嵌件开裂是包胶件最典型的失效之一:金属件嵌在塑料里,用一段时间,或者刚下线,塑料就裂了。
第一反应往往是"这个料太脆,换个韧性好的"。
但换料通常解决不了这个问题。
因为根子在两种材料的热膨胀系数差上。
金属嵌件开裂的现场很好认。
裂纹围着嵌件长,像车轮的辐条,从嵌件孔向外放射。
一家做传感器的工厂送来一批开裂壳体,裂纹全在黄铜嵌件周围。
嵌件本身没毛病,螺纹量过是合格的。
问题藏在嵌件和塑料的交界处,热应力加装配应力,把最脆的那条线压垮了。
一、根本原因:热膨胀差
金属的热膨胀系数大约在 10-20 ×10⁻⁶/℃,而玻纤增强尼龙大约在 20-50 ×10⁻⁶/℃,未增强的更高。
这个差别意味着:从成型温度冷却到室温时,塑料的收缩量远大于金属。
于是金属"卡"住了塑料,塑料内部产生拉应力——尤其是嵌件周围那一圈。
这种应力不会因为换料消失,只会因为数值大小而缓解或加剧。
除了冷却收缩,还有两条叠加因素:
尼龙的吸湿膨胀。 塑料吸湿后继续膨胀,而金属不膨胀——应力继续增加。这解释了一个现象:件下线时没事,放了几个月裂了。
使用时的温度循环。 每次冷热循环,两种材料都会再"较一次劲"。
二、三种开裂位置,指向不同原因
| 位置 | 表现 | 主因 |
|---|
| 嵌件根部圆角处 | 沿嵌件轮廓的环状裂纹 | 应力集中,圆角不足 |
| 包胶壁的薄处 | 从内向外裂 | 包胶壁厚不足 |
| 远离嵌件的位置 | 无规律开裂 | 整体内应力过高 / 材料降解 |
分清位置是第一步。 三种位置的解法完全不同——第一种改结构圆角,第二种加壁厚,第三种才轮到看材料和工艺。
如果没分清就统一"换韧性料",往往三种都治不好。
三、设计侧:三个能直接改的地方
第一,圆角。 嵌件根部必须有足够圆角。尖角是应力集中点,裂纹几乎都从那里开始。 这一条改动成本最低、效果最明显。
第二,包胶壁厚。 嵌件周围的塑料壁太薄,抗不住内应力。通常要给到足够的壁厚,并且壁厚变化要平缓,不能突然从厚到薄。
第三,结构咬合。 不要让嵌件靠"热胀冷缩抱紧"来固定,要靠滚花、沟槽、翻边这类机械咬合结构。靠摩擦力固定,长期一定会松。
三条里,圆角和咬合结构属于设计动作,在开模前改成本最低。
四、工艺侧:三个能立刻试的动作
第一,嵌件预热。 把金属嵌件预热到一定温度再放入模具,能显著降低冷却时的温差,从源头减小内应力。这是最有效的一招,也最容易被省掉。
第二,模温。 模温过低,塑料冷却太快,内应力更大。适当提高模温并保持均匀,能改善应力状态。
第三,嵌入时机与速率。 嵌件安放位置要准、动作要稳,避免在熔体充填时被冲偏。
另外,保压与冷却时间也会影响最终应力状态,值得一起调。
五、材料侧能帮上多少
材料能帮忙,但排在设计之后。
低收缩、低膨胀的体系(如部分玻纤增强或矿物填充体系)能减小塑料的收缩量,间接降低应力。
增韧体系能提高材料的断裂延伸率,让它在同样的应力下不容易裂。
但要注意一个反直觉的点:加玻纤能降低收缩率(好事),但同时会降低断裂延伸率(坏事)。两个作用方向相反,所以不能简单说"上玻纤就行"。
正确的表述是:材料是一个可调参数,但不是第一个该动的参数。 先动结构和工艺。
六、排查顺序
第一步:看开裂位置和断口形貌。 确定是圆角处、薄壁处还是无规律。
第二步:试点预热(如果还没做)。 零成本、见效快。
第三步:查包胶壁厚与圆角。
第四步:查模温与保压。
第五步:最后才评估材料方案(收缩率、延伸率)。
如果前四步都不动,只换料——大概率还是裂。
还有一个容易被忽略的位置因素:嵌件如果不止一个,要分别看。
同一个件上,靠近浇口的嵌件和远端嵌件受力环境不同——远端充填压力低、熔体与嵌件的贴合质量差,往往先裂。
如果开裂集中在内侧嵌件、外侧完好,多半与充填路径有关,而不是材料脆。 这时候应该先看浇口位置与流道,而不是急着换增韧料。
反过来,多个嵌件同时开裂、位置分散,那才更像是整体内应力过高,或材料本身出了问题。
嵌件开裂的机理,核心是两种材料的热胀差。
嵌件在熔体里被加热,冷却时塑料收缩包紧它,交界处留下残余应力。
装配时螺栓预紧再加一笔,应力叠加超过材料的耐受就开裂。
对策从三头下手:嵌件预热后成型,减小温差应力。
嵌件周围留足塑料壁厚,让应力有地方摊。
螺纹旋入深度限扭矩,不让装配应力失控。
三件事都不复杂,缺了任何一件,开裂就在某个批次等着。
追问一:嵌件成型和后插嵌件怎么选?
