibility requirements. ISO 10993 complete set of tests must pass—cytotoxicity, sensitization, intradermal reactions, acute systemic toxicity, subacute toxicity, and implantation tests.

PSU/PES is one of the few plastics that pass a full set—which is why dialyzer membrane shells must be PSU/PES. PP/ABS can only be used for end caps that do not contact blood.

Special Sterilization Requirements

Mainstream dialyzers are γ 25 kGy sterilization—more suitable for PSU/PES than EO.

PSU Transparency slightly decreases after γ rays—must be verified during material selection.

EO Sterilization is also available—but EO residue must be < 5 μg/g—this is a strict ISO 8637 requirement.

Shelf life after sterilization is 3 years—accelerated aging should be done according to this timeframe.

Extended judgment: Dialyzer hidden variables

There are three hidden variables that are easily missed. First is fiber shedding detection—fiber detachment entering the bloodstream is a major adverse event and must be 100% leak detection—negative pressure testing is the mainstream method.

Second, dialysate compatibility—both acetate and bicarbonate dialysate must be verified—different dialysates corrode PSUs differently.

Third is airtightness—the casing must be leak-free for 3 years—this is a strict requirement in GB 9706.1.

Deeper layer: The origin of several numbers

The dialyzer casing is a three-stage structure: membrane shell, end cap, and inlet/outlet port. The membrane shell must be transparent; doctors and nurses must observe blood distribution and coagulation outside the body. The haze of transparent materials has a hard limit; The end cap tube structure is sealed, prioritizing rigidity; The inlet and outlet tubes are connected and resistant to repeated twisting.

Three stages and three working conditions, with the material sheet divided into three rows, forming the basic framework for dialyzer selection.

The mainstream material for the membrane shell is transparent grade PC, which is tough, transparent, and sterile-resistant. The position of modified nylon on the dialyzer is between the end cap and structural components. Biocompatibility reports are all essential. The levels of blood contact and non-contact are different. Non-contact parts are made according to external access files. Once the report grade is set, the material range is determined. This order cannot be reversed.

Biocompatibility is evaluated based on contact nature and duration. Most plastic parts in dialyzers are either indirect contact or external access, with fewer evaluation items than implantation files, but everyone must pass the cytotoxicity threshold.

The biological report from the material factory is a factory report covering raw materials, and the finished product must be evaluated after processing and sterilization. Both levels must be met, and missing one level will result in a refund during registration review.

The choice of sterilization method in the dialysis industry has undergone an evolution. Ethylene oxide has gradually been phased out due to residue issues, with the mainstream shifting to moist heat sterilization and irradiation. Irradiation causes slight yellowing and reduced toughness of transparent PC, requiring precise dose control. Wet heat sterilization tests the sealing structure.

Once the sterilization route changes, the entire set of materials must be revalidated. This is the most important type of registration change. If you can clearly plan the sterilization route in advance, the registration process will be much smoother.

The sealing structure is the dialyzer's leak prevention line. The pressing surface of the O-ring groove and end cap is the core dimension. Creep of plastic parts causes the compression force to decrease year by year, so the dialysis machine's tubing joints must be reliable over the four-year lifespan.

O The tolerance design of the ring groove should reserve the creep of the plastic part and the permanent compression deformation of the sealing ring. Stacking these two margins makes the groove width wider than the theoretical value, saving many leaks the trouble here.

Material matching in the potting process mentioned earlier about bubbles, and another aspect is the adhesion between potting gel and housing. Insufficient adhesion leads to blood leakage from the interface, and this failure only appears after sterilization, posing a high risk for batch use.

The matching of shell material and potting agent must be specially verified. Replacing the adhesive requires shell inspection, and changing the shell requires glue testing. Change records on both sides must be linked; changing on one side can be catastrophic .

Engineering Testing: Four Mandatory Tests

Test 1: Biocompatibility ISO 10993. PSU / PES passes a full set of tests; PP / ABS is only used for end caps—membrane cases must be PSU / PES.

Test 2: γ radiation 25 kGy. PSU transparency slightly decreased by <5%, PES transparency maintained at 98%—PES slightly better.

Test 3: Transmembrane pressure difference 0.3 MPa. PSU membrane shell withstood 0.3 MPa without breaking; PP membrane shell at 0.15 MPa burst — PSU/PES required.

Test 4: 100% fiber shedding leakage detection. PSU membrane shell negative pressure test pass rate 99.5%, PP membrane case 95%—PSU significantly outperformed PP.

Boundary Declaration

Working ConditionsRecommended Materials
Film ShellPSU / PES
End Cap / Inlet/Outlet InletPP-GF20
Sealing RingSilicone Rubber
Luer ConnectorPP Stainless Steel
Sterilization methodγ rays or EO

Engineering Memo

Selection of materials for the dialyzer housing components, PSU/PES is irreplaceable—biocompatibility is a strict requirement.

The membrane housing uses PSU/PES, and the end cap uses PP-GF20. Fiber shedding, dialysate compatibility, and airtightness are three hidden variables—hidden details in dialyzer registration.

Three consecutive follow-up questions

Question 1: Why don't membrane housings use reinforced nylon? Reinforced materials have high haze, making it difficult to see inside. The transparency of membrane housings is a clinical requirement, not a design preference. The opportunity for nylon in dialysis equipment lies in the structural components and waterway parts on the device side. Instruments and consumables should be considered separately; in the consumables category, nylon plays a supporting role.

Question 2: How is the rigidity of the end cover balanced with toughness? The end cover must withstand clamping stress during assembly; if it is too brittle, it may crack, and if it is too soft, it cannot seal properly. A common solution is a toughening system combined with glass fiber. The glass fiber provides rigidity, while the toughening system provides assembly toughness. The ratio should be adjusted based on actual measured clamping stress, as theoretical calculations are not accurate.

