汽车燃油箱用什么料?先把一件事说清:本体是高密度聚乙烯(HDPE)的多层共挤吹塑件,改性PP 在结构层里没有位置。这篇讲六层壁每一层各管什么、阻渗三条路各自要付什么代价、验证顺序怎么排,以及 PP 在这条线上真正站得住的外围位置。
- 同领域:→《渔船浮球水产养殖箱用改性PP怎么选》(PP-A51,同属耐化学与中空制品)、→《PPR 冷热水管用什么PP:长期静液压 50 年外推怎么判》(PP-A42,同属耐化学介质)
"油箱用什么料?"
一个做中空吹塑件的客户在电话里这么问。后半句是:我们那条线,能不能上改性PP。
这句话得反着答。汽车塑料燃油箱用什么料?本体是高密度聚乙烯(HDPE)的多层共挤吹塑件,改性PP 在结构层里没有位置。
不是性能不够,是这个件的定义方式决定的:它要长期装汽油、要过现行蒸发排放法规、要被整车厂按一套体系认证。而这套体系是围绕 HDPE 建起来的。
这一篇讲清三件事:那堵壁分几层、每层管什么;一条车用料路线怎么被一层层验出来;以及 PP 在这条线上真正站得住的位置在哪里。
一、燃油箱的工况六维:介质这一维的权重压倒其他五维
结论先说:六维里"介质"这一维权重高得反常——它直接决定了母体树脂为什么是 HDPE 而不是别的。
| 维度 | 实际工况 | 对材料的要求 |
|---|
| 温度 | 车底环境温度与燃油温度双向波动;公开资料给出的 HDPE 燃油系统件适用区间常见 −50℃ 至 +80℃ 一档 | 低温不发脆、高温不软化 |
| 载荷 | 满载燃油重量、液面晃动冲击、箱内压力波动(公开资料的压力平衡口径为 ±3 kPa 级) | 抗蠕变、抗疲劳 |
| 介质 | 汽油、柴油、乙醇汽油、甲醇、道路融雪盐、稀释的硫酸(电池酸液飞溅) | 耐溶胀、耐应力开裂——这是母体选型的第一判据 |
| 寿命 | 整车寿命周期,十余年;伴随数万次热循环与液位循环 | 长期阻渗不衰减、抗热氧老化 |
| 外观 | 位于车底,多数不可见;但成形面必须满足焊接与装配 | 表面质量服务于工艺,不是产品定义项 |
| 合规 | 现行蒸发排放法规 + IATF 16949 体系与追溯要求 | 合规是入场项,一项不过即出局 |
先看介质,因为它会把另外五维的答案一起改掉。汽油的化学结构与 HDPE 相近,按相似相容的原理,有效成分会润湿油箱表面、逐渐扩散进壁内、再渗透到外界挥发掉——这正是单层 HDPE 油箱过不了现行排放法规的原因。
改性PP 的耐汽油、耐柴油、耐机油与耐冷却液性能确实好,公开口径是热变形温度约 100℃,对脂肪族碳氢化合物基本不反应。但它解决的是"耐得住",燃油箱现在要的是"拦得住"。这是两件不同的事。
二、六层壁的分工:阻隔层只占百分之几,却管着大部分渗透
结论先说:这堵壁不是"选一层好材料"选出来的,是六层各管一段的分工结构;而其中最薄的一层,承担了最关键的活。
| 层次 | 材料 | 作用 | 约占壁厚 |
|---|
| 外层 | HDPE | 抗冲击与碰撞强度、抗紫外 | 约 40% |
| 粘接层 1 | 粘接树脂 | 把 HDPE 与阻隔层粘住 | 约 5% |
| 阻隔层 | EVOH 或 PA | 碳氢化合物渗透控制 | 约 3%~5% |
| 粘接层 2 | 粘接树脂 | 把阻隔层与内层 HDPE 粘住 | 约 5% |
| 回用料层 | 回收 HDPE | 成本与材料利用率 | 最多约 20% |
| 内层 | HDPE | 接触燃油、可焊接 | 约 25%~30% |
表注:层份额为公开技术资料的典型值(B 级),不同车型按燃料、气候与法规会调整比例。另一份资料口径为 38/2/3/2/43/12 并给出 24 h 渗漏量 0.1 g。两个口径并存,实际以供需双方约定的结构与验收条件为准。
为什么母体落在 HDPE 上。 公开资料的理由很直白:韧性好、与汽油柴油化学相容、易回收、可焊接装支架。燃油级 HDPE 通常是窄分子量分布的共聚物——窄分布是为了提高型坯挤出时的熔体强度,避免型坯还没进模具就往下坠;同时复配炭黑阻挡紫外降解,加稳定剂护住高剪切下的熔体。
为什么阻隔层是 EVOH 或 PA。 EVOH 烃类阻隔性很好但怕潮,所以必须夹在两层粘接层之间,内侧不接触燃油、外侧不接触环境湿气。PA 耐湿性更好,高湿地区更常见。这两种不是"更好的那一个",是两种环境适配。
2.1 提高阻渗的三条路,各有各的代价
结论先说:三条路不是升级关系,是"要不要多加一道工序"的选择;公开资料把多层共挤列为第一选择。
| 路线 | 做法 | 代价 | 适用情况 |
|---|
| 多层共挤 | 型坯共挤成多层,阻隔层夹在粘接层之间 | 设备与模头复杂;层比控制要求高 | 乘用车主流——性能一致且可测量 |
| 氟化处理 / 磺化处理 | 单层制品内表面化学改性,降低渗透 | 氟化涉及氟气回收,有一系列环保问题 | 单层路线上的补救 |
