PA6T/PA9T 高温尼龙:一句过回流焊,PA66 出局

塑料知识科普 发布时间: 2026-09-14 4548 阅读

This part needs to go through reflow soldering.

As soon as this sentence came out, PA6 and PA66 were completely out.

The reason is the hardness: the peak temperature of lead-free reflow soldering is 260°C, lasting 20-40 seconds. The melting point of PA66 is 265°C.

It's not a 'performance degradation' problem; it starts softening and deforming when approaching the melting point — the part is scrapped immediately.

Materials with a melting point above 300°C are required. This is the reason high-temperature nylon (PPA) exists.

In the fields of connectors, LEDs, sensors, and relays, there are no alternative options.

Let's start with a scene.

Last quarter, I attended a new product review at a connector factory. The topic was what material to use for 0.635 mm pitch board-end connectors. Three options were presented at the meeting: PA9T, PA6T, and a cheaper option, PA46. The R&D team said any would work, the purchasing team said the price difference is 30%, and the quality team said the cheaper material caused after-sales issues in last year's project.

The meeting lasted an hour and a half, and in the end, PA6T was chosen—not because anyone persuaded anyone else, but because someone put the long-term heat resistance curves and post-moisture absorption dimensional changes of the three companies into the same chart, and the numbers made the decision for everyone.

That meeting left a deep impression on me because it demonstrated the correct way to select high-temperature nylon: not by whose reputation is bigger, but by comparing three hard indicators—long-term service temperature, reflow soldering resistance, and dimensional stability after moisture absorption. Once the three numbers are lined up, the answer comes out by itself.

This article is about the table made for high-temperature nylon. It starts with the molecular structure, explaining why semi-aromatic nylons are more heat-resistant than aliphatic ones; then it breaks down the real differences between the two main members, PA6T and PA9T—including modification issues, as pure PA6T is too difficult to process, and the ones on the market are all modified copolymer systems.

Then go through the three hard indicators for connector selection one by one, discuss the iron rule of processing, break down six pitfalls, calculate the cost of high-temperature nylon, and finally provide examples of three typical parts. Readers involved in making connectors, switches, and relays are recommended to read the third section carefully twice.

1. Why is high-temperature nylon heat-resistant?

PA6T, PA9T, and PA10T all have a 'T' in their names.

T stands for terephthalic acid. Introducing it means inserting a benzene ring into the molecular chain.

The benzene ring is a rigid structure; it cannot rotate or bend. The molecular chain becomes stiffer, and thermal motion requires higher energy to break the structure—so the melting point naturally increases, and heat resistance naturally improves.

This is completely different from PA46: PA46 relies on hydrogen bond density, while PA6T relies on the rigidity of the benzene ring. The two paths also result in different performance outcomes:

Benzene ring route (PA6T/PA9T): higher heat resistance, lower water absorption, more dimensionally stable, but generally less tough - Hydrogen bond route (PA46): better fluidity and wear resistance, but higher water absorption

Division of work in one sentence: PA46 handles pipe wear, PA6T handles pipe certification, PA9T handles pipe dimensions.

2. The Real Differences Among the Three Members

DimensionPA6TPA9TPA10T
Melting point310-325°C (depending on the copolymer ratio)265-305℃300-320℃
Long-term heat resistance150-170℃150-170℃150-170℃
Water absorption rate4-6%2-3% (minimum)3-5%
Dimensional stabilityBetterBestBetter
ResilienceMedium (slightly crispy)middlemiddle
Relative price★★★★★★★★★★★★★
Supply chainMature, can be produced by multiple factoriesMonomers are limited, and concentration is highLocalization mainstay
most suitableGeneral SMT parts, cost-effectiveHigh temperature High precisionDomestic substitution, cost optimization

PA6T: Best value for money, but has a hidden variable

PA6T is the most widely used high-temperature nylon—it has a high melting point, absorbs much less water than PA46, has mature supply, and is relatively reasonably priced.

