合规边界:只写民用无人机的塑料结构件(消费级与民用工业级),不涉及军用、武器载荷、侦察干扰类用途,不写具体飞行性能参数
无人机非承力结构件用改性PP,难点不是拉伸强度够不够,是减重的账怎么算、装配点的强度怎么保。这篇把六维工况、三条路线的分工边界、七项判据、验证顺序与换料风险讲清,并说明哪四种情况这个件不该用改性PP。
有个做消费级航拍机结构件的工程师来问:料试了,件也做出来了,一摔就裂在螺丝孔那里。
采购补了一句:说好减重,结果比原来的料还重。
这两句话指向同一件事——把玻纤增强 PP 当成"更强的塑料"用,而不是当成一个要按装配点和纤维长度算账的体系。 一个件的强度上限,写在纤维有没有活着到达受力点,不写在玻纤含量里。
下面按工况、路线、判据、验证四层往下拆。
一、工况六维拆解:无人机结构件材料的第一道题是"低温 + 反复",不是"强度"
这个件最容易被问错的一维是寿命:无人机件不按年算,按架次算。
| 维度 | 实际工况 | 对材料的要求 |
|---|
| 温度 | 高空环境低温可到 −40℃ 一档;舱内电机与电池附近持续温升,封闭舱日晒下更高 | 低温韧性是硬线,舱内耐热是次硬线 |
| 载荷 | 起降冲击 + 飞行振动(含桨叶不平衡振动)+ 装配预紧力 | 要抗冲击疲劳,不只抗一次性拉断 |
| 介质 | 雨水、湿气、清洗剂;农用场景还有农药与肥料 | 耐化学与耐水解,农用件单独校核 |
| 寿命 | 按飞行架次与起降次数计,不按年计 | 疲劳循环口径按"次数"折算 |
| 外观 | 外壳可见面要求高,内部支架与隔板可放宽 | 可见面件与结构件分开选料 |
| 合规 | 涉及空域与运行管理的,是《无人驾驶航空器飞行管理暂行条例》一类的运行管理规定 | 它们管运行与适航,不直接规定塑料件指标 |
六维里最容易报错的是寿命:地面件写"10 年",无人机件要写"多少架次、多少次起降",它的失效靠循环次数累积;温度这一维则是高空低温与舱内温升方向相反,一个要韧、一个要稳。
一个内行细节:这类件小、壁薄,流程比(流动长度与壁厚之比)反而大。薄壁 + 长流程意味着玻纤取向更明显,同一件上不同位置的收缩方向和纤维取向可以差得很远——这是后文翘曲与装配点的根子。
二、材料路线对比:玻纤增强PP 能进哪一档,边界要先写清楚
先划边界再谈配方:这类件的主力路线不是 PP。
据公开的无人机部件材料资料(B 级):机身外壳常见 PC、PC/ABS、增强尼龙与碳纤维体系;机臂、起落架、螺旋桨的主路线是碳纤维复合材料、铝合金与增强尼龙(PA+GF、PA+CF)。玻纤增强 PP 因轻量化与低成本,用在成本敏感的非承力覆盖件与内部件这一档。
| 路线 | 拿到的能力 | 要付的代价 | 落在哪些件 |
|---|
| 短玻纤 PP(GF20/GF30) | 刚性提升明显、成型快、成本低;公开资料里弯曲模量 4000-5500 MPa 一档、HDT 145-150℃ 一档(B 级) | 各向异性、熔接线弱、表面浮纤 | 外壳、护翼、电池仓隔板、内部支架 |
| 长玻纤 PP(PP-LGF) | 玻纤保留长度 >3.1 mm(临界长度);拉伸 50-80 MPa、弯曲 80-120 MPa、常温缺口冲击 15-40 kJ/m²、HDT 120-180℃、密度 1.0-1.2 g/cm³、收缩 0.3-0.8%(公开资料,B 级) | 对注塑剪切极敏感,保留长度保不住就白花钱 | 要承一点力、装配点又多的支架与托架 |
| 碳纤复材 / 铝 / PA+GF | 比模量高一个量级以上;碳纤复材密度约 1.45-1.63 g/cm³、模量百 GPa 量级;铝约 2.7-2.8 g/cm³(B 级) | 成本与加工门槛高 | 机臂主承力、起落架主承力、桨叶 |
轻量化的账要按"同体积密度"算,这是被算错最多的一笔。
PP 本体密度约 0.90-0.91 g/cm³;据公开期刊数据(A 级),加 30% 短玻纤后升到约 1.13 g/cm³——玻纤把密度抬高了约四分之一。
对比之下,碳纤复材约 1.45-1.63 g/cm³,铝约 2.7-2.8 g/cm³。玻纤增强 PP 比铝轻约六成,比碳纤复材轻两成上下,但它比没加玻纤的 PP 重。
原方案若是薄壁通用塑料件,换过来后件重不降反升,是正常结果。减重得从壁厚、筋位和结构里拿;玻纤给你的是刚性和耐热。
文字版结论:三条路线不是"谁更好"。件在承力路径上走碳纤复材、铝或 PA+GF;件只做覆盖、隔断、固定且对成本敏感,玻纤增强 PP 才对得上。 把 PP 说成无人机主材,既不专业,也接不住追问。
三、★ 选型判据表:无人机结构件用改性PP,先看纤维有没有活到制品里
注意第三列"验证方法 · 标准号"——无人机结构件用改性PP,最常卡住的不是"看哪个指标",是"拿什么测、测到多少算过"。
| 指标 | 门限值(典型) | 验证方法 · 标准号 | 常见失效 | 通行解法 |
|---|
