光伏接线盒用尼龙灌胶开裂?问题常藏在湿热老化之后出现

应用领域 发布时间: 2026-09-14 629 阅读

Cracking after potting in junction boxes is one of the most common types of failures in the photovoltaic industry.

Its trouble lies in the fact that the problems often only appear after being assembled into the component, or even after damp-heat aging. At this point, the component has already been formed, and the cost of rework is very high.

There are at least three causes of cracking, and the solutions are completely different. If you can't tell which one it is, you'll easily keep trying in the wrong direction.

The potting of the photovoltaic junction box cracks, and complaints usually occur at the transit station.

The component factory received the junction box, with a fine crack at the interface between the potting compound and the housing.

Fine cracks will allow water to pass through during damp heat aging, and water ingress is a precursor to insulation failure.

A junction box factory chased it for a month, replacing the glue and the casing, but the gap was still there.

The problem lies in the difference in thermal expansion between the two materials; it’s useless to replace either one.

The failure of the potting system has always been a joint problem between the adhesive and the shell.

1. Three types of cracking patterns

The first type is interface separation. The bond between the colloid and the plastic is lost, and the gap moves inward from the edge, looking like a 'separation'.

The second type is cracking of the plastic matrix. Cracks occur within the body of the nylon part and may extend along weld lines, gates, or sudden changes in wall thickness.

The third type is cracking during colloid solidification. The adhesive shrinks during the solidification process, generating tensile stress that pulls the plastic part to form cracks. These cracks often appear in areas where the colloid is thick and the restraint is strong.

The appearances of the three modes are very similar, but their causes belong to three different lines: interface, material, and process.

2. First, distinguish whether it is interface delamination or substrate cracking

The method of diversion is actually not complicated; you just need to look at two things: where the crack is, and the shape of the cross-section.

Interface separation: Cracks run along the boundary between the glue and the plastic. After peeling, the plastic surface remains intact without any obvious tearing. By gently prying with a fingernail or a blade, the glue can be removed in one whole piece.

Substrate cracking: Cracks are inside the plastic, with rough tearing on the fracture surface, and they often follow the weld lines. After removing the adhesive, the plastic part itself is broken.

Curing cracks: Cracks usually radiate around the colloid area or form ring shapes, and their appearance is concentrated shortly after curing.

Once you clearly see which type it is, the direction afterwards is basically set.

3. Selection and Compatibility of Potting Compound

Potting adhesives are divided into several major categories, and their compatibility with plastic parts varies greatly.

Rubber typeCuring shrinkageCompatibility with nylonRemarks
SiliconesmallBetterLow modulus, low stress
PolyurethanemiddlegeneralPay attention to the undercoat
epoxyrelatively largeRelatively harshHigh modulus and high stress

The rule is: the higher the modulus of the adhesive, the greater the shrinkage, and the more severe the stress on the plastic parts. Silicone is the gentlest, while epoxy is the most prone to problems.

Another thing that cannot be neglected is surface treatment: mold release agent residues and oil stains will directly damage adhesion. In high-demand situations, plasma or primer treatment is done to clean the interface. If this interface layer is not done well, no matter how good the adhesive is, it will not stick.

4. Internal Stress: Residual Injection Molding Reinforcement Shrinkage

If you trace the substrate cracking deeper, it can almost always be traced back to stress.

The first source of stress is the residual stress from injection molding. Uneven filling, packing, and cooling will leave stress in the part, especially near the gate and areas with sudden thickness changes. Annealing can effectively release this stress, and in many cases, noticeable improvement is seen after annealing.

The second source of stress is the shrinkage of the colloid during curing. The glue binds the plastic part, and as it cures and shrinks, it applies stress to the plastic. The thicker the glue layer, the greater this force.

Only when the two stresses are superimposed will they exceed the material's bearing limit. Therefore, the approach is also twofold in parallel: reduce the residual stress of the part itself, while also reducing the external stress caused by the adhesive tape.

5. Moisture Absorption and Hot-Cold Cycles

Photovoltaic components need to stay outdoors for more than twenty years, and environmental variables must be taken into account.

First is moisture absorption. Nylon absorbs water, which causes it to swell and soften, changing both its dimensions and modulus. A piece that sticks well when dry will have a different interfacial condition after absorbing moisture — this is also the reason why many things "pass in the laboratory but fail on site."