But there is one thing that many purchasers don't know:

The melting point of pure PA6T exceeds 350°C, making the processing window too narrow, so it is actually difficult to use. Therefore, most PA6T products on the market are basically copolymer-modified—components such as PA66 and PA6I are introduced to bring the melting point down to a processable range of 310-330°C.

Different copolymerization ratios lead to significant performance differences. This is one of the reasons why products with the same name PA6T can have prices that differ by as much as double.

VariableInfluence
Co-monomer Components and RatiosMelting point, crystallization rate, and toughness all change
Glass fiber content and interface systemStrength, impact, surface
Flame Retardant System (Halogenated/Non-Halogenated)Cost, CTI, GWIT
Substrate Source (Original Brand / Secondary Brand)Batch stability

So the question is not 'Is it PA6T,' but 'What system is your PA6T?' If you can't answer, it indicates that it's just reselling.

PA9T: The king of size, and also the king of price

PA9T has a longer carbon chain (nonanediamine terephthalic acid), which brings two results:

① The water absorption rate drops to 2-3%, which is the lowest among high-temperature nylons. Its long-term dimensional stability is the best — this is the fundamental reason it can be used for precision connectors.

② High unit cost and concentrated global supply. This is the reason why PA9T has the highest price; it's not that the formula is expensive, but the raw materials are expensive.

The applicability judgment of PA9T is very simple: when 'high temperature' and 'high precision' must be met simultaneously, PA9T basically has no alternative.

Conversely—if high precision is not required, using PA9T is a waste. Its premium is only in dimensional stability; in other aspects, it is not stronger than PA6T.

PA10T: The Main Battlefield of Localization

PA10T uses decamethylenediamine (10 carbon atoms), which can be derived from biomass sources such as castor oil, with domestic supply being relatively controllable.

So PA10T has become the main breakthrough direction for domestically produced high-temperature nylon — its performance is between PA6T and PA9T, its price is more advantageous compared to imported PA9T, and it also has a story of being bio-based (which is a bonus for exports and dual-carbon projects).

Note: Bio-based ≠ Biodegradable. These are two different things and are often sold together.

3. Connector Selection: Three Hard Criteria Determine Who to Choose

Connectors are the largest application of high-temperature nylon and also the most troublesome area when selecting types. Follow three indicators:

Indicator 1: Reflow Soldering Temperature

CraftPeak TemperatureConclusion
Leaded reflow solderingAbout 210-230°CPA66 might be barely possible
Lead-free reflow solderingAbout 260℃Must be high-temperature nylon
Multiple reflows / Stringent processAbove 260℃PA6T / PA9T / PA4T

As long as it's lead-free reflow soldering, go directly to high-temperature nylon. Don't try PA66; even if you try, it will be scrap.

Indicator 2: Wall Thickness and Filling

Nowadays, connectors are becoming thinner and thinner, and a wall thickness of 0.3mm or even thinner is very common.

Thin walls prioritize fluidity and crystallization speed → PA46 or PA6T - ultra-thin walls High temperature → high-temperature nylon with high flow grade required

Metric Three: Accuracy Requirement (This item determines whether to use PA9T)

Tolerance ≥ ±0.1mm → PA6T is sufficient - Tolerance within ±0.05mm and long-term stability → PA9T

The criterion is very clear: if the pin spacing of this connector does not drift during long-term use, then it is PA9T. PA6T absorbs 4-6% water, and its dimensions will change over time.

One-sentence decision: For reflow soldering, choose PA6T; for reflow soldering with high precision, use PA9T.

4. Processing: High-temperature nylon has only one iron rule

The mold temperature must be 120-140°C.

There is no room for negotiation on this.