| 玻纤保留长度(长玻纤) | >3.1 mm(临界长度) | 制品切片显微测量(金相 / 图像分析) | 保留低于临界,纤维被整根拔出、强度虚高 | 超低熔体粘度 PP 树脂(MFR 约 300 g/10min)降剪切 + 高结晶 PP + 低剪切螺杆 |
| 拉伸 / 弯曲强度 | 50-80 MPa / 80-120 MPa | GB/T 1040.2、GB/T 9341(ISO 527-2、ISO 178) | 低于预期、装配点先变形 | 高结晶 PP 保强度 + 玻纤档位 |
| 常温缺口冲击 | 15-40 kJ/m² | GB/T 1043.1(简支梁)/ ISO 179-1 | 起降冲击脆断 | 长纤维跨裂纹耗能 + 增韧体系 |
| 低温缺口冲击 | 按整机厂验收规范定;另一类制品的公开口径(23℃ ≥35-40、−30℃ ≥3.5 kJ/m²)可作量级参照 | GB/T 1043.1 / ISO 179-1,注明试验温度与试样状态 | 高空低温脆裂 | 基材抗冲档位 + 增韧体系 |
| 热变形温度 HDT | 120-180℃ | GB/T 1634.2 / ISO 75-2(注明载荷档) | 舱内温升后刚度塌 | 高结晶 + 玻纤协同 |
| 密度 | 1.0-1.2 g/cm³ | GB/T 1033.1 / ISO 1183 / ASTM D792 | 减重目标落空 | 按同体积密度算账、控玻纤含量 |
| 收缩率与各向异性 | 0.3-0.8%,纵横收缩差要控住 | GB/T 17037.4 / ISO 294-4 | 薄壁长条件翘曲、尺寸超差 | 纤维取向控制 + 对称浇口 + 退火 |
| 装配点强度 | 螺孔拉脱力与嵌件扭矩按件规格与整机厂验收规范定 | 企标装配试验(拉脱 + 扭矩),配自攻螺钉 / 嵌件实配 | 螺孔处应力集中开裂 | 螺座加厚 + 圆角 + 纤维取向调整 |
| 振动疲劳 | 按整机厂振动谱型,循环次数由飞行架次与起降次数折算 | 振动台疲劳试验(按整机厂规范) | 装配点根部疲劳开裂 | 结构圆角 + 降低预紧应力 + 不让熔接线落在受力根部 |
文字版结论:玻纤保留长度与装配点强度是最该先看的两项——它们不在常规"强度表"里,却偏偏是失效主因。前七项是材料侧的数,后两项是件侧的数,必须在选材阶段定口径;等件做出来再补,就只能改结构。
四、常见失效与根因:无人机装配点开裂与"减重落空",根因都埋在选材阶段
失效一:螺孔、卡扣位一摔就裂。 根因是应力集中与纤维取向不利叠加在螺座根部:自攻螺钉的预紧力在螺座周围形成环向拉应力,而薄壁件流程比大,浇口的取向很难对每个螺座都友好。先查螺座设计与装配方式,再查料。
失效二:减重没减成,件反而更重。 根因多半是密度账算错——玻纤抬密度,壁厚又没跟着减,总重自然往上走。
失效三:薄壁长条件翘曲、装配孔位漂移。 根因是纤维取向带来的纵横收缩差,加上后收缩没稳定;件越薄越长越敏感。
失效四(敢否定第一个常见做法):把长玻纤料当成"更强的短玻纤料"直接用,是错的。 长玻纤的强度优势来自纤维保留长度,而它在注塑过程中会被剪断:用普通螺杆、按高剪切的思路打,保留长度掉到 3.1 mm 以下,纤维受力时被整根拔出而不是被拔断,强度根本发挥不出来,等于白花钱。 要让长玻纤值钱,必须配低剪切螺杆、高结晶 PP 基体与超低熔体粘度树脂。
失效五(敢否定第二个常见做法):只按拉伸强度选材、不看螺孔与装配点,是错的。 玻纤增强件最常裂在装配点,因为那里是"应力集中 + 纤维取向不利"的叠加位置。选材阶段就该问清装配方式——自攻螺钉、嵌件、卡扣,是三套不同的账。
规律很清楚:材料侧的指标决定件能不能用,装配侧的设计决定件会不会裂。
五、验证顺序:从密度到整机跌落,轻量化材料的账要一步一步算
`
① 密度与玻纤含量核实 同体积重量先算清,减重账才成立
↓ 不过:退回核玻纤档位与壁厚设计
② 收缩率与翘曲 平板 + 长条件,看纵横收缩差
↓ 不过:退回调浇口、成核与退火
③ 拉伸与弯曲 50-80 / 80-120 MPa(长玻纤体系档)
↓ 不过:退回树脂档位与玻纤档位
④ 缺口冲击(常温 + 低温) 按整机厂验收规范
↓ 不过:退回增韧体系
⑤ 振动疲劳 装配点根部的循环次数口径
↓ 不过:退回结构圆角与预紧设计
⑥ 整机起降与跌落实测 真实装配状态下的件级验证
`
最常见的错误是跳过 ① 和 ② 直接进 ③,用试模样件判断材料性能——试模条件往往是临时的,而且翘曲与收缩差这类问题,本就只能在长条件上显形。
文字版结论:顺序是 密度 → 收缩翘曲 → 拉伸弯曲 → 冲击 → 振动疲劳 → 整机跌落。前两步是"结构账",放在力学测试之前,能避免一种最常见的浪费:力学指标全部合格,件却装不上去、或者比原来还重。
六、反向诚实:这四种情况,无人机结构件不该用改性PP
| 出现的情况 | 为什么改性PP不合适 | 该往哪走 |
|---|