模内预埋结合牢,成本高在二次定位;后插嵌件效率高,强度靠孔的过盈和热变形保持。受力大、要密封的位置用预埋,普通螺纹座用后插。别用一套标准评两种工艺,它们是两条路线。
追问二:铜嵌件为什么要特别防铜害?
铜在高温下催化 PA 降解,嵌件周围的塑料会先于别处发脆。防的手段有两层:选含铜抑制剂的牌号,或者嵌件表面镀层隔离。机舱件靠近热源的铜嵌件,两层都要上。
一单批量开裂的追查
传感器壳体嵌件周围放射裂,批次性出现。追到模具端:那阵子模温机坏了,模具温度偏低,塑料在嵌件周围冻结应力大。嵌件预热工序也因故没执行。两个偏差叠加,应力越过线。恢复模温和预热后,裂纹消失。设备状态也在失效链上,追查别只盯料和设计。
嵌件设计核对单
嵌件预热温度、周围壁厚与加强、旋入扭矩上限、材料铜害抑制、装配工具限扭。五项核对完,嵌件开裂的风险基本收口。
嵌件裂纹的批次管理也有讲究。
嵌件开裂有潜伏期,出厂检验未必能发现。
有的裂纹要经过温度循环或者吸湿之后才扩展到可见。
所以嵌件件的出货检验,除外观还要抽做剖面或者染色探伤。
一家传感器厂按批做染色渗透抽检,把微裂纹拦在出厂前。
抽检成本每件几毛钱,换来的是售后零开裂记录。
这笔账,质量部门比谁都算得清。
三个延伸问题
嵌件周围能不能用浇口正对?不要,熔体直冲嵌件会把应力集中在嵌件背面,浇口要错开。
预埋嵌件的定位可靠性怎么确认?模内定位销加首件三坐标确认,批量中抽查浮动量。
后插嵌件的过盈量怎么定?按材料蠕变和温度范围算,过盈不足会松,过大直接胀裂。
嵌件工艺检查点
模温正常、嵌件预热执行、浇口避位、首件确认、批次渗透抽检。
五个检查点贴在机台边,嵌件开裂就成了小概率事件。
嵌件件还有个运输与仓储的细节。
预埋嵌件的塑料件在高温仓储里,嵌件周围的应力会缓慢释放。
释放过程伴随微裂纹的萌生,仓库温度越高风险越大。
夏季集装箱运输就是典型的高危场景。
对策是仓温上限和堆叠高度写进仓储规范,出货前高温循环抽检。
一家厂在集装箱里放了温度记录仪,数据拿到手才知道问题多严重。
最后一组追问
嵌件件的保质期怎么定?按材料蠕变和应力水平评估,常规两年,高温场景缩短。
嵌件松动怎么排查?扭矩复测加剖面看包紧力,松动多发生在热循环之后。
能不能用超声波插嵌件代替热插?可以,能量输入可控,对周围塑料的热损伤更小,是升级方向。
嵌件是塑料件和金属世界的接口,接口稳了,整件的信誉才立得住。
嵌件这一篇收尾时,强调一下成本的真实算法。
嵌件工艺省的是装配工时,加的是模具和工序管理。
账要按总成本算,不能只看单件价格。
预埋和后插的选择也一样,路线没有优劣,匹配才是关键。
匹配对了的方案,成本自然落在该落的位置。
收官三点
嵌件开裂是应力管理问题,不是材料强度问题。
设备状态和工艺纪律在失效链上的权重,不比设计低。
渗透抽检这类小投入,是质量体系里性价比最高的动作之一。
嵌件这一篇最后补一个选材联动。
嵌件周围用料的流动性和强度,和嵌件设计是联动的。
流动差会包不紧嵌件,强度低会扛不住装配扭矩。
有些项目在嵌件区用局部高强牌号,其余区域用常规料。
双料方案贵在工序,胜在精准。
成本和风险摆在一起看,方案就清晰了。
这一篇的完整知识地图
热胀差定应力来源,预热定残余应力,壁厚定应力摊布,扭矩定装配上限,铜害定材料抑制,渗透抽检定出厂闸门。
六道防线层层设卡,嵌件开裂就无处藏身。
嵌件问题的高发,恰恰说明多数工厂的防线是松的。
把六道防线焊死,嵌件就从风险件变成了优势件。
