安防壳体材料用阻燃抗冲击PP:阻燃和抗冲击为什么总打架

应用领域 发布时间: 2026-09-15 3843 阅读

Subject boundaries: Only plastic casings for civilian security equipment (surveillance device housings, access control cases, alarm casings, protective casings), does not involve weapons, police equipment, or military/police specialized gear, and does not specify physical product details corresponding to protection levels.

Why is it difficult to choose security shell materials? Because flame retardancy and impact resistance are two tug-of-war issues in PP. This article clearly lists the six working conditions of security equipment housings, the division of labor among the three material routes, eight criteria, verification sequence, reverse honesty section, and the risk list of material replacements, and explains under which conditions modified PP should not be used for this component.

- Division of labor with PP-A16: PP-A16 focuses on "how to set the gear," this article follows the "impossible triangle of flame retardancy and impact resistance," focusing on impact, low temperature, and drop

A technician working in security equipment shells once told me: this batch of material is flame-retardant to V-0, and the customer breaks easily with a drop.

Less than two weeks later, another seller asked about the reverse version: impact is achieved, but the whole machine is sent for flame retardant inspection but still can't pass.

These two sentences say the same thing—in PP, flame retardant and impact resistance are two forces pulling in two directions, and both forces must be met simultaneously.

First, clarify the scope: The security enclosures discussed here refer to the plastic casings of civilian security equipment such as surveillance device housings, access control enclosures, alarm housings, and protective enclosures, excluding weapons, police, and military/police specialized equipment.

Why do these two things always clash? The mechanism is not complicated:

- PP itself is flammable, so to pass flame retardant standards, an additional flame-retardant system must be added, and the amount of flame retardant for PP generally falls in the 25–30 % range;

- When the amount is increased, tensile, bending, impact, and toughness all decrease — this is a structural issue with PP, not a formulation level;

- To reinforce toughness, toughening agents must be added; the more toughening agents there are, the lower the flame retardancy efficiency, rigidity, and flowability; Additionally, the no-coating appearance is also unfriendly to fillers and flame-retardant components.

Therefore, the essence of choosing a model is not to find a material that is "good in every way," but to determine which of these three factors takes priority.

1. How to choose security housing materials: First, ask whether this piece is "most vulnerable to dropping" or "most afraid of burning."

Conclusion First: the first question is not "what material to use," but "which part is most vulnerable to that issue."

Monitoring equipment casings installed on exterior walls or rods are most vulnerable to impact during handling, installation, and wind loads; Access control cases installed inside cabinets fear long-term internal power module heating. Two shells in the same project can be completely different in fear, so they shouldn't use the same grade material in the first place.

The second thing to ask first: is this enclosure carrying live components? It directly determines the UL94 level and heat filing requirements, and also whether to consider CTI and electrical strength later. The third thing is material selection—first decide "what is most feared," then "which dimension gives way," and finally the grade direction for modified PP.

One sentence: There is no material on the security enclosure that simultaneously meets all three criteria: "high flame retardancy, high impact, low cost." Whoever includes all three requirements together hasn't started selecting the model yet.

2. Six-Dimensional Disassembly of Operating Conditions: The six dimensions of the security equipment housing, the numbers should be reported first

Conclusion: Temperature and load determine which route to choose, medium and lifespan determine how many years the material can last, appearance and compliance are two disadvantaged factors.

DimensionActual working conditions of security equipment housingMaterial requirements
TemperatureOutdoor chassis can reach 70–80°C on the surface exposed to summer sunlight; The area around the internal power module and main control board is often 40–70°C; In cold regions, the temperature at night during winter can reach −20~−30°CLow temperature impact is a hard line; Long-term heat resistance according to RTI ≥105°C diameter
loaddrop and throwing during installation and transportation (usually designed for 1–2 m drops); stacking and squeezing; installation torque and pre-tightening with studs and snaps; wind load and vibrationmust be tough and stress-resistant for cracking, not high rigidity
mediumwiping with rainwater and condensation, alcohol and cleaning agents, hand sweat and oils, outdoor dust and UVweather-resistant + wipe-resistant; Outdoor parts must also withstand UV aging
lifespancommercial equipment is often designed for 3–5 years, outdoor parts have stricter requirementsafter aging and must not collapse in flame retardancy or impact
appearancemostly non-spray-coated appearance parts, with color and scratch resistance directly visiblespray-free system + scratch diameter
compliantUL94 levels, hot wire, halogen-free quantification, RTI; If the casing carries live components, CTI and electrical strengthare missing one to avoid passing the standard.