| 件在承力路径上(机臂主承力、起落架主承力) | PP 的模量与蠕变量级接不住长期反复载荷;公开资料里这些件的主力也是碳纤复材与 PA+GF、PA+CF | 碳纤维复合材料、铝合金,或 PA+GF / PA+CF |
| 要求极高刚重比(比模量) | 比模量比碳纤维复合材料低一个量级以上 | 碳纤维复合材料 |
| 要求长期户外高可靠飞行、尺寸零漂移 | PP 的蠕变与后收缩是结构性的,靠改性只能缓解 | 金属件或高刚性复材件 |
| 机型需通过特定运行审定或适航批准 | 中型、大型民用无人驾驶航空器要走适航管理路径;改性 PP 目前没有对应的通用塑料件验收口径 | 走审定认可的材料体系,件级指标以整机厂验收规范为准 |
规律是一致的:件一旦进入承力路径或审定口径,就不该用改性PP 硬撑。 遇到这类需求,我们的做法是先把这条讲清楚,再谈有没有折中空间——硬接下来的单子,最后都要用返工和索赔还回去。
七、换料要动什么:模具、浇口、螺杆,一张先看再动的清单
| 要动的项 | 需要确认什么 | 不做会怎样 |
|---|
| 模具收缩率 | 新料收缩率与原方案的差,薄壁长条件尤其敏感 | 尺寸超差、装配孔位对不上 |
| 浇口与纤维取向 | 是否要改浇口位置、数量与对称性 | 熔接线落到受力根部、螺座处取向不利 |
| 料温与模温 | 玻纤体系窗口与普通 PP 不同;模温影响结晶与后收缩 | 浮纤、尺寸不稳、翘曲 |
| 干燥 | 按具体牌号定,多数需控水 | 银丝、气泡、界面劣化 |
| 保压与脱模 | 收缩差异带来变形与顶白 | 变形、顶出拉伤 |
| 色差 | 可见面件先确认色板再上机 | 批次色差争议 |
| 长玻纤料的螺杆与止逆环配置 | 长玻纤不是"换个粒子"就能打:螺杆构型、止逆环与喷嘴要按低剪切配,否则纤维在机筒里就被剪短 | 保留长度掉到临界值以下,强度发挥不出来 |
| 验证顺序 | 密度 → 收缩翘曲 → 拉伸弯曲 → 冲击 → 振动疲劳 → 整机 | 风险全部压到最后一步集中爆发 |
文字版结论:换料要动模具、工艺、色差三块,其中最该先谈的是验证顺序与长玻纤的螺杆配置:前者决定成本什么时候花,后者决定长玻纤这笔钱有没有花在强度上。
八、一页纸汇报对照表:无人机结构件材料方向,一次会就能定下来
| 场景 | 推荐路线 | 关键指标 | 验证标准 | 需先确认的条件 |
|---|
| 外壳、护翼(非承力、有可见面) | 短玻纤 GF20/GF30 + 增韧 | 弯曲模量 4000-5500 MPa 档;密度按件算 | GB/T 9341、GB/T 1033.1 | 可见面是否接受浮纤、色板口径 |
| 电池仓隔板、内部支架 | 短玻纤 PP;装配点要求高时上长玻纤 PP | 缺口冲击;装配点拉脱与嵌件扭矩 | GB/T 1043.1 + 企标装配试验 | 装配方式(自攻 / 嵌件 / 卡扣) |
| 相机与云台支架(振动 + 装配点) | 长玻纤 PP-LGF(保留长度 >3.1 mm) | 保留长度;振动疲劳循环次数 | 切片显微测量 + 振动台疲劳 | 振动谱型与循环次数口径 |
| 农用场景件(农药、肥料) | 短玻纤 PP + 耐化学稳定体系 | 介质浸泡后强度保持 | 介质浸泡试验(按整机厂规范) | 介质种类、浓度与接触时长 |
| 机臂主承力、起落架主承力 | 不替,走碳纤复材 / 铝 / PA+GF | — | — | 是否在承力路径与安全件清单上 |
文字版结论:这张表是给技术员直接往上报用的。判断标准只有一条——客户拿这张表,能不能在一次会议里把材料方向定下来。
九、这个件上最容易出问题的,往往不是料
公开资料里,这类件最常见的两类早期失效是装配点开裂与减重没减成。前者是应力集中与纤维取向不利在螺座根部的叠加;后者的根子更朴素——玻纤在抬高密度:PP 本体约 0.90-0.91 g/cm³,加 30% 短玻纤约 1.13 g/cm³(A 级期刊数据),壁厚不跟着减,总重自然下不来。
材料侧判据也清楚:长玻纤体系要求玻纤保留长度 >3.1 mm 临界长度,拉伸 50-80 MPa、弯曲 80-120 MPa、常温缺口冲击 15-40 kJ/m²(公开资料,B 级);低温冲击、装配点拉脱与嵌件扭矩、振动疲劳三项没有通用塑料件国标口径,该领域以整机厂验收规范为准。
行业通行解法是:超低熔体粘度 PP 树脂(MFR 约 300 g/10min)降剪切 + 高结晶 PP 保强度 + 低剪切螺杆,把保留长度守在临界值以上;密度与收缩的账在选材阶段算清。
关键不在"玻纤加了多少",在纤维有没有以足够长度活到制品里,以及装配点有没有被当成独立指标来验。
宁波市科隆新材料有限公司在这个件上常供的是自产改性聚丙烯(PP)粒子里的玻纤增强方向料:按件的介质环境、装配方式与减重目标给到对应的基材档位与玻纤档位,主要解决"装配点开裂"和"减重落空"这两件事;配方按件工况调,可配合小样比对与试模。
常见问答
问:无人机上到底哪些件能用玻纤增强 PP?
