电器外壳用阻燃PP:V-0 和 V-2 到底该选哪一档

应用领域 发布时间: 2026-09-12 1849 阅读

The appliance casing uses flame-retardant PP, which is prone to two extremes: if the grade is chosen too low, the whole device will fail safety certification; if chosen too high, the amount of flame retardant increases, and the posts crack as soon as you screw them in. This article explains the real differences between V-2 / V-1 / V-0 / 5VA, provides a method to deduce the grade based on safety distances and shielding, and gives the verification sequence, reverse honesty section, and a risk checklist for material substitution.

Our base is quite far from the live parts, and it even has an extra layer on the outside. Do we really need V-0? With the current V-0 material, it cracks as soon as you screw in the stud.

I have heard this sentence more than once at the exhibition. The people asking have already hit the pitfalls: the shell and base are both made of V-0 material, so the flame-retardant part is fine, but cracks start to appear during assembly. The opposite situation is also common: the shell is rated V-2, and when the whole machine is submitted for inspection, it is pointed out that this spot is too close to the current-carrying connector.

These two types of accidents point to the same thing: the fire resistance rating is not 'the higher, the safer.' It is a positional parameter inferred from the overall equipment safety regulations based on 'how far it is from the fire source and whether there is shielding.'

1. The two things that are easiest to fail in this matter: not enough gears, and gears too high

Conclusion first: The failure of the casing and base parts is not due to 'not being able to ignite,' but because 'the gear position did not align correctly.'

The insufficient gear levels are reflected very directly: the part gets stuck when the whole machine is sent for inspection. The inspectors look at the distance of this part from the current-carrying connector, how much current it carries, whether anyone is supervising, and whether there is a protective shield.

Higher gear levels are more concealed because they don't occur on the casing but on the assembly line. When materials are changed or more flame retardant is added, the casing itself looks fine, but the roots of the studs, clips, and ultrasonic weld lines—these stress concentration points—start to whiten and crack, or the base breaks first when the whole device is dropped.

The third category is most easily misjudged as 'the material is too brittle.' Detergents, grease, surfactants, and assembly stress work together, causing the casing to crack at the corners a few months after installation — in the industry, this is called environmental stress cracking, even though conventional physical property indicators are often within specifications.

A judgment: What this part requires is not the highest grade, but the grade that matches the position. If the grade is one level higher and the quantity is increased by one level, the strength and toughness will drop accordingly.

2. The difference between V-2, V-1, and V-0 is not about 'good or not,' but whether the drips ignite the cotton wadding.

Conclusion first: For these few tests using the same set of samples and the same methods, the only differences are two sets of numbers — how long the combustion lasts and whether the dripping material will ignite the absorbent cotton below.

The V-level vertically burning specimen is a 125 mm × 13 mm strip, with a 20 mm blue flame applied twice, each time for 10 seconds, and then observing whether the remaining flame, afterglow, or drips ignite the cotton below. According to the public determination table on UL's official website and the scope of GB/T 5169.16 (idt IEC 60695-11-10):

LevelSingle Residual Flame TimeTotal Residual Flame from 10 Flame ApplicationsAfter the second flame application, residual flame and residual burnDripping substances ignite the cotton below
V-0≤10 s≤50 s≤30 sNot allowed
V-1≤30 s≤250 s≤60 sNot allowed
V-2≤30 s≤250 s≤60 sAllow

The line that should be remembered most is the comparison between V-2 and V-1: both have exactly the same burn time requirements, the only difference is whether the dripping material is allowed to ignite the cotton. So the idea that "V-2 is much worse than V-1" is a misreading—they only differ in this one aspect, and this aspect is only critical in places where "the drips can fall on heated components."

Above that are 5VA and 5VB: switching to 500 W, 125 mm large flames, the distinction is not in time, but in "whether it burns through" — 5VA requires the board-shaped sample not to have holes, while 5VB allows burning through.

The second thing to remember: the rating must be reported together with the thickness. For the same formula, a 1.5 mm sample strip may only reach V-2, while a 3 mm strip can reach V-0; a 'V-0' without specifying the thickness cannot be applied to your part.

The third thing is the main line: this level in safety regulations is not "safety strength," but a position parameter. Household appliance safety regulations are classified according to four things: how far it is from current-carrying/heating parts, the amount of current carried, whether there is supervision, and whether there is a shield panel. According to the public wording of Chapter 30 of GB 4706.1:

- Non-metallic exterior parts must pass a 550°C glowing wire test (GB/T 5169.11); however, if the material category reaches HB40 or above, this step can be exempted.