| 层状掺混 | 把阻隔性树脂以层状分散在基体中 | 对挤出机螺杆混炼性能要求苛刻、很难把握;且机械性能偏低、阻渗性不够稳定 | 少数场景 |
公开资料的评价很直接:多层共挤生产阻渗性燃油箱是第一选择;从近年新投用的成型设备看,多层共挤中空机占绝大多数。
三、★ 选型判据表:阻渗是第一判据,八项各带验证与失效
结论先说:这张表第一项就是一票否决项——渗透不过,后面所有结构试验都不用做。第三列"怎么验",比第二列"多少算过"更值钱。
| 指标 | 门限值(典型) | 验证方法 · 标准号 | 常见失效 | 通行解法 |
|---|
| 阻渗(碳氢化合物渗透量) | 按法规与整车厂验收条件约定;公开资料给出多层结构 24 h 渗漏量 0.1 g 一档(B 级,单一来源) | 渗透室测阻隔层连续性;整箱按现行蒸发排放法规评价 | 阻隔层断续;新件过、老化后超 | 保阻隔层连续与层比;粘接层到位 |
| 阻隔层厚度占比 | 约 3%~5% 壁厚 | 壁厚切片 + 显微观察 | 阻隔层偏薄或被拉伸拉断 | 共挤模头层比分配;型坯程序调整 |
| 层间粘接(剥离) | 按供需双方约定的剥离强度验收 | 剥离测试(方法与门限写进验收条件) | 分层、脱层、局部空腔 | 粘接树脂牌号与各层熔体温度匹配 |
| 型坯熔体强度 | 燃油级 HDPE 为窄分子量分布共聚物 | 型坯垂伸观察 + 壁厚分布测量 | 型坯下坠、壁厚不均、拐角过薄 | 树脂熔体强度选型与型坯程序 |
| 低温冲击 | 低温预处理后复测;公开资料给出 HDPE 燃油件 −50℃ 至 +80℃ 一档 | 低温预处理后按落锤或冲击方法复测 | 冬季脆裂 | 共聚体系 + 炭黑与稳定剂 |
| 抗紫外老化 | 炭黑复配 | 人工加速老化后复测外观与力学 | 外壁粉化开裂 | 炭黑含量与分散 |
| 泄漏(成品) | 逐件或统计抽样 | 泄漏测试;线上加渗透与爆破测试 | 焊缝、机加工位渗漏 | 焊接与机加工工艺控制 |
| 回用料比例与洁净 | 最多约 20% | 密闭过滤流计量 + 批次追溯 | 回用料污染形成薄弱点 | 过滤与计量控制 |
文字版结论:阻渗是结构性的,不是调出来的——它由阻隔层的连续性、厚度与粘接质量共同决定。回用料层最容易被忽视:它是成本项,但混入杂质就会在壁上留下薄弱点,而这个点往往要等到渗透或爆破测试才暴露。
四、常见失效与根因:三个现象,一个来自想当然
结论先说:这一类件的失效,多数不在母体树脂上,而在"层"和"界面"上。
失效一:渗透超标,且集中出现在老化之后。 根因先查阻隔层连续性与粘接层——阻隔层在型坯挤出与吹胀中被局部拉薄甚至拉断,是最典型的失效。换母体树脂解决不了。
失效二:层间分层。 根因是各层熔体温度不匹配,或粘接层偏薄。分层往往是渗透超标的前置现象——先有分层,后有超标。
失效三:低温脆裂。 公开资料提到,破裂可能来自材料密度的变化——密度一动,韧性跟着动。所以低温冲击必须做低温预处理后的复测,不能拿常温数据打折。
失效四(敢否定一个常见做法):以为"壁加厚一点,渗透自然就降下来"。 这个想法在这条线路上是错的。阻隔层只占总壁厚的百分之几,却承担了大部分渗透控制——加厚结构层,主要加的是 HDPE 的重量、成本与回用料占比,阻渗改善非常有限。有效做法只有两条:把阻隔层做连续、把粘接层做到位。
五、验证顺序:层结构确认排在渗透测试之前
结论先说:这个件的验证是"结构 → 界面 → 渗透 → 成品 → 法规"五段升序;顺序反了,最贵的那次失败会落在最后一步。
`
① 型坯与层结构确认 层序、层比、各层熔体温度
↓ 层序错、层比偏 → 退回共挤模头与分配器
② 层间粘接(剥离) 按约定方法测剥离,取平面与拐角位置
↓ 剥离不足 → 退回粘接树脂牌号与各层熔体温度匹配
③ 壁厚与阻隔层连续性 切片显微观察,重点看吹胀拉伸区与拐角
↓ 阻隔层断续或偏薄 → 退回型坯程序与层比
④ 渗透(渗透室) 先验证阻隔层连续性,再看批间一致性
↓ 超门限 → 退回 ③ 与 ②,不要先动母体树脂
⑤ 成品泄漏与爆破 逐件或统计抽样泄漏测试;加做爆破
↓ 不过 → 退回焊接与机加工工位
⑥ 整箱法规项 按现行蒸发排放法规评价
↓ 不过 → 逐级回溯到 ② 与 ③
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最常被跳过的两处:跳过 ①②③ 直接做 ④,把层结构问题当成材料问题,白换几轮料;跳过 ④ 直接做 ⑥,一次失败就是整车验证的成本。
六、反向诚实:这几类需求该找石化厂与吹塑厂,我们接不住
结论先说:这个方向的主体不在改性造粒线上。把这句话先说清楚,比硬接一张单有用。
| 出现的情况 | 为什么落到别的通道 | 该找谁 |
|---|
