eVTOL 结构件用碳纤尼龙

应用领域 发布时间: 2026-09-13 2362 阅读

Last month, a startup making eVTOL came to ask about structural components.

They wanted to lose weight, so they replaced the aluminum alloy beams and ribs with carbon fiber nylon, and casually asked, 'Can the battery compartment use the same material?'

I asked him whether the two things were the same working condition. He was stunned for a moment.

These two parts are vastly different: structural components need to be light and rigid, while the battery compartment needs to be flame-retardant and dimensionally stable—trying to reduce the weight of the battery compartment the same way as structural components is the easiest way to cause major problems on an eVTOL.

This article separates the structural components and battery compartment of the eVTOL: what constrains them respectively, and under what conditions this path should be abandoned.

1. eVTOL and multirotors are not in the same weight class

First, clarify the special characteristics of eVTOL.

It is much larger and heavier than a multirotor, and it is also manned. Being manned means two things must be upgraded in the materials at the same time: the structural components must be strong enough to support a person's weight, and the battery compartment must be flame-retardant to contain thermal runaway.

Structural components—beams, ribs, bulkheads, connectors—require specific strength, carrying the same load with a lighter weight. Aluminum alloy has a density of about 2.7, glass fiber reinforced nylon about 1.4, and carbon fiber reinforced is even lower, roughly half the density of aluminum. With the same stiffness, nylon parts can be about 30% lighter than aluminum parts, which is the fundamental reason eVTOLs are focusing on it.

The battery compartment is another matter. It is in close contact with the battery, and once the battery undergoes thermal runaway, the temperature can surge to several hundred degrees in a short time. The materials of the battery compartment must be flame-retardant, low-smoke, and low-toxicity, with stable dimensions. The compartment must not deform under high temperatures and displace the battery, nor should the combustion products block the escape routes.

In a nutshell: the structural parts are 'light,' the battery compartment is 'stable,' and the two are not approached with the same mindset.

2. What the two things are being pinched by: six dimensions

Temperature. The structural components are on the fuselage, where the temperature is relatively mild; the battery compartment is adjacent to the cells, experiencing extreme temperatures during thermal runaway, and normally is around forty degrees.

Load. Structural components are subject to static loads plus dynamic overloads, with large magnitudes; the battery compartment is subject to its own weight plus vibration, with small magnitudes but over many years.

Medium. Contact with battery compartment electrolyte leakage and coolant, chemical resistance is a basic requirement.

Lifespan. For eVTOLs, calculated by flight hours and takeoff and landing cycles, the verification cycle is longer than that of multirotors.

Appearance. Most structural parts are inside, with low requirements for appearance; exposed parts are counted separately.

Compliance. Manned eVTOL involves mandatory standards for airworthiness and flammability/toxicity, which are hard thresholds, not bonus points.

Putting the six dimensions together: the structural parts are evaluated by 'specific strength', the battery compartment is evaluated by 'flammability and size stability', and even the way they are fixed is different.

The toughest dimension among the six is compliance.

The flame-retardant smoke toxicity of manned models is not 'extra points if done well,' it's 'if it's not adequate, you are not allowed to fly.'

Therefore, the selection order for the battery compartment materials should be compliance first, performance second.

First confirm whether it can pass certification, then talk about how much weight can be reduced.

3. How to divide the work between the two routes

RoutecomposeGive whatCost
PA66-GF50 / Carbon FiberHigh glass fiber or carbon fiber reinforcedHigh hardness and high strength, lightHigh cost, temperature limit, reduced toughness
PA66-GF30 Halogen-Free Flame RetardantFlame retardant system medium glass fiberFlame retardant V-0, low smoke toxicity, dimensionally stableRigidity lower than structural component route
Carbon fiber compositeEpoxy carbon fabricHighest specific strengthHeavy craftsmanship, expensive, difficult to maintain

The first row is the mainstream of the main structural components. In areas with high loads, such as beams and ribs, glass fiber or carbon fiber is needed to increase stiffness and strength; but toughness and temperature resistance must be considered together. After GF50, toughness drops quickly, so you can't just keep increasing it indiscriminately.

The second line is the mainstream of battery compartments. It does not pursue the highest rigidity, but aims for flame retardancy and low smoke toxicity—halogen-containing flame retardants release toxic smoke when burned, and most certifications for manned scenarios clearly do not accept them, so the route taken is halogen-free. This line almost does not overlap with the first line.