- Devices that are monitored by someone, insulating parts supporting current-carrying connectors, and parts within 3 mm of these connectors: For current exceeding 0.5 A, use 750℃; for others, use 650℃.

- Unattended, carrying a current exceeding 0.2 A: these parts and parts within a 3 mm range, material GWFI at least 850°C; or parts exceeding 750°C with an ignition time not exceeding 2 s.

- The parts that cannot be reached should also be tested: perform a needle flame test on the parts above the connector (cylindrical area with a diameter of 20 mm and a height of 50 mm); parts shielded by an isolation baffle are not tested.

Connecting these few items together changes the answer to 'whether to V-0'—it depends on how far it is from live parts (3 mm is the dividing line), the current amount (0.5 A and 0.2 A are two different points), and whether there is a shielding baffle. A fully enclosed external shell, which is quite far from the live parts, and a base that is right next to the terminal block, should not be in the same category in the first place.

This is also the most expensive wasteful expense for this part: the shell was originally enough with V-2, but the idea of 'the higher, the safer' pushed it to V-0, and the cost was all three increasing together—higher quantities, more degradation in mechanics and toughness, and rising costs.

3. Six-dimensional breakdown of working conditions: six dimensions of the electrical enclosure and base, report the numbers first

Conclusion first: The two dimensions of temperature and position determine 'whether a high grade is needed,' the two dimensions of medium and load determine 'whether it can remain crack-free for a long time,' and appearance and compliance are two veto items.

DimensionOperating conditions of electrical appliance casing/baseRequirements for the materials
TemperatureGenerally, the inside parts are 40–80℃, higher near the heating elements; for small appliance housings and similar parts, the heat resistance is often specified as 120–150℃.Thermal aging is judged according to RTI ≥105°C; in the short term, look at the glowing wire level
LoadSelf-weight Assembly torque Clip pre-tightening Whole machine drop; Studs and clips are stress concentration pointsWhat is needed is toughness and resistance to stress cracking, not high rigidity.
MediumDry area parts are exposed to dust and hand sweat; wet area parts are in long-term contact with detergents, grease, and surfactantsWet area components must first pass the ESC checkpoint
LifespanBased on the designed service life of the whole machine, the wet area components are subjected to the long-term effects of detergents and warm water.ESC looks at F50 and 500 h scale
AppearanceHighlight or paint-free shell, color difference and surface defects are directly visibleThe surface effects of filler and flame-retardant components should be considered together
ComplianceUL94 rating, glowing wire (550 / 650 / 750 / 850℃), needle flame, halogen-free quantification, RTIMissing even one means you haven't passed.

Halogen-free is the easiest to be verbalized. Its quantitative definition is bromine <900 ppm, chlorine <900 ppm, and the total of both <1500 ppm; all three conditions must be met to qualify.

Text version of the conclusion: Temperature and position determine the setting, while the medium and load determine the lifespan. Considering 'how far this part is from the live part' as a parameter to report first is more useful than asking which material to use first.

4. Comparison of material routes: halogen-free flame-retardant PP, halogen-containing flame-retardant PP, and the division of labor with engineering plastics

Conclusion first: this is not about 'who is better,' it is about 'which one's shortcomings just happen not to be in your part.'

RouteGet whatCostApplicable Location
Halogen-free flame-retardant PP (mainly phosphorous-nitrogen intumescent system)Passed V-0; good smoke suppression performance; meets halogen-free quantificationThe dosage is generally in the 25–30% range, with significant reductions in strength and toughness; water resistance and heat-moisture resistance need to be evaluated separately.Large thin-walled parts such as shells, bases, and panels
Halogenated flame-retardant PP (contains halogenated flame retardant and synergist)High efficiency, low usage, V-0 is relatively easy to achieveProcessing releases hydrogen halides when heated, corroding equipment and molds; burning releases hydrogen halides and thick smoke; hot wires often show being affected.Consider only when the project explicitly allows it and there are no export environmental requirements
ABS / PC-ABS / PBTABS has good appearance and toughness, and is easy to polish; PC-ABS has higher impact and heat resistance; PBT has better heat and chemical resistance, and better dimensional stabilityABS has average heat resistance; PC-ABS and PBT are expensiveHighlight exterior parts, precision structural components, heat- and chemical-resistant positions

There is one more point that must be made clear: the amount of flame retardant added to PP generally falls in the 25–30% range, and the resulting loss in mechanical strength and toughness is a structural issue of PP, not a formula-level problem. When faced with the simultaneous demands of "V-0, high impact resistance, and low cost," we first discuss the priorities, then the material.