| 要油箱本体型坯料(燃油级 HDPE、EVOH/PA 阻隔层、粘接树脂) | 母体是 HDPE 多层吹塑体系;阻隔层与粘接层是专用牌号,不属改性的范围 | 石化厂 / 专用料渠道 |
| 要整只油箱吹塑成型 | 大型中空吹塑机组、蓄料式模头与模具是另一套装备体系 | 油箱吹塑厂 |
| 要阻渗认证与法规符合性(蒸发排放法规、IATF 16949 体系文件) | 认证对象是整只油箱,不是粒子 | 油箱厂 / 检测与认证机构 |
| 要氟化或磺化表面处理 | 属单层制品的表面工艺 | 有该工艺的成型厂 |
| 要碳罐(活性炭罐)本体 | 公开资料显示其本体多用 PA66 或 PA66+GF30 注塑成型(现行排放标准下腔体数量与长径比另有设计要求),不是 PP 系 | 工程塑料渠道 / 碳罐厂 |
一句话边界:燃油箱这条线上,改性PP 既不在箱体上,也不在碳罐上。我们不会把这两个位置说成自己的。
七、换料风险清单:中空吹塑与共挤口径,动的是型坯和层比
结论先说:这类件的换料风险全部集中在"各层怎么配"和"型坯怎么成型"上,跟注塑件的收缩率、浇口是两套清单。
| 要动的项 | 需要确认什么 | 不做会怎样 |
|---|
| 各层熔体温度匹配 | 多层在共挤模头汇合时的温度窗口要能对上 | 层间不稳、分层、阻隔层破 |
| 共挤模头与层比分配 | 分配器是否支持目标层结构与层比 | 阻隔层偏薄或断续,渗透直接不达标 |
| 型坯垂伸与熔体强度 | 树脂熔体强度与型坯程序配合 | 型坯下坠、壁厚不均、拐角过薄 |
| 回用料层计量与过滤 | 密闭过滤流、比例上限 | 杂质形成薄弱点,要到渗透或爆破才暴露 |
| 模具与冷却 | 冷却均匀性决定结晶与内应力 | 变形、局部应力集中 |
| 焊接与机加工工位 | 加油口、传感法兰、回油口的焊接参数 | 泄漏点从工位开始 |
| 验证顺序 | 型坯层结构 → 层间剥离 → 壁厚与阻隔层连续性 → 渗透 → 泄漏与爆破 → 法规项 | 风险全部压到整箱验证那一步爆发 |
文字版结论:换料要动的是温度匹配、模头层比、型坯程序、回用料控制四块,其中最该先谈的还是验证顺序。跳过层结构确认直接做渗透,就是用整箱样品的成本,去发现一个切片就能看出来的问题。
八、一页纸汇报对照表:燃油系统选型可以直接贴进 PPT
结论先说:判断标准只有一条——客户拿这张表,能不能在一次会议里把路线定下来。
| 场景 | 推荐路线 | 关键指标 | 验证标准 | 需先确认的条件 |
|---|
| 乘用车燃油箱本体 | HDPE 多层共挤吹塑(含 EVOH 或 PA 阻隔层) | 渗透量、层间剥离、阻隔层连续性 | 渗透室 + 现行蒸发排放法规整箱评价 | 燃料种类、气候、法规目标、层结构约定 |
| 高湿地区用车 | 阻隔层偏向 PA 的体系 | 渗透量 + 阻隔层耐湿性 | 同左,另做湿热老化后复测 | 使用环境湿度、停放工况 |
| 燃油蒸发控制核心件(碳罐) | PA66 或 PA66+GF30 注塑 | 耐燃油蒸气、尺寸精度、腔体设计 | 按件验收条件与排放法规 | 腔体数量、长径比设计 |
| 油箱系统外围防护与支承件 | 改性PP(增韧/耐候方向)或玻纤增强 | 耐化学飞溅、耐热老化、抗冲击 | 按件验收条件 | 先确认是否与液态燃油直接接触 |
| 车载其他液体容器(如洗涤液壶) | 改性PP(耐化学 + 抗冲击方向) | 耐洗涤液、抗跌落 | 按件验收条件与低温跌落 | 介质种类、最低使用温度 |
文字版结论:别把"耐燃油"和"阻燃油"当成一件事——前者耐得住介质,后者拦得住渗透。最有用的是最后一列,它决定报出去的话能不能兑现。
九、这个方向上最容易出问题的,往往不是母体树脂
这个方向上最集中的两类失效是渗透超标与层间分层,归因多数不在母体树脂上。公开技术资料把结构讲得很直接:阻隔层只占总壁厚的百分之几,却承担大部分渗透控制;EVOH 怕潮,必须夹在两层粘接层之间;PA 耐湿性更好,适合高湿地区。渗透超标的常见起点,是阻隔层在型坯挤出与吹胀中被局部拉薄或拉断,而不是树脂不合规。
行业通行的判据与解法:阻渗按法规与整车厂验收条件约定,解法是保阻隔层连续与层比,不是加厚结构层;层间粘接按约定剥离强度验收,解法是粘接树脂牌号与各层熔体温度匹配;型坯靠窄分子量分布共聚 HDPE 提升熔体强度;回用料按密闭过滤流计量,比例有上限。
宁波市科隆新材料有限公司在这个方向上常供的是油箱系统外围件那一段:油箱周边不直接接触液态燃油的防护、支承与隔热类件,以及车载其他液体容器类件所需的改性PP 粒子——增韧、耐候、耐化学飞溅这几个方向,按件的工况给基材档位与改性方向建议,可以陪客户做小样比对与验证顺序对接。燃油箱本体、阻隔层与粘接层树脂、碳罐本体这三段不在我们能接的范围内。
常见问答
问:PP 能不能做燃油箱?
