"改性尼龙是什么",这个问题我在展会上被问了不下一百次。
但我发现,真正卡住大家的不是定义,是另一件事——手上那个件,到底该选哪一个尼龙。
有人拿着 PA6 的料去打 150℃ 的发动机舱件,三个月后变形返工;有人为了省钱用 PA66 替代 PA46,结果连接器过不了回流焊;还有人看到"玻纤 50%"就下单,做出来一掰就断。
这篇不讲教科书定义,只讲一件事:面对 23 种尼龙、16 类改性,怎么在 5 分钟内选出一个不会出错的方案。
一、改性尼龙"改"的是什么?先搞清楚补哪块短板
市面上的叫法有十几种:增强尼龙、阻燃尼龙、增韧尼龙、耐磨尼龙、耐高温尼龙、导电尼龙……听着像十几个不同的材料,其实都是同一件事:给尼龙补短板。
尼龙本身有三个天生短板:
吸水|平衡吸水率可达 8-10%
不改的后果 ▸ 尺寸涨、强度掉、翘曲
耐热不足|PA6 熔点仅 220℃
不改的后果 ▸ 高温工况软化变形
刚性不够|纯树脂模量低
不改的后果 ▸ 受力件扛不住,替代不了金属
所以改性的本质,不是"加东西",而是补短板——你先想清楚这个件最怕什么,答案就出来一半了。
按这个逻辑,16 类改性其实可以归成 5 个方向:
加强度刚性|对应受力件、替代金属
手段 ▸ 玻纤 / 碳纤 / 矿物填充
调韧性|对应抗冲击、低温不脆
手段 ▸ 弹性体增韧、核壳结构
阻燃|对应安规要求
手段 ▸ 卤系、无卤磷系、次膦酸盐
耐环境|对应高温、户外、化学介质
手段 ▸ 铜盐热稳定、抗 UV、耐水解体系
改加工|对应薄壁、精密、外观
手段 ▸ 高流动、成核剂、脱模体系
记住这句话:改性不是把料做得"更强",是把料做得"更合适"。强度堆到 270MPa 但韧性崩了,一样是废方案。
二、一粒料是怎么变成一件成品的?看懂这条链,选型就懂了一半
这是很多采购和设计工程师都模糊的一段——以为"改性尼龙"是一个厂做出来的东西。
其实一件尼龙件从石油到成品,要过三道手:
第一道:树脂厂(聚合) —— 把己内酰胺、己二酸、己二胺这些单体聚合成 PA6、PA66 树脂。
这一层是化工巨头的地盘,全球就那么几家:巴斯夫、奥升德、科思创、帝斯曼、兰蒂奇、万华、神马、华峰……他们卖的是基础树脂,也就是行业里说的"正牌料"。
第二道:改性厂(共混造粒) —— 买来树脂,加上玻纤、阻燃剂、增韧剂、稳定剂,用双螺杆挤出机共混造粒,做成能直接上注塑机的"改性料"。这一层才是"改性尼龙"真正的发生地。
第三道:注塑厂(成型) —— 把改性料烘料、熔融、注进模具,出来才是件。
看懂这条链,你会立刻明白三件事:
① 为什么同一牌号,不同改性厂做出来不一样。
因为改性厂本质上不是"料厂",是"配方厂"。树脂是公开买的,但偶联剂选哪一种、加多少、怎么喂料、螺杆怎么排布——这是配方,也是黑箱。同样标 PA66-GF30,A 厂和 B 厂的缺口冲击能差一倍。差别不在玻纤,在界面。
② 为什么"副牌料"这个词会存在。
树脂厂聚合出来的料,某一项指标没达到正牌标准(比如黏度低了半档、含水率偏高),内部就把它划成副牌。它和正牌分子结构一样,只是指标有偏差。用在非关键件上是降本手段,用在受力件和安规件上是事故来源。 这两种用法都对,错的是不看用途就用。
③ 为什么材料出问题,三方都会说是对方的问题。
件断了,注塑厂说料不行,改性厂说树脂不行,树脂厂说工艺不对。看懂这条链,你才知道该问谁问什么。
行业里的一条实感:真正难的不是把料做出来,是把同一批料在三年里做到一模一样。 我们这边问得最集中的一块是汽车件,而最难沟通的从来不是价格,是只给一个对标牌号——"我要某某牌号,你给我找个一样的"。可那个牌号是按别人家的件、别人家的工况调出来的。你的件不同、工况不同,凭什么能一样?牌号是结果,不是原因。
举个具体的事。 行业里最容易被混着说的三个词,其实是三件事:
正牌料是原厂生产、各项指标都落在牌号标准窗口里的料,一批附一张 COA。副牌料是同一产线下来的,但某一项指标偏出了那个窗口。 回料是回收料重新造粒——分子链已经断过一次。
关键差别不在"低多少",在"变没变":副牌是尺度偏了,回料是链断了。 前者可以挑着用,后者只能用在不当结构件的地方。
所以看一批料,第一句该问的不是"便宜多少",是"偏在哪一项"。
三、23 种尼龙,其实只分四个族
不用一个一个记。整个尼龙家族按分子结构,只分四族:
第一族 · 通用脂肪族(走量主力)
PA6、PA66。占据尼龙用量的九成以上,性价比最高,也是改性做得最成熟的。
第二族 · 长碳链(低吸水、耐水解)
PA11、PA12、PA610、PA612、PA1010、PA1012。碳链越长,吸水越低、越耐水解、低温韧性越好,代价是耐热和强度下降。
第三族 · 高温半芳香族(高价高利润)
PA46、PA6T、PA9T、PA10T、PA4T(统称 PPA)。分子链里引入苯环,耐热直接跳一个台阶。
第四族 · 合金与弹性体(功能补充)
PA/ABS、PA/PPO、PA/PP 合金,以及 PA 弹性体 TPAE。不是为了更强,是为了拿到单一树脂拿不到的性能组合。
| 族 | 代表 | 熔点 | 吸水率(相对) | 长期耐温 | 一句话定位 |
|---|
| 通用脂肪族 | PA6 / PA66 | 220 / 265℃ | 高(8-10%) | 100-120℃ | 便宜好用,量大面广 |
| 长碳链 | PA11 / PA12 / PA612 | 178-215℃ | 低(1-2%) | 90-110℃ | 尺寸稳、耐水解、耐低温 |
| 高温半芳香 | PA46 / PA6T / PA9T | 295-325℃ | 中到极低 | 150-170℃ | 耐回流焊、高温结构件 |
| 合金弹性体 | PA/ABS、TPAE | — | 中 | 80-120℃ | 拿单一树脂拿不到的平衡 |
一句话记住四个族:PA6/PA66 打天下,长碳链管水路,高温尼龙上电气,合金弹性体补短板。
四、拿到一个牌号,先学会"读"它
这一节是本文最实用的一段。
大部分人选料时只看到一串代码——PA66-GF30-V0、PA46-HI、PA9T-GF45。这串代码其实是一份压缩过的说明书,会读的人不用查资料就知道七成信息。
4.1 前面的数字:告诉你分子结构
尼龙的命名规则来自单体——数字代表每种单体的碳原子数。