5. ★ Selection Criteria Table: Seven indicators, each with a verification method

Conclusion first: The biggest difference between this table and a regular physical property table is the fourth column 'Verification Method · Standard Number' — the common problem is often not that you don't know which item to look at, but that you don't know what to measure or what measurement count as passing.

IndicatorThreshold Value (Typical)Verification Method · Standard NumberCommon FailuresCommon solution
UL94 Vertical Burning RatingBased on position: Within 3 mm of current-carrying connectors, V-0 or V-1 or above is required; for an outer shell away from fire sources, it can go down to V-2 / HB40 level.GB/T 5169.16 (idt IEC 60695-11-10); the grade must be indicated along with the thicknessReturned due to insufficient grade; too high a grade wastes mechanics and costsClassified by safety regulation position; different parts of the same machine can have different classifications
Incandescent wire (external component, component caliber)550℃; materials of category HB40 or above can skip this stepGB/T 5169.11 (idt IEC 60695-2-11)Ignition upon contact with heating elementIf the material category is selected as HB40 or above, testing is directly waived.
Hot wires (supporting current-carrying components, categorized by distance and current)Supervised: Within 3 mm of the connector, >0.5 A at 750°C, others at 650°CGB/T 5169.11Ignition near the terminal blockHalogen-free flame retardant Filling system
GWFI / GWIT (Material Category Caliber)Unattended, current >0.2 A: GWFI ≥850℃; or component over 750℃ and ignition ≤2 s, or material GWIT 775℃GB/T 5169.12, GB/T 5169.13 (idt IEC 60695-2-12 / 2-13)Ignition upon long-term high-temperature exposureHalogen-free flame retardant Glass fiber / mineral filled
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
halogen-free quantificationBromine <900 ppm, Chlorine <900 ppm, Total of both <1500 ppmHalogen content testing (XRF / IC), according to IEC 61249-2-21Environmental compliance not up to standardHalogen-free flame retardant system, does not use halogen-containing synergists
Environmental Stress Cracking (ESC)ASTM D1693 Bent Strip Method (10% Igepal CO-630, 50±0.5℃, observe the time for 50% of samples to crack F50); or ISO 22088-3 Constant Tensile Stress Method; or ISO 6252 Constant Strain Method (50–80℃, strain 1.0–2.0%)ASTM D1693 / ISO 22088-3 / ISO 6252Cracking under the combined effects of detergent, grease, and assembly stress (material is fine, part cracks)Stress corrosion cracking system Control assembly stress Structural fillet

Text version conclusion: Among the seven items, the gear row and the ESC row are the main focus of this article—the former determines whether you spend that unnecessary money, and the latter determines whether it will crack a few months after being installed.

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

Conclusion first: Among these four categories, the only one that truly belongs to 'bad material' is one category; the other three are respectively 'position not back-calculated,' 'compensation by increasing quantity,' and 'collusion of medium and stress'.

Failure 1: The whole machine was blocked during inspection, and the materials need to be re-certified. The root cause is that during the selection process, the safety standard positions were not considered first—how far they are from current-carrying parts, how much current they carry, and whether there is shielding were not clarified before the materials were finalized.

Failure 2: When the flame-retardant level is high, the assembly cracks. The root cause is the structural cost of increasing flame retardant: for PP, this level of increase is generally 25–30%. With the increase, the mechanical properties and toughness inevitably drop, manifested as whitening and cracking at the base of the studs, and the base breaking first when dropped.

Failure 3: After being assembled and used for a few months, it cracked from the rounded corners, but the material inspection was qualified. The root cause is environmental stress cracking: detergents, grease, and surfactants, combined with assembly stress, induce silver streaks that expand into cracks. First, check whether there is residual stress in the part, and then check the material.

Invalid point four (daring to contradict a common practice): Purchasing all plastic parts as V-0 material. This is wrong: it pushes enclosures that don’t require high-grade material to high amounts, making you pay for mechanics, toughness, and cost all together; and the additives brought by the high-grade material, such as fillers and flame retardants, make the ESC risk harder to control in humid environments—the grade chosen for "uniform convenience" might just be the one that causes parts in wet areas to crack.

7. Verification sequence: Follow safety regulations in reverse, set the gear position first, then determine the material.

