改性尼龙与 PEEK 怎么选?134℃ 灭菌,PA 半年就脆

应用领域 发布时间: 2026-09-13 3342 阅读

224 How to choose between modified nylon, PEI, and PEEK

Starting with a high-pressure sterilizer

Last year, a medical device factory in Suzhou had a hard time with surgical instrument trays: the trays had to go repeatedly into a high-pressure steam sterilizer at 134 degrees, with saturated steam, for forty minutes each time. The PA material originally used began to yellow and become brittle in less than six months, and the edges would chip easily—before reaching the number of sterilization cycles promised by the brand, entire batches were scrapped.

After switching to PEI, the same tray has been used for two years and over three hundred sterilization cycles, with both color and strength remaining stable. The procurement department remarked that the material price is ten times that of PA, but with the scrap cycle extended fourfold and the clinical risk of sterilization failure reduced to zero, the department's accounts actually show savings.

PEEK is used in areas with higher operating conditions: implants, aerospace structural components, semiconductor wafer carriers—situations where PEI cannot be used. This article discusses this upgrade chain—PA, PEI, PEEK, each covering a certain range of operating conditions, and where spending money is justified.

Positioning of engineering plastics

Performance pyramid of engineering plastics: General plastics (PP, PE) < General engineering plastics (PA, PC, POM, PBT) < Special engineering plastics (PPS, PEI, PSU, PEEK) < Ultra-high temperature materials (PI). PA is in the second layer, PEI and PEEK are in the third layer.

Upgrading from PA to this level increases the price by 10-30 times. So you must make sure that PA really doesn't work.

Characteristics of PEI

PEI (Polyetherimide) long-term use temperature is 170°C, HDT 200°C. Advantages: high temperature resistance, naturally flame retardant V-0, transparent (amber), dimensionally stable, hydrolysis resistant, can be steam sterilized. Disadvantages: high price (8-15 times that of PA66), not resistant to certain solvents (such as acetone), high processing temperature (340-400°C), average toughness. Typical applications: medical sterilization instruments, aerospace interior components, high-temperature electrical parts.

Characteristics of PEEK

PEEK (polyether ether ketone) has a long-term use temperature of 250℃ and an HDT of 315℃, making it one of the high-temperature resistant varieties among mass-produced plastics. Advantages: extremely high temperature resistance, excellent chemical resistance (resistant to almost all chemicals), wear resistance, hydrolysis resistance, flame retardancy, and radiation resistance.

Disadvantages: Extremely high price (20-30 times that of PA66), high processing temperature (380-420°C), high equipment requirements. Typical applications: oil wells, semiconductors, medical implants, aviation.

Performance-to-price ratio curve

From PA66 to PPS to PEI to PEEK, prices increase exponentially: PA66 is about 25-35 yuan/kg; PPS is about 60-90 yuan; PEI is about 250-400 yuan; PEEK is about 600-1000 yuan.

Performance improvement is linear, while price increase is exponential. Therefore, the principle of material selection is: choose the grade that is just sufficient, without overdesigning. Many people immediately ask for PEEK, but actually PPS is enough.

Upgrade judgment sequence

The correct order for upgrading from PA: Step 1: First, confirm whether the grade of PA selected is incorrect — switching to high-temperature nylons (PA46, PA6T, PA9T) can solve most heat resistance issues, with the price increasing only 2-4 times.

Step two: Then consider PPS — resistant to heat up to 200℃, excellent chemical resistance, price increases 2-3 times. Step three: Only then are PEI and PEEK — only needed in extreme conditions (above 250℃, strong corrosion, implantation in the human body).

Considerations When Replacing Metals

PEEK is often used to replace metals—in the petroleum, semiconductor, and aerospace fields, there are many cases where PEEK replaces stainless steel and titanium alloys. The logic is: although PEEK is expensive per kilogram, it saves on machining costs, reduces weight, and has better corrosion resistance. When calculating the total cost of the whole part, PEEK can sometimes actually be cheaper. This calculation needs to be clear before drawing a conclusion.

The threshold for processing PEEK

Processing PEEK cannot be done with an ordinary injection molding machine: the barrel temperature is 380-420℃, the heating rings and thermocouples of ordinary injection molding machines cannot reach this temperature; the mold temperature is 160-200℃; the screw needs to be made of special material that is high-temperature and corrosion-resistant;

Drying requirements are strict (150°C for more than 3 hours). Factories without the appropriate equipment cannot take orders for PEEK. This is also the reason why PEEK processing costs are high.

Engineering field measurement: 4 mandatory tests

Test 1: Temperature resistance. PA66 long-term 120℃, PPS 200℃, PEI 170℃, PEEK 250℃—select grade as needed.

Test 2: Prices. PA66 30 yuan/kg, PPS 80 yuan, PEI 300 yuan, PEEK 800 yuan — prices rise.

Test 3: Chemical Resistance. PEEK is resistant to almost all chemicals, while PA66 cannot withstand strong acids and bases—PEEK is only used in extreme conditions.