一个数字(PA6、PA11、PA12)→ 由一种单体自己缩聚,或内酰胺开环。数字就是碳数。
两个数字(PA66、PA610、PA1010)→ 由"二元胺 + 二元酸"缩聚。前一个数字是胺的碳数,后一个是酸的碳数。所以 PA66 = 己二胺(6) + 己二酸(6)。
数字 + T(PA6T、PA9T、PA10T)→ T 代表对苯二甲酸(Terephthalic acid)。这是引入苯环的标志,也是"耐高温"的来源。数字是二元胺的碳数。
PA46 → 丁二胺(4) + 己二酸(6)。名字里没 T,但它也是高温尼龙,因为分子链间氢键密度极高——这是另一种耐热思路。
PA56 → 戊二胺(5) + 己二酸(6),近年的生物基尼龙,戊二胺可由生物质发酵制取。
记住这条,你就能听懂 80% 的牌号:数字越小,吸水越高、熔点越低;出现 T,耐热上一个台阶。
4.2 后面的字母:告诉你改了什么
| 后缀 | 含义 | 说明 |
|---|
| GF | 玻璃纤维 | GF30 = 30% 玻纤。最常见的增强标记 |
| CF | 碳纤维 | 高刚性 + 导电,价格数倍 |
| GB / MD | 玻璃微珠 / 矿物 | 低翘曲、尺寸稳定 |
| LGF | 长玻纤 | 冲击韧性远高于短纤 |
| HI | 高抗冲 | 增韧体系,常与"低温不脆"配套 |
| FR / V0 / V2 | 阻燃 / 阻燃等级 | FR 泛指阻燃,V0、V2 是 UL94 具体等级 |
| NH / HF | 无卤 | 对应欧盟与家电安规要求 |
| UV | 耐候 | 户外用,含 HALS 与吸收剂 |
| HS | 热稳定 | 铜盐或有机体系,长期耐热 |
| BK / NC | 黑色 / 本色 | 颜色标记 |
| IM / EX | 注塑级 / 挤出级 | 决定加工方式,混用会出问题 |
实战读一个牌号:
PA66-GF30-HS-BK → 基材 PA66(通用脂肪族,耐温 100-120℃);30% 玻纤(增强,刚性为主);热稳定体系(长期耐热可上推到 140-150℃);黑色。 判断:这台件可以长期跑 130-150℃,但不能过 SMT 回流焊(那要 260℃ 以上);大概是黑色结构件,不是外观件。
⚠️ 一个提醒:不同厂商的命名体系不统一。杜邦、巴斯夫、帝斯曼、金发、万华各有一套编码,有的用字母后缀(B3EG6),有的用数字序列(1013)。上面是行业通行的约定,具体牌号仍要回到 TDS 确认。
五、选型的四把尺子
前面都是背景,这一节才是能直接用的。
一看温度,二看吸水,三看载荷,四看介质。
按这个顺序问四个问题,八成工况直接出结论。
尺子一:温度
先分三档:
长期 120℃ 以内 → PA6 / PA66 就能干,加铜盐热稳定体系可推到 140-150℃
长期 150℃ 以上,或要过 SMT 回流焊 → 必须上高温尼龙(PA46 / PA6T / PA9T)
短期峰值 200℃ 以上 → PA4T,或者直接考虑 PPS
这里要把"耐温"这个词拆开——它其实是三个不同的数字,混淆这三个是最典型的错误:
| 概念 | 含义 | 典型表现 |
|---|
| 熔点 Tm | 晶体完全熔化的温度 | PA66 约 265℃,PA6T 约 310℃ |
| 短期峰值耐温 | 短时间能承受不失效 | TDS 上写的 200℃ 常指这个 |
| 长期连续使用温度(RTI) | 长期使用不失性能的极限 | 往往只有 150℃ 甚至更低 |
这是发动机舱件失效的头号原因:拿"短时峰值 200℃"去设计长期工况。TDS 上那个漂亮的 200℃,说的是"能扛几分钟",不是你那个件要跑的 3000 小时。
要高温数据,就问一个词:RTI(相对热指数)。 这是 UL 体系里考核长期耐热的指标,正规供应商给得出来。
尺子二:吸水
吸水率不是只影响尺寸,它先影响强度,尺寸变化是结果。
精度要求不高 → PA6/PA66 够用
精密件(公差 ±0.05mm)或高湿环境 → 长碳链(PA612/PA12)或 PA9T
既要耐高温又要精密 → PA9T(高温尼龙里吸水率最低)
吸水的代价可以粗略估算:尼龙件吸水 1%,尺寸大约涨 0.2-0.3%。 看着不多,但一个 100mm 的件吸水 2% 就是 0.5mm 的偏差——足以让装配报错。
再往下追一层,平衡吸水率取决于使用环境,不取决于料本身。同一块 PA66 件,在干燥的西北和潮湿的华南,稳定后的吸水率不是一个数:
| 环境 | 相对湿度 | PA66 平衡吸水率(典型) |
|---|
| 干燥采暖环境(西北、冬季北方) | ~30% | 1.5-2.0% |
| 一般室内 | ~50% | 2.5-3.0% |
| 潮湿南方、无空调车间 | ~75% | 4.5-5.0% |
| 长期浸水 | 100% | 8% 以上 |
一条内行经验:玻纤增强尼龙件测尺寸,注塑后 24 小时和 48 小时的数据能差 0.1-0.2%。刚下线的件就送检,等于没测。模具补偿要按使用地的平均湿度来算——同样的件发到广州和发到兰州,装配尺寸不是一个数。
尺子三:载荷
静载结构件 → 提高玻纤含量(GF30 → GF50)
反复冲击 → 加增韧体系,慎用高玻纤
长期疲劳(齿轮、卡扣)→ 关注疲劳强度,不是拉伸强度
玻纤含量是最容易被误用的一个参数。加多少,性能怎么变,有个大致规律:
| 玻纤含量 | 拉伸强度 | 弯曲模量 | 缺口冲击 | 热变形温度 | 收缩率 |
|---|
| 0(纯树脂) | 基准 | 基准 | 最高 | 最低 | 1.5-2.0% |
| GF15 | ↑ 约 1.3 倍 | ↑ 约 2 倍 | ↓ 约 40% | ↑ 约 40℃ | 0.8-1.2% |
| GF30 | ↑ 约 1.8 倍 | ↑ 约 3 倍 | ↓ 约 50% | ↑ 约 70℃ | 0.4-0.7% |
| GF50 | ↑ 约 2.2 倍 | ↑ 约 4 倍 | ↓ 约 60% | ↑ 约 90℃ | 0.2-0.4% |
(以上为相对趋势,典型值,具体以牌号 TDS 为准)
看这张表要抓住两件事:
1. 玻纤买的是刚性和耐热,代价是韧性和表面。 刚性和韧性在这张表上是反向走的,没有例外。
2. 收缩率随玻纤含量下降,而且纵横方向不一样。 玻纤顺着流动方向排列,流动方向收缩小(纵向)、垂直方向收缩大(横向),GF30 件纵横收缩比可能到 1:2 甚至 1:3。这是长条形玻纤件翘曲的根本原因,不是"料不好"。