Halogen-free quantification is the easiest to mention: bromine <900 ppm, chlorine <900 ppm, combined <1500 ppm. All three must be met to count.

Text Version Conclusion: Temperature and load are unanimously vetoed—modified PP is close to the brittleness zone at low temperatures, and drop-cracking is a rework level issue for the whole machine; Issues with medium and lifespan often only surface months later and are most easily overlooked.

3. Material route comparison: The three routes for flame-retardant and impact-resistant PP are divided by the housing part, not the quality of the

Conclusion First: the three routes are not about "who is more skilled," but about "which one's shortcoming happens not to be in your area."

RouteWhat do you get ?CostCompatible housing part
(1) Flame retardant + toughening system (impact priority)Good impact and low-temperature toughness; Studs and buckles are less likely to turn white or crackFlame retardant and toughening agent both occupy the same amount, causing rigidity and fluidity to drop together; High costfront panel, top cover, exposed impact surfaces, thin-walled large parts
(2) Flame retardant + fiberglass/mineral reinforcement system (rigidity priority)high bending modulus, low shrinkage, good dimensional stabilityanisotropy and weld line strength issues; surface quality deteriorates; Impact, especially low-temperature impact, is not advantageousinternal brackets, mounting plates, guide rails, bearing position for pressure tolerance
(3) Pure flame-retardant system (cost priority)only solves the "burning" problem, material cost and processing window are relatively controllablesmall impact margin, poor drop performancenon-load-bearing parts inside the sealed chamber, and small internal parts without drop risk

modified PP. Among these three routes, the most easily confused are (1) and (2): thin-walled parts of the shell are coated with glass fiber reinforcement, causing damage to both impact and surface ends; internal supports are coated with high-toughening materials, which are dimensionally stable but cost cannot be controlled.

A publicly available direction for reducing and increasing dosage: According to published journal results (Class A), after introducing organic-inorganic hybrid catalysts, the required flame retardant content for PP passing V-0 can be reduced from 25 wt% to 15 wt%. With the dosage reduced, the losses in mechanics and toughness also decrease—this is one of the few points in the "impossible triangle" that can simultaneously relax both sides. However, public data only covers laboratory standards; testing still requires item-by-item verification

The halogen system only makes parallel statements: it is highly efficient, uses a small amount, and easily achieves V-0, but the downside is that processing releases halogenated hydrogen which corrodes equipment molds, and it produces thick smoke when burning. Projects with export environmental requirements usually exclude it first.

4. ★ Selection Criteria Table: The protective enclosure material should be evaluated based on eight indicators, each with a verification method.

Conclusion first: The biggest difference between this table and ordinary physical property tables is the fourth column 'Verification Method · Standard Number'—what commonly gets people stuck on-site is often not that they don't know which item to look at, but that they don't know what to measure or how much counts as passing.