答:按公开的部件材料资料,机臂、起落架、螺旋桨这些主承力或旋转件的常见路线是碳纤复材、铝与 PA+GF(含 PA+CF);玻纤增强 PP 的位置在成本敏感的非承力覆盖件与内部件一档。把它用到承力路径上,是选型错,不是料错。
问:减重目标达不到,是不是玻纤加少了?
答:方向反了。玻纤是抬高密度的(PP 本体约 0.90-0.91,加 30% 短玻纤后约 1.13 g/cm³ 量级)。减重要从壁厚、筋位和结构里拿。
问:长玻纤料直接换到现有螺杆上能不能打?装配点总裂是不是料太脆?
答:前一句不建议直接打——普通螺杆会把纤维剪短,要低剪切螺杆,止逆环与喷嘴配置也要跟着配,保留长度才守得住 3.1 mm 这条线,这是换料里最容易被忽略的硬件前提。 后一句先看装配方式:自攻螺钉、嵌件、卡扣是三套不同的账,玻纤增强件的断点常落在"应力集中 + 纤维取向不利"的叠加位置,光加增韧不一定解决。
| 工况 | 关键判据 | 常规供应方向 |
|---|
| 外壳 / 护翼 / 电池仓隔板 | 弯曲模量 4000-5500 MPa 档;密度按件算 | 短玻纤 PP-GF20/GF30 + 增韧方向 |
| 装配点多的内部支架与托架 | 玻纤保留长度 >3.1 mm;装配点拉脱与扭矩 | 长玻纤 PP-LGF 方向料 |
| 农用场景件(农药、肥料) | 介质浸泡后强度保持 | 短玻纤 PP + 耐化学稳定体系方向 |
想提醒一句:件出问题,最常见的错法是先换料。装配点开裂、翘曲、减重落空——每一条的原因都不止一个。先定位,再换料。
十、最后说三句
第一,这个件的第一句话不是"拉伸强度多少",是"减重从哪儿减"。 玻纤把密度抬高了约四分之一,减重的账得从壁厚和结构里拿。
第二,长玻纤的强度不是加出来的,是留出来的。 保留长度过不了 3.1 mm 临界值,纤维被整根拔出,含量再加也没用——而这件事早在螺杆里就定了。
第三,装配点是一项独立指标。 自攻螺钉、嵌件、卡扣是三套不同的账;选材阶段不问,样件阶段一定要还回来。
关于我们
有些生意我们不做。
不问用途就报价的,不做。
把副牌料说成正牌卖的,不做。
承诺"什么工况都能用"的,不做。
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。
Compliance boundaries: Only write about plastic structural components of civilian drones (consumer-level and civil industrial-level), not involving military, weapon payload, reconnaissance, or jamming purposes, and do not include specific flight performance parameters.
Modified PP for non-load-bearing drone components: the difficulty isn’t whether the tensile strength is sufficient, but how to calculate the weight reduction and how to ensure the strength at assembly points. This article explains the six-dimensional working conditions, the division of labor boundaries of the three routes, the seven criteria, the validation sequence and the risk of material substitution, and points out the four situations in which this component should not use modified PP.
An engineer who makes structural parts for consumer drones asked: We tested the material and made the part, but it cracked at the screw hole as soon as it was dropped.
The procurement added a sentence: It was supposed to be lighter, but it ended up heavier than the original material.
These two sentences point to the same thing — treating glass fiber reinforced PP as a 'stronger plastic,' rather than as a system that needs to account for assembly points and fiber length. The strength limit of a part depends on whether the fibers actually reach the load-bearing points, not on the glass fiber content.
Below, break it down layer by layer according to operating conditions, routes, criteria, and verification.
1. Six-dimensional analysis of working conditions: The first challenge for the materials of drone structural components is 'low temperature and repeated exposure,' not 'strength'.