Test 4: Processing. PEEK barrel 380-420°C, ordinary injection molding machines cannot reach it — equipment threshold.

Boundary Declaration

Operating conditionRecommended materials
Temperature resistant 150-200℃High-temperature nylon or PPS
Temperature resistant above 200℃PEI or PEEK
Strong corrosion High temperaturePEEK
Medical disinfection itemsPEI or PPSU
Alternative metalCalculate the total cost first and then decide

Engineering Memo

Upgrade sequence: High-temperature nylon → PPS → PEI → PEEK. As price indices rise, choose just enough for your needs and avoid overdesigning.

Practical Case Study: Common Pitfalls and Correct Solutions

Pitfall 1: Concluding based on the strength comparison between Nylon and PEEK alone. Material selection should focus on weaknesses—PA's weaknesses are water absorption and acid resistance, PBT's weaknesses are heat resistance and impact resistance, and metals' weaknesses are weight and cost. Correct approach: Make a table of weaknesses to see which ones are not critical under this working condition.

Pitfall 2: When replacing metal with plastic, directly making the plastic part in the shape of the metal part. Correct approach: The design logic for plastic and metal is different; plastic relies on ribs and wall thickness distribution, while metal relies on section moment of inertia, so a redesign is necessary. Pitfall 3: Changing materials without recalculating costs.

The material is cheaper, but the wall thickness needs to be increased, or additional post-processing steps are added, so the total cost may actually be higher. Correct approach: calculate the cost of the whole piece, not the price per kilogram.

Extended Judgment: Three Things to Confirm Before Choosing a Model

Before choosing between nylon and PEEK, there are three things that must be clarified first; if the order is wrong, everything afterward will need to be redone.

First: What is the long-term use temperature. Short-term peak temperature and long-term operating temperature are two different things. The heat distortion temperature on the material property table is a short-term indicator, and the long-term operating temperature is generally considered to be 70% of that.

Second: What kind of medium is it in contact with. Oil, water, cleaning agents, sweat, electrolyte—each will change the choice of material number. The list of media is more important than the temperature chart.

Third: Are there certification requirements? Flame retardancy, CTI, food contact, water hygiene, safety certification—parts with certification requirements must be re-verified for replacement numbers, costing much more than the material price difference. Clarify these three matters, and the material selection is half done.

Write these three things into a form and send it to suppliers, which is more effective than ten phone calls—the costs of nylon and PEEK selection communication are basically spent on repeated confirmation of these items.

Performance map: Three key work cycles

put three materials into the same working condition map, and the boundaries are clear.

PA's territory is structural load-bearing parts below 150°C—gears, brackets, housings, the king of cost performance. Once the operating conditions cross the thresholds of steam sterilization, repeated thermal cycling, and prolonged humid heat, the hydrolysis and aging of PA begin to take hold.

PEI's domain is a 200°C repeatedly heated environment. Its molecular chains are embedded with benzene rings, giving it high rigidity and high vitrification temperature, so it does not soften or deform in size at high temperatures; It has good hydrolysis stability, with hundreds of steam sterilization cycles without changing color; It is naturally transparent, flame-retardant, and low smoke, recognized by medical and aerospace interiors. Its weak points are notch sensitivity and average chemical resistance—strong alkalis and some solvents can erode it.

PEEK territory is extreme conditions at 260°C combined with harsh media. Chemical resistance is nearly full spectrum (except for tough players like concentrated sulfuric acid), wear-resistant and self-lubricating, and biocompatibility up to implant-grade — this is what spine cages and joint replacement parts use. Semiconductor wafer carriers value their low precipitation, while aerospace parts value full certifications for flame retardancy, low smoke, and low toxicity.

Spend money on the operating condition threshold: operating conditions below 150°C, PEI and PEEK are like a tool used to crack a nut; Beyond the PEI threshold, high-temperature nylon is also a slow solution. The reasons for buying PEI and PEEK are half performance, half certification — the entry passes for medical, aerospace, and semiconductor industries themselves are part of material prices.

PEI High-Frequency Q&A with PEEK

Q: Besides steam sterilization, is PEI suitable in dry and hot environments? Yes. Long-term dry heat around 170 degrees is its comfort zone. Mirror brackets in the electronics industry, aircraft interior parts, and automotive headlight reflector brackets all fall within this range. Note its notch sensitivity—increasing rounded corners at sudden thickness changes costs zero and delivers immediate results.

Q: For small batch PEEK parts, how should injection molding and machining be chosen? For batches of several dozen pieces, machine processing of bar and sheet materials is cost-effective, saving hundreds of thousands in mold fees; For batches over a thousand pieces, after thinning molds by injection molding, they surpass others. Most fixtures in semiconductor processing are machined PEEK, and only mass products go through injection molding.