The crystallization behavior of high-temperature nylon is extremely sensitive to mold temperature. If the mold temperature is insufficient, crystallization will be incomplete, resulting in three consequences:

1. The item is brittle—the toughness does not reach the rated value and it cracks as soon as it is dropped.

2. Surface defects — darkened, dull, appearance parts directly fail

3. Heat resistance shrinkage — heat distortion temperature does not reach the datasheet level

Many complaints about 'high-temperature nylon not being easy to use' actually stem from mold temperature.

Complete process parameters

ProjectParameter
Dry120-140℃ × 4h (The drying temperature for high-temperature nylon should be higher)
Target moisture content< 0.1%
Material temperature310-330℃
Mold temperature120-140℃ (critical)
Mold requirementsIt needs to withstand high mold temperatures, and the cooling water channel design needs to be specially considered.

Precautions for supporting molds:

Mold temperature above 130°C: the cooling channels and seals of ordinary molds may not withstand it and require special design. - High-temperature materials cause greater wear on mold steel, hardening treatment is recommended. - Hot runner systems should be selected for high-temperature types.

If using PA46, the mold temperature can be 100-140°C, which is required to be slightly lower than PA6T/PA9T.

The cost calculation for high-temperature nylon needs to be spread out

The main reason high-temperature nylon discourages many projects can be summed up in one word: expensive. But if you break down the costs, the conclusion changes. The first layer is the unit price—PA6T is roughly 50% more expensive than PA66, which is a definite extra expenditure. The second layer is the reflow soldering yield. After the leaded process was phased out, the lead-free peak temperature of 260 degrees doubles the risk of warping and bubbling in PA66-based materials. Once it goes onto the SMT production line, the yield losses quickly eat up the price difference.

The third layer is after-sales service. The repair cost for connectors with poor contact is tens of times the material cost, and the dimensional stability of high-temperature nylon directly mitigates this risk. Summing up the three layers, in SMT scenarios, the overall cost of PA6T is often lower than that of PA66. Practical advice for procurement: quote the price of high-temperature nylon not per kilogram, but per connector, including the material cost plus the estimated after-sales rate for comparison. Using this approach in meetings significantly increases the approval rate.

Five or six most common pitfalls

Pitfall 1: Using PA66 for reflow soldering PA66. The melting point of PA66 is 265°C, while the peak temperature for lead-free reflow soldering is 260°C — this is not a matter of 'enough or not,' it simply won't work. This is the most common and also the most unacceptable mistake.

Pitfall 2: Mold temperature set too low. High-temperature nylon molds must have a mold temperature of 120-140℃. If the mold temperature is too low, the parts become brittle, the surface quality is poor, and heat resistance does not meet the standard. This issue is even more prone to occur than the material selection itself.

Pitfall 3: Thinking that all PA6T products are the same. In reality, they are all copolymer modified, but the copolymer ratios are different, so melting point, toughness, and crystallization rate all differ. Ask about the system, not just the name.

Pitfall 4: Using PA9T for parts that don't require precision. The premium of PA9T is entirely for dimensional stability. Using PA9T for parts that don't need precision is a pure waste.

Pitfall 5: Batch Risks of Low-Price PA6T. The price difference of PA6T mainly comes from copolymer systems, flame-retardant systems, and the source of the base material. If low-priced products have large batch variations, it will directly manifest as unstable yield on automated production lines.

Pitfall 6: Neglecting long-term reliability (CAF) High-temperature nylon in environments with high humidity, high pressure, and long-term power-on has a risk of electrochemical migration (CAF)—this is a long-term reliability issue for connector-type products. When selecting materials, one should not only consider the initial CTI but also the long-term insulation reliability.