The aspect of this part that is most easily asked incorrectly is lifespan: drone parts are not counted by years, but by flight cycles.
| Dimension | Actual operating conditions | Requirements for the materials |
|---|
| Temperature | In high-altitude environments, temperatures can drop to −40°C in the first setting; near the motor and battery inside the cabin, the temperature continues to rise, and it is even higher in a closed cabin under sunlight. | Low-temperature toughness is a hard line, and cabin heat resistance is a secondary hard line. |
| Load | Takeoff and landing impact Flight vibration (including propeller imbalance vibration) Assembly preload | To resist impact fatigue, it’s not just about resisting a one-time break |
| Medium | Rainwater, moisture, cleaning agents; in agricultural scenarios, there are also pesticides and fertilizers | Chemical-resistant and hydrolysis-resistant, agricultural parts checked separately |
| Lifespan | Counted by flight sorties and takeoff/landing occurrences, not by year | Fatigue cycle caliber is converted according to 'number of times' |
| Appearance | The exterior visible surfaces have high requirements, while the internal supports and partitions can be more relaxed. | It can be seen that the surface parts and structural parts are selected separately |
| Compliance | Regarding airspace and operational management, it is operational management regulations such as the 'Interim Regulations on the Flight Management of Unmanned Aircraft.' | They manage operation and airworthiness, but do not directly specify plastic part indicators. |
The dimension most prone to errors in the six dimensions is lifespan: for ground components, you write '10 years,' while for drone components, you need to write 'how many sorties, how many takeoffs and landings,' since its failure accumulates with the number of cycles; for the temperature dimension, high-altitude low temperatures and the temperature rise inside the cabin are in opposite directions, one requires toughness, the other requires stability.
An insider detail: These kinds of parts are small with thin walls, and the flow length to wall thickness ratio is actually large. Thin walls and long flow lengths mean that the fiberglass orientation is more pronounced, and the shrinkage direction and fiber orientation at different positions on the same part can vary greatly — this is the root cause of warping and assembly issues discussed later.
2. Comparison of material routes: Which grade can glass fiber reinforced PP reach, the boundaries need to be clarified first
Set the boundaries first, then discuss the formula: the main route for this type of part is not PP.
According to publicly available drone component material data (Class B): The common materials for the fuselage shell are PC, PC/ABS, reinforced nylon, and carbon fiber systems; the main materials for arms, landing gear, and propellers are carbon fiber composites, aluminum alloys, and reinforced nylon (PA GF, PA CF). Glass fiber reinforced PP, due to its lightweight and low cost, is used for cost-sensitive non-load-bearing covers and internal parts.
| Route | Acquired ability | The price to pay | Which items did it fall on? |
|---|
| Short glass fiber PP (GF20/GF30) | Significant improvement in rigidity, fast molding, low cost; according to public information, the bending modulus is in the range of 4000-5500 MPa, and the HDT is in the range of 145-150℃ (Grade B) | Anisotropy, weld line weakness, surface floating fibers | Shell, protective wings, battery compartment divider, internal bracket |
| Long Glass Fiber PP (PP-LGF) | Glass fiber retention length >3.1 mm (critical length); tensile strength 50-80 MPa, flexural strength 80-120 MPa, room temperature notched impact 15-40 kJ/m², HDT 120-180℃, density 1.0-1.2 g/cm³, shrinkage 0.3-0.8% (public data, grade B) | Extremely sensitive to injection molding shear; if the retained length can't be maintained, it's just a waste of money. | Brackets and supports that need to bear some force and have many assembly points |
| Carbon fiber composite / Aluminum / PA GF | An order of magnitude higher in modulus; carbon fiber composites have a density of about 1.45-1.63 g/cm³ and a modulus on the order of hundreds of GPa; aluminum is about 2.7-2.8 g/cm³ (Grade B). | High cost and processing threshold | Main load-bearing arm, main load-bearing landing gear, blades |
Lightweight accounts should be calculated according to 'same volume density,' which is the most frequently miscalculated item.
The density of PP itself is about 0.90-0.91 g/cm³; according to publicly available journal data (Grade A), after adding 30% short glass fiber, it rises to about 1.13 g/cm³—glass fiber increases the density by about one-fourth.
In comparison, carbon fiber composites are about 1.45-1.63 g/cm³, while aluminum is about 2.7-2.8 g/cm³. Glass fiber reinforced PP is about 60% lighter than aluminum and roughly 20% lighter than carbon fiber composites, but it is heavier than PP without glass fiber.
If the original plan was for thin-walled general-purpose plastic parts, after switching, the weight of the parts not only doesn't decrease but actually increases, which is a normal result. Weight reduction has to come from wall thickness, rib positions, and structure; the glass fiber provides you with rigidity and heat resistance.
Text version conclusion: The three routes are not about 'which is better.' For parts on load-bearing paths, use carbon fiber composites, aluminum, or PA GF; for parts that only serve as covers, partitions, or fasteners and are cost-sensitive, only glass fiber reinforced PP is suitable. Calling PP the main material for drones is neither professional nor able to withstand further questioning.
3. ★ Selection Criteria Table: For UAV structural parts made of modified PP, first check whether the fibers have been properly incorporated into the product
Pay attention to the third column 'Verification Method · Standard Number' — for modified PP used in drone structural components, the most common sticking point is not 'which indicator to look at,' but 'what to use for measurement and what value counts as passing.'
