传感器壳体换料怎么排试模?焊接强度与吸湿尺寸

应用领域 发布时间: 2026-09-14 2119 阅读

When replacing sensor housings, the stumbling point is often not on the radar cover's wave-transmitting area, but on that weld seam.

Last month, a customer who makes smart driving sensor housings sent over two sets of upper and lower shells. Foam was placed in the courier box, and both sets were tied with cable ties.

A handwritten note was attached, containing only one line: 'Same material, same mold, the airtightness is unstable after welding.'

On the phone he spoke more bluntly: 'Before changing the material, soldering a hundred pieces wouldn't ruin a single one; after changing this batch, random inspections on the production line couldn't keep up.'

I first asked him three questions.

Are you replacing just the substrate, or did you also change the fiberglass content along with it?

Have the welding parameters been re-checked with the new material?

Was the airtightness tested right after the part came off the line, or after adjusting the humidity?

He thought for a long time and said the first sentence was unclear, he didn't get the second sentence, and the third sentence was always offline when tested.

Behind this sentence is the most common type of misjudgment in sensor housing material replacement: treating welding as a process unrelated to the material.

Understand in Two Minutes: Why Welding Seams Fail First After Material Change

Plastic welding is not about 'sticking' two pieces of material together, but about allowing the molecular chains on both sides to re-entangle at the interface.

Whether the interface can bond depends on three things: whether the melt temperatures on both sides are sufficient, whether there is anything else blocking the interface, and whether all the glass fibers are squeezed here.

Changing the material affected the base material and glass fiber content, so the first two things changed accordingly; changing the material affected the lubrication system, and the second thing directly caused problems.

In plain words: a weld is the place where two pieces of material grow back together, and if there's something in between, it won't hold firmly.

That timeline is the true course of these shells.

The starting point was the first batch of parts after the material change: the appearance was acceptable, assembly was smooth, the welding was neat, and the cost was even lower than before, which brought a sigh of relief in the workshop.

The incubation period is in the second month. Random air-tightness inspections started occasionally reporting failures, with one or two per shift; they were treated as occasional incidents and attributed to 'welding machine parameter fluctuations'.

The outbreak occurred during that round of rain tests: the proportion of leakage into the whole box clearly increased, and the customer put this batch on hold while the production line waited for materials.

Settlement is retrospective. When the weld cross-section was examined, there was an obvious layer of additive enrichment at the interface, and the glass fibers were also stacked on both sides of the weld, which has little to do with the stability of the welding machine.

Convert 'randomly inspect one or two per shift': for a shift of 2,000 pieces, the defect rate seems to be less than one in a thousand, but over a year on a production line, this proportion is enough for the customer to hold a quality meeting.

The real problem is not the defect rate, but the unpredictability of the defects—today this batch is fine, but tomorrow using the same parameters, it goes wrong.

1. Before changing the material, four out of these six dimensions need to be quantified.

Sensor housing components are different, and operating conditions are evaluated across six dimensions: temperature, humidity and moisture absorption, vibration, airtightness, appearance and optics, and electrical conditions.

In terms of temperature, the surface temperature of exterior car parts can reach around 85℃ under sunlight in summer; if the lidar housing has ice-melting heating, some parts also have to withstand heating sections of 60–80℃.

The humidity dimension is the easiest to overlook. The casing is made of hygroscopic material, and after being installed in the car, it will slowly reach an equilibrium state, with its size changing accordingly.

Vibration is the third dimension. Sensors are installed in locations such as inside the bumper, near the rearview mirror, and on the roof, and the entire vehicle's road spectrum must be tested.

Air tightness is the fourth dimension, and it is also a direct test of welding quality. Common methods are water immersion or pressure decay, and the leakage rate is based on customer enterprise standards.

Appearance and optics are the fifth dimension. The millimeter-wave radar cover needs to be transparent to waves, the camera side needs to block light, and the lidar window needs to pass specific wavelengths.

Electricity is the sixth dimension. The enclosure often has requirements for shielding, grounding, and electrostatic dissipation, and conductive fillers and shielding solutions need to be discussed together.

First, ask for all the numbers in these dimensions: long-term temperature, dimensional tolerance after moisture absorption, leakage rate threshold, and shielding requirements.

A 120-millimeter-long casing, with the material absorbing 0.6% moisture, results in a dimensional change of 0.72 millimeters — the tolerances for the sealing grooves and clips are largely consumed this way.