玻纤不是越多越好:GF30 加到 GF50,刚性上去了,缺口冲击可能掉三成以上,浮纤、翘曲、模具磨损一起找上门。走 GF50 之前先问一句:是刚性真不够,还是结构设计不够? 很多时候是后者。
尺子四:介质
机油、燃油 → PA6/PA66 可以,长期浸泡建议长碳链
水、乙二醇冷却液 → 必须考虑水解,长碳链(PA612/PA12/PA1010)更稳
酸碱、强溶剂 → 尼龙本身就不占优势,要专门评估
耐化学性可以分四档记:
| 介质 | 耐受性 | 说明 |
|---|
| 机油、润滑油、燃油 | 较好 | PA6/PA66 短期可用;长期浸泡选长碳链 |
| 水、乙二醇、冷却液 | 有条件 | 常温水可,高温水会水解,必须用耐水解体系或长碳链 |
| 醇类、弱碱 | 一般 | 短时接触可,长期会溶胀 |
| 强酸、强碱、酚类、甲酸 | 差 | 尼龙体系基本不适用,换 PPS / PEEK / 氟塑料 |
这一档要特别提醒"高温水":很多人觉得水是最温和的介质,其实 80℃ 以上的热水对 PA6/PA66 是水解环境——分子链会断,强度下降,而且从外观上看不出来,等到漏水才发现。
六、七个最容易踩的坑
坑 1:只看拉伸强度选料,用的是干态数据
拉伸强度是干态数据。吸水之后,PA6/PA66 的强度可能掉 30% 以上。选受力件,要看湿态性能,不是干态。
坑 2:把"短期峰值"当"长期连续"用
前面说过——TDS 上的 200℃ 是能扛几分钟,不是你那个件要跑 3000 小时。要看 RTI。 这个坑在发动机舱件上最致命。
坑 3:阻燃只看 UL94
九成人选阻燃尼龙,第一步就看 V0。看错了。安规真正卡你的是 灼热丝 GWIT(家电、断路器类)和 CTI(高压连接器类)。UL94 过了但 GWIT 不达标,认证照样过不了。
坑 4:把收缩率当成一个固定数字
"这个料收缩率 0.5%"——这句话本身不成立。收缩率随玻纤含量、壁厚、模温、保压、流动方向变化。同一个牌号做薄壁件和厚壁件,收缩率能差一倍。收缩率是一个区间,不是一个点。
坑 5:以为副牌料要么不能用,要么能当正牌用
这两种认知都不对。副牌料是生产过程中指标偏离标准的料——分子结构和正牌一样,但某项指标存在波动。用在非关键件上,它是降本手段;用在受力件、安规件上,是事故来源。关键不是"能不能用",是"用在哪个件上"。
坑 6:一个牌号打天下
同一台设备上,进气歧管、卡扣、齿轮用的料完全不同。批量做大了才发现选错料,模具都改不回来。
坑 7:先选料,再设计件
正确顺序是反过来的:先想清楚这个件的工况(温度、载荷、介质、精度),再倒推材料。先拿到一块便宜料,硬往件上套,最后的结局通常是加钱改模或者换料重开模——省下的料钱,十倍还回去。
七、23 种尼龙全家族速查表
(此处放图片表:《23 种尼龙全家族速查表》,横轴为熔点、吸水率、长期耐温、GF30 后强度、相对价格档、典型场景)
| 树脂 | 熔点℃ | 吸水率% | 长期耐温 | GF30 增强后强度 | 价格档 | 典型场景 |
|---|
| PA6 | 220 | 8-10 | 100-120℃ | 约 160-180MPa | ★ | 结构件、外壳、齿轮 |
| PA66 | 265 | 8-9 | 120-140℃ | 约 180-200MPa | ★★ | 发动机舱、电气件 |
| PA610 | 215 | 1.5-2.5 | 90-110℃ | — | ★★★ | 精密件、耐水解 |
| PA612 | 210 | 1.5-2.5 | 90-110℃ | — | ★★★ | 冷却管路、快接头 |
| PA1010 | 200 | 1-2 | 90-110℃ | — | ★★★ | 耐水解件、耐磨件 |
| PA11 | 185 | 1-2 | 90-110℃ | — | ★★★★ | 油管、气管、医疗 |
| PA12 | 178 | 0.8-1.5 | 90-110℃ | — | ★★★★ | 精密件、液冷管 |
| PA46 | 295 | 12-14 | 150-170℃ | 约 200-220MPa | ★★★★ | 连接器、齿轮、SMT |
| PA6T | 310-325 | 4-6 | 150-170℃ | 约 200-230MPa | ★★★★ | SMT 连接器、结构件 |
| PA9T | 265-305 | 2-3 | 150-170℃ | 约 190-220MPa | ★★★★★ | 精密连接器、高压件 |
| PA10T | 300-320 | 3-5 | 150-170℃ | 约 190-210MPa | ★★★★ | 连接器、LED 支架 |
| PA4T | 320-330 | 4-6 | 160-180℃ | 200MPa+ | ★★★★★ | 高耐热 SMT 件 |
| PA56 | 250-260 | 8-10 | 110-130℃ | 约 170MPa | ★★ | 生物基项目、结构件 |
| PA/ABS | — | 中 | 80-110℃ | — | ★★★ | 汽车内饰、外观件 |
| PA/PPO | — | 极低 | 100-130℃ | — | ★★★★ | 汽车翼子板、电气壳 |
| TPAE | — | 低 | 80-120℃ | — | ★★★ | 弹性体、软硬复合 |
| 透明尼龙 | — | 低 | 90-120℃ | — | ★★★★ | 流量计、透明壳 |
| 尼龙浆(PA66 半成品) | — | 高 | — | — | ★★ | 汽车帘布、传动带 |
| BOPA 膜级 | — | 高 | — | — | ★★ | 食品包装、阻隔膜 |
| 共聚尼龙 | 视配比 | 中 | 视配比 | — | ★★★ | 热熔胶、粘接层 |
| 阻燃尼龙(体系) | 视基材 | 视基材 | 视基材 | — | ★★★★ | 电气、安规件 |
| 导电抗静电尼龙 | 视基材 | 视基材 | 视基材 | — | ★★★★ | 电子托盘、燃油件 |
| 耐磨尼龙(体系) | 视基材 | 视基材 | 视基材 | — | ★★★★ | 齿轮、轴承、滑块 |