| Indicator | Threshold Value (Typical) | Verification Method · Standard Number | Common Failures | Common solution |
|---|
| Glass fiber retained length (long glass fiber) | >3.1 mm (critical length) | Product Slice Microscopic Measurement (Metallography / Image Analysis) | Retention below the critical level causes fibers to be pulled out whole, resulting in falsely high strength | Ultra-low melt viscosity PP resin (MFR about 300 g/10min) shear-thinned high crystallinity PP low-shear screw |
| Tensile / Flexural Strength | 50-80 MPa / 80-120 MPa | GB/T 1040.2, GB/T 9341 (ISO 527-2, ISO 178) | Below expectations, assembly point deforms first | High-crystallinity PP maintains strength Glass fiber grade |
| Room temperature notch impact | 15-40 kJ/m² | GB/T 1043.1 (Simply Supported Beam) / ISO 179-1 | Takeoff and landing impact brittle fracture | Long-fiber crack bridging energy absorption Toughening system |
| Low temperature gap shock | According to the acceptance standards of the complete machine manufacturer; the publicly stated specifications of another type of product (23℃ ≥35-40, −30℃ ≥3.5 kJ/m²) can be used as a reference for magnitude. | GB/T 1043.1 / ISO 179-1, specifying the test temperature and specimen condition | Brittle cracking at high altitude and low temperature | Substrate impact-resistant grade Toughening system |
| Heat Deflection Temperature (HDT) | 120-180℃ | GB/T 1634.2 / ISO 75-2 (specify load level) | Stiffness collapses after cabin temperature rises | High crystallinity Glass fiber synergy |
| Density | 1.0-1.2 g/cm³ | GB/T 1033.1 / ISO 1183 / ASTM D792 | Weight loss goal fell through | Calculate based on the same volume density and control the glass fiber content |
| Shrinkage Rate and Anisotropy | 0.3-0.8%, the difference between longitudinal and transverse shrinkage must be controlled | GB/T 17037.4 / ISO 294-4 | Thin-walled long parts warping, dimensional out-of-tolerance | Fiber orientation control Symmetrical gating Annealing |
| Assembly Point Strength | The screw pull-out force and insert torque shall be specified according to the component specifications and the acceptance standards of the complete machine manufacturer. | Enterprise standard assembly test (pull-out torque), with self-tapping screws / inserts actual fitting | Stress concentration cracking at the screw hole | Thickened screw seat, rounded corners, fiber orientation adjustment |
| Vibration fatigue | According to the vibration spectrum type of the complete aircraft, the number of cycles is converted from the number of flight sorties and takeoff and landing counts | Vibration table fatigue test (according to the complete machine manufacturer's specifications) | Fatigue cracking at the root of the assembly point | Structural fillet Reduce preload stress Prevent weld lines from appearing at the stress root |
Text version conclusion: The length of glass fiber retention and the strength at the assembly points are the two things that should be looked at first—they are not in the regular 'strength table,' yet they happen to be the main causes of failure. The first seven items are material-side numbers, while the last two are part-side numbers, and the specifications must be determined during the material selection stage; if you wait until the parts are made to add them, you can only change the structure.
4. Common Failures and Root Causes: Cracks at drone assembly points and 'weight reduction falling short' both have their root causes buried in the material selection stage
Failure 1: Screw holes and clip positions crack easily upon impact. The root cause is the combination of stress concentration and unfavorable fiber orientation at the base of the screw seat: the pretightening force of self-tapping screws generates circumferential tensile stress around the screw seat, and due to the larger processing ratio of thin-walled parts, the gate orientation is difficult to be favorable for every screw seat. First, check the screw seat design and assembly method, then check the material.
Failure 2: Weight reduction didn't happen; instead, the pieces are heavier. The main reason is usually a miscalculation of density — fiberglass increases density, but the wall thickness wasn't reduced accordingly, so the total weight naturally goes up.
Failure 3: Warping of thin-walled long parts and drift of assembly hole positions. The root cause is the longitudinal and transverse shrinkage difference caused by fiber orientation, combined with the fact that post-shrinkage has not stabilized; the thinner and longer the part, the more sensitive it is.
Invalid Method Four (Daring to Contradict the First Common Practice): Using long glass fibers directly as 'stronger short glass fibers' is wrong. The strength advantage of long glass fibers comes from retaining their length, but they get cut during injection molding: with a standard screw and a high-shear approach, the retained length drops below 3.1 mm, and when under stress, the fibers are pulled out whole rather than breaking, so the strength cannot be realized at all, which is basically wasting money. To make long glass fibers valuable, you must use a low-shear screw, a highly crystalline PP matrix, and ultra-low melt viscosity resin.
Invalid Five (dare to refute the second common practice): Choosing materials solely based on tensile strength without considering screw holes and assembly points is wrong. Glass fiber reinforced parts most commonly crack at assembly points because those are locations of "stress concentration and unfavorable fiber orientation." During the material selection stage, one should clarify the assembly method—self-tapping screws, inserts, or clips—since they are three completely different scenarios.
The pattern is clear: the indicators on the material side determine whether the part can be used, and the design on the assembly side determines whether the part will crack.
5. Verification sequence: from density to full machine drop, the account of lightweight materials must be calculated step by step
`
① Verify the density and glass fiber content. Calculate the weight of the same volume first; the weight reduction calculation only makes sense afterward.
↓ However: revert to the grade of nuclear fiberglass and wall thickness design
② Shrinkage rate and warpage Flat plate Long conditions, observe the difference between longitudinal and transverse shrinkage
↓ However: Backflow to the gate, nucleation, and annealing
③ Tension and bending 50-80 / 80-120 MPa (long glass fiber system range)
↓ However: switch back to the resin gear and the fiberglass gear
④ Notch impact (room temperature, low temperature) according to the whole machine manufacturer's acceptance specifications
↓ However: Revert to toughening system
⑤ Vibration fatigue Number of cycles at the root of the assembly point
↓ However: retracting structural fillets and pre-tightening design
⑥ Whole machine take-off, landing, and drop actual measurement – component-level verification under real assembly conditions
`
The most common mistake is skipping steps ① and ② and going straight to ③, judging material performance with trial mold samples—the trial mold conditions are often temporary, and problems like warping and shrinkage differences can only appear under long-term conditions.