There is also a hidden order in these three lines.

The closer the position is to the main load-bearing structure, the closer it is to the first row.

The closer it is to the battery cell and wiring harness, the more it leans toward the second row.

In the same body, the position determines the choice more than the name of the material.

I also need to remind you of something directly related to the additive.

Halogen-free flame retardants are used in large amounts, and in some systems, they can lower the CTI by one to two levels.

When selecting materials, the 'flammability rating' and 'tracking resistance' should be viewed on the same table.

Only comparing with V-0 and not with CTI is like only looking at half of the report.

In short: first determine whether the item is a 'structure' or a 'container,' then talk about the material; don't use the same approach for two different items.

4. Selection Criteria Table (This page should be collected the most)

The thresholds in the table are directional recommendations, not acceptance criteria — the actual values must be determined by the specific project, specific working conditions, and actual measurements.

IndicatorDirectional ThresholdVerification Method / StandardCommon FailuresCommon solutionCorresponding auxiliary system
Bending modulus of structural componentsRefer to the magnitude of 10,000–15,000 MPaISO 178Deformation, insufficient stiffnessCarbon fiber / High glass fiberCoupling agent (fiber interface)
Flame Retardant Rating (Battery Compartment)Halogen-free V-0 gradeUL 94 / GB/T 2408Burning drips, smoke toxinsHalogen-free flame retardant systemFlame retardant (phosphorus-nitrogen type)
CTI / GWITLeakage tracking ≥ level 250 magnitudeIEC 60112 / GB/T 4207Moisture-induced electric leakageHigh CTI substrateFlame retardant (does not lower CTI)
Difference in dimensions between dry and wet statesDimensional change ≤0.1%Measured before and after humidity adjustmentBattery displacementLow water absorption substrateIntrinsic properties of the material, without relying on additives
Long-term retention rateAfter 1000 hours at 100℃ ≥75%ISO 527Pale and brittleHeat resistance stabilizationAntioxidant (hindered phenol, phosphite)
Glass fiber orientation consistencyShrinkage difference ≤0.4%Mold Flow Actual MeasurementWarping, misaligned holesGate Adjustment and Flow BalanceCoupling agent (reduces interfacial stress)
Structural integrity after thermal runawaySet according to simulated working conditionsThermal Runaway Simulation Appearance and DimensionsThe casing deformed and squeezed the batteryLow creep High temperature-resistant substrate
Insulation resistance (after moisture exposure)Determine according to safety regulationsInsulation measurement after damp heatElectric leakage, alarmLow water absorption High CTI systemFlame retardant (does not lower CTI)

How to use this table: Do not score row by row. First look at the first row and the fourth row—focus on modulus for structural parts, focus on flame retardancy for the battery compartment, and only fill in the table after confirming.

There is also one more sentence: The upper and lower halves of this table should not borrow from each other.

The modulus threshold of structural components is meaningless for imposing requirements on the battery compartment; and vice versa.

One form with two sets of assessments, using them together will select material that doesn't fit either end.

Common failures of categories five and six, and their true root causes

Failure 1: Only looking at V-0, it fails the safety regulations.

The root cause is missing CTI and GWIT. The hard thresholds for many battery compartment housings are not V-0, but tracking and hot wire. Relying solely on a V-0 report to select materials, once the parts are made, safety certification gets stuck at CTI. Choosing the wrong flame retardant can also lower the CTI, which is like pressing the gourd and the dipper floats up.

Failure 2: After prolonged use, the battery compartment deforms, squeezing the battery.

The root cause is long-term creep combined with moisture absorption and expansion. The battery compartment has been under load for years, the nylon slowly deforms, and with moisture absorption causing dimensional changes, the gaps in the casing drift. The solution is not to use more expensive materials, but to select a substrate with low creep and low water absorption, and to leave design margins.

Failure 3: Flame retardant exudes, surface becomes sticky, insulation decreases.

The root cause lies on the additive side—the high amount of flame retardant, when not well compatible with the substrate, will migrate to the surface, contaminating it and affecting insulation and bonding. Only those who handle the materials can explain this, because 'where it precipitates' is a matter of formulation. When seeing stickiness or precipitation, first check the compatibility between the flame retardant and the substrate, and don't rush to change the substrate.

Failure 4: In the same batch of casings, some are flame-retardant while others are not.

The root cause is that the flame retardant is either unevenly dispersed or the masterbatching was not done properly, resulting in a batch of parts with fluctuating flame retardant levels. First, check the mixing process, then discuss the formulation.