6. Boundary Statement: High-temperature nylon is not the end point

Operating conditionConclusionAlternative direction
Continuous long-term >200℃High-temperature nylon up to the topPPS, LCP, PEEK
Above 260°C for long periodsBeyond all nylonPEEK, LCP
Requires high toughness/impact resistanceHigh-temperature nylon is generally brittleRe-evaluate the structural design, or choose a toughened modification system
Requires extremely low water absorption (<1%)High-temperature nylon is at least 2-3%.PA12 (but resistant to temperature differences)
Extremely cost-sensitive and temperature <150℃High-temperature nylon is not neededPA66 Thermally Stable System
Long-term strong acids and basesNylon system is not applicablePPS, PVDF

Attachment: Selection Examples of Three Typical Parts

Example 1: Type-C / Board-to-Board Connector

Working conditions: lead-free reflow soldering at 260°C, wall thickness 0.3mm, pin pitch 0.35-0.5mm, long-term dimensions must be stable.

Deduction process:

Reflow soldering → must use high-temperature nylon, no alternative - 0.3mm ultra-thin wall → requires the highest grade of flowability - 0.35mm pitch → extremely high dimensional stability required, this alone directly rules out PA46 - long-term use → repeated plugging and unplugging, temperature cycling, dimensional drift will directly affect contact reliability

Conclusion: PA9T (high-flow grade). The closer the spacing, the less room for negotiation.

Why can this part only use PA9T: because it needs to both 'pass reflow soldering' and 'maintain long-term stability at 0.35mm pitch.' High temperature and high precision, only PA9T can satisfy both. Expensive, but there is no alternative.

Example 2: LED Bracket

Operating conditions: long-term 120-150°C, requires high white reflectivity, requires yellowing resistance, outdoor or high humidity environment.

Deduction process:

Long-term 120-150℃ → High-temperature nylon range (PA6T/PA10T are both suitable) - white high reflection → Cannot use copper salt heat stabilization system (copper salt system results in darker color, cannot achieve light color) - Anti-yellowing → Requires special weather-resistant and anti-yellowing system, ordinary systems will yellow at high temperature - High humidity → Need to consider long-term insulation reliability

Conclusion: PA6T / PA10T white-specific thermal stability and weather resistance system.

This example illustrates a commonly overlooked fact: heat-resistant systems and color are in conflict. Copper salt systems have the best heat resistance, but they can only produce dark-colored items. If you want something white, bright, and heat-resistant, the formulation difficulty will significantly increase, and the cost will rise accordingly.

Example 3: Sensor Housing

Working conditions: Long-term 150°C, with vibration, in contact with engine oil, and requiring sealing surface flatness.

Deduction process:

Long-term 150℃ → High-temperature nylon or PA66, strong thermal stability system (critical) - Vibration → Needs rigidity and fatigue strength → GF30 - Contact with engine oil → High-temperature nylon itself is oil-resistant - Flat sealing surface → Requires low warpage, pay attention to glass fiber anisotropy - Possible electrical connections → Need to consider CTI and long-term insulation

Conclusion: PA6T-GF30 is a thermally stable system. If high sealing surface precision is required, consider PA9T or adjust the gate design to reduce warpage.

Attachment: Why the cost of high-temperature nylon is high

Many people ask, 'Why is PA6T more than twice as expensive as PA66?' Breaking it down, the money is spent in three areas:

Cost itemssituation
Base resinBig head. The monomers of PA6T/PA9T (terephthalic acid and long-chain diamine) are expensive themselves, and the global supply of nonanediamine for PA9T is concentrated. This is the fundamental reason why PA9T is the most expensive.
Modified systemFiberglass, flame retardant, thermal stability — high-temperature systems have higher temperature requirements for additives, and the additives themselves are also more expensive.
Processing costMaterial temperature 310-330°C, energy consumption and screw wear are both much higher than PA66

Conclusion: The premium for high-temperature nylon mainly comes from the base material, not the formulation. Therefore, when "looking for cheap PA6T," one needs to exercise judgment—if the price is significantly below the market, it is likely that compromises have been made in the source of the base material or the copolymer system, and the risk of batch stability must be borne by oneself.

There is another reality: the localization of PA10T is underway, and decamethylenediamine can be produced from biomass sources. This is currently the most noteworthy change in terms of price and supply chain in high-temperature nylons.