Second is the hot and cold cycle. The coefficients of expansion for plastic, rubber, and metal parts are all different, and each temperature change adds a load at the interface. The daily temperature difference accumulates to more than three hundred cycles in a year.

Therefore, the verification must include humidity and temperature cycles, and cannot be done with just normal temperature pulling.

6. Countermeasures on the Material Side

There are four main things that can be done on this side of the material.

First, choose a system with better resistance to stress cracking. With the same glass fiber content, different formulations have significantly different resistance to environmental stress cracking, so this aspect needs to be asked about and tested separately.

Secondly, control the content and orientation of fiberglass. The performance of fiberglass material varies greatly along the flow direction and the perpendicular direction, and cracks often follow the orientation of the fiberglass. The orientation consistency of large flat parts should be carefully checked.

Third, reduce abrupt changes in wall thickness and sharp corners. Transition points between thick and thin sections and internal sharp corners are stress concentration points. Making full fillets and uniform wall thickness is much cheaper than changing materials.

Fourth, adjust the surface condition. If the potting area has a smooth surface, the bonding strength is actually weaker than that of a moderately rough surface. This should be determined during the design phase, as it is difficult to change later.

7. Verification Methods

It is recommended to divide the verification into two levels: first at the sample level, then at the assembly level.

Sample level: Measure residual stress after injection molding (qualitative judgment can be made using solvent method or polarized light method), prepare one set with annealing and one set without annealing, and observe the difference.

Assembly level: Glue is applied according to the actual rubber type and rubber layer thickness, then three tests are conducted — damp heat aging, thermal cycling, and pull or peel tests after thermal cycling.

Add one more reverse verification: treat the same piece using both methods, with and without primer, and see the difference in surface performance. This can directly tell you whether the surface treatment value is worthwhile.

If we break down the mechanism of glue cracking, the core is the two words 'matching'.

When the glue cures, it releases heat, heating the casing. After curing, cooling and shrinking cause them to pull on each other.

The greater the difference between the thermal expansion coefficient of the adhesive and that of the casing, the greater the interfacial stress.

When selecting the shell material, the coefficient of thermal expansion of the potting system should be considered, and combinations with large differences should be directly eliminated.

Interface treatment is the second line of defense, and the primer can significantly enhance interface bonding.

The curing curve of the potting glue is also a variable; slow curing generates much less stress than rapid curing.

Some factories have doubled the curing time, reducing the cracking rate from a few percent to the per mille level.

In the potting process, slow means fast, and steady means saving.

Follow-up Question 1: Is gel injection cracking necessarily the responsibility of the casing?

Most of the responsibility lies in the combination. The thermal expansion of the glue, the thermal expansion of the casing, and the curing curve of the glue together determine the interface stress. When troubleshooting, all three variables need to be checked together; simply changing the casing material often ends up being futile. Joint troubleshooting is the correct approach for glue injection problems.

Follow-up question 2: Will the primer affect fire resistance?

Qualified primer uses very little and has no substantial impact on flame retardancy. However, to verify compatibility between primer and shell surface additive precipitation, precipitates will separate the primer. Some factories have primers that sometimes don't work, and the delay is flame retardant migration and precipitation. Surface condition management is a prerequisite for potting quality.

Tracking a single fine seam

junction box interface fine seams, no matter how hard the glue or shell is changed. Finally, it was found that the gluing room had low temperatures in winter, increased adhesive viscosity, poor wetting, and inherently poor interface adhesion. Adding constant temperature to the potting room caused the small gaps to disappear. Environmental temperature, such an external variable, is often not listed on the checklist but is often the answer.

Four checks on potting quality

Check for wire swelling difference, primer compatibility, curing curve, and temperature and humidity of the potting environment. Four checks are written into the work manual, reducing potting cracking from a normal problem to an occasional one.

To wrap up this article: potting is the process of binding two materials together; whether they fit depends on whether they match before matching. The mating report is about wire swelling data and compatibility verification; if the report is done first, the divorce rate naturally decreases.

There is another industry background to explain about junction box filling. As module power increases, the current carrying of junction boxes increases, increasing heat generation and making the potting body's thermal environment harsher. The temperature resistance and swelling requirements for potting materials have generally been raised in recent years. Some box factories advance potting verification to the material screening stage when designating new platforms, conducting joint testing before sampling. Industry experience shows that early exposure of potting problems costs one-tenth of the cost of late exposure. This multiple is worth noting on the first page of every box factory's project plan.

bubble issues in potting are also worth mentioning. Bubbles in potting agents serve as both weak insulation points and hotspots for thermal stress. Vacuum potting can greatly reduce bubble rates, requiring significant equipment investment. Small factories lack vacuum equipment and rely on adhesive viscosity and injection techniques for control. No matter the route, sampling inspection standards for bubble rate must be established. Some factories use X-ray sampling to test potting materials, and if bubbles exceed standards, they re-inspect batches. The very existence of testing methods is quality pressure, and pressure is transmitted upstream along the supply chain for improvement.

