改性PP做汽车前端模块与冷却风扇:耐水解与蠕变两道坎

应用领域 发布时间: 2026-09-16 3522 阅读

Modified PP is used for automotive front-end modules and cooling fans. The real challenge is not rigidity, but hydrolysis resistance and creep resistance, these two hidden thresholds. This article explains the six-dimensional operating conditions, the two paths of short glass fiber and long glass fiber, the five sets of selection criteria, the verification sequence, and the risks of material substitution all at once, and also highlights the three situations where this part should not use modified PP.

Can the front-end module and the cooling fan both use the same type of glass fiber reinforced material?

This is the most frequently asked type of question at the exhibition. Most of the people asking already know they want to use glass fiber, they just want to confirm the content — GF20 or GF30, or to go straight to long glass fiber. But in fact, this question is asked too early.

What truly determines the success or failure of this component is not how much fiberglass is added, but whether it can resist hydrolysis and creep under long-term high-temperature moisture and continuous rotational load. These two factors are not listed on any standard selection tables, yet they are the areas where failures frequently occur later.

Below, break it down layer by layer according to operating conditions, routes, criteria, and verification.

1. Six-Dimensional Breakdown of Working Conditions: Can withstand 140℃ for a short time, but for the long term, it’s the coolant that bears the load

The placement of the front module and cooling fan is very special—they are right next to the radiator and engine compartment, needing to withstand heat while being constantly exposed to coolant, moisture, and salt spray. Once the six figures are aligned, the direction basically becomes clear.

DimensionThe real working condition of this partRequirements for the materials
TemperatureShort-term heat load can reach 140°C (in front of the radiator, local areas of the engine compartment); long-term operation under hot oxygen and thermal cyclingShort-term heat resistance is the threshold, while long-term thermal aging is the line between life and death.
LoadThe centrifugal force on the fan blades increases with the rotational speed (often several thousand revolutions per minute), causing alternating fatigue on the airflow; after the front-end module is integrated, it bears multiple attachments.Creep-resistant and fatigue-resistant, not simply rigid
MediumLong-life ethylene glycol coolant, water vapor, salt spray, motor oil, and brake fluid splashesHydrolysis-resistant and coolant-resistant are hidden hard lines
LifespanThe entire vehicle lifecycle (commonly designed for 10 years / 15 years or 100,000 kilometers)After long-term soaking in water, the strength does not collapse.
AppearanceMostly parts that are not visible in the engine compartment, appearance can be compromisedLow surface requirements, focus on size and strength
ComplianceOEM Material Control: Heat Aging Resistance, Hydrolysis Resistance, Coolant ResistanceAutomotive-grade substrates and stable systems

Among the six dimensions, the medium dimension is the easiest to overlook. Many people choose this part only based on rigidity and heat resistance, but after one or two years of running in a vehicle, the parts that have been soaked in coolant for a long time start to age and crack—the root cause is not strength, but hydrolysis.

An insider detail: PP itself has an extremely low water absorption rate (usually below 0.05%), and its dimensions are not affected by humidity, which is naturally an advantage for this type of part. But 'does not absorb water' does not mean 'resistant to hydrolysis'—under prolonged high temperatures, water molecules can break molecular chains and erode the interface between glass fibers and the matrix, quietly reducing strength. Therefore, hydrolysis resistance is a matter of the system, not something that can be covered by a single statement about the base material.

2. Comparison of material routes: short glass fiber, long glass fiber, one section for each tube

As this piece falls down, the material direction mainly converges to two fiberglass routes, plus a boundary of 'when to change the material.' We don't make any conclusions about 'which is better,' only looking at the division of labor.