IndicatorThreshold Value (Typical)Verification Method · Standard NumberCommon FailuresCommon solution
UL94 Vertical Burning RatingV-0: Single afterglow ≤10 s, total afterglow for 10 times ≤50 s, afterglow and afterburn ≤30 s, no dripping allowed to ignite cotton; V-2: ≤30 s / ≤250 s / ≤60 s, dripping allowed to ignite cottonGB/T 5169.16 (idt IEC 60695-11-10); the grade must be marked along with the thicknessGear level does not match the dripping riskClassified by part: load-bearing live parts and falling objects that may fall onto heating parts are rated V-0; pure enclosures with no ignition risk can be rated V-2
halogen-free quantificationBromine <900 ppm, Chlorine <900 ppm, Total of both <1500 ppmXRF / IC, refer to IEC 61249-2-21Environmental compliance not up to standardHalogen-free flame retardant system, does not use halogen-containing synergists
Scorching Wire GWIT / GWFIGWIT 750 / 775℃; GWFI 850 / 960℃; 850℃ contact for 30 s does not igniteGB/T 5169.13, GB/T 5169.12 (idt IEC 60695-2-13 / 2-12)Ignited near the power moduleHalogen-free flame retardant, glass fiber or mineral filled
Room temperature notch impact23℃ notch impact ≥6 kJ/m² (appliance housing open mouth caliber)GB/T 1043.1 (simply supported beam), GB/T 1843 (cantilever beam)Cold cracking from impact or assembly stressFlame retardant toughening system
Low temperature gap shock−20℃ simply supported beam notched impact ≥3 kJ/m²; for the same type of hard-shell material property table, the −20℃ cantilever beam notched impact can reach ≥93 J/mGB/T 1843, GB/T 1043.1; the type of spline and notch, as well as the placement state of the specimen, must all be clearly specifiedBreakage from dropping in winter or cold storage environmentsToughening and adding quantity Substrate grade review Component structure fillet
RTI long-term use temperature≥105℃ (determined according to the actual working conditions inside the item)UL 746B (Long-Term Thermal Aging Extrapolation)Brittle and cracked after long-term serviceHeat-resistant substrate Filling
CTI / Electrical Strength (when carrying live parts)Material group: I is ≥600 V, II is 400–600 V, IIIa is 175–400 V; the electrical strength threshold is deduced based on the electrical clearance and creepage distanceGB/T 4207-2022 (idt IEC 60112:2020); GB/T 1408.1-2016 (idt IEC 60243-1:2013)Surface electrical leakage marks under dampness and dirtHalogen-free flame retardant, mineral-filled to prevent large-scale migration of additives
Spray-free appearance (scratch-resistant and color-consistent)Scratch dL <1.5 (preferably below 1.0), measure at least 5 points and take the averageVW PV3952: Load 10 N, scribe needle φ1 mm, grid spacing 2 mm, scribing speed 1000 mm/min, 23±5℃; additional UV heat aging for outdoor parts 500–1000 hScratches appear white, batch color differencesExposed parts should not use amide-based systems, use siloxane-based systems instead.

Text version conclusion: Among the eight items, the words 'droplet' in the UL94 row, the low-temperature impact row, and the no-spray coating row are the easiest to overlook. VW PV3952 is a commonly used industry reference, not a mandatory standard for the security enclosure part — when writing it into the technical agreement, the load, scribe test, and temperature should also be included.

5. Common Failures and Root Causes: Four phenomena, two of which are industry practices but can lead to errors

Conclusion first: Among these four types of failures on the modified PP housing, two are not material issues at all, but are due to using the wrong criteria or the wrong compensatory methods.

Failure 1: Cracking or shattering of the casing after dropping or impact. The root cause is usually one of three—an increase of 25–30% in flame retardant reduces impact resistance and toughness; PP approaches the brittle zone at low temperatures, leaving insufficient toughness margin; sudden changes in wall thickness at corners and studs create stress concentrations. First, check the wall thickness and fillets, then check the material.

Failure 2: Studs, clips, and assembly holes turn white and crack. The root cause is mostly the difference in shrinkage rate combined with assembly torque: the shrinkage rate of flame-retardant material differs significantly from that of regular PP. If the mold is still set according to the original material’s shrinkage rate, the assembly dimensions and residual stress will change. This is the most typical collateral cost when changing materials, and it is not a material defect.

Invalid Three (Dare to deny a common practice): Only focusing on the UL94 rating without considering the dripping item is wrong. The difference between V-0 and V-2 lies precisely in whether the dripping material ignites the cotton. If there are live components inside the device, whether the drips fall onto them is more critical than the few seconds of afterflame—aiming for V-0 but not checking if there is anything inside that could be affected by the drips is equivalent to purchasing a rating that does not address the actual risk.