答:技术上做得出来,但主流的车用方案不是这么走的。燃油箱现在要解决的是"拦得住渗透",而现行排放法规下的成熟方案是 HDPE 多层共挤。PP 在这个件上没有位置。
问:为什么油箱不用 PP,反而用 HDPE?
答:公开资料给的理由是韧性、与汽油柴油的化学相容性、易回收、可焊接装支架。另外燃油级 HDPE 能用窄分子量分布共聚物来提高型坯熔体强度——这一点正好对吹塑工艺很重要。
问:阻隔层只占 3% 的壁厚,为什么这么关键?
答:因为它管的是渗透速率,不是结构强度。加厚结构层主要是加重量和成本,阻渗改善有限;要让渗透降下来,只有把阻隔层做连续、把粘接层做到位。
问:我们要做燃油系统的件,能找你们什么?
答:先分清一件事:这个件会不会直接接触液态燃油。 不接触的防护、支承与外围容器类件,是改性PP 的位置;直接接触燃油、或者本身承担阻渗功能的核心件,该找石化厂与专用料渠道。
| 工况 | 关键判据 | 常规供应 |
|---|
| 燃油箱本体与阻隔结构件 | 渗透量、层间剥离、阻隔层连续性 | 不在范围内(HDPE 多层吹塑体系) |
| 碳罐等蒸发控制核心件 | 耐燃油蒸气、尺寸精度 | 不在范围内(PA66 系) |
| 油箱系统外围防护与支承件 | 耐化学飞溅、耐热老化、抗冲击 | 改性PP 增韧/耐候/玻纤增强方向 |
| 车载其他液体容器件 | 耐介质、抗跌落 | 改性PP 耐化学 + 抗冲击方向 |
| 吹塑与挤出中空制品 | 熔体强度、壁厚均匀性 | 改性PP 基材档位与改性方向建议 |
想提醒一句:件出问题,最常见的错法是先换料。渗透、分层、脆裂——每一条的原因都不止一个。先定位,再换料;顺序反了,往往换了几轮还在原地。
十、最后说三句
第一,先说清本体是什么。 燃油箱用什么料——答案是 HDPE 的多层共挤吹塑件,这六层里没有 PP 的位置。把这个前提讲明白,比给一个漂亮的答案有用。
第二,阻渗不是靠厚度。 阻隔层只占百分之几的壁厚,却管着大部分渗透控制。加厚结构层解决不了渗透,只会把重量和成本一起推上去。
第三,"耐燃油"和"阻燃油"不是一件事。 前者是耐得住介质,后者是拦得住渗透。把这两件事分开,选型的第一句话才对得起来。
关于我们
件出问题,最常见的错法是先换料。
低温脆裂、翘曲、开裂、气味大——每一条的原因都不止一个,可能是基材档位错了,可能是成型条件没跟上,也可能确实是料的问题。先定位,再换料;顺序反了,往往换了几轮还在原地。
宁波市科隆新材料有限公司,自产改性聚丙烯(PP)造粒,覆盖均聚 / 无规共聚 / 抗冲共聚三档基材,以及填充、玻纤增强、增韧、阻燃、低气味低 VOC、耐候、免喷涂耐划伤等改性方向;兼营各大石化厂 PP 树脂、副牌料与大包料。
What material is used for car fuel tanks? Let's clarify one thing first: the main body is a multilayer co-extruded blow-molded part made of high-density polyethylene (HDPE), and modified PP has no place in the structural layer. This article explains what each of the six layers of the wall is responsible for, what the three permeability barrier methods each cost, the order of verification, and the peripheral positions where PP can actually hold up on this line.
- Same field: → 'How to Choose Modified PP for Fishing Boat Float Aquaculture Boxes' (PP-A51, also belongs to chemical-resistant and hollow products), → 'Which PP to Use for PPR Hot and Cold Water Pipes: How to Extrapolate Long-Term Static Pressure for 50 Years' (PP-A42, also belongs to chemical-resistant media)
What material is used for the fuel tank?
A customer who makes hollow blow-molded parts asked this on the phone. The second half of the sentence is: Can our production line run modified PP?
This sentence should be answered in reverse. What material is used for car plastic fuel tanks? The main body is a multilayer co-extruded blow-molded part made of high-density polyethylene (HDPE), and modified PP has no place in the structural layer.
It's not that the performance is insufficient; it's determined by the way this part is defined: it needs to hold gasoline for a long time, comply with current evaporative emission regulations, and be certified by the vehicle manufacturer according to a set of standards. And this set of standards is built around HDPE.
This article explains three things clearly: how many layers that wall has and what each layer controls; how a material route for a car is checked layer by layer; and where PP truly stands on this line.