嵌件件再补充一个高频追问:嵌件能不能用塑料的。塑料嵌件、金属嵌件之外,还有一类热熔螺母方案,用超声或者热压把嵌件装进预留孔。这个方案的热应力比模内预埋小很多,装配灵活,售后可换。代价是连接强度低于预埋,要按实际载荷校核。传感器和电控盒类小件上,热熔螺母的渗透率这几年明显上升。新工艺不是替代旧工艺,是给了设计一个中间选项,载荷和成本落在中间地带的件,用它正合适。
再补一个嵌件周边结构的经验值。嵌件孔周边壁厚,行业经验至少是嵌件外径的一半再留裕量;嵌件到件边缘的距离,不小于嵌件外径。低于这两个经验值的项目,开裂概率显著上升。这些数字不在教科书里,在一代代工艺员的返工单里。把它们写进设计规范,新人就不用再交一遍学费。结构经验值是企业的隐形资产,攒得越多,定点越快。
嵌件件再补充一个嵌件源头的验收细节。金属嵌件本身也有批次波动,表面处理、毛刺、尺寸公差都在波动范围内。毛刺大的嵌件压进孔里会划伤孔壁,留下微裂纹起点。进料检验给嵌件加一项毛刺目检和轮廓抽测,成本极低。有工厂的嵌件开裂追到最后,起点是供应商换了机加工序,毛刺水平整体上移。嵌件这条供应链上的每一环,都在为最终的开裂概率投票。
再说一个注塑参数与嵌件的联动。熔体温度过高会加重嵌件周围的热应力,过低又包不紧嵌件,参数窗口要两头校核。有经验的工艺员会做一组 DOE,把窗口画出来贴在机台上。窗口图在手,换班换料都有据可依。嵌件工艺的成熟度,就看这张图有没有画出来。把经验变成图,把图变成规程,是把老师傅的手艺变成工厂能力的一条正路。
结语
嵌件开裂的判断链:
先分位置 → 再改结构(圆角与壁厚)→ 同时试预热 → 最后才动材料。
顺序对了,多数问题在第三步之前就能定位。
如果你手上有个包胶件正在裂,把三样东西发过来:嵌件材质、包胶壁厚、开裂位置与发生时间。
Insert cracking is one of the most typical failures of overmolded parts: metal parts embedded in plastic, used for a while or just off the line, the plastic cracks.
The first reaction is often "this material is too brittle, replace with a tougher one."
But changing the material usually doesn't solve this problem.
Because the root cause lies in the difference in thermal expansion coefficients between the two materials.
Cracks on site are easy to identify on site.
Cracks extend around the insert, like the spokes of a wheel, radiating outward from the insert holes.
A sensor factory sent a batch of cracked housings, all cracks around the brass inserts.
The inserts themselves are fine; the thread measurement is qualified.
The problem lies at the junction between inserts and plastics; thermal stress combined with assembly stress crushes the most brittle line.