A real feeling in the industry: when looking for cheap PA6T, the biggest risk isn't that the material is bad, it's that you don't know which property of this batch is off. In the high-temperature nylon field, the most easily overlooked threshold we've seen is mold temperature. When customers report 'heat resistance doesn't reach the rated value, parts are brittle, surface is darkened,' the first reaction is usually that the material is problematic; but when you check the mold temperature, it's often set too low. The crystallinity of high-temperature nylon relies on mold temperature—if the mold temperature is insufficient, crystallinity won't reach the level, and the rated heat resistance is just a number on paper. This kind of issue is the hardest to explain and most easily misjudged as 'bad material.'

The price difference of high-temperature nylon mainly comes from the substrate and copolymer system, not the formulation. Therefore, when the price is significantly lower than the market, the batch stability calculations need to be done by yourself.

The testing method is actually ready-made, so there is no need to set up a new laboratory:

DSC melting point measurement — if the melting point doesn't match, the grade might not match - Ash content (muffle furnace ignition) — can calculate the actual glass fiber content and see if the nominal GF is accurate - Relative viscosity (Ubbelohde viscometer, GB/T 1632.1 polyamide viscosity determination) — reflects the degree of polymerization, mixing in recycled material will significantly lower it - TGA thermogravimetric analysis — check if there is a large amount of filled recycled material or impurities

After completing the four steps, the testing cost for a batch of materials is not high, but what is gained is certainty for the entire batch of parts. This deal is more cost-effective than the price difference.

Three Questions and Three Checks for Connector Selection

Determine the material for the board-end connector and print the 'Three Questions and Three Checks' on the review form. Three Questions: First, ask about the peak temperature—the actual measured peak of the reflow soldering curve and the duration above the liquidus, not just the words '260 degrees' on the specification sheet; second, ask about the operating temperature—the long-term temperature field of the mated connector when powered, as the heating of the terminals can make local temperatures tens of degrees higher than the environment;

Three questions on insertion and removal lifespan, the number of times, and the range of insertion and removal force; wear assessment is hidden in the numbers. Three checks: first, check dimensional changes after moisture absorption, counting separately for the spacing direction and the latch direction, as the drift in these two directions is not synchronized; second, check the flowability of thin walls, for filling below 0.4 millimeters, data on melt flow index and spiral flow length are required;

Triple-check cost allocation, distributing the total cost over each unit within the mold's lifespan. The unit price disadvantage of high-temperature nylon often disappears after triple-checking. Once the three questions and three checks are completed, the division of labor for PA6T, PA9T, and PA46 naturally becomes clear, so there is no need to make decisions by raising your voice at the review meeting.

Conclusion

The selection of high-temperature nylon (PPA) comes down to one sentence:

PA6T is for general use, PA9T is for precision, PA10T is for domestic substitution.

And the only question in deciding whether to use high-temperature nylon is: can it withstand reflow soldering?

Go ahead → Directly use high-temperature nylon, don’t try PA66 – Not go ahead → First check if the PA66 heat-stable system is sufficient, don’t pay for heat resistance you can’t use

There are also two strict rules of execution:

Mold temperature should be 120-140°C, not lower. If you maintain this, high-temperature nylon is a reliable material; if you don't, even the best grade will be scrap.

Material temperature 310-330℃, don't go over. High-temperature material is sensitive to temperature, exceeding the upper limit will cause degradation.

For more than ten years, I've been doing only one thing: turning nylon into something usable.

PA6 and PA66 are the basic options, PA46, PA6T, and PA9T are the high-temperature thresholds, PA11 and PA12 are used for water and oil channels, and nylon alloys make up for the balance that a single resin cannot provide. In addition to modified nylon, there are also modified PPO, PPS, thermoplastic elastomers, as well as nylon resins from major chemical companies, secondary brands, and bulk materials in stock.

Using the same piece of material in the wrong place causes an accident. So first ask about the part, then ask about the material.

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