(价格档为相对比较,★ 越少越便宜;所有数据为行业典型值,具体以牌号 TDS 为准)
文字版结论(图片下方必配,用于搜索收录):
PA6 便宜韧性好但吸水高、耐热低;PA66 强度刚性高、耐热高一档,是发动机舱中温区的主力;长碳链尼龙吸水率降到 1-2%,专管水路、油路和精密件;高温尼龙里,PA46 最耐磨、流动性最好但吸水最高,PA6T 性价比最好、通吃 SMT 连接器,PA9T 尺寸最稳、主攻精密和高压连接器;需要特殊平衡时,用 PA/ABS、PA/PPO 合金或 PA 弹性体。选料不看哪个"最强",看哪个的短板不在你的痛点上。
八、什么情况下,上面这套思路不成立
任何选型框架都有边界。改性尼龙不是万能的,我有几个情况会直接建议客户换方向:
长期连续 >200℃|尼龙体系有天花板,硬撑必然失效
替代 ▸ PPS、PEEK、LCP
长期载荷 >200MPa 的结构件|玻纤增强尼龙也扛不住
替代 ▸ 金属、连续纤维复合材料
长期接触强酸强碱|尼龙会降解
替代 ▸ PPS、PVDF、PTFE
要求高透明|常规尼龙不透明
替代 ▸ 透明尼龙、PC、PMMA
极高尺寸精度(±0.01mm 长期)|吸湿导致尺寸不可控
替代 ▸ POM、PBT、金属
长期户外 20 年以上 + 高载荷|尼龙会老化
替代 ▸ 需专门耐候体系评估,或换材
一个愿意告诉你"这个工况我不建议用尼龙"的供应商,比一个什么都能做的可信得多。 材料的专业度,很多时候体现在敢说不行。
结语
改性尼龙选型,说到底就是四句话:
一看温度,二看吸水,三看载荷,四看介质。
按这个顺序问下去,大部分方案在第三个问题就能定。真正难的从来不是"哪种尼龙更好"——是先把工况讲清楚。
会读牌号的人,看一眼就能筛掉一半不合适的选项;会算吸水的人,能提前避开装配超差;会问 RTI 的人,不会在一年后收到脆化的件。
十几年,只做一件事:把尼龙改成能用的样子。
PA6、PA66 是基本盘,PA46、PA6T、PA9T 是耐高温的门槛,PA11、PA12 管水路和油路,尼龙合金补单一树脂给不了的平衡。除了改性尼龙,还有改性 PPO、PPS、热塑性弹性体,以及各大化工巨头的尼龙树脂、副牌料、大包料现货。
同一块料,用错地方就是事故。所以先问件,再问料。
"What is modified nylon?" I was asked this question more than a hundred times at the exhibition.
But I realized that what really held everyone back wasn't definition, but another issue—which nylon should I choose for the part I was holding?
Some people took PA6 material to make engine compartments at 150°C, only to redo the deformation after three months; Some tried to save money by replacing PA46 with PA66, but the connector couldn't pass reflow soldering; Others placed orders for "50% fiberglass" and broke as soon as they were made.
This article doesn't cover textbook definitions, only one thing: facing 23 types of nylon and 16 types of modification, how to pick a fail-safe solution within 5 minutes.
1. What exactly is modified nylon 'modified'? First, clarify which shortcomings are addressed .
There are more than a dozen names on the market: reinforced nylon, flame-retardant nylon, toughened nylon, wear-resistant nylon, high-temperature resistant nylon, conductive nylon...... It sounds like a dozen different materials, but in fact, they all serve the same purpose: to fix the shortcomings in nylon.
Nylon has three inherent shortcomings:
Water absorption | Balanced water absorption rate can reach 8-10%
Consequences of not changing ▸ Size increases, strength drops, warping
Insufficient heat resistance | PA6 melting point only 220°C
Consequences of not changing ▸ Softens and deforms at high temperatures
Insufficient rigidity | Low modulus of pure resin
Consequences of not changing ▸ Load-bearing parts can't withstand the load, can't replace metal
So the essence of modification isn't "adding something," but about filling the gap—if you first figure out what this part fears most, the answer will be halfway there.