6. A Few Things to Watch for When Using the Computer

Drying. Nylon must be baked; parts with excessive moisture become brittle and have more surface defects. This is especially important for flame-retardant parts, as moisture can interfere with the flame-retardant system.

Mold temperature and floating fibers. The structural parts are large, flat, thin-walled components. The primary cause of floating fibers is often not that there is too much glass fiber, but that the mold temperature is too low. When raised to around 110–120°C, floating fibers often basically disappear.

Gate and orientation. The warpage of large parts is determined by orientation, and the gate should be analyzed with mold flow first.

Flame retardant dispersion. The key to flame retardant components is uniform dispersion, and the order of masterbatching and mixing must be fixed.

Interface between inserts and metal parts. The metal inserts and screw posts in the battery compartment are weak points.

The two materials shrink differently, leaving stress when cooling, and assembly can easily crack with just one twist.

Preheating the insert and leaving enough shrinkage gap are the fixing actions for this type of part.

This type of crack has mostly already started at the moment of assembly.

Packaging and transportation. Large flat thin-walled parts are prone to deformation under stacking and long-distance transportation.

The lining and the number of stacking layers must be decided together; this is part of the delivery.

For parts that have already been deformed upon arrival at the site, no one can clearly say whose problem it is.

Verification order. It is recommended to arrange it like this:

1. Material grade: modulus, flame retardancy, CTI

2. Piece level: Size and warping, measured after moisture adjustment

3. Structural Components: Static Load Overload Test Bench

4. Battery Compartment: Thermal Runaway Simulation Long-Term Creep

5. Environmental Superposition: High and Low Temperature Cycling, Humid Heat Aging

The order cannot be changed. If the previous item fails, move on to the next one; the following data has no explanatory significance.

Proofing Record. A customer came with a V-0 report to order a battery compartment. The first thing we asked was the required levels of CTI and GWIT. He couldn't answer—only focusing on V-0 and ignoring CTI is the most common pitfall in new energy and energy storage products. Later, we wrote the 'three-piece fireproof set: V-0, CTI, GWIT' into the proofing confirmation form.

7. When This Matter Should Not Be Discussed

In the following four situations, it is not recommended to use modified nylon for eVTOL structural components and battery compartments:

First, the main load-bearing beam requires a very high safety factor. This part is originally made of carbon fiber composites or metal, so using nylon would be overstepping.

Secondly, the mandatory fire-resistant smoke toxicity requirements for manned airworthiness are extremely strict. This type of validation cycle is measured in years, and without certification resources, don't start this.

Third, the long-term temperature continuously exceeds the selected system window. Heat aging that can't hold up is a ticking time bomb.

Fourth, the quantity is too small to spread evenly in specialized molds and for long-cycle validation. Both flame retardant materials and carbon fiber materials need to be specially prepared, and the annual usage is too small to be cost-effective.

Fifth, it is structurally impossible to provide insulation isolation. Carbon fiber components are conductive, and there is no isolation space near electrical components, so this type needs structural modification first.

Sixth, verification resources cannot last through the certification cycle. The fire-retardant smoke toxicity verification for manned models is measured in years.

Without this resource and timeline, it’s more practical to first work on the parts that don’t involve certification.

Writing these six points at the beginning is not to discourage, but to save time.

8. Count the two items separately: a comparison table

Putting the two accounts together makes the division of work very clear.

pieceMain requirementsHigh barrierKey indicatorsTypical failure
Structural components (beams, ribs, bulkheads)Lightness and StrengthLoad and Safety FactorSpecific strength, modulus, creepDeformation, insufficient stiffness
Battery compartment and coverFlame retardant and dimensional stabilityAirworthiness flame-retardant smoke toxicityV-0, CTI, GWIT, DimensionsElectric leakage, box deformation

What should be taken away most from this table is not the 'two sets of materials,' but the phrase 'the threshold is different.'

The threshold of the structural member is subject to load; if miscalculated, it will deform.

The battery compartment is being certified; if it doesn't pass, you won't be allowed to fly.

The same type of nylon has a different set of evaluation criteria when the role changes.