2. Lay out the four routes without judging which one is better

RouteTemperature Resistance and RigidityWeldabilityMoisture Absorption and DimensionsWhich one do you usually switch from?
PA6-GF30Medium, enoughWide, both ultrasound and hot plate are easy to doHigh moisture absorption; allow extra length for long itemsGeneral engineering plastics or metal parts
PA66-GF30Higher, engine compartment side members are usableNarrower, sensitive to drying and mold temperatureMoisture absorption is slightly low, requires adjustment of moisture before measurementParts with insufficient PA6 strength
High-temperature nylon PA6T systemHigh, suitable for reflux and high-temperature sectionsNarrow, the window needs to be touched againLow water absorption, stable dimensionsOriginal metal parts in high-temperature locations
Mineral-filled PA6Moderate rigidity, low anisotropyEasy to use, interface easily integratesLowest moisture absorption, most stable dimensionsGlass fiber reinforced component

None of the four routes is better; it’s just a matter of which one can accommodate your existing welding line, molds, and assembly tolerances.

The cost of the glass fiber reinforced route is concentrated on welds and moisture absorption dimensions: glass fiber increases the bulk rigidity and temperature resistance, but at the weld it does not participate in entanglement, instead diluting the resin's contact area.

The mineral-filled route is reversed, the size and welding are comfortable, but the cost is sacrificing some rigidity and heat resistance.

The window for the high-temperature nylon route is the narrowest, which brings heat resistance and low water absorption, but the welding parameters need to be figured out from scratch and cannot be copied directly.

First, clearly write down 'why it is being changed': is it to reduce costs, to improve temperature resistance, or to ensure supply stability? The three motivations will guide different paths.

3. The form that needs to be re-checked when changing materials

The table below translates the above constraints into actionable steps that can be checked. The thresholds are directional suggestions, not acceptance criteria; the actual values should be determined by your parts and your welding line.

IndicatorDirectional thresholdVerification Method / StandardCommon failures after material changeCommon solutionCorresponding auxiliary agent system
Welding strengthNot less than seventy percent of the main bodyWelded spline tension, refer to ISO 527Weld cracking and subsurface laminationAdjust welding parameters Balance lubrication systemInternal and external lubrication balance
Air tightnessAccording to the customer's standard leakage rate thresholdPressure decay method or immersion methodRain Exposure and Water LeakageIncrease weld penetration and hold pressure
Dimensions after moisture absorptionAssembly and sealing groove are still within toleranceCoordinate measuring after humidity adjustmentMisaligned buckle, sealing groove not properly pressedLow water-absorption substrate Humidity control process
Weld line strengthDetermine separately according to structural stressShort shot sampling StretchingCracking along the weld linePouring spout Form release temperatureInternal and external lubrication balance
Damp heat agingAfter the wet-heat cycle, mechanical strength remains above 70%Double 85 or temperature-humidity cycle ISO 527Long-term yellowing and brittlenessStabilization systemAntioxidant
Radar-transparent (radome)Low dielectric constant and stable from batch to batchDielectric constant and loss tangentDetection distance fluctuationNon-conductive system, avoid carbon fiber
Shielding and Static ElectricityAccording to electromagnetic and ESD requirementsSurface Resistance and Shielding EffectivenessPoor grounding, static accumulationConductive insert or body conductive system

How to use this table: The first two rows are tough levels. If the welding strength and airtightness fail, the part won't come down on the assembly line. The following rows are not necessary to discuss.

The third line is the easiest place for material changes to go wrong because it manifests slowly — a part may meet standards on the day it is made, but problems only appear after being installed on the vehicle and going through a rainy season.

The fourth row and the first row are a pair. Both the weld line strength and the bonding strength are "interface strengths": one is the injection molding interface, and the other is the secondary connection.

When citing standards, include the version year in the specifications. For the same tensile curve, the numbers differ if the specimen shapes are different, so both parties should align the methods before comparison.

4. The Four Most Common Failures After Material Replacement

Failure 1: Weld cracking or hidden delamination. Most people's first reaction is 'the welding machine parameters are incorrect,' leading them to repeatedly adjust the amplitude, pressure, and time.

Sometimes after adjustment, it does improve for two days, but the next batch comes back—this shows the problem isn't with the equipment.