Text version conclusion: The sequence is density → shrinkage warpage → tensile bending → impact → vibration fatigue → complete machine drop. The first two steps are 'structural accounting' and are done before mechanical testing to avoid the most common waste: all mechanical indicators meet the requirements, but parts cannot be assembled, or are even heavier than the original.
6. Reverse Honesty: In these four situations, drone structural components should not use modified PP
| The situation that occurred | Why is modified PP not suitable | Which way should I go? |
|---|
| Parts on the load-bearing path (main load-bearing of the boom, main load-bearing of the landing gear) | The modulus of PP and the creep strain level cannot withstand long-term repeated loads; according to public information, the main materials for these parts are also carbon fiber composites and PA GF, PA CF. | Carbon fiber composite materials, aluminum alloy, or PA GF / PA CF |
| Requires a very high specific gravity ratio (specific modulus) | The modulus of elasticity is more than an order of magnitude lower than that of carbon fiber composites. | Carbon fiber composite materials |
| Requires long-term outdoor high-reliability flight and zero dimension drift | The creep and post-shrinkage of PP are structural and can only be alleviated through modification. | Metal parts or high-rigidity composite parts |
| The aircraft model must pass specific operational certification or airworthiness approval | Medium and large civil unmanned aerial vehicles need to follow the airworthiness management path; modified PP currently does not have a corresponding acceptance standard for general plastic parts. | Follow the approved material system, and the component-level indicators shall be based on the whole vehicle manufacturer's acceptance specifications. |
The pattern is consistent: once a part enters the load-bearing path or the approved specification, it should not be forcibly supported with modified PP. When encountering this kind of demand, our approach is to first clarify this point clearly, and then discuss whether there is any room for compromise—if we forcibly take the order, in the end, it will have to be returned through rework and claims.
7. What needs to be adjusted when changing materials: molds, gates, screws—a checklist to review before making any changes
| Items to move | What needs to be confirmed? | What will happen if I don't do it? |
|---|
| Mold shrinkage rate | The difference in shrinkage rate of the new material compared to the original plan is particularly sensitive under long, thin-wall conditions | Dimension out of tolerance, assembly holes do not align |
| Gate and Fiber Orientation | Whether to change the gating position, quantity, and symmetry | The welding line is unfavorably oriented at the load-bearing root and the nut seat. |
| Material Temperature and Mold Temperature | The glass fiber system window is different from ordinary PP; mold temperature affects crystallization and post-shrinkage | Floating fibers, unstable dimensions, warping |
| Dry | Determined by the specific grade, most require water control | Silver threads, bubbles, interface degradation |
| Pressure Holding and Demolding | Shrinkage differences cause deformation and whitening on the surface | Deformation, extrusion strain |
| Color difference | It is clear that the physical samples should confirm the color swatch before proceeding with the machine. | Batch color difference dispute |
| Configuration of screw and check ring for long glass fiber material | Long glass fibers can't be 'made to work' just by changing the particles: the screw configuration, check ring, and nozzle must be matched for low shear, otherwise the fibers will be cut short in the barrel. | If the retained length drops below the critical value, the strength cannot be exerted. |
| Verification order | Density → Shrinkage warpage → Tensile bending → Impact → Vibration fatigue → Complete machine | All the risks are concentrated to explode at the final step |
Text version conclusion: Changing materials involves three aspects: molds, process, and color difference. The part that should be discussed first is the verification sequence and the screw configuration for long glass fibers: the former determines when the cost will be spent, and the latter determines whether the money spent on long glass fibers is actually used for strength.
8. One-page report comparison table: Materials for UAV structural components can be decided in one meeting
| Scene | Recommended Route | Key indicators | Verification standard | Conditions that need to be confirmed first |
|---|
| Shell, fairing (non-load-bearing, with visible surface) | Short Glass Fiber GF20/GF30 Toughened | Bending modulus 4000-5500 MPa grade; density calculated per piece | GB/T 9341, GB/T 1033.1 | Whether the surface can accept loose fibers and color sample tolerances |
| Battery compartment partition, internal bracket | Short glass fiber PP; long glass fiber PP when assembly point requires high precision | Notch impact; assembly point pull-off and insert torque | GB/T 1043.1 Enterprise Standard Assembly Test | Assembly Method (Self-tapping / Insert / Snap-fit) |
| Camera and gimbal bracket (vibration assembly point) | Long glass fiber PP-LGF (retained length >3.1 mm) | Retained length; number of vibration fatigue cycles | Section Microscopic Measurement Vibration Table Fatigue | Vibration Spectrum Type and Number of Cycles Caliber |
| Agricultural scene items (pesticides, fertilizers) | Short glass fiber PP chemical-resistant stable system | Strength retention after medium immersion | Media immersion test (according to complete machine manufacturer specifications) | Type of medium, concentration, and duration of contact |
| Main load-bearing of the boom arm, main load-bearing of the landing gear | No replacement, go with carbon fiber composite / aluminum / PA GF | — | — | Is it on the load-bearing path and safety component list |
Text version conclusion: This table is intended for technicians to report directly upward. There is only one criterion—whether the client can use this table to decide on the direction of the materials in a single meeting.