Checklist Summary

Complete verification package for junction box potting: line swelling matching calculation, primer compatibility report, complete curing curve simulation, bubble rate sampling standards, interface inspection after damp heat aging. These five documents serve as the common language of cooperation among junction box manufacturers, glue factories, and shell material manufacturers. All three parties speak according to this set of language, and only when cracking truly disappears from the high-frequency complaint list.

Junction box sealing system is also linked with potting system. The sealing ring of the box lid is compressed for long periods, and the stress of the potting body is stacked on the sealing surface. If the seal fails and water enters, no matter how good the potting is, it is useless. Some factories combine the permanent deformation of the sealing ring compression with potting verification into a set of tests, and assess them simultaneously after wet heat. A win-win-win verification design, saving time and staying close to reality. The reliability of junction boxes depends on system engineering, and verification of system engineering must also be systematic.

Another point on the selection of potting material. The temperature resistance grade of the potting agent itself should be determined according to the thermal environment of the diodes inside the box; high-current boxes have diode temperatures that are not low. If the adhesive does not have sufficient temperature resistance, it softens in the hot state, causing stress redistribution to become more disrupted. Some factories select adhesive grades based on actual diode temperatures; simple rules and effective results are effective. In the bond between glue and shell, temperature clauses cannot be omitted. By this point, you will find that every countermeasure for potting cracking essentially aligns the parameters of both systems on the same table.

Extended Two Questions

Can potting agents be repaired? On-site repair of cracked potting material carries high risk; it is recommended to replace the entire piece; repaired parts should only be used as emergencies.

Should the casing be preheated before potting? Preheating the housing before low-temperature potting in winter can improve wetting, but the preheating temperature must be controlled, as overheating can trigger new stresses. Some factories have installed preheating cabinets in the potting room, setting preheating settings according to the season, stabilizing cracking rates at the thousandth level.

The division of labor among junction box potting suppliers also deserves clarification. Parameters for tube glue at the rubber factory, data on casing materials at the manufacturer, and process and verification by the box factory themselves. Projects with clear division of labor progress quickly, while projects with unclear division are equal. Some box factories issue division of labor forms at project kickoff meetings, with all three parties signing off. The division of labor forms in meeting minutes are the cheapest and most effective management tool in this industry. Box factories with low potting cracking rates are all well-organized in the division of labor schedule.

The appearance quality of potting agents is also important. A flat potting surface without bubble spots is a direct indicator for module manufacturers during incoming material inspection. Poor-looking potting agents will lose points even if they meet performance standards. Both finishing techniques and glue leveling have an impact. Some factories have optimized finishing processes, raising the pass rate in a single acceptance to a new level. Performance is substance, appearance is appearance; both must be considered.

Another step in batch management. Batch samples of potting must be kept along with the housing, because failure is a combination behavior. If only glue is left or only shell, it cannot be assembled on-site during accident review. The cost of retaining composite samples is almost zero, and its value is priceless at critical moments. This box factory's habits were learned from reviewing batch cracks; the system earned from tuition fees is the most solid.

Last Q&A set

Question: Is more potting volume safer? No, excessive potting increases stress and cost; just pour according to the design amount.

Question: Can potting parts be reused? The interface of the disassembled potting material is damaged, so reuse is not recommended. Safety parts do not leave chances.

Final Three Points

Selecting potting systems is to combine glue, shell, process, and environment into a comprehensive table.

Combining samples is a unique management action for potting parts; don't use single-piece thinking to judge assemblies.

Potting crack rate is the report card of tripartite collaboration; if the results are poor, first check the collaboration and then the material.

Conclusion

Junction box potting crack troubleshooting chain:

First check whether the cracks are at the interface or the substrate → then check the type of adhesive and interface treatment → then check two stress points (injection molding residue and curing shrinkage)→ and finally verify with humidity and temperature cycling.

If you mix the three models, it becomes "change the glue and the material," and in the end, it's still unclear which step actually works

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