储能密封垫材料怎么选?电芯之间,缓冲料不能省

应用领域 发布时间: 2026-09-14 1053 阅读

There is no cushioning between the battery cells in the energy storage pack, and any vibration triggers an alarm. Sealing, cushioning, and flame retardancy—none of the three can be skimped on.

Vibration alarm, it's not a bad battery, it's that the cushioning wasn't enough

Energy storage gaskets are 'all-rounders': sealing, cushioning, flame retardant. The material must withstand all three—here’s the conclusion first: between battery cells, cushioning material cannot be skimped on—cushioning is the hidden task of the gasket.

The biggest pitfall of energy storage sealing gaskets: if the cushioning layer is saved, the battery cell has nowhere to release stress from thermal expansion and contraction — cushioning is the safety pad of the battery cell.

Energy storage components are safety components: leakage and swelling are both problems. Choose the right materials, and energy storage will be stable—don't skimp on the formula for energy storage components.

Sealed, cushioned, flame-retardant—why TPE can handle it all

Reasons for using TPE for energy storage sealing gaskets: it can provide sealing, cushioning, and flame retardancy—combining all three makes it suitable for energy storage.

Sealing is key: leak-proof sealing. Seal testing is included in acceptance — leakage is a problem.

Buffering cannot be skipped: battery cell expansion buffering. Buffer testing should be included in acceptance—swelling indicates a problem.

Sealing, cushioning, flame retardancy—what to look at for each of the three aspects

Sealing conditions: Leak-proof sealing. Sealing data must be verified—leakage indicates a problem.

Buffer condition: battery cell swelling. Buffer data needs to be checked — bulging indicates a problem.

Flame-retardant conditions: thermal runaway protection. Flame-retardant data must be verified—ignition is the problem.

Energy storage sealing gasket material, a table makes it clear

MaterialSealBufferFlame retardant
TPEGoodGoodCan be done
EPDMGoodpoorCan do
SiliconeGoodGoodpoor
PVCmiddlebadCan be done

Table reading method: Arrange materials according to tasks, choose different ones for different tasks, and don’t leave the buffer tier empty.

Look at cushioning and flame retardancy together to choose the right material.

Able to withstand pressure without burning or leaking, check these four items during inspection

ProjectRequirementJudgment
SealTestMeet the standard
BufferTestMeet the standard
Flame retardantLevelMeet the standard
CertificationcompleteMeet the standard

Table reading method: Check the sealing gasket item by item, safety is visible, and the cushioning thickness is inspected separately.

Cushioning is the safety pad of the battery cell.

If you only focus on sealing and don't test the cushioning, problems will occur from vibration.

Pitfall 1: Focusing only on sealing. Even if the sealing is done properly, skipping the cushioning means the cell expansion will directly push against the shell — cushioning must be tested.

Pitfall 2: Failure to test flame retardancy. Fire—flame retardancy must be tested.

Pitfall three: Certification is not verified. Export gets stuck — certification must be verified.

Flame retardancy, resilience, thickness—ask before choosing a mat

Three questions: What are the cell specifications, what temperature, what flame retardant rating. One check: actual working conditions measured — three questions and one check, the supplier's details are clear.

Buffer verification should come first: first measure the permanent compression deformation and rebound rate, then discuss the sealing dimensions — the buffer is the safety cushion of the battery cell.

Making sample retention a habit: retain samples from each batch, seal them, and conduct batch-by-batch retesting. When changing materials between batches, compare first before scaling up — stable batches result in fewer customer complaints.

Seepage, Deformation, Fire: A Fault Comparison Table

PhenomenonReasonCountermeasure
LeakageInsufficient sealingReplace with high-density sealant
bumpInsufficient bufferReplace with high cushioning material
Catch fireInsufficient flame retardancyChange the fuel to flame retardant
AgingInsufficient weather resistanceReplace with weather-resistant material
Batch bleachingFormula fluctuationLock window

Saving on buffer material between battery cells only makes bulging a matter of time — the buffer is not a configuration, it's a safety cushion. Saving material at the cost of thermal runaway is never worth it, no matter how you calculate it.

If the seal compression exceeds 30%, it won’t return, so do not use energy storage pads that are under long-term pressure. The compression should be designed for 15%-25%; if it exceeds 30%, it won’t rebound, and it will leak once installed.

Energy storage components must pass the 850°C glow wire test for flame retardancy; 750°C is just the passing line. For household storage, V0 is the starting point, and you cannot take risks under thermal runaway conditions. Flame retardant ratings should be selected according to the scenario.

The sealing gasket is the 'guardian of the seal' for the battery cell; sealing, cushioning, and flame retardancy are all essential. Only when all three pass the inspection can it be released; missing any one is a hidden danger, so don’t just focus on the sealing.

The pressure change dropped from 42% to 22%, the glowing wire passed at 850℃, and the energy storage customer was listed as qualified that month. Certification is checked by batch, don't wait until the orders come to make up for it, making up for certification takes longer than production.

The compression of the energy storage sealing gasket is designed to be 15%-25%; if it exceeds 30%, it will not rebound after compression. The compression after 70℃ × 22 hours should be ≤30%. When the cells are under long-term pressure, the gasket becomes thinner over a year and starts leaking.

Household storage flame retardant starts at V0, and thermal runaway conditions need to pass a glowing wire test at 850℃. Flame retardant materials are added with bromine-based or phosphorus-based agents; adding flame retardant increases Shore A by 5-8 degrees, so both hardness and flame retardancy data should be considered together.

Energy storage sealing gaskets are only released after passing all three criteria: flame retardant V0, compression set ≤30%, and compression 15%-25%. Missing any one of these is a risk, so don't just focus on sealing; thermal runaway conditions cannot be gambled with.

Saving material at the cost of thermal runaway is never cost-effective. Design the compression rate at 15%-25%; if the compression exceeds 30%, it won't rebound and will leak when installed. For household storage starting at V0, you can't gamble with thermal runaway conditions, and the flame-retardant level should be chosen based on the scenario.

Energy storage sealing gaskets must pass all three inspections before release; missing any one is a hidden risk. Don't just look at the sealing—thermal runaway conditions cannot be gambled with. Compression of 15%-25% plus flame-retardant V0 and pressure change ≤30% are both acceptance criteria.

Cologne Customer Case: Flame retardant failed inspection for export, formula re-adjusted to pass inspection and approved for release

A Shanghai-based energy storage equipment factory had its energy storage sealing gaskets fail the flame retardancy test, causing an export bottleneck. Cologne assisted in adjusting the formula (oil/additive/filler ratio), achieving the required flame retardancy grade and enabling smooth export. With the formula readjusted, the flame retardancy issue is solved from the source — for flame retardancy problems, first look at the additive system.

Summary

When selecting energy storage sealing gaskets, first consider cushioning, then check flame retardancy; the cushioning material between cells cannot be omitted, as cushioning is a safety pad.

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