Question 3: How does the chemical environment of dialysis water affect materials? The waterway components on the equipment side are in contact with treated dialysis water year-round. Residual disinfectants and low concentrations of acids and bases are normal. The chemical resistance of waterway components must be verified according to the type of disinfectant. Citric acid and peracetic acid have different corrosive properties. When the disinfection protocol is changed, the material verification should also be updated accordingly.

Reverse cases and closing judgments

A factory, in order to reduce costs, reduced the toughening component in the end cap by 20%. The laminating test pass rate was still fine, but after a month, the cracking rate increased. The stress relaxation of the toughening agent takes time. It passes immediately after pressing, but after a while, the residual stress finds the weakest spot.

The follow-up to this case is to perform aging retests on the entire batch of end caps. After identifying the pattern, the bonding test was changed to measure after letting the bonded parts sit for twenty-four hours. Only then do the pass rate and clinical reliability truly align. Many material failures are not immediate; they are due to aging. The testing process needs to allow time for this.

Practical Case Study: Common Pitfalls and Correct Solutions

Pitfall 1: Directly applying the physical property table of household items to medical scenarios, resulting in elution / sterilization degradation / biocompatibility failure of hemodialyzers within six months.

Correct: Healthcare is the scenario with the highest compliance threshold—any medical component must undergo the full ISO 10993 and USP Class VI verification, and the physical property table for household components is completely inapplicable—this is the root cause of 90% of medical component registration failures.

Pitfall 2: Using the same material for the whole part, resulting in different extractables from the sealing ring and the housing — the whole part registration failed. Correct approach: Select materials separately for the sealing components, housing, and connecting parts, and conduct extractables verification for each part individually. Extractables from different materials cannot be combined.

Pitfall 3: Choosing the wrong sterilization method—excessive EO residue or degradation from gamma rays. Correct approach: Match the sterilization method with the material—EO for PE/PP, gamma rays for PSU/PA, must be verified in advance.

Missing one registration leads to failure, and the cost of remediation is three times that of a new design. These three pitfalls are a checklist that must be self-checked before mass production.

Supplementary Note: Extended Judgments on Registration, Centralized Procurement, and Water Treatment

The registration cycle determines the pace of the dialyzer factory. In product registration validation, the approval cycle for material changes is measured in years, so material selection must be done correctly at the project initiation stage, leaving very little room for substitution later.

This is completely different from the consumer industry. In the consumer industry, material changes happen on a weekly basis, whereas in the medical field, they occur on a yearly basis. Companies providing material services to medical clients must adjust their service pace to the medical timeline. One-time completeness of documentation is valued more than rapid response.

Centralized procurement has pushed the price of dialyzers to the limit. The response on the material side is the same as for infusion sets, with the room for improvement lying in the structure rather than the grade. The integrated design of the end cap reduces the number of parts, the automation of the potting process lowers the rejection rate due to bubbles, and the wall thickness of the membrane housing is reduced within the strength margin. Each of these measures saves a few percentage points of cost.

Grades and documentation are the red line, while structure and technology are the blue ocean; this judgment has been repeatedly validated in the medical consumables industry.

The growth of dialysis equipment brings about a supporting demand for water treatment equipment. The materials of the water circuit components account for a major portion on the equipment side. Pipes, valve seats, and fittings are in long-term contact with treated water and disinfectants, so hydrolysis resistance and chemical resistance are the main concerns.

The opportunities for modified nylon are much greater on the equipment side than on the consumables side. The registration pressure for equipment parts is low, and there is more room for customization. For clients making materials for the medical industry, it is recommended to start from the equipment side to avoid the red ocean of the consumables side. We have already accompanied several clients through this path.

Supplementary Note: Four Extended Judgments from the Frontline

The sensitivity of dialyzer manufacturers to batch consistency is the highest in the consumables industry; a fluctuation in the bubble rate during a single fill can wipe out the profit of an entire production line. It is recommended to set a fluctuation range for key parameters in the incoming material standards, not just upper and lower limits. Control charts should be drawn for melt index, moisture, and ash content, and warnings should be issued when trends go out of range.

The cost of control charts is two hours per week for the clerk, and the benefit is the smoothing of the scrap rate curve. No matter how you calculate it, this is worthwhile in the consumables industry.

Material demands on the equipment side and the consumables side are often handled by the same salesperson, but the time scales and decision chains on both sides are completely different. Consumables follow registration, while equipment follows projects. It is recommended that the sales team maintain the two sides separately: customers on the consumables side need documentation and stability, while customers on the equipment side need customization and responsiveness. Using one approach for both sides will make both feel that you don’t understand the business.

The logistics of dialysis consumables are also a working condition. In summer, the temperature inside the container can reach sixty degrees, and the aging of the membrane housing and end caps during transportation is irreversible. There is a blind spot between arrival inspection and installation inspection. For shipments to tropical markets, a temperature and humidity indicator card should be added in the packaging. Upon arrival, check the card first, then the goods. In case of disputes, the indicator card serves as evidence. The cost of this habit is just a few cents per card.

The market for compatible parts for old machines is growing. The demand for replacement parts for old model dialyzers is stable. Compatible parts have a short registration process, low profit margins, and high sales volume. On the material side, universal design should be used to dilute costs, and several types of universal end caps cover multiple models.

Compatible parts are a business that equipment manufacturers don't care about, which happens to be an opportunity for material-based factories; early entrants can capture the existing market, and this window is still open.

Conclusion

There are some businesses we do not engage in — every decision in selecting materials for medical components is about clinical safety.

The selection of materials and prototype testing for a complete set of medical device components can be discussed together.

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