According to this logic, the 16 types of modification can actually be categorized into five directions:
Strengthening Rigidity | Corresponding to load-bearing parts and alternative metals
Means ▸ Glass fiber / Carbon fiber / Mineral Filling
Toughening | Corresponding to impact resistance and low-temperature non-brittle
Means ▸ Elastomer toughening, core-shell structure
Flame Retardant | Corresponding to safety requirements
Means ▸ Halogen-based, halogen-free phosphorus series, hypophosphonate
environmental resistance | Suitable for high temperature, outdoors, chemical media
means ▸ Copper salt heat-stable, UV-resistant, hydrolysis-resistant system
modified processing | Suitable for thin-walled, precision, appearance
means ▸ High-flow, nucleating agent, demolding system
Remember this: modification is not about making the material "stronger," but about making it "more suitable." Stacking strength to 270MPa but losing toughness is still a wasted solution.
2. How does a single grain become a finished product? Understanding this chain means you'll understand half the process of selecting a product .
This is a vague part for many purchasing and design engineers—they think "modified nylon" is something made by a factory.
Actually, a nylon piece goes through three steps from petroleum to finished product:
The first step: resin factory (polymerization) — polymerizing monomers like caprolactam, adipic acid, and hexamethylenediamine into PA6 and PA66 resins.
This layer is the turf of chemical giants, with only a few worldwide: BASF, Ousend, Covestro, DSM, Landich, Wanhua, Shenma, Huafeng...... They sell base resin, which is what the industry calls "genuine materials."
Second step: Modified Plant (Blending and Granulation) — Resin is purchased, combined with glass fiber, flame retardants, toughening agents, and stabilizers, then blended and pelletized using a twin-screw extruder to produce "modified material" that can be directly fed into injection molding machines. This layer is where "modified nylon" truly occurs.
Third Step: Injection Molding Plant (Molding) — The modified material is dried, melted, and injected into molds; only then is it a piece.
Understanding this chain immediately makes three things:
(1) Why do different modification factories produce different products for the same grade?
Because the modification plant is essentially not a "material factory," but a "formulation factory." Resin is publicly purchased, but the choice of coupling agent, how much to add, how to feed, how to arrange the screws—this is the formula, and also a black box. Both labeled PA66-GF30, the gap impact between Factory A and Factory B is about double. The difference is not in the fiberglass, but in the interface.
(2) Why does the term "secondary grade material" exist?
Polymerized material from resin factories, if one indicator doesn't meet the official standard (for example, viscosity is half a notch lower, moisture content is too high), internally it's classified as a secondary label. Its molecular structure is the same as the genuine brand, just with deviations in the indicators. Using it on non-critical parts is a cost-cutting measure; using it on load-bearing parts and safety parts is a source of accidents. Both of these uses are correct; the wrong is using it without considering the intended use.
(3) Why does the material have problems? All three parties say it's the other's fault.
If the part breaks, the injection molding factory says the material is bad, the modification factory says the resin is bad, and the resin factory says the process is wrong. Understanding this chain helps you know who to ask what to ask.
A real-life experience in the industry: the real difficulty isn't producing the material, but making the same batch exactly the same over three years. The most concentrated question on our side is automotive parts, but the hardest thing to communicate about is never the price, but simply giving a matching grade—"I want such-and-such grade, find me the same grade." But that grade is adjusted based on someone else's parts and working conditions. If your parts and working conditions are different, how can they be the same? The grade is the result, not the reason.
Here's a specific example. The three most commonly mixed terms in the industry actually refer to three things:
genuine grade material is the original factory production, with all indicators falling under the grade standard window, and each batch comes with a COA. The secondary grade material comes from the same production line, but one indicator deviates from that window. Re-feeding is recycled material and re-pelletizing—the molecular chain has already broken once.
The key difference isn't 'how much lower' it is, but 'whether it has changed': the secondary grade is the scale off, the recycled material is the chain breaking. The former can be used selectively, while the latter can only be used where the structural part is improper.
So when looking at a batch of material, the first question to ask isn't 'how much cheaper' it is, but 'which item is off.'
3. The 23 types of nylon are actually divided into four groups
No need to note each one individually. The entire nylon family is divided into four groups by molecular structure:
First Group · General aliphatic (main volume seller)
PA6, PA66. Accounts for over 90% of nylon usage, offering the highest cost-performance ratio and the most mature modification.
Second Group · Long carbon chains (low water absorption, hydrolysis resistance)
PA11, PA12, PA610, PA612, PA1010, PA1012. The longer the carbon chain, the lower the water absorption, the better the hydrolysis resistance, and the better the toughness at low temperatures, but the trade-off is reduced heat resistance and strength.
Group 3 · High-temperature semi-aromatic (high price, high profit)
PA46, PA6T, PA9T, PA10T, PA4T (collectively called PPA). Benzene rings are introduced into the molecular chain, making heat resistance a step up.
Group 4 · Alloys and elastomers (functional supplements)
PA/ABS, PA/PPO, PA/PP alloys, and PA elastomers TPAE. Not for strength, but to achieve performance combinations that single resins can't match.
| Family | Representative | Melting Point | Water Absorption (Relative) | Long-Term Temperature Resistance | One-Sentence Positioning |
|---|
| General Aliphatic | PA6 / PA66 | 220 / 265℃ | High (8-10%) | 100-120℃ | Cheap and easy to use, with large quantity and wide coverage |
| long carbon chain | PA11 / PA12 / PA612 | 178-215℃ | Low (1-2%) | 90-110℃ | Stable in size, hydrolysis-resistant, low-temperature resistant |
| High-temperature semi-aromatic | PA46 / PA6T / PA9T | 295-325℃ | Medium to very low | 150-170℃ | Resistant to reflow soldering, high-temperature structural components |
| Alloy elastomer | PA/ABS, TPAE | — | middle | 80-120℃ | The balance that cannot be achieved with a single resin |
Remember four families in one sentence: PA6/PA66 dominates the world, long carbon chains handle water pipes, high-temperature nylon is used for electrical applications, and alloy elastomers make up for shortcomings.