Conclusion first: The verification sequence for this part is reversed — first determine the overall equipment safety requirements (distance from fire source, whether there is shielding), then determine the flame retardant grade, and only finally consider the base material and filling.

`

① First determine the position of the safety device: how far from the current-carrying/heating components (3 mm?), and what current it carries (0.5 A / 0.2 A?).

Is someone taking care of it, and is there a partition or barrier?

↓ This step sets the gear, only then does what comes next have meaning

② Fixed flame-retardant level At this position, is V-0 needed, is GWFI 850℃ needed, is the needle flame needed

③ Base Material and Filling: Homopolymer / Impact Copolymer; Mineral Filled or Glass Fiber Reinforced; Halogen-Free or Halogen-Containing

④ Mechanical and toughness compensation: Make up for the cost of a 25–30% increase in flame retardant by toughening and filling.

↓ Cannot be made up, return ② renegotiate the grade or change the part structure

⑤ ESC and Aging Detergent/Oil Stains ESC under assembly stress; thermal aging according to RTI specifications

↓ If you can't pass this wet area section, you don't need to do any of the previous parts.

⑥ Complete Machine Verification Incandescent Wire, Needle Flame, Complete Machine Certification

`

Each level has a criterion of 'just return to the previous level.' The most common mistake is skipping ①② and going straight to ③, picking a flame retardant that looks satisfactory, making it first, and then going back to check the safety standards—by then, the grade, dosage, and structure are already fixed, and the only thing that can be changed is the cost.

In one sentence: This part is backwards from the safety certification, and the accounts in reverse order are eventually reconciled on the complete machine certification and assembly line.

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

Conclusion first: As long as 'things that PP cannot achieve' appear, you shouldn't force it—long-term over 150°C, 5VA grade with limited wall thickness, transparent or high-gloss appearance, these three things are very difficult for modified PP to handle.

The situation that occurredWhy is modified PP not suitableWhich way should I go?
Requires a long-term operating temperature above 150℃The heat resistance upper limit is around that line, and raising the fill and glass fiber reinforcement also has boundaries.Switch to more heat-resistant engineering plastics or metals
Requires 5VA grade and limited wall thicknessFor 5VA, the board sample needs to be burned without burning through, which relies on high filler content and increased flame retardant; under thin walls, it’s very difficult for PP to maintain both mechanical properties and this level.Replace with flame-retardant engineering plastics (PC/ABS type, PBT, PA type) or metal
Requires a transparent or glossy appearanceA flame retardant addition of 25–30% will inevitably damage transparency and high gloss, and the surface defects of the mineral and flame retardant components cannot be suppressed.Transparent parts use PMMA / PC / transparent ABS; high-gloss parts use ABS / PC-ABS

The pattern is consistent: whenever there are 'two opposite requirements at the same time,' it indicates that this part should not be forcibly made with PP — heat resistance versus reduced filling, increased amount versus reduced material, low filling versus high filling; all three sets are contradictory at both ends.

9. What to touch when changing materials: a checklist to look at before taking action

Conclusion first: the customer'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 the material.

Items to be movedWhat needs to be confirmedWhat will happen if I don't do it?
Mold shrinkage rateThe shrinkage rate of the new material differs from the original plan, and the base with assembly holes is particularly sensitive.The dimensions are out of tolerance, and the assembly does not fit.
Gate and VentingFlame-retardant fillers are more sensitive to gate positions and ventingUnderfill, burn marks, insufficient weld line strength
Material Temperature and Mold TemperatureHalogen-free flame retardant systems have a relatively narrow thermal stability window, so the residence time must be controlled.Decomposition, surface defects, and fluctuations in flame retardant performance
DryConfirm according to the specific system, do not directly copy the original processSilver threads, bubbles
Pressure Holding and DemoldingShrinkage differences cause deformation and whitening on the surfaceDeformation, extrusion strain
Verification orderSafety regulation position → Flame retardant gear → Base material and filling → Mechanical compensation → ESCAll the risks are concentrated to explode at the final step

Text version conclusion: Changing materials involves three aspects: mold, process, and appearance, among which the order of verification should be discussed first. Skipping safety position and directly trying the mold is equivalent to spending a mold trial fee first; skipping ESC and going directly to mass production, problems with wet area parts often only emerge several months later.