1. Root cause: thermal expansion difference
Metal's thermal expansion coefficient is about 10-20×10⁻⁶/°C, while fiberglass-reinforced nylon is about 20-50×10⁻⁶/°C, and unreinforced nylon is even higher.
This difference means: from molding temperature to room temperature, the shrinkage of plastic is much greater than that of metal.
Thus, the metal "stuck" the plastic, generating tensile stress inside—especially around the insert.
This stress does not disappear with material change; it only eases or worsens depending on the value.
Besides cooling and shrinkage, there are two other compounding factors:
Nylon's moisture absorption and expansion. Plastic continues to expand after absorbing moisture, while metal does not—stress keeps increasing. This explains a phenomenon: the part is fine when it leaves the line but cracks after several months.
Temperature cycling during use. With each hot and cold cycle, the two materials "compete again."
Two or three types of crack locations, pointing to different causes
| Position | Performance | Main cause |
|---|
| Filler root fillet | Annular cracks along the insert contour | Stress concentration, insufficient fillet |
| Thin area of the overmolding wall | Cracking from inside to outward | Insufficient overmolding wall thickness |
| Position away from the insert | Irregular cracking | Overall internal stress too high / material degradation |
Identifying the position is the first step. The solutions for these three positions are completely different—the first is to fix the structural fillets, the second is to add wall thickness, and the third is to consider the material and process.
If you don't distinguish and simply "change toughness materials" uniformly, often none of the three methods can be fixed.
Third, design side: three areas that can be directly modified
First, fillets. The base of the insert must have enough fillets. Sharp corners are the stress concentration points, and cracks almost always start from there. This modification has the lowest cost and the most obvious effect.
Second, thick rubber walls. The plastic walls around the inserts are too thin to withstand internal stress. Usually, sufficient wall thickness must be provided, and the thickness change should be gradual, not suddenly from thick to thin.
Third, structural engagement. Do not let inserts be fixed by "thermal expansion and contraction tightness"; rely on knurling, grooves, and flanging mechanical engagement structures. Relying on friction to fix them will inevitably loosen over time.
Among the three strips, fillets and engagement structures are design actions and have the lowest cost to modify before mold opening.
4. Process side: Three actions that can be tested immediately
First, insert preheating. Preheating metal inserts to a certain temperature before placing them into molds can significantly reduce temperature differences during cooling and reduce internal stress at the source. This is the most effective and easiest to save.
Second, mold temperature. If mold temperature is too low, the plastic cools too quickly, causing greater internal stress. Appropriately increasing mold temperature and maintaining uniform mold temperature can improve stress conditions.
Third, timing and speed of embedding. Inserts must be placed accurately and movements steady to avoid being deviated during melt filling.
Additionally, holding pressure and cooling time also affect the final stress state, so it's worth adjusting together.
Fifth, how much can the material side help ?
Materials can help, but it comes after the design.
Low shrinkage, low expansion systems (such as some fiberglass reinforced or mineral-filled systems) can reduce the shrinkage of plastics, indirectly lowering stress.
Toughening systems can increase the material's elongation at fracture, making it less likely to crack under the same stress.
But note a counterintuitive point: adding fiberglass can reduce shrinkage (a good thing), but it will also reduce elongation at break (a bad thing). Since the two directions of action are opposite, you can't simply say "just use glass fiber."
The correct expression is: the material is an adjustable parameter, but it is not the first parameter to be moved. First, move the structure and process.
VI. Inspection order
Step one: Check the crack location and fracture shape. Determine whether it is at the rounded corner, thin wall, or irregular area.
Step two: Pilot preheating (if not done yet). Zero cost, quick results.
Step three: Check the thickness of the adhesive wall and the fillets.
Step 4: Check mold temperature and holding pressure.
Step 5: Only evaluate the material scheme (shrinkage rate, elongation rate) last.
If you don't move the first four steps and only change the material—cracks are most likely to occur.
There's another easily overlooked positional factor: if there is more than one insert, you need to look at them separately.
On the same piece, inserts near the gate and remote inserts have different stress environments—low distal filling pressure, poor bonding quality between melt and insert, often cracking first.
If cracks are concentrated in the inner insert and the outer side is intact, it's mostly related to the filling path, not the brittle material. At this point, you should first check the gate position and runner, not rush to change toughening material.