Invalid point four (daring to deny another common practice): Increasing wall thickness to pass flame retardancy tests is wrong. Thicker walls will extend cooling time, increase internal stress, and actually reduce impact performance, while also adding weight and cost; moreover, UL94 ratings specify thickness, so trying to 'bump up' the rating by increasing thickness won't hold for thinner sections. The correct approach is to choose the right flame-retardant system and optimize the gate location and wall thickness uniformity.

6. Verification sequence: flame retardancy is the access requirement, impact is the main battlefield, and assembly is the final judgment.

Conclusion first: The order of this process cannot be reversed—flammability is the eligibility criterion, impact is the real main battlefield, and assembly and drop tests are the final judge.

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① Flame retardant: vertical burning Whether the dripping material ignites the cotton

↓ However → revert to changing the flame-retardant system or adjust the dosage

② Glowing wire: GWIT / GWFI, does not ignite when contacted at 850℃ for 30 s

↓ However → Return ① Reconfigure System

③ Room Temperature Impact: 23℃ Notched Impact Preliminary Inspection of Stud and Clip Assembly

↓ However → Return ② Use toughening filler, or modify the part structure

④ Low-temperature impact: −20℃ notched impact, the specimen is measured after placement using the same caliber

↓ However → Return ③ Increase toughness; if it cannot be restored → Modify wall thickness uniformity and fillet radius

⑤ Assembly and drop testing: complete machine drop, installation torque, clasp retention force

↓ However → Return ④ or modify the design; just replacing the material usually doesn’t solve the problem

⑥ Retesting after aging: After thermal aging / UV, retest both flame retardancy and impact.

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The most common mistake is skipping ① and ② and going straight to ③—the molding conditions of the trial piece are often temporary, and using it to judge material performance is not representative.

Text version of the conclusion: The flame retardancy checkpoint determines whether this formula has the qualification to move forward, and the low-temperature impact checkpoint determines whether the mold cost for full machine drop tests needs to be spent again. If the order is reversed, all the costs pile up at the last step.

7. Reverse Honesty: In these four situations, security housings should not use modified PP.

Conclusion first: As long as there is something 'PP cannot get,' don't force it—these types of requests are all beyond PP's capabilities.

The situation that occurredWhy is modified PP not suitable?Which way should I go?
Prolonged outdoor exposure and the appearance must remain undiscolored and deformed for extended periodsAdding flame retardant in the 25–30% range along with fillers already compresses the surface, making color difference and loss of gloss after UV even harder to control.Change the casing to PC/ABS type or engineering plastic route; structural components can still remain in PP
Requires high-level protection (explosion-proof, bulletproof level)This kind of requirement relies on the structure and composite material system to absorb energy; the toughness of the material alone cannot make up for this magnitude.Back to the structural scheme, the shell uses metal parts or fiber composite materials.
Long-term continuous working temperature continuously exceeds 100–110°C while simultaneously bearing structural loadThe hot distortion and long-term heat resistance limit of PP are around this line, and the increase from fillers and glass fiber reinforcement also has boundaries.Replace with PA type, PBT type heat-resistant engineering plastics, or metal parts
Requires metal-grade shielding or heat dissipation functionalityThe electromagnetic shielding and thermal conductivity of plastic itself are not on the same level as metals.Metal parts, or use metal shielding parts in the PP structure in conjunction with the heat dissipation structure

The pattern is consistent: whenever there is a 'simultaneous requirement for two opposite directions,' it indicates that this part should not be forcibly made with PP—adding flame retardancy while maintaining toughness, adding fillers while preserving surface quality, adding toughening while keeping rigidity, all three sets are conflicting at both ends.

8. What to Move When Changing Materials: A Checklist to Review Before Taking Action

Conclusion first: The client's real concern is often not performance, but 'Do I need to change my current mold and process?' This table is recommended to be reviewed before deciding to test materials.