RouteAcquired abilityThe price to paySuitable for which section
Short Glass Fiber PP-GF20 / GF30Rigid, dimensionally stable, reduced creep; for parts that tend to flex due to structural design, GF reinforcement is most appropriate.Anisotropy, weld line weakness, surface floating fibersFan blades, air guide shrouds, components prone to structural deflection
Long Glass Fiber PP-LGFTensile strength 50–80 MPa, bending strength 80–120 MPa, notch impact at room temperature 15–40 kJ/m², HDT 120–180℃, density 1.0–1.2 g/cm³, shrinkage 0.3–0.8%; the front-end module can reduce weight by about 30% after integrationExtremely sensitive to injection molding shear; if the retained length cannot be maintained, it will be wasted.Load-bearing structural components such as the front module, pedal board, and tailgate panel
Metal (steel / aluminum) or other heat-resistant systemsLong-term above 150℃, extremely high dynamic balance, metal-grade thermal conductivityHigh cost, heavy, many processesOperating conditions beyond the PP boundary

For the short glass fiber line, the industry practice is to use GF20–30 glass fiber reinforcement, toughening, and nucleation to reduce creep and shrinkage; the short-term thermal load is checked at the 140°C level. It is most suitable for parts like fan blades, where the shape must be maintained and the mass distribution must be uniform.

For the long glass fiber line, the key is not the glass fiber content, but the retained length of the glass fiber. According to published data, the critical length is >3.1 mm—below this, the fibers will be pulled directly out of the matrix when stressed, and the strength cannot be realized. The solution is to use ultra-low melt viscosity PP resin (MFR about 300 g/10min) to reduce shear, high-crystallinity PP to maintain strength, and a low-shear screw to keep the retained length above the critical value.

These two paths are not about 'is short better or long better'; they are different things with different roles. Fan blades are concerned with warping and dynamic balance, and short fiberglass is sufficient and easier to control; the front-end module needs to bear load and reduce weight, so long fiberglass is worthwhile.

3. ★ Selection Criteria Table: five columns, each item comes with a verification method

The table below is the part of the whole article most worth saving. Pay attention to the third column "Verification Method · Standard Number" — what usually gets stuck when choosing this item is not "which indicator to check," but "what to measure with and how much counts as passing."

IndicatorThreshold (typical)Verification Method · Standard NumberCommon FailuresCommon solution
Short-term heat-resistant loadCan withstand a short-term thermal load of 140℃Heat deflection temperature ISO 75 / GB/T 1634 (specify load level) Short-term heat testHot deformation, local softeningGlass fiber reinforced thermal stable system
Hydrolysis resistant / Coolant resistantEthylene glycol long-life coolant does not crack after long-term soakingCoolant Soak Thermal Aging Test (industry standard, according to OEM company standard)Long-term soaking, aging, and crackingCompatibilized PP Toughened System Hydrolysis Stabilizer
Shrinkage Rate and AnisotropyShort glass fiber 0.5–0.9%; long glass fiber 0.3–0.8%GB/T 17037.4 / ISO 294-4Warping and uneven assembly clearanceNucleating agent controlled shrinkage, symmetrical gate
Glass fiber retained length (long glass fiber)>3.1 mm (critical length)Microscopic measurement of fiberglass length (cross-section/extraction)Insufficient length, fibers pulled outUltra-low viscosity resin MFR≈300 Low-shear screw
Bending modulus / RigidityLong glass fiber bending 80–120 MPaGB/T 9341 / ISO 178Stress deformationGlass fiber reinforced gear selection
Room temperature notch impactLong glass fiber 15–40 kJ/m²; short glass fiber toughened systemGB/T 1043.1 (Simply Supported Beam)Low-temperature cracking (fan blade)Increase toughening system dosage Substrate grade verification
Dynamic Balance / Dimensional ConsistencyThe mass difference between the blades is within the overall dynamic balance gradeDynamic balance test (according to the complete machine specifications)Vibration, bearing wear, root fatigueShrinkage anisotropy control Symmetrical filling

Textual Conclusion: Among the seven items, hydrolysis resistance and glass fiber retention length are the two that should be checked first for this part. They are not included in the standard 'strength table,' yet they are the main causes of later failures. Shrinkage rate is not 'just the material's business'; it needs to be considered together with the customer's mold — a 0.1% change in long glass fiber shrinkage can consume the full tolerance on large parts. Treat this table like a medical check-up form; missing an item should result in a failing judgment. It's much more cost-effective than testing a sample first and then going back to find the reason.