Conversely, if multiple inserts crack simultaneously and are scattered, it seems more like excessive internal stress or a problem with the material itself.
The core mechanism of insert cracking is the thermal expansion difference between the two materials.
The insert is heated in the melt, and as it cools, the plastic shrinks and wraps around it, leaving residual stress at the junction.
During assembly, the bolt is pretightened and added again; if the stress stacks beyond the material's tolerance, it cracks.
Countermeasure starts from three ends: the insert is preheated and molded to reduce temperature difference stress.
Leave enough plastic wall thickness around the insert to give stress a place to spread.
Thread insertion depth limits torque to prevent assembly stress from getting out of control.
None of these three things are complicated; if any one is missing, cracking will happen in a certain batch.
Follow-up question one: How to choose between insert forming and post-insertion?
Internal embedded bonding is firm, high cost depends on secondary positioning; Post-insert inserts have high efficiency, and strength is maintained through hole interference and thermal deformation. Use pre-insert for areas with high force and sealing; use rear inserts for regular threaded sockets. Don't judge two processes by one standard; they are two different routes.
Follow-up question two: Why must copper inserts be specially protected against copper damage?
Copper catalyzes PA degradation at high temperatures, causing the plastic around the insert to become brittle before other parts. There are two layers of protection: choose a grade of copper inhibitor, or isolate the insert surface with plating. For copper inserts near the heat source in the engine compartment, apply both layers.
Tracking batch cracking in a single order
Radiating cracks appear around the sensor housing insert, occurring in batches. Tracking it to the mold side: at that time the mold temperature controller was broken, so the mold temperature was low, and the plastic around the insert had high freezing stress. The insert preheating process was also not carried out due to certain reasons. The two deviations combined caused the stress to exceed the limit. After restoring the mold temperature and preheating, the cracks disappeared. Equipment status is also part of the failure chain, so investigation should not focus only on material and design.
Insert Design Checklist
Insert preheating temperature, surrounding wall thickness and reinforcement, maximum torque for screwing in, material copper damage prevention, and torque limit for assembly tools. After checking these five items, the risk of insert cracking is basically controlled.
The batch management of insert cracks also has its considerations.
Insert cracking has a latent period, and factory inspection may not necessarily detect it.
Some cracks only expand to a visible size after undergoing temperature cycling or moisture absorption.
Therefore, for the shipment inspection of inserts, in addition to the appearance, cross-sectioning or dye penetrant testing must also be randomly performed.
A sensor factory conducts batched dye penetrant inspections to catch microcracks before leaving the factory.
The sampling inspection costs a few cents per item, resulting in zero after-sales cracking reports.
This account, the Quality Department can calculate more accurately than anyone else.
Three extended questions
Can the gate be directly facing the insert? No, if the molten material hits the insert directly, it will concentrate stress on the back of the insert. The gate should be offset.
How to confirm the reliability of the positioning of embedded components? Use in-mold positioning pins and the first piece coordinate measurement to confirm, and spot-check the floating amount in the batch.
How is the interference fit for the rear insert determined? It is calculated according to the material creep and temperature range. If the interference is insufficient, it will loosen; if it is too large, it will crack outright.
Insert Process Checkpoints
Normal mold temperature, insert preheating executed, gate avoided, first article confirmed, batch penetration sampling inspection.
Five inspection points are attached to the machine side, making insert cracking a low-probability event.
The insert also has a detail regarding transportation and storage.
The plastic parts of embedded inserts, when stored at high temperatures, will slowly release the stress around the inserts.
The release process is accompanied by the initiation of microcracks, and the higher the warehouse temperature, the greater the risk.
Summer container transportation is a typical high-risk scenario.
The countermeasure is to include the warehouse temperature upper limit and stacking height in the storage specifications, and to conduct high-temperature cycle spot checks before shipment.
A factory placed a temperature recorder in a shipping container, and only after getting the data did they realize how serious the problem was.
The last set of follow-up questions
How is the shelf life of insert parts determined? It is assessed based on material creep and stress levels, generally two years, shortened in high-temperature environments.
How to troubleshoot loose inserts? Recheck the torque and examine the profile to see the clamping force; looseness often occurs after thermal cycling.