1. The six dimensions of the fuel tank's operating conditions: the weight of the 'medium' dimension outweighs the other five dimensions
Conclusion first: In the six dimensions, the 'medium' dimension has an abnormally high weight—it directly determines why the parent resin is HDPE and not something else.
| Dimension | Actual operating conditions | Requirements for the materials |
|---|
| Temperature | The under-vehicle ambient temperature and fuel temperature fluctuate in both directions; publicly available data indicate that the typical applicable range for HDPE fuel system components is −50℃ to 80℃. | Does not become brittle at low temperatures, does not soften at high temperatures |
| Load | Full load fuel weight, liquid sloshing impact, pressure fluctuations inside the tank (the publicly available pressure balance caliber is at the ±3 kPa level) | Creep-resistant, fatigue-resistant |
| Medium | Gasoline, diesel, ethanol gasoline, methanol, road de-icing salt, diluted sulfuric acid (battery acid splashes) | Swelling resistance and stress cracking resistance — this is the first criterion for selecting the base material |
| Lifespan | The vehicle's life cycle is more than ten years; it undergoes tens of thousands of thermal cycles and liquid level cycles. | Long-term impermeability without attenuation, resistant to thermal and oxidative aging |
| Appearance | Located under the car, mostly not visible; but the formed surface must meet welding and assembly requirements | Surface quality serves the process, not the product definition. |
| Compliance | Current Evaporative Emission Regulations, IATF 16949 System and Traceability Requirements | Compliance is an entry requirement; failing even one item means being out. |
First, look at the medium, because it will also alter the answers in the other five dimensions. The chemical structure of gasoline is similar to HDPE. According to the principle of like dissolves like, the active components will wet the surface of the fuel tank, gradually diffuse into the walls, and then permeate out into the environment to evaporate—this is precisely why single-layer HDPE fuel tanks cannot meet current emission regulations.
Modified PP indeed has good resistance to gasoline, diesel, engine oil, and coolant. Publicly, its heat distortion temperature is about 100°C, and it basically does not react with aliphatic hydrocarbons. But what it addresses is "being able to withstand," whereas fuel tanks now need "being able to contain." These are two different matters.
2. Division of labor of the six-layer wall: The barrier layer accounts for only a few percent, yet it controls most of the seepage.
Conclusion first: this wall was not 'made by choosing the best material from a single layer'; it is a structured combination of six layers, each managing a section of the work; among them, the thinnest layer carries out the most critical tasks.
| Level | Material | Function | approximately the wall thickness |
|---|
| Outer layer | HDPE | Impact and collision strength, UV resistance | About 40% |
| Adhesive layer 1 | Adhesive resin | Bond HDPE with the barrier layer | About 5% |
| Barrier layer | EVOH or PA | Hydrocarbon Penetration Control | About 3%~5% |
| Adhesive layer 2 | Adhesive resin | Bond the barrier layer to the inner HDPE layer | About 5% |
| Recycled Material Layer | Recycle HDPE | Cost and Material Utilization | Up to about 20% |
| inner layer | HDPE | Contact with fuel, weldable | Approximately 25%~30% |
Table Note: The layer share represents typical values from publicly available technical data (Class B), and the proportions may be adjusted for different vehicle models according to fuel, climate, and regulations. Another data source indicates 38/2/3/2/43/12 and provides a 24-hour leakage of 0.1 g. Both sets of data coexist, and the actual values shall be based on the structure and acceptance conditions agreed upon by both supply and demand parties.
Why the mother material is placed on HDPE. The reason given in publicly available information is straightforward: it has good toughness, is chemically compatible with gasoline and diesel, is easy to recycle, and can be welded to support brackets. Fuel-grade HDPE is usually a copolymer with a narrow molecular weight distribution—the narrow distribution is meant to improve melt strength during parison extrusion, preventing the parison from sagging before it enters the mold; at the same time, carbon black is blended to block UV degradation, and stabilizers protect the melt under high shear.
Why the barrier layer is EVOH or PA. EVOH has excellent hydrocarbon barrier properties but is sensitive to moisture, so it must be sandwiched between two adhesive layers, with the inner side not in contact with fuel and the outer side not exposed to environmental moisture. PA has better moisture resistance and is more common in high-humidity areas. These two are not 'one being better'; they are adaptations to different environments.
2.1 Three ways to improve seepage resistance, each with its own cost
Conclusion first: The three paths are not in an upgrade relationship; it's a choice of 'whether to add one more processing step'; public information lists multilayer co-extrusion as the first choice.
| Route | Method | Cost | Applicable Situations |
|---|
| Multilayer co-extrusion | The profile is co-extruded into multiple layers, with barrier layers sandwiched between adhesive layers. | The equipment and die head are complex; high layer ratio control is required | Mainstream passenger cars — consistent and measurable performance |
| Fluorination / Sulfonation | Chemical modification of the inner surface of single-layer products to reduce penetration | Fluorination involves fluorine gas recovery and has a range of environmental issues. | Remediation on single-layer routes |
| Layered blending | Disperse the barrier resin in the matrix in a layered manner | The requirements for the kneading performance of the extruder screw are demanding and difficult to control; moreover, the mechanical properties are relatively low, and the permeability resistance is not stable enough. | Minor scenarios |
The evaluation in public sources is very straightforward: multi-layer co-extruded production of fuel tanks with barrier properties is the first choice; judging from the recently commissioned molding equipment, multi-layer co-extrusion blow molding machines account for the vast majority.