4. Common Failures and Root Causes: Four Phenomena, Four Root Causes

Failure 1: Creep warping and dynamic imbalance after high-speed rotation. The root cause is mostly the anisotropic shrinkage caused by the orientation of the glass fiber, as well as inconsistent filling conditions between the blades. First, check the symmetry of the gate and the shrinkage rate, then check the material—if the order is reversed, you'll go through several rounds for nothing.

Failure 2: Long-term soaking in high-temperature coolant causes aging and cracking. The root cause is that the matrix hydrolysis resistance was insufficient, and it did not use a copolymerized PP blend toughening system. This type of cracking often only becomes apparent one to two years after the vehicle is put into use, and the rework cost is the highest.

Failure 3: Fan blades become brittle and crack at low temperatures. The root cause is mostly insufficient toughening system, the base material grade being too low, or stress concentration caused by wall thickness thinning too quickly at corners. First, check the wall thickness design, then check the material.

Myth 4 (dare to deny a common practice): Attributing all warpage to 'the mold wasn't made well.' Wrong. The root of warpage in fiberglass materials is the directional arrangement of the fibers—shrinkage is small in the flow direction and large in the perpendicular direction. This is the inherent anisotropy of the material, not a mold precision issue. The solution lies in balancing it with content, gates, and nucleating agents; blaming the mold will only overlook the material parameters that truly need adjustment.

There is also a more subtle misconception: thinking that hydrolysis resistance just means adding more fiberglass. Hydrolysis resistance is related to the matrix and interface system (copolymerized PP mixed toughening and hydrolysis stabilizers); fiberglass itself does not solve hydrolysis. If the interface is not properly treated, the gaps between the fiberglass and the matrix can actually become water channels, causing cracks to appear faster.

5. Verification sequence: what is a priori, what is a posteriori

Almost no one in the industry writes this part, but it is the key to whether material changes can save money. If the order is wrong, the costs will concentrate and explode at the final step.

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① Sample physical comparison: tensile / bending / notched impact / shrinkage / MFR / glass fiber retention length

↓ Only if all seven items are within the threshold, proceed further

② Hydrolysis resistance and heat aging resistance Soaked in ethylene glycol coolant Hot oxygen aging (according to enterprise standard duration)

↓ If you don't pass this level, you don't need to do the rest (the easiest to veto)

③ Short shot mold trial Check if the filling is complete, where the weld lines are, floating fibers, and reserve for dynamic balance

↓ Only after the short-range shot works can we talk about mass production

④ Loading / Complete machine matching Clearance, dynamic balance, creep tracking

⑤ Batch trial production Client-side verification

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Text version conclusion: The verification sequence is: sample → hydrolysis aging resistance → short shot → molding matching → mass production. The hydrolysis resistance step must be completed before mold trials, because it is the most likely to result in a total rejection and also the latest to show issues; once it is passed, then tasks on the mold side can be done, so the mold trial costs are not wasted.

6. Reverse Honesty: In these three situations, this part should not use modified PP

Earlier we talked about 'how to do it'; here we talk about 'when not to do it.' This section has the highest value for selection and judgment.

The situation that occurredWhy is modified PP not suitableWhich way should I go?
Requires a long-term operating temperature above 150℃The upper limit of the heat deflection temperature of modified PP is around that line, and even glass fiber reinforcement has its boundary when raised.Switch to a higher heat-resistant engineering plastic system
Requires extremely high dynamic balance accuracy and does not allow any creep (such as long-term high-speed rotating parts like fan blades)The creep of PP is structural, and can only be alleviated through modification; zero creep cannot be achieved.Change to metal or specialized high-precision solution
Requires metal-grade thermal conductivityPP itself is an insulating material; thermal conductivity relies on an additional filler system, which will also compromise the mechanical properties.Use metal-based or thermal-conductive special materials
Require A-grade surface and high glass fiber content at the same timeExposed fiberglass and surface quality are inherently in conflictStructural parts use fiberglass, surface parts choose separately

The pattern is very clear: whenever 'requirements in two opposite directions appear at the same time,' it indicates that this part should not be forced with PP. When faced with such a demand, our approach is to first clarify this point, and then discuss whether there is room for compromise—orders that are forcibly accepted in the end all have to be returned through rework and claims.