4. Once you get a brand, first learn to 'read' it
This section is the most practical part of this article.
Most people, when choosing materials, only see a string of codes—PA66-GF30-V0, PA46-HI, PA9T-GF45. This string of codes is actually a compressed instruction manual; those who can read it can know seventy percent of the information without looking up any reference materials.
4.1 The number in front: tells you the molecular structure
The naming rule of nylon comes from the monomer — the numbers represent the number of carbon atoms in each monomer.
A number (PA6, PA11, PA12) → formed by the polymerization of a single monomer or by the ring-opening of a lactam. The number represents the number of carbons.
Two numbers (PA66, PA610, PA1010) → Polymerized from 'diamine and dicarboxylic acid.' The first number is the number of carbons in the diamine, and the second is the number of carbons in the acid. So PA66 = hexamethylenediamine (6) and adipic acid (6).
Number T (PA6T, PA9T, PA10T) → T represents terephthalic acid. This is a sign of the introduction of the benzene ring and is also the source of "high temperature resistance." The number indicates the number of carbon atoms in the diamine.
PA46 → Putrescine (4) Adipic acid (6). There is no 'T' in the name, but it is also a high-temperature nylon because the density of hydrogen bonds between molecular chains is extremely high—this is another approach to heat resistance.
PA56 → Pentamethylene diamine (5) Hexanedioic acid (6), in recent years bio-based nylon, pentamethylene diamine can be produced by biomass fermentation.
Remember this rule, and you can understand 80% of the grades: the smaller the number, the higher the water absorption and the lower the melting point; if there is a T, the heat resistance goes up a level.
4.2 The letters behind: Tell you what has changed
| Suffix | Meaning | Explanation |
|---|
| GF | Fiberglass | GF30 = 30% glass fiber. The most common reinforcement designation |
| CF | Carbon fiber | High rigidity, conductive, priced several times higher |
| GB / MD | Glass beads / Minerals | Low warping, dimensionally stable |
| LGF | Long glass fiber | Impact toughness is much higher than that of short fibers |
| HI | High impact resistance | Toughening system, often paired with 'not brittle at low temperatures' |
| FR / V0 / V2 | Flame Retardant / Flame Retardant Rating | FR generally refers to flame retardant, V0 and V2 are specific UL94 ratings |
| NH / HF | Halogen-free | In accordance with EU and home appliance safety regulations |
| UV | weather-resistant | For outdoor use, contains HALS and absorbers |
| HS | Thermal stability | Copper salts or organic systems, long-term heat resistant |
| BK / NC | Black / Natural color | Color Mark |
| IM / EX | Injection grade / Extrusion grade | Decide on the processing method; mixing them will cause problems. |
Practical reading of a grade:
PA66-GF30-HS-BK → Base material PA66 (general aliphatic, heat resistant 100-120℃); 30% glass fiber (reinforcement, mainly for rigidity); thermally stable system (can withstand long-term heat up to 140-150℃); black. Assessment: This part can operate long-term at 130-150℃, but cannot go through SMT reflow soldering (which requires above 260℃); probably a black structural part, not an appearance part.
⚠️ A reminder: Different manufacturers have different naming systems. DuPont, BASF, DSM, Kingfa, and Wanhua each have their own coding system; some use letter suffixes (B3EG6), while others use numerical sequences (1013). The above is the commonly accepted industry convention, but the specific grade still needs to be confirmed in the TDS.
5. The Four Rulers for Selection
The previous part is all background; this section is the one that can be used directly.
First look at the temperature, second look at water absorption, third look at the load, fourth look at the medium.
Ask four questions in this order, and in 80% of cases you can draw a conclusion directly.
Ruler One: Temperature
First, divide into three tiers:
Long-term below 120°C → PA6 / PA66 can manage it, and with a copper salt heat stabilization system it can be pushed to 140-150°C
Long-term above 150°C, or if it needs to go through SMT reflow soldering → must use high-temperature nylon (PA46 / PA6T / PA9T)
Short-term peak above 200℃ → PA4T, or directly consider PPS
Here we need to break down the word '耐温' — it is actually three different numbers, and confusing these three is the most typical mistake:
| Concept | Meaning | Typical performance |
|---|
| Melting point Tm | The temperature at which the crystal completely melts | PA66 about 265℃, PA6T about 310℃ |
| Short-term peak temperature resistance | Can withstand without failure for a short time | The 200℃ written on the TDS usually refers to this |
| Long-term continuous use temperature (RTI) | Extreme performance that doesn't degrade with long-term use | Often only 150℃ or even lower |
This is the number one reason for engine bay component failures: using a 'short-term peak of 200°C' to design for long-term operation. That beautiful 200°C on the TDS refers to 'how many minutes it can withstand,' not the 3000 hours your part has to run.
If you want high-temperature data, ask about one term: RTI (Relative Thermal Index). This is an indicator for assessing long-term heat resistance in the UL system, and reputable suppliers can provide it.
Ruler Two: Water Absorption
Water absorption not only affects size; it first affects strength, and size change is the result.
Low accuracy requirement → PA6/PA66 is sufficient
Precision parts (tolerance ±0.05mm) or high humidity environments → Long carbon chain (PA612/PA12) or PA9T
Need to withstand high temperatures and be precise → PA9T (the high-temperature nylon with the lowest water absorption)
The cost of water absorption can be roughly estimated: nylon parts absorb 1% water, and the size increases by about 0.2-0.3%. It doesn't seem like much, but a 100mm part absorbing 2% water results in a 0.5mm deviation—enough to cause assembly errors.
Looking one layer deeper, the equilibrium water absorption depends on the usage environment, not on the material itself. The same PA66 part, in the dry Northwest and the humid South China, does not have the same stable water absorption rate:
| Environment | Relative humidity | PA66 Balanced Water Absorption (Typical) |
|---|
| Dry heating environment (northwest, winter in the north) | ~30% | 1.5-2.0% |
| General indoor | ~50% | 2.5-3.0% |
| Humid southern region, workshop without air conditioning | ~75% | 4.5-5.0% |
| Long-term immersion in water | 100% | Above 8% |
An insider tip: When measuring fiber glass reinforced nylon parts, the dimensions 24 hours and 48 hours after injection molding can differ by 0.1-0.2%. Sending parts for inspection immediately after they come off the line is basically meaningless. Mold compensation should be calculated based on the average humidity of the location where the parts will be used—sending the same part to Guangzhou and Lanzhou results in different assembly dimensions.