3. ★ Selection Criteria Table: Seepage is the primary criterion, with each of the eight items including verification and failure
Conclusion first: The first item on this table is a veto item—if it fails the penetration test, none of the subsequent structural tests need to be done. The third column 'how to test' is more valuable than the second column 'what counts as passing.'
| Indicator | Threshold Value (Typical) | Verification Method · Standard Number | Common Failures | Common solution |
|---|
| Seepage resistance (hydrocarbon permeability) | According to regulations and the acceptance conditions agreed with the vehicle manufacturer; publicly available information gives a multi-layer structure 24 h leakage of 0.1 g for level 1 (Class B, single source) | Permeation chamber tests the continuity of the barrier layer; the entire tank is evaluated according to current evaporation emission regulations | Barrier layer intermittent; exceeds after new part passes and aging | Ensure the barrier layer is continuous and aligned with the layers; the adhesive layer is in place |
| Proportion of barrier layer thickness | Approximately 3%~5% wall thickness | Wall thickness section Microscopic observation | The barrier layer is too thin or has been stretched and torn. | Co-extrusion die head layer ratio distribution; adjustment of the molding program |
| Interlayer Bonding (Peeling) | Acceptance based on the stripping intensity agreed upon by both supply and demand parties | Peel test (methods and thresholds written into acceptance criteria) | Delamination, separation, localized cavity | Match the adhesive resin grade with the melt temperature of each layer |
| Molded Blank Melt Strength | Fuel-grade HDPE is a narrow molecular weight distribution copolymer | Billet sag observation Wall thickness distribution measurement | Slump of the mold blank, uneven wall thickness, corners too thin | Resin Melt Strength Selection and Preform Program |
| Low temperature shock | Re-tested after low-temperature pre-treatment; public data shows HDPE fuel parts −50°C to 80°C in one grade | After low-temperature pretreatment, re-test using the drop hammer or impact method | Winter cracking | Copolymer System Carbon Black and Stabilizer |
| UV resistance | Carbon black compounding | Retesting appearance and mechanical properties after artificial accelerated aging | Exterior wall powdering and cracking | Carbon black content and dispersion |
| Leakage (finished product) | Item-by-item or statistical sampling | Leak testing; online penetration and blast testing | Welds and machined positions leakage | Welding and Machining Process Control |
| Proportion of recycled materials and cleanliness | Up to about 20% | Sealed filtration flow measurement Batch traceability | Recycled material contamination forms weak points | Filtration and Measurement Control |
Text version conclusion: Seepage resistance is structural, not something that can be adjusted—it is determined by the continuity, thickness, and bonding quality of the barrier layer. The recycled material layer is most easily overlooked: it is a cost item, but if impurities are mixed in, they will leave weak points on the wall, and these points often only become apparent during penetration or burst testing.
4. Common Failures and Root Causes: Three Phenomena, One Comes from Assumptions
Conclusion first: The failure of this type of component mostly does not occur in the bulk resin, but rather in the 'layers' and 'interfaces'.
Failure 1: Excessive permeation, predominantly occurring after aging. First, investigate the continuity of the barrier layer and the adhesive layer—the barrier layer may be locally thinned or even broken during the extrusion and blow molding of the preform, which is the most typical failure. Changing the base resin does not solve the problem.
Failure 2: Interlayer delamination. The root cause is the mismatch in melt temperatures between layers, or a bonding layer that is too thin. Delamination is often a precursor to excessive penetration—delamination occurs first, followed by excessive penetration.
Failure Mechanism Three: Low-Temperature Brittle Fracture. Public information mentions that the rupture may stem from changes in material density — when the density changes, the toughness follows. Therefore, low-temperature impact tests must be re-evaluated after low-temperature pretreatment and cannot be discounted using data from normal temperature.
Invalid Four (Dare to challenge a common practice): Assuming 'if the wall is made a bit thicker, infiltration will naturally decrease.' This idea is wrong for this type of liner. The barrier layer only accounts for a few percent of the total wall thickness, yet it bears most of the infiltration control—thickening the structural layer mainly increases the weight, cost, and recycled content of the HDPE, with very limited improvement in impermeability. There are only two effective methods: make the barrier layer continuous, and ensure the adhesive layer is properly done.
5. Verification sequence: Layer structure confirmation comes before penetration testing
Conclusion first: The verification of this component follows a five-stage ascending order: 'structure → interface → penetration → finished product → regulations'; if the order is reversed, the most expensive failure will occur in the final step.
`
① Confirmation of mold and layer structure Layer sequence, layer ratio, melt temperature of each layer
↓ Sequence error, layer ratio deviation → Return to co-extrusion die and distributor
② Interlayer Bonding (Peeling) Measure peeling according to the agreed method, taking flat surfaces and corner positions
↓ Insufficient peeling → Return to match the adhesive resin grade with the melt temperature of each layer
③ Wall thickness and continuity of the barrier layer: Observe slices under a microscope, focusing on the blown stretch area and corners.
↓ Insulating layer intermittent or too thin → Revert-type blank procedure compared to the layer
④ Penetration (Penetration Room) First verify the continuity of the barrier layer, then check the consistency between batches
↓ Exceed threshold → Return ③ to ②, do not handle the master resin first
⑤ Finished product leakage and blasting Leak testing item by item or by statistical sampling; perform additional blasting
↓ However → Return to welding and machining workstations
⑥ Whole-box regulation items Evaluated according to current evaporative emission regulations
↓ However → Trace back step by step to ② and ③
`
The two most commonly skipped parts: skipping ①②③ and going straight to ④, treating layer structure issues as material issues, wasting several batches of materials; skipping ④ and going straight to ⑥, a single failure equals the cost of validating the entire vehicle.