This point should be attributed to the additives side: if there is excessive internal and external lubrication in the lubrication system, it will form a layer of isolation on the surface of the melt. The interface originally relies on the melt mutually wetting each other, so this layer of isolation is equivalent to placing a film in the middle of the weld.

Insufficient internal lubrication is another issue: the melt viscosity is high, and by the time the flow fronts meet at the weld, the temperature has already dropped, so the two sides do not truly fuse together.

So when welding strength drops, first check whether the lubrication system is imbalanced, then look at the welding parameters, and only finally discuss the substrate.

Failure 2: The airtightness becomes non-compliant only after humidity adjustment. The root cause is not the weld, but the dimensions — moisture absorption has expanded the mating surfaces of the housing.

This kind of problem is almost impossible to detect in offline inspections because the parts are still dry at that time.

Failure three: In the same batch, the weld strength fluctuates. This is not due to 'unstable materials'; it is commonly caused by uneven dispersion of additives, resulting in different interfacial conditions at different positions.

Failure 4: After replacing radar dome components, the detection range fluctuates. The root cause is often that conductive components have mixed into the system, or the wall thickness precision has changed accordingly.

There is one thing I want to make clear: when many people find that soldering doesn't hold after changing materials, the first thing they do is adjust the machine. In fact, half of the issue should be attributed to the lubricant in the material.

Welding welds the plastic, not the lubricant. The less there is on the interface, the more reliable the weld.

5. Processing and verification, the order cannot be changed

Most of the customers who failed with the sensor housing didn't skip verification; they just did things in the wrong order: first trial molding, then supplementing material data, and only in the end did they realize the welding needed to be redone.

The first thing is drying. When the water-absorbing material exceeds the moisture limit, the feed barrel gets chain-cut, silver streaks appear on the surface of the part, mechanical properties decline, and the defect becomes visible very late.

Among the material change complaints we handle, there is a particularly typical type: the same batch of material, the same mold—one mold comes out fine while the next one is fragile, with the formula not changed a bit; it's the drying.

The second thing is mold temperature. If the mold temperature is low, the glass fibers get frozen on the surface, forming floating fibers; at the same time, the weld line fusion worsens, which can be seen immediately during short-shot sampling.

Customers often judge the direction of floating fibers incorrectly. Some see the surface turning white and request 'to switch to a lower glass fiber material.' When the mold temperature is checked, it's 80°C. Raising it to 115°C, for the same batch of material and the same mold, the surface is basically clean.

The third thing is welding parameters. The amplitude, pressure, time, and melt depth of ultrasonic welding need to be rechecked with new material, and at least three levels should be compared.

If it is laser welding or hot plate welding, the light transmittance, heating time, and bonding method also need to be rearranged.

The fourth thing is humidity adjustment. When nylon parts are loaded onto the vehicle, they will absorb moisture. The measurement conditions need to be determined together with the customer, whether to deliver in a dry state or after humidity adjustment.

It is recommended to arrange the verification sequence in this way:

1. Material level: moisture content, mechanical retention in dry and wet states

2. Interface level: Weld line strength (short shot sampling), weld spline strength

3. Process window: Compare parts produced with different mold temperatures and holding pressures, and run the welding parameters in three levels.

4. Part level: Fit with the sealing groove after humidity adjustment, re-test for airtightness

5. Complete machine level: Install into the sensor assembly for environmental endurance testing and vehicle random inspection

If the previous item fails, just move on; the numbers measured afterwards have no explanatory significance.

Why can't the order be changed? Because the welding strength depends on the interface condition, the interface condition depends on the mold temperature and the melt temperature, and the melt temperature depends on the moisture content. Skipping steps results in a conclusion that is only valid for that particular mold.

6. Boundaries: In these situations, don't change them for now

This section may be more valuable than the previous few sections because it helps you cut losses before starting work.

First, the long-term working temperature remains stable above 150°C. Ordinary reinforced systems lack sufficient long-term performance data in this range, so one should consider high-temperature nylon options or stick with metals.

Secondly, parts whose sealing surfaces are pressed together with extremely tight tolerances and require dry assembly. Nylon's dimensional changes due to moisture absorption prevent proper pressing; for these, you need to consider metals or specialized low-moisture-absorption systems.