Ruler Three: Load
Static load structural components → increase fiberglass content (GF30 → GF50)
Repeated impact → Enhance the toughening system, use high glass fiber cautiously
Long-term fatigue (gears, clips) → Focus on fatigue strength, not tensile strength
The fiberglass content is the parameter most easily misused. How much to add and how the performance changes has a general pattern:
| Glass fiber content | Tensile strength | Bending modulus | Gap impact | Heat deflection temperature | Shrinkage rate |
|---|
| 0 (Pure Resin) | Benchmark | Benchmark | The best | Lowest | 1.5-2.0% |
| GF15 | ↑ about 1.3 times | ↑ About 2 times | ↓ About 40% | ↑ About 40℃ | 0.8-1.2% |
| GF30 | ↑ about 1.8 times | ↑ About 3 times | ↓ About 50% | ↑ About 70℃ | 0.4-0.7% |
| GF50 | ↑ about 2.2 times | ↑ About 4 times | ↓ About 60% | ↑ About 90℃ | 0.2-0.4% |
(The above are relative trends and typical values; please refer to the grade TDS for specifics)
Looking at this table, you need to grasp two things:
1. The fiberglass purchased is rigid and heat-resistant, at the expense of toughness and surface finish. Rigidity and toughness move in opposite directions on this chart, without exception.
2. The shrinkage decreases with the glass fiber content, and it differs in the longitudinal and transverse directions. The glass fibers align along the flow direction, resulting in smaller shrinkage in the flow direction (longitudinal) and larger shrinkage in the perpendicular direction (transverse). For GF30 parts, the longitudinal-to-transverse shrinkage ratio can reach 1:2 or even 1:3. This is the fundamental reason for warping in long, narrow glass fiber parts, not because the 'material is bad'.
More fiberglass is not always better: going from GF30 to GF50 increases rigidity, but impact strength at notches may drop by more than 30%, and issues like floating fibers, warping, and mold wear all come along. Before moving to GF50, ask first: is it really a lack of rigidity, or is it a structural design problem? Most of the time, it's the latter.
Ruler Four: Medium
Engine oil, fuel → PA6/PA66 is acceptable, for long-term immersion long carbon chains are recommended
Water and ethylene glycol coolant → Hydrolysis must be considered, long carbon chains (PA612/PA12/PA1010) are more stable
Acids and bases, strong solvents → Nylon itself is not advantageous, it needs to be specifically evaluated.
Chemical resistance can be recorded in four levels:
| Medium | Tolerance | Explanation |
|---|
| Engine oil, lubricating oil, fuel | Better | PA6/PA66 can be used for short-term; for long-term soaking, choose long carbon chains |
| Water, ethylene glycol, coolant | Conditional | Room temperature water is fine, high-temperature water will hydrolyze, must use a hydrolysis-resistant system or long carbon chain. |
| Alcohols, weak bases | general | Short-term contact is okay, long-term will cause swelling. |
| Strong acids, strong bases, phenols, formic acid | poor | Nylon systems are basically not suitable, switch to PPS / PEEK / fluoroplastics |
This section requires a special reminder about 'high-temperature water': many people think water is the mildest medium, but water above 80°C is a hydrolytic environment for PA6/PA66—the molecular chains will break, strength decreases, and it is not visible from the appearance; leaks are only noticed later.
Six or seven of the most common pitfalls
Pitfall 1: Selecting materials based only on tensile strength, using dry-state data
Tensile strength is measured in the dry state. After water absorption, the strength of PA6/PA66 may drop by more than 30%. When selecting load-bearing components, consider wet performance, not dry performance.
Pitfall 2: Using 'short-term peak' as 'long-term continuous'
As mentioned before—the 200°C on the TDS can last for a few minutes, it's not like your part needs to run for 3000 hours. You need to look at the RTI. This trap is most deadly for engine compartment parts.
Pitfall 3: Only looking at UL94 for flame retardancy
90% of people choose flame-retardant nylon, and the first thing they look at is V0. They are looking at the wrong thing. What really limits you in safety standards is the glow wire GWIT (for home appliances, circuit breakers) and CTI (for high-voltage connectors). Even if UL94 is passed but GWIT is not up to standard, certification still cannot be obtained.
Pitfall 4: Treating shrinkage rate as a fixed number
"'This material has a shrinkage rate of 0.5%'—this statement itself is not valid. The shrinkage rate varies with the glass fiber content, wall thickness, mold temperature, holding pressure, and flow direction. Using the same grade to make thin-walled and thick-walled parts, the shrinkage rate can differ by twice. The shrinkage rate is a range, not a single point."
Pitfall 5: Thinking that secondary cards are either unusable or can be used as main cards
Both of these perceptions are incorrect. Sub-standard materials are materials whose indicators deviate from the standard during the production process—the molecular structure is the same as that of the standard material, but some indicators fluctuate. Used for non-critical parts, it is a cost-reduction measure; used for load-bearing or safety parts, it is a source of accidents. The key is not 'whether it can be used,' but 'which part it is used in.'
Pit 6: One brand dominates the world
On the same device, the materials used for the intake manifold, clips, and gears are completely different. Only after mass production did we realize the wrong materials were chosen, and the molds can't be changed back.
Pitfall 7: Select materials first, then design the parts
The correct order is the opposite: first clearly think through the working conditions of the part (temperature, load, medium, precision), and then reverse-engineer the material. If you first get a cheap material and forcibly apply it to the part, the usual outcome is ending up spending more money to modify the mold or change the material and remake the mold—the money saved on materials will be paid back tenfold.