6. Reverse honesty: These types of demands should be directed to petrochemical plants and blow molding factories; we can't handle them.
Conclusion first: The main body in this direction is not on the modified granulation line. It's more useful to clarify this sentence first than to just directly accept an order.
| The situation that occurred | Why did it fall to another channel | Who should I find |
|---|
| Tank body blank material (fuel-grade HDPE, EVOH/PA barrier layer, adhesive resin) | The matrix is an HDPE multilayer blow molding system; the barrier layer and the adhesive layer are special grades and are not within the scope of modification. | Petrochemical Plant / Dedicated Material Channel |
| To blow mold the entire fuel tank | The large-scale hollow blow molding machine unit, the accumulator-type die head, and the molds are another set of equipment systems | Fuel Tank Blow Molding Factory |
| Leakage prevention certification and regulatory compliance (evaporative emissions regulations, IATF 16949 system documentation) | The object of certification is the entire fuel tank, not the particles. | Fuel Tank Factory / Testing and Certification Agencies |
| Surface treatment with fluorination or sulfonation | Surface treatment of single-layer products | A molding factory with this process |
| The carbon tank (activated carbon tank) body | Public information shows that its main body is mostly molded from PA66 or PA66+GF30 by injection molding (under current emission standards, there are additional design requirements for cavity numbers and aspect ratio), and it is not a PP system. | Engineering Plastics Channel / Carbon Canister Factory |
One-sentence boundary: On the fuel tank line, modified PP is neither on the tank nor on the carbon canister. We will not claim these two positions as our own.
7. Material Change Risk List: Hollow blow molding and co-extrusion diameter involve changing the preform and layer ratio
Conclusion first: The material replacement risks for this type of part are all concentrated on 'how to match each layer' and 'how to form the preform,' which are a completely different set of considerations from the shrinkage rate and gate of injection-molded parts.
| Items to move | What needs to be confirmed? | What will happen if I don't do it? |
|---|
| Matching the melt temperature of each layer | The temperature windows of the multiple layers must align when converging at the co-extrusion die. | Interlayer instability, delamination, and barrier layer rupture |
| Co-extrusion die head and layer ratio distribution | Does the allocator support target layer structure and layer ratio? | The barrier layer is too thin or intermittent, and the penetration does not meet standards directly. |
| Sagging of the Preform and Melt Strength | Resin melt strength and preform program coordination | Slump of the mold blank, uneven wall thickness, corners too thin |
| Measurement and Filtration of Recycled Material Layer | Sealed filtration flow, proportional limit | Impurities form weak points, which only become exposed through seepage or explosion. |
| Molds and Cooling | Cooling uniformity determines crystallization and internal stress | Deformation, local stress concentration |
| Welding and Machining Workstation | Welding parameters of the filling port, sensor flange, and return oil port | The leak point starts from the workstation |
| Verification order | Preform layer structure → Interlayer delamination → Wall thickness and barrier layer continuity → Permeation → Leakage and rupture → Regulatory items | All the risk is concentrated on the step of full-box verification. |
Text version conclusion: When changing materials, the aspects that need adjustment are temperature matching, die layer ratio, preform program, and recycled material control. Among these, the first thing to discuss should be the verification sequence. Skipping layer structure confirmation and directly doing penetration tests is like using the cost of a whole box of samples to find a problem that could be seen from a single slice.
8. One-page report comparison table: Fuel system selection can be directly pasted into the PPT
Conclusion first: There is only one criterion—to determine whether the client can use this sheet to finalize the route in a single meeting.
| Scene | Recommended Route | Key indicators | Verification Standard | Conditions that need to be confirmed first |
|---|
| Passenger car fuel tank body | HDPE multilayer co-extrusion blow molding (including EVOH or PA barrier layer) | Permeation, interlayer delamination, barrier layer continuity | Permeation Chamber Current Evaporation Emission Regulations Whole-Box Evaluation | Fuel types, climate, regulatory objectives, layer structure conventions |
| Vehicles for high humidity areas | System where the barrier layer is biased toward PA | Permeation Capacity Moisture Resistance of the Barrier Layer | Same as the left, retest after performing wet heat aging | Operating environment humidity and parking conditions |
| Fuel Evaporation Control Core Component (Carbon Canister) | PA66 or PA66 + GF30 injection molding | Fuel vapor resistance, dimensional accuracy, cavity design | Acceptance conditions by item and emission regulations | Cavity number and aspect ratio design |
| Peripheral Protection and Support Components of the Fuel Tank System | Modified PP (toughening/weather resistance) or glass fiber reinforced | Chemical splash resistant, heat aging resistant, impact resistant | Acceptance Conditions per Item | First confirm whether it comes into direct contact with liquid fuel |
| Other vehicle liquid containers (such as washer fluid bottles) | Modified PP (Chemical Resistant and Impact Resistant Orientation) | Washable detergent-resistant and drop-resistant | Acceptance conditions by item and low-temperature drop | Type of medium, minimum operating temperature |
Text version conclusion: Don’t treat 'fuel-resistant oil' and 'flame-retardant oil' as the same thing—the former can withstand the medium, while the latter can block penetration. The most useful is the last column, as it determines whether a claim can actually be fulfilled.