Items to moveWhat needs to be confirmedWhat will happen if I don't do it?
Mold shrinkage rateThe shrinkage rate of flame-retardant materials is significantly different from that of ordinary PP (the open specification of common impact-resistant copolymer shell parts is usually in the range of 0.8–1.5%), and long parts and multi-hole parts are particularly sensitive.The dimensions are out of tolerance, causing problems with both assembly and appearance
Gate and VentingFlame retardant fillers are more sensitive to gate location and venting, and the flame retardant components generate gas when heated.Insufficient filling, gas burning, insufficient weld line strength
Material Temperature and Mold TemperatureThe thermal stability window of the flame-retardant system is relatively narrow, and the melt residence time needs to be controlled.Decomposition, surface defects, batch-to-batch variation in flame retardant performance
DryConfirm according to the specific system, it cannot be copied directly from the original processSilver threads, bubbles
Pressure Holding and DemoldingShrinkage differences cause deformation and whitening at the peak, which is more pronounced in systems with higher additive amounts.Deformation, ejection tear, stud location cracking
Color differenceParts that do not require spraying must have their color samples confirmed before going on the machine, and the flame-retardant components are colored themselves.Batch color difference controversy
Verification orderDrip and burn → Hot wire → Room temperature impact → Low temperature impact → Assembly and drop → Aging retestAll the risks are concentrated to explode at the final step

Text version conclusion: The topics that should be discussed first are shrinkage rate and verification sequence. Skipping shrinkage rate and rechecking the mold will cause all size issues to suddenly appear on the assembly line; skipping low-temperature impact and going straight to full machine drop tests will multiply the cost of failures several times.

9. One-page report comparison table (can be directly pasted into PPT)

Conclusion first: There is only one criterion for judgment—whether the client can use this sheet to finalize the material direction in a single meeting.

SceneRecommended RouteKey indicatorsVerification StandardConditions that need to be confirmed first
Outdoor surveillance equipment casing (paint-free exterior parts)Halogen-free flame retardant Toughening systemSet schedule according to parts; -20℃ notch impact reserve margin; scratch dL <1.5GB/T 5169.16, GB/T 1843, PV3952Drop height, exposure temperature, whether carrying live components
Access control machine casing / Alarm casing (near the power module)Halogen-free flame retardant, toughened, hot wire goes high-endGWFI ≥850℃, GWIT 775℃; V-0 by positionGB/T 5169.12 / .13Distance from the heating element, presence or absence of isolation baffles
Internal bracket / mounting plate (load-bearing, compression tolerance)Flame-retardant glass fiber or mineral-reinforced systemBending modulus and shrinkage rateGB/T 9341, GB/T 17037.4Assembly tolerances, stud torque, presence or absence of drop risk
Non-load-bearing parts inside a sealed cavityPure flame-retardant system (cost-priority)Set to V-2 or above HB40 according to positionGB/T 5169.16Whether there are components inside that will continue to drip

Text version conclusion: On the same device, it is normal for the exposed casing to follow 'flame retardant and toughened,' and the internal brackets to follow 'flame retardant and reinforced'; it's not about using the same grade of material uniformly, but that each part meets its own specific requirements.

10. The part that is most likely to have problems is often not the flame-retardant rating.

There are two common types of deviations in these types of parts. One is focusing only on flame retardant rating, ignoring drips and position—the difference between V-0 and V-2 lies in whether the drips ignite cotton. The common practice on site is to use 'the higher the safer' as the basis for selection, resulting in higher grades and paying the price for both mechanics and toughness. The other is to rely solely on toughening to rescue the impact—adding 25–30% of flame retardant is a structural cost for PP. Relying solely on toughening agents often compensates for rigidity and fluidity, making studs and snap positions more prone to problems.