Q: What grade can high-temperature nylon PA6T and PA9T achieve? In dry environments below 180 degrees Celsius and without damp-heat cycling, high-temperature nylon is an alternative to PEI, costing only one-third. Once the conditions enter steam sterilization and repeated damp-heat cycling, hydrolysis of amide bonds becomes unbearable—this threshold is PEI's moat.

Q: How long does the certification cycle for switching to specialty materials last? Medical device material changes involve registration changes, and domestically, the process starts at six months; For aviation parts, a list of airworthy materials must be submitted for approval, with the cycle calculated by years. The certification cycle should be at the very top of the project plan—it is more likely to delay market launch than mold fees.

Review of pre-upgrade operating conditions: Five questions

Before buying PEI or PEEK, ask yourself these five questions first; the answers can save you a lot of unnecessary money.

First, ask about the upper temperature limit. What are the continuous operating temperature and peak temperature? At 250 degrees continuous operation, PEI can't handle it, just look at PEEK; Within 150 degrees, high-temperature nylon might be sufficient.

Second, ask about medium spectrometry. What chemicals are you exposed to, what concentration, and what temperature? PEEK's chemical resistance is almost complete; PEI must be checked on the meter, and both must be carefully checked in strong alkaline environments.

Third question: Moist-heat cycle. Is there steam or repeated alternating high and low temperatures? Yes, for amide-based (including high-temperature nylon) molecular structures, half of the requirements are lost first.

Four questions: Certification threshold. Does the industry need medical, aviation, or food-grade certification? Certification costs are part of the price of specialty materials. For industries without certification requirements, the extra money paid for them is wasted.

Five questions about lifespan. Is the number of repeated uses hundreds or millions? Fatigue and wear data should be obtained from suppliers up to measured curves; don't just look at single points in the physical property table.

After five questions, the answer is on paper for which level to upgrade and whether not to upgrade .

Ask: What practical use is PEI's transparency? Its usefulness is significant—natural transparent can be used directly as observation windows, liquid level markers, and indicator lampshades, forming as one piece without reassembling the material; After dyeing, the color is uniform, and medical equipment casings are used with this material to solve structural and appearance parts. Injection molding parameters must be stable; silver patterns caused by temperature fluctuations cannot be hidden on transparent parts.

Question: Is the PEEK plus carbon fiber version worth spending extra money? It depends on the intended use. Bearings, sealing rings, gears, and other wear-resistant parts that require wear resistance and heat conduction, the carbon fiber version's rigidity and wear resistance have all been upgraded, so money is spent wisely; But carbon fiber provides stronger anisotropy, so orientation and warpage must be considered in design. If the drawings are not changed, the material should be changed, and the dimensions will teach people.

Three-level jump: The upgrade path of an equipment factory

A semiconductor equipment factory in East China's approach—a factory-copying project worth considering for upgrades.

Their wafer transfer arm, first generation uses PPS, barely sufficient for 200-degree dry heat conditions, but precipitate control cannot pass client-side cleanliness audits. Second generation switches to PEI, with precipitation and rigidity both passed, and the chemical resistance window is even lower compared to new process chemicals.

Third generation: the arm body that contacts chemicals is replaced with PEEK, structural parts retain PEI—graded materials, total machine cost only increased by 40%, and all performance shortcomings are eliminated.

The verification costs in between aren't as high as imagined: each level adds validation within the previous testing framework, the PPS era testing fixtures are kept in use, and three rounds of validation use the same equipment.

The factory's procurement director summarizes: upgrading isn't about achieving success in one step; it's about stepping on the accumulation of validation at the previous level. Factories that jump directly to PEEK cost more and pay heavier tuition.

Don't forget there's also PPS in the middle .

When talking about the upgrade chain, there's one stop often skipped—PPS.

It stands right between PA and PEI: it can withstand long-term dry heat conditions of 200°C, chemically covers most of the solvent table, and costs only half as much as PEI. Many other "special materials" outside wafer carriers—pump impellers, engine peripheral sensor components, chemical pump assemblies—are actually PPS's work, without needing to jump directly to PEI and PEEK.

It also has clear boundaries: brittleness and notch impact are weaknesses; parts requiring high toughness require toughness formulations, while rigid load-bearing parts are just right. After fiber reinforcement, its strength and dimensional stability are quite strong in the 200-degree range.

So the full upgrade chain should be four levels: PA, PPS, PEI, PEEK—with several times the price difference and a clear operating condition between each level. Putting PPS back on the map, many upgrade projects can save a third of their budget, which might be the most valuable sentence in this article.

asks: How do you manage specialty material inventory? PEEK bar and sheet materials are general specifications; some are kept on hand for machining for faster turnover; Injection molding grades are purchased by order, and no one dares to accept the fees for grades that are stagnant for a year. A compromise is to keep 20% of safety stock, lock prices for large orders, and buy for individual orders—special materials require a lot of capital, and inventory strategy itself is a cost item.

Conclusion

Material is the same material, but the process is two sets — the earlier you ask about material selection, the easier it is to ask.

For these types of parts, material selection and mold trial can be discussed together

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