9. In this area, the part that is most likely to encounter problems is often not the parent resin.
The two most concentrated types of failure in this area are excessive permeation and interlayer delamination, and most of the causes are not attributed to the base resin. Public technical资料 describes the structure quite directly: the barrier layer accounts for only a few percent of the total wall thickness, yet bears most of the permeation control; EVOH is sensitive to moisture and must be sandwiched between two adhesive layers; PA has better moisture resistance and is suitable for high-humidity areas. A common starting point for excessive permeation is that the barrier layer is locally thinned or broken during parison extrusion and blow molding, rather than the resin being non-compliant.
Industry-standard criteria and solutions: For barrier and seepage, it is determined according to regulations and vehicle manufacturer acceptance conditions; the solution is to maintain the continuity and relative thickness of the barrier layer, rather than thickening the structural layer. Interlayer bonding is accepted according to the agreed peel strength; the solution is to match the adhesive resin grade with the melt temperature of each layer. Preforms rely on narrow molecular weight distribution copolymer HDPE to improve melt strength. Recycled material is metered through a sealed filter, and the proportion has an upper limit.
Ningbo Kolon New Materials Co., Ltd. commonly supplies components related to the fuel tank system periphery in this area: protective, supporting, and heat-insulating parts around the fuel tank that do not directly contact liquid fuel, as well as modified PP particles required for other onboard liquid containers—focused on toughness, weather resistance, and chemical splash resistance. Based on the operating conditions of each part, we provide recommendations for the base material grade and modification direction, and can assist customers with small sample comparisons and sequential verification. The fuel tank body, barrier and adhesive layer resins, and the carbon canister body are three areas outside the scope of what we can handle.
Frequently Asked Questions
Q: Can PP be used to make fuel tanks?
Answer: Technically it can be done, but mainstream automotive solutions do not go this way. What fuel tanks need to address now is 'blocking permeation,' and the mature solution under current emission regulations is multi-layer HDPE co-extrusion. PP has no place in this component.
Q: Why is the fuel tank made of HDPE instead of PP?
Answer: The reason given in public materials is its toughness, chemical compatibility with gasoline and diesel, ease of recycling, and weldability for mounting brackets. In addition, fuel-grade HDPE can use narrow molecular weight distribution copolymers to improve the melt strength of the preforms—this is exactly important for the blow molding process.
Q: The barrier layer only accounts for 3% of the wall thickness, why is it so critical?
Answer: Because it controls the permeation rate, not the structural strength. Thickening the structural layer mainly adds weight and cost, with limited improvement in permeability; to reduce permeation, the only way is to make the barrier layer continuous and ensure the adhesive layer is properly applied.
Question: We are going to make parts for the fuel system, what can we look for from you?
Answer: First, clarify one thing: whether this part will come into direct contact with liquid fuel. For parts that do not come into contact—such as protective, supporting, and outer container types—modified PP is suitable; for core parts that directly contact fuel or serve a sealing function, you should consult petrochemical plants and specialized material channels.
| Operating condition | Key criterion | Regular supply |
|---|
| Fuel tank body and barrier components | Permeation, interlayer delamination, barrier layer continuity | Not within scope (HDPE multi-layer blow molding system) |
| Core components for evaporation control such as carbon canisters | Resistant to fuel vapor, dimensional accuracy | Not within the scope (PA66 series) |
| Peripheral Protection and Support Components of the Fuel Tank System | Chemical splash resistant, heat aging resistant, impact resistant | Modified PP for toughening/weather resistance/glass fiber reinforcement applications |
| Other liquid containers for vehicles | Medium-resistant, drop-resistant | Modified PP chemical resistance impact resistance direction |
| Blow Molding and Extrusion Hollow Products | Melt strength, wall thickness uniformity | Recommendations for Modified PP Substrate Grades and Modification Directions |
Just a reminder: when something goes wrong, the most common mistake is changing the material first. Penetration, delamination, brittleness—each issue has more than one cause. First identify the cause, then change the material; if the order is reversed, you often go through several rounds of changes and still remain in the same place.
Ten, Lastly, say three sentences
First, let's clarify what the material is. What material is used for fuel tanks—the answer is HDPE multilayer co-extrusion blow-molded parts, with no layer made of PP. Explaining this premise clearly is more useful than giving a nice answer.
Second, impermeability does not rely on thickness. The barrier layer accounts for only a few percent of the wall thickness, yet it controls most of the penetration. Increasing the thickness of the structural layer does not solve the penetration problem; it only increases weight and cost.
Third, 'fuel-resistant oil' and 'flame-retardant oil' are not the same thing. The former can withstand the medium, while the latter can prevent penetration. Only by separating these two issues can the first sentence of selection make sense.
About Us
When a part has a problem, the most common mistake is to change the material first.
Brittle cracking at low temperatures, warping, cracking, strong odor — each of these issues has more than one possible cause. It could be that the base material setting is wrong, the molding conditions are not appropriate, or there really is a problem with the material. First locate the cause, then change the material; if the order is reversed, you often end up making several changes and still remain in the same place.
Ningbo Cologne New Materials Co., Ltd. produces modified polypropylene (PP) granules, covering homopolymer / random copolymer / impact copolymer substrates, as well as modified directions such as filled, glass fiber reinforced, toughened, flame retardant, low odor and low VOC, weather-resistant, scratch-resistant without painting; also trading in PP resins, off-brand materials, and bulk materials from major petrochemical plants.