Can ultrasonic insert molding be used instead of heat staking? Yes, the energy input is controllable, causing less thermal damage to the surrounding plastic, and it is an upgrade direction.
Inserts are the interface between the world of plastics and metals. Only when the interface is stable can the credibility of the whole part be established.
When wrapping up this section on inserts, emphasize the real calculation of costs.
The insert process saves assembly labor hours but adds mold and process management.
The account should be calculated based on the total cost, not just the price of a single unit.
The choice between pre-embedding and post-insertion is the same; the route has no advantage or disadvantage, matching is the key.
When the matched solution is correct, the cost naturally falls where it should.
Three points to close
Insert cracking is a stress management issue, not a material strength issue.
The weight of equipment status and process discipline on the failure chain is no less than that of design.
Random spot checks with small investments are one of the most cost-effective actions in a quality system.
At the end of this section on inserts, add a material selection linkage.
The flowability and strength of the material around the insert are linked to the insert design.
Poor flow will prevent the insert from being tightly fitted, and low strength will not withstand the assembly torque.
Some projects use locally high-strength grades in the insert area, while the rest of the area uses conventional materials.
The dual scheme is valuable for its process and excels in precision.
When you look at the cost and risk together, the plan becomes clear.
The complete knowledge map of this article
Thermal expansion determines stress origin, preheating determines residual stress, wall thickness determines stress distribution, torque determines assembly limit, copper damage determines material suppression, and penetration sampling inspection determines the factory gates.
The six lines of defense set up checkpoint after checkpoint; when the inserts crack, there is nowhere to hide.
The high incidence of insert problems precisely indicates that the defenses in most factories are weak.
Weld the six lines of defense shut, and the inserts will turn from risk components into advantageous components.
One more frequently asked question about inserts: can inserts be made of plastic? Apart from plastic and metal inserts, there is another type called the heat-set nut solution, where the insert is installed into a pre-made hole using ultrasound or heat pressing. The thermal stress of this solution is much lower than that of in-mold embedding, assembly is flexible, and it can be replaced in after-sales service. The downside is that the joint strength is lower than that of embedded inserts, so it needs to be checked according to the actual load. In small parts like sensors and electronic control boxes, the adoption rate of heat-set nuts has clearly increased in recent years. The new process is not a replacement for the old one; it gives designers an intermediate option. For parts where load and cost fall in the middle range, it is just right to use it.
Let me add another empirical value regarding the structure around inserts. The wall thickness around the insert hole, according to industry experience, should be at least half of the insert's outer diameter plus some margin; the distance from the insert to the edge of the part should be no less than the insert's outer diameter. Projects that fall below these two empirical values have a significantly higher risk of cracking. These numbers aren’t found in textbooks; they are recorded on the rework sheets of generations of process engineers. By writing them into design specifications, newcomers won’t have to pay the learning fee again. Structural empirical values are an enterprise’s invisible asset: the more you accumulate, the faster you can locate the points accurately.
Add one more inspection detail for the source of the insert. Metal inserts themselves also have batch fluctuations; surface treatment, burrs, and dimensional tolerances all vary within a certain range. Inserts with large burrs pressed into holes can scratch the hole walls, leaving micro-crack initiation points. Incoming inspection can add a visual burr check and random profile measurement for the inserts at very low cost. In one factory, when tracing insert cracking to the end, the root cause was that the supplier had changed the machining process, which raised the overall burr level. Every link in the insert supply chain contributes to the probability of final cracking.
Let me talk about the interaction between injection molding parameters and inserts. If the melt temperature is too high, it will increase the thermal stress around the insert; if it is too low, the insert will not be enclosed properly, so the parameter window needs to be checked at both ends. Experienced process engineers will run a DOE and draw the window, then post it on the machine. With the window chart in hand, there is a reference for shift changes and material changes. The maturity of the insert process can be seen from whether this chart has been drawn. Turning experience into charts, and charts into procedures, is a direct way of transforming a master technician's skills into factory capability.
Conclusion
Judgment chain for insert cracking:
First divide the positions → then modify the structure (fillets and wall thickness) → try preheating at the same time → only then handle the material.
If the order is correct, most problems can be identified before the third step.
If you have a overmolded part that is cracking, send over three things: the insert material, the wall thickness of the overmold, and the location and time of the cracking.