Third, the enclosure requires high shielding performance and does not allow the addition of conductive inserts. Ordinary modified nylon cannot achieve this effect, so a combination of metal or conductive coating should be used.

Fourth, parts for which the welding method has not yet been determined. Ultrasonic, hot plate, and laser have very different material requirements. Deciding on the material before the process is set is like jumping blindly.

Writing these four points first is not to discourage you, but to save time — sample approval, batch hold, full case return; tuition is much higher if you don’t make changes from the beginning.

7. Material Replacement Risk List

link; segment; partWhat needs to be moved?Points that are easy to overlook
MoldThe shrinkage rate changes with the glass fiber content, and long parts need to be recalculated.Only replacing the material without verifying shrinkage, cannot install
DrySet the window according to the actual measured moisture content; a dehumidifying dryer is essential.Hot air drying is basically ineffective for water-absorbing materials
Material Temperature and Mold TemperatureDifferent fiberglass materials require different window settings, with floating fibers relying on mold temperature and pressure.Copy the original temperature setting
Pressure Holding and DemoldingSwitch to a low-migration grade in the demolding system to avoid interface contaminationContinuing to use the original release agent, the weld becomes weaker
WeldingAmplitude, pressure, time, and melt depth all need to be redoneCopying the original parameters, the airtightness is unstable
Humidity controlForced moisture adjustment and weight determination, then re-measure the dimensionsOffline is just quantity; the data is invalid
AirtightTesting conditions and evaluation criteria aligned with the customerPasses when dry, fails when wet
Verification orderMaterial → Interface → Process → Component Level → Complete MachineIf the previous item fails, just move on.

8. Proofing and Trial Molding Schedule

Changing the material and trial molding for the sensor housing is usually done in three rounds, without skipping steps between rounds.

First round · Sample comparison: Use your original mold to make 3–5 samples, only checking moisture content, appearance, the weld line position of short-shot parts, and floating fibers. This round does not pursue performance; first, confirm whether the material can fill the mold and what the interface looks like.

Keep two samples, mark the batch number and drying parameters, and keep them at least until the end of the second round.

Second round · Interface and process: Fix the material, vary the mold temperature and holding pressure to create two sets of comparison pieces, while running the welding parameters in three levels. Test the strength of the fusion line, the strength of the welded spline, and the weld cross-section.

This round basically determines the mass production parameters and welding settings. Samples are to be sealed by batch and kept for at least three months after mass production stabilizes.

Third round: Humidity adjustment and complete machine: Handle according to your humidity adjustment specifications, re-measure dimensions, fit of sealing groove and airtightness, then install into the sensor assembly for environmental durability testing.

Only after this round passes is it recommended to increase the volume. Keep samples sealed to cover the first batch of mass production, making it easy to track the cause.

The timing for the three rounds needs to be calculated in advance: the first to the second round usually takes two weeks, and if the welding parameters need to be tested from scratch, it will take another week; the third round depends on the customer's whole vehicle schedule, often more than a month.

You can cut rounds, but the rounds that are cut are usually made up later in the form of 'batch rework'.

9. Several Frequently Asked Questions

Question: Do the welding parameters have to be recalibrated after changing the material?

Answer: Yes. The windows for ultrasound and laser are both linked to the behavior of the melt. Changing the substrate and fiberglass content means the original settings only happened to work.

Question: When exactly should the airtightness be tested?

Answer: Measure according to the customer's actual service condition. The parts will absorb moisture once installed on the vehicle, so the data after humidity adjustment is the reliable set.

Question: Can conductive fillers be used to achieve shielding, and at the same time eliminate the need for inserts?

Answer: It depends on the requirements. Conductive fillers can affect the dielectric performance of wave-transmitting components and can also change the welding window. Parts like radomes need to be evaluated separately.

Question: How is batch consistency achieved?

Answer: Samples are kept from each batch of key grades, and reports are issued for each batch regarding moisture content, ash content, and mechanical properties. If any one of these items deviates, the entire batch is suspended. What we are doing is a data chain, not a price list.

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.

Before pouring the material into the machine, agree on what can be decided together with the process first.

Once the substrate, fiberglass content, drying window, and welding method are set, the particles just execute the conclusion. This is especially true when changing materials: if the welding parameters and humidity adjustment aperture remain the same, no matter who does the welding, it won’t be stable.

The material replacement and mold trial for this type of part can be discussed together.

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