7. Quick Reference Table for the Entire Family of 23 Types of Nylon
(Place image table here: 'Quick Reference Table of 23 Nylon Families', with horizontal axes for melting point, water absorption rate, long-term heat resistance, strength after GF30, relative price range, and typical scenarios)
| Resin | Melting point ℃ | Water Absorption Rate % | Long-term temperature resistance | GF30 Enhanced Strength | Price range | Typical scenario |
|---|
| PA6 | Two Hundred Twenty | 8-10 | 100-120℃ | Approximately 160-180 MPa | ★ | Structural components, casing, gears |
| PA66 | Two Hundred Sixty-Five | 8-9 | 120-140℃ | Approximately 180-200 MPa | ★★ | Engine compartment, electrical components |
| PA610 | Two Hundred Fifteen | 1.5-2.5 | 90-110℃ | — | ★★★ | Precision parts, hydrolysis-resistant |
| PA612 | Two Hundred Ten | 1.5-2.5 | 90-110℃ | — | ★★★ | Cooling pipelines, quick connectors |
| PA1010 | Two Hundred | 1-2 | 90-110℃ | — | ★★★ | Hydrolysis-resistant parts, wear-resistant parts |
| PA11 | One Hundred Eighty-Five | 1-2 | 90-110℃ | — | ★★★★ | oil pipe, gas pipe, medical |
| PA12 | One Hundred Seventy-Eight | 0.8-1.5 | 90-110℃ | — | ★★★★ | Precision components, liquid cooling pipes |
| PA46 | Two Hundred Ninety-Five | 12-14 | 150-170℃ | Approximately 200-220 MPa | ★★★★ | Connectors, gears, SMT |
| PA6T | 310-325 | 4-6 | 150-170℃ | Approximately 200-230 MPa | ★★★★ | SMT connectors and structural parts |
| PA9T | 265-305 | 2-3 | 150-170℃ | Approximately 190-220 MPa | ★★★★★ | Precision connectors, high-voltage components |
| PA10T | 300-320 | 3-5 | 150-170℃ | Approximately 190-210 MPa | ★★★★ | Connectors, LED brackets |
| PA4T | 320-330 | 4-6 | 160-180°C | 200 MPa | ★★★★★ | High heat-resistant SMT components |
| PA56 | 250-260 | 8-10 | 110-130℃ | About 170 MPa | ★★ | Bio-based projects, structural components |
| PA/ABS | — | middle | 80-110℃ | — | ★★★ | Car interior and exterior parts |
| PA/PPO | — | Extremely low | 100-130℃ | — | ★★★★ | Car fender, electrical casing |
| TPAE | — | Low | 80-120℃ | — | ★★★ | Elastomer, soft-hard composite |
| Transparent nylon | — | Low | 90-120℃ | — | ★★★★ | Flow meter, transparent housing |
| Nylon slurry (PA66 semi-finished product) | — | Tall | — | — | ★★ | Car curtains, drive belts |
| BOPA Film Grade | — | Tall | — | — | ★★ | Food packaging, barrier film |
| Copolyamide | Visual ratio | middle | Visual ratio | — | ★★★ | Hot melt adhesive, bonding layer |
| Flame-retardant Nylon (System) | based on the substrate | based on the substrate | based on the substrate | — | ★★★★ | Electrical and safety components |
| Conductive anti-static nylon | based on the substrate | based on the substrate | based on the substrate | — | ★★★★ | Electronic pallets, fuel parts |
| Wear-resistant nylon (system) | based on the substrate | based on the substrate | based on the substrate | — | ★★★★ | Gears, bearings, sliders |
(Price levels are relative, ★ the fewer, the cheaper; all data are typical industry values, subject to the TDS of the specific grade)
Text version of conclusion (must be included below the image for search indexing):
PA6 is cheap and tough but has high water absorption and low heat resistance; PA66 has high strength and rigidity, with one grade higher heat resistance, making it the main material for medium-temperature zones in engine compartments; long-chain nylon reduces water absorption to 1-2%, specially used for water pipes, oil lines, and precision parts; among high-temperature nylons, PA46 is the most wear-resistant with the best flow but highest water absorption, PA6T has the best cost performance and fits all SMT connectors, PA9T has the most stable dimensions and is mainly used for precision and high-voltage connectors; when special balance is needed, use PA/ABS, PA/PPO alloys, or PA elastomers. When selecting materials, don’t look for which is the 'strongest', but which one’s weaknesses don’t affect your pain points.
8. Under what circumstances does the above approach not hold?
Every selection framework has its limits. Modified nylon is not万能, and there are a few situations where I would directly suggest to clients to change direction:
Long-term continuous >200℃ | Nylon systems have a ceiling, forced support will inevitably fail
Alternatives ▸ PPS, PEEK, LCP
Structural components with long-term loads >200MPa|Even glass fiber reinforced nylon can't withstand it
Alternatives ▸ Metal, continuous fiber composites
Long-term exposure to strong acids and strong bases|Nylon will degrade
Alternatives ▸ PPS, PVDF, PTFE
High transparency required | Regular nylon is opaque
Alternative ▸ Transparent nylon, PC, PMMA
Extremely high dimensional accuracy (±0.01mm long-term)|Dimensions uncontrollable due to moisture absorption
Alternatives ▸ POM, PBT, Metal
Long-term outdoor use over 20 years High load|Nylon will age
Replacement ▸ Requires a specialized weather-resistant system evaluation, or material change
A supplier who is willing to tell you 'I don't recommend using nylon for this condition' is much more trustworthy than one who can do everything. The professionalism of materials is often reflected in the courage to say something won't work.
Conclusion
Choosing the type of modified nylon ultimately comes down to four sentences:
First look at the temperature, second look at water absorption, third look at the load, fourth look at the medium.
If you follow this order of questions, most solutions can be determined by the third question. The real difficulty is never 'which type of nylon is better'—it's first making the working conditions clear.
People who can read grade numbers can filter out half of the unsuitable options at a glance; people who can calculate water absorption can avoid poorly assembled parts in advance; people who know how to ask about RTI won't receive brittle parts a year later.
For more than ten years, he did only one thing: to make nylon usable.
PA6 and PA66 are the basic options, PA46, PA6T, and PA9T are the high-temperature threshold materials, PA11 and PA12 are used for water and oil pipelines, and nylon alloys make up for the balance that a single resin cannot achieve. In addition to modified nylon, there are also modified PPO, PPS, thermoplastic elastomers, as well as nylon resins, off-brand materials, and bulk materials in stock from major chemical giants.
Using the same piece of material in the wrong place causes accidents. So first ask about the part, then ask about the material.