Material Change Risk List (From metal / original plan to modified nylon, what needs to be changed)

link; segment; partWhat do you want to move?Points that are easy to overlook
MoldFor large items, perform shrinkage compensation by itemFiber orientation leads to directional shrinkage differences
DrySet the window based on the measured moisture contentFlame-retardant systems are more sensitive to moisture
Material Temperature / Mold TemperatureThe mold temperature is mentioned to be 110–120℃ to control floating fibersOnly give according to the recommended value by grade, without looking at the pieces
Flame retardant systemConfirm CTI/GWIT is not downgradedOnly focus on V-0, missing CTI
Humidity controlForced humidity adjustment Re-measure dimensionsEstimate the time based on average wall thickness; the thick walls haven't absorbed fully.
Color differenceAdvance confirmation of exposed parts color boardThere is color variation in the batch of fiberglass parts
Verification orderModulus / Flame Retardant → Test Bench → EnvironmentIf the previous item fails, just move on.

One-page report sheet (for people who need to report upwards)

`

Project: eVTOL Structural Components / Battery Compartment · Material Route Assessment

Conclusion direction: Modified nylon can be considered as a candidate, but whether it can be implemented depends on four prerequisite conditions

1. Three Rules That Must Be Followed

1. The structural parts and the battery compartment are two separate materials and should not be mixed.

2. Flame retardant V-0 CTI GWIT three-piece set

3. No thermal runaway simulation and long-cycle data do not enter verification

2. Precondition (It is recommended to postpone if any are not met)

· Long-term operating temperature ≤ continuous use range of the selected system

· Resources and timelines for airworthiness / safety certification

· Annual usage is sufficient to dilute dedicated materials and molds

· The main load-bearing position has been confirmed and handed over to composites/metal

3. Next Steps

1. Take the actual load and the battery compartment temperature to set indicators

2. Make the full set of flame retardant CTI GWIT

3. Battery compartment thermal runaway simulation Long-term creep

Risk Warning: The main uncertainties of this route are flame retardant compliance and long-term thermal aging.

`

Three questions readers often ask

Question: Can structural components also use flame retardant materials?

Check the position. Structural components are generally not next to the battery cell; flame retardancy is not their primary requirement—mechanical strength is. Adding flame retardants forcibly will lower rigidity and CTI, which is not worth it. Determine clearly whether the part is attached to the battery before deciding whether to add flame retardants.

Question: Between carbon fiber and fiberglass, which one should be chosen for structural components?

Carbon fiber has higher specific strength and more stable dimensions, but it conducts electricity and is expensive; glass fiber is low-cost and tough. For main load-bearing positions that also require dimensional stability, the reasons for using carbon fiber are stronger; however, insulation, isolation, and re-verification need to be considered.

Question: Can the battery compartment rely on a metal casing to achieve flame retardancy?

Metal can contain the flame retardant, but the weight, molding complexity, and insulation isolation all need to be recalculated.

A common approach is a metal frame paired with a flame-retardant nylon lining, with the two parts dividing the work.

There is no approach that can achieve both weight loss and flame retardancy on its own; the tasks must be divided.

Conclusion

The selection of materials for eVTOL structural components and battery compartments, after all, is a matter of division of labor, not a materials issue.

There are only three judgment chains:

Is it a structure or a container → Temperature determines the system → Certification determines success or failure.

Once all three are set, only then will there be an answer to whether this material can be made lighter.

If you have an eVTOL structural component or battery compartment to determine materials for, you can send these three things over to get guidance: whether it is a primary or secondary load-bearing part, what temperature the battery compartment is adjacent to, and whether it is for carrying people or cargo.

There are three things we never guess: temperature resistance, lifespan, and cost.

If the operating temperature is not given, don’t guess; if the service life is not given, don’t guess; if the dosage is not given, don’t guess either. Any plan guessed will eventually have to be redone and returned for compensation.

What we do is very specific: we take resins like PA6, PA66, PA46, PA11, PA12, PA6T, PA9T, and nylon alloys, and turn them into a form that can actually be used for a certain part; we also do modified PPO, PPS, and thermoplastic elastomers along the way.

At the same time, we operate nylon resins, secondary brand materials, and bulk materials for major chemical giants, and have long been collecting nylon raw materials, sprue materials, and various nylon waste, with formal disposal channels.

The auxiliary system in the formula is matched according to the working conditions per item — conventional auxiliaries are kept in stock, and special models are matched as needed; you report the working conditions and grade, and the materials and auxiliaries are prepared together at once.

这台机器上的件,说下工况我帮你看看

报个件、说清温度和要过的认证,当天回你两三个能打的方案。电话微信同号,找到人就能聊。

打电话 18969817163发邮件询价
WA