7. What to touch when changing materials: a checklist to look at before you act

Before deciding to try modifying PP, it is recommended to go through this table first. The customer's real concern is often not performance, but 'whether I need to change my current mold and process'.

Items to moveWhat needs to be confirmedWhat will happen if I don't do it?
Mold shrinkage rateThe difference in shrinkage rate of the new material compared to the original plan is particularly sensitive in long partsThe dimensions are out of tolerance, and the assembly gaps do not align.
Gate and VentingDoes the difference in the flow of fiberglass material require changing the gate position and number?Insufficient filling, weld line located at the stress area
Material Temperature and Mold TemperatureLong glass fiber materials are more sensitive to shear, and the process window is different.Glass fiber cut off, insufficient retained length, floating fibers
DryThe fiberglass system is determined according to the specific grade, and most require water control.Silver threads, bubbles, interface degradation
Pressure Holding and DemoldingShrinkage differences cause deformation and whitening on the surfaceDeformation, extrusion strain
Color differenceMany components inside the engine compartment are not visible, so the appearance can be compromised.Dispute over batch color differences in visible parts
Verification sequenceSample → Hydrolysis aging resistance → Short shot → Vehicle loading matchAll the risks are concentrated to explode at the final step

Text version of the conclusion: Changing materials involves three aspects: mold, process, and color difference, among which the verification sequence should be discussed first. Skipping small samples and directly trying the mold is equivalent to spending the cost in advance; skipping hydrolysis aging tests and going directly to mass production means that a single failure will expose the entire batch to the client.

8. One-page report sheet (can be directly pasted into PPT)

SceneRecommended RouteKey indicatorsVerification StandardConditions that need to be confirmed first
Cooling fan bladeShort glass fiber PP-GF20/GF30 Toughening NucleationShrinkage 0.5–0.9%; leave allowance for notch impact at room temperatureGB/T 17037.4, GB/T 1043.1Speed range, minimum operating temperature, current mold shrinkage rate
Frontend moduleLong glass fiber PP-LGF (retained length >3.1 mm)Bending 80–120 MPa; HDT 120–180℃; Shrinkage 0.3–0.8%ISO 178, ISO 75, Glass Fiber Length DeterminationList of integrated load-bearing components, weight reduction target
Radiator Water Chamber / Expansion TankCo-polymerized PP toughened blend systemEthylene glycol-resistant coolant, hydrolysis-resistant, heat aging-resistantCoolant Soak Thermal Aging (Enterprise Standard)Coolant model, operating temperature range
High-temperature components in the engine compartmentShort glass fiber reinforced thermal stable systemShort-term 140℃ thermal loadGB/T 1634 (Specify Load Range)Is the long-term temperature approaching the PP limit

Text version conclusion: The purpose of this table is to allow technicians to report conclusions directly without having to reorganize their wording. There is only one criterion for judgment—whether the client can use this table to finalize the direction of the materials in one meeting.

9. The part of this piece that is most prone to problems is often not the material.

In the industry, the most common early failures for this type of part fall into two categories: first, long-term immersion in coolant leading to aging and cracking; second, fan blades experiencing creep warping and imbalance after high-speed rotation. According to publicly available information, the standard process for air conditioning ducts / air guides / fan blades is GF20–30 glass fiber reinforcement, toughening, and nucleation, aimed at reducing creep and shrinkage. Long glass fiber structural parts (front modules / pedal panels / tailgate panels) require the glass fiber to retain a length >3.1 mm (critical length), with tensile strength of 50–80 MPa, flexural strength of 80–120 MPa, HDT of 120–180°C, and shrinkage of 0.3–0.8%. After integration, the front module can reduce weight by about 30%. For radiator water tanks / expansion tanks, more emphasis is placed on long-term resistance to ethylene glycol coolant, hydrolytic stability, and heat aging resistance, using a copolymer PP toughened system.