The standard standard at the criterion level is: UL94 is set by location and labeled with thickness; Halogen-free is judged as bromine < 900 ppm, chlorine < 900 ppm, total < 1500 ppm; Glow-hot wire is classified as GWIT 750/775°C, GWFI 850/960°C, 850°C and 850°C for 30 seconds without ignition; Low-temperature shock is labeled as −20°C caliber along with the spline type; Long-term heat resistance is rated as RTI ≥105°C caliber. The common solution is to solidify the sequence: first pass through flame retardant and drip test, then use toughening to compensate for impact, and at the same time use wall thickness uniformity, fillet corners, and reinforcing ribs to distribute stress, and finally use assembly and drop as the final judgment.

Ningbo Kelong New Materials Co., Ltd. commonly supplies halogen-free flame-retardant directions for modified polypropylene (PP) particles in this part. Different toughening and filling trims are applied according to whether the shell is exposed on the impact surface or at the internal bearing position, with flame retardant levels classified by location and drip risk; The formula can be adjusted according to the working conditions of the part, and can assist customers in sample comparison, low-temperature impact, and mold trial tracking.

FAQ

Question: If the customer directly wants V-0 and I can't provide V-0 and am impact-resistant, does that mean it's out of the question?

Answer: First, clarify two things. First, does this part really need V-0 — if there are no live or heating components inside the part that will attract dripping material, there is often room to set the settings by location. Second, when the conflict cannot be resolved by the formula alone, the solution usually lies in the component structure: wall thickness uniformity, corner rounds, reinforcing ribs, which are more useful than continuing to add flame retardants.

Question: If too much flame retardant is added, the impact will be halved. Can both ends be used?

Answer: This is a structural issue with PP, not a formulation issue. There can only be three paths together: choose a more efficient flame-retardant system to suppress the increase, use a system with higher toughening efficiency to reduce the loading, and use the component structure to share the impact energy. If none of these are done, only "both ends must be needed," and in the end, neither end meets the standard.

Question: If it cracks after a drop at low temperatures, is the material too brittle?

A: Don't change the material yet. Low-temperature cracking depends on three things: whether the minimum operating temperature is correct, whether the wall thickness and corners have stress concentration, and whether the test is done with the same diameter—low-temperature impact is sensitive to spline type, notch type, and sample placement state. If the diameters are inconsistent, the same batch can yield two conclusions.

Operating ConditionsKey CriteriaConventional Supply
Exposed Shell (Prone to Impact, No Spray Needed)Set by Location; −20°C Notch Impact Leave Margin; Scratch dL <1.5halogen-free flame retardant + toughening direction, low-fill trim
chassis and housing near power moduleGWFI ≥850°C, GWIT 775°C; V-0halogen-free flame-retardant direction, high-heat wire trimming
internal bracket, mounting plate (load-bearing and compression tolerance)bending modulus and shrinkage ratehalogen-free flame retardant + glass fiber or mineral reinforcement direction
non-load-bearing components inside the sealed chamberpositioned V-2 or above HB40pure flame-retardant direction, cost prioritized trimming

Finally, three words. First, the first question about security housing materials is, "Is this part most afraid of dropping or burning?" It's not about which material is best. Second, flame retardancy and impact resistance in PP are structural tensions; the essence of selection is determining which dimension to give way. Third, the verification sequence is more expensive than the verification items: flame-retardant and dripping → hot wire → room temperature shock → low-temperature shock → assembly and drop → aging retesting.

Next article will discuss communication equipment casings and lamp holder brackets—the challenge lies in dielectric performance and long-term outdoor aging.

About Us

What we deliver is not just a package of materials.

There is also a judgment about materials, a matching physical property table, and a person who can still be found when problems arise.

Ningbo Kelong New Materials Co., Ltd. produces self-produced modified polypropylene (PP) pelletizing, covering three grades of substrates: homopolymer, random copolymer, and impact-resistant copolymer, as well as modification directions such as filling, glass fiber reinforcement, toughening, flame retardancy, low odor and low VOC, weather resistance, and no spraying or scratch resistance; Also engaged in PP resin, sub-brand materials, and large package materials for major petrochemical plants

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