9. The part of this item that is most prone to problems is often not the material.
In public data, the two most common types of early failure for this kind of component are cracks at assembly points and failure to reduce weight. The former is due to the superposition of stress concentration and unfavorable fiber orientation at the root of the screw boss; the latter has a more straightforward cause—glass fiber increases density: the PP matrix is about 0.90–0.91 g/cm³, and adding 30% short glass fiber brings it to about 1.13 g/cm³ (data from an A-grade journal). If wall thickness doesn't decrease accordingly, the total weight naturally does not go down.
The material-side criteria are also clear: for long glass fiber systems, the glass fibers need to retain a length greater than the critical length of 3.1 mm, with tensile strength of 50-80 MPa, bending strength of 80-120 MPa, and room temperature notched impact strength of 15-40 kJ/m² (publicly available data, Grade B); for low-temperature impact, pull-out at assembly points, insert torque, and vibration fatigue, there are no national standard benchmarks for general plastic parts in this field, so the acceptance specifications of the complete machine manufacturer are followed.
The industry-standard approach is: ultra-low melt viscosity PP resin (MFR about 300 g/10min) for shear reduction, high-crystallinity PP to maintain strength, low-shear screws to keep the preserved length above the critical value; calculate the density and shrinkage accurately during the material selection stage.
The key is not 'how much fiberglass is added,' but whether the fibers are long enough to survive into the product, and whether the assembly points are tested as independent indicators.
Ningbo Kelong New Materials Co., Ltd. commonly supplies in this case the glass fiber reinforced oriented material within self-produced modified polypropylene (PP) pellets: the corresponding levels of base material and glass fiber are provided according to the medium environment of the part, the assembly method, and the weight reduction target, mainly to address the two issues of 'assembly point cracking' and 'failure to reduce weight'; the formulation is adjusted according to the working conditions of the part and can be tested with small samples and mold trials.
Frequently Asked Questions
Question: Which parts of a drone can actually use glass fiber reinforced PP?
Answer: According to publicly available component material information, the common choices for major load-bearing or rotating parts such as the boom, landing gear, and propeller are carbon fiber composites, aluminum, and PA GF (including PA CF); glass fiber reinforced PP is used in cost-sensitive non-load-bearing covers and internal parts. Using it in load-bearing paths is a selection mistake, not a material mistake.
Question: If I can't reach my weight loss goal, is it because I used less fiberglass?
Answer: The direction is wrong. Glass fiber increases the density (PP itself is about 0.90-0.91, and after adding 30% short glass fiber, it is about 1.13 g/cm³). Weight reduction should come from wall thickness, rib positions, and structure.
Question: Can long glass fiber material be used directly on the existing screw? Is the frequent cracking at the assembly points because the material is too brittle?
Answer: For the first sentence, it is not recommended to directly use a normal screw — a standard screw will cut the fibers short. You need a low-shear screw, and the check ring and nozzle configuration must be matched accordingly. Keeping the fiber length is the only way to maintain the 3.1 mm line, which is the hardware prerequisite most easily overlooked during material changes. For the second sentence, first look at the assembly method: self-tapping screws, inserts, and clips are three separate considerations. The break points of glass fiber reinforced parts often occur at the points of 'stress concentration and unfavorable fiber orientation' overlay, and just adding toughening might not solve the problem.
| Operating condition | Key criterion | Regular supply direction |
|---|
| Shell / Wing Guard / Battery Compartment Divider | Bending modulus 4000-5500 MPa grade; density calculated per piece | Short glass fiber PP-GF20/GF30 Toughening direction |
| Internal brackets and supports with multiple assembly points | Glass fiber retention length >3.1 mm; assembly point pull-off and torque | Long glass fiber PP-LGF directional material |
| Agricultural scene items (pesticides, fertilizers) | Strength retention after medium immersion | Short glass fiber PP, direction of chemically resistant stable system |
Just a reminder: when there is a problem with a part, the most common mistake is to replace the material first. Cracks or warping at assembly points, lost weight reduction—each of these issues has more than one cause. Identify the problem first, then replace the material.
Ten, Lastly, Say Three Sentences
First, the first sentence of this piece is not 'What is the tensile strength,' but 'Where to reduce weight.' The glass fiber increases the density by about a quarter, so the weight reduction must come from the wall thickness and structure.
Second, the strength of long glass fibers is not something that can be added; it is something that is preserved. If the retained length does not exceed the critical value of 3.1 mm, the fibers will be pulled out whole, and increasing the content will be useless—and this matter was already determined in the screw.
Third, the assembly point is an independent metric. Self-tapping screws, inserts, and clips are three separate accounts; there’s no question at the material selection stage, but they must be returned at the prototype stage.
About Us
There are some businesses we don't do.
We do not provide quotes without knowing the purpose.
Selling secondary brand materials as the main brand is not acceptable.
We won't make promises of 'suitable for any working condition'.
Ningbo Cologne New Materials Co., Ltd. produces modified polypropylene (PP) granules, covering homopolymer, random copolymer, and block copolymer base materials, as well as modifications including filled, glass fiber reinforced, toughened, flame-retardant, low odor and low VOC, weather-resistant, and scratch-resistant without coating; it also deals in PP resins from major petrochemical plants, off-spec materials, and bulk materials.