The public criteria are clearly written: short-term heat load is checked at 140°C (ISO 75 / GB/T 1634, the load range must be specified); hydrolysis resistance is determined by a coolant immersion thermal aging test; the strength performance of long glass fibers depends on whether the retained fiber length exceeds the critical value. The countermeasures are ultra-low melt viscosity PP resin (MFR about 300 g/10min) to reduce shear, high-crystallinity PP to maintain strength, and low-shear screws.

The common practice in the industry is to determine the grade of the substrate, the glass fiber content, the toughening system, and the hydrolysis stabilizer together—looking at any single one alone is meaningless. The key is not 'whose material is stronger,' but whether the four aspects of substrate, reinforcement, interface, and stabilizing system can all align simultaneously.

Ningbo Cologne New Materials Co., Ltd. produces modified polypropylene (PP) pellets. The products commonly supplied for this part are glass fiber reinforced and hydrolysis-resistant pellets. The corresponding base material grades and modification directions are given according to the part's thermal load, speed range, and coolant environment. These pellets are mainly used to address the aforementioned issues of 'long-term water soaking cracking' and 'rotational creep warping.' The formulation can be adjusted according to the part's operating conditions, and small sample comparisons and mold testing can be performed. It can also meet the demands of customers for small batches of multiple varieties at the part level.

Frequently Asked Questions

Q: Short glass fiber and long glass fiber, which one should this part go on?

Answer: What’s there to be afraid of? Fan blades are afraid of warping and dynamic imbalance; short glass fiber GF20–30 is enough and easy to control. The front-end module needs to bear load and reduce weight, so long glass fiber is worthwhile. It’s not that 'long is necessarily better'; it’s about whether the retained length is sufficient and whether the part needs to bear load.

Question: For hydrolysis resistance, is it just a matter of adding more glass fiber?

Answer: No. Hydrolysis resistance is a matter of the matrix and the interface system (copolymerized PP with enhanced toughening and hydrolysis stabilizer); the glass fiber itself does not solve hydrolysis. If the interface is not properly treated, it can actually become a water entry channel. This is the easiest aspect to be overlooked during selection.

Operating conditionKey criterionCologne regular supply
Cooling fan bladeShrinkage 0.5–0.9%; notch impact at room temperature; balancing allowanceShort glass fiber PP-GF20/GF30 Toughened Nucleation direction
Frontend moduleGlass fiber retention length >3.1 mm; bending 80–120 MPaLong glass fiber PP-LGF orientation
Radiator Water Chamber / Expansion TankEthylene glycol-resistant coolant, hydrolysis-resistant, heat aging-resistantCopolymer PP toughened and hydrolysis-resistant direction

I want to give a reminder: when there is a problem with a part, the most common mistake is to replace the material first. Creep, cracking, imbalance in dynamic balance—each of these issues has more than one cause. First identify the cause, then replace the material; if you reverse the order, you often end up replacing materials several times without solving the problem.

Ten, Lastly, Say Three Sentences

First, what really traps people about this part is hydrolysis resistance and creep resistance, not rigidity. In the six-dimensional working conditions, the medium dimension is the easiest to be overlooked, yet it happens to be the high-risk area for later failures.

Second, the strength of long glass fibers is not added on, it is preserved. If the retained length does not exceed the critical value of 3.1 mm, the fibers will be pulled out, and increasing the content will be useless; short glass fibers and long glass fibers have different roles, not higher or lower status.

Third, the verification sequence is more important than the verification items. Sample → Hydrolysis aging resistance → Short shot → Loading match, the hydrolysis resistance step must be placed before mold testing.

The next one talks about the dashboard skeleton—the thing that's most feared is not lack of rigidity, but being constrained by both smell and size at the same time.

About Us

The most troublesome inquiry is this one: the material hasn't changed, but the part has a problem.

The material really hasn't changed; what has changed are the batch, drying, mold temperature, mold wear, or one specific thing altered to save money. The parameters drift slowly, but the problem appears overnight.

Ningbo Kolon New Materials Co., Ltd. offers modified polypropylene (PP) pellets and PP resin in stock, covering directions such as filling, reinforcement, toughening, flame retardant, low odor, weather resistance, and paint-free.

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