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

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

SceneRecommended RouteKey indicatorsVerification StandardConditions that need to be confirmed first
Pure casing, away from current-carrying/heating componentsFlame-retardant PP drops by one grade (V-2 or material category above HB40)550℃ glowing wire test can be avoided; V-2 or aboveGB/T 5169.16, GB/T 5169.11Distance from the current-carrying parts, whether someone is supervising, whether there are barriers
Base, terminal seat, supporting current >0.2 A or within 3 mmHalogen-free flame-retardant PP, V-0, 850℃ gradeGWFI ≥850℃; or GWIT 775℃; V-0GB/T 5169.12 / .13 / .11, GB/T 5169.16Current carrying capacity, tube lighting status, presence of shielding baffle
Wet area components (control panel, kitchen small appliances)Halogen-free flame retardant, ESC-resistant systemESC press F50 to check with acceleration timeASTM D1693 / ISO 22088-3 / ISO 6252Medium type, assembly stress, actual temperature

Text version Conclusion: For the same appliance, lowering the casing by one level and setting the base to V-0 is a normal configuration; It's not about the higher setting, but about aligning every position with the safety code setting for it.

11. The most common issues with this part are often not flame-retardant

The most common industry deviations in these types of parts are twofold. One type is the setting position not aligned: public safety standards classify requirements by "distance from current-carrying connectors, current-carrying magnitude, whether someone is supervising it, and whether there is an isolation baffle." 3mm, 0.5A, 0.2A are those forks, and the common practice on site is to ignore these conditions and simply set the settings by "the higher the the safer." The other type is compensation failure after setting the settings: PP flame retardant dosages generally fall around the 25–30% range. When increased, mechanical and toughness inevitably drop, causing problems in studs and clips first.

At the criterion level, the standard standard is: external components with 550°C hot wire (exempted for material categories above HB40); Support current-carrying components are divided by distance and current-carrying at 650/750°C; unattended current-carrying components are rated at GWFI 850°C or GWIT 775°C; Long-term heat resistance is at RTI ≥105°C diameter.

The industry's common solution is to reverse the order: first, set the position conditions for the whole machine and set the levels, then determine the substrate and filler, use toughening to compensate for the toughness loss from flame retardant additions, and add an additional ESC evaluation for wet-zone components—cracking under the combined assembly stress of detergent, oil stains, and surfactants is considered "cracking of the material is correct, part cracks" and can only be collected on both sides of the system and structure.

Ningbo Kelong New Materials Co., Ltd. commonly supplies halogen-free flame-retardant modified PP for this part, with corresponding flame-retardant levels and filling/toughening balances for housing, base, and wet zone parts. Wet zone parts are also equipped with a stress-resistant cracking system, mainly solving three issues: 'mismatch between grade and position, cracking after adding parts, and cracking at rounded corners after several months of installation.' The formula can be adjusted according to the working conditions of the part, and can accompany customers for sample comparison and ESC verification. For part-level customers, we can also accept small batches of multiple varieties.

FAQ

Question: Can I just use all V-0 to avoid judgment?

Answer: Not recommended. V-0 only matters for locations "close to fire sources and shielded," while for distant pure casings, it's a pure cost—higher weight, more mechanical and toughness loss, and higher cost.

Question: Is V-0 always safer than V-2?

A: Not that comparison. V-2 allows droplets to ignite the absorbent cotton, so it can't be used where "drips will land on heating or flammable parts"; But for a shell that is fully covered and far from the current-carrying parts, using V-2 does not pose a risk. Grade is a position parameter, not a safety score.

Question: After the shell is installed for several months, if it cracks at the stud, is the material too brittle?

Answer: Don't change the material yet. Eighty percent of these cracks are due to environmental stress, and conventional physical properties cannot be detected; Criteria should be based on ASTM D1693 (10% Igepal CO-630, 50°C) or ISO 22088-3, and the assembly torque and fillet core should be checked.

Operating ConditionsKey CriteriaConventional Supply
Pure Enclosure (away from current-carrying or heating parts)V-2 levels are usable; 550°C hot wire can be removedhalogen-free flame-retardant modified PP; low-level trimming direction
base/terminal block (within 3 mm or support current carrying >0.2 A )GWFI ≥850°C, GWIT 775°C, V-0halogen-free flame-retardant modified PP; high heat wire direction
wet zone components (control panel, kitchen small electrical peripheral)ESC F50 and acceleration timehalogen-free flame retardant + stress-resistant cracking system direction

Finally, three final words. First, the flame-retardant level is a position parameter derived from the safety standard. You need to first clarify how far it is from the live part, how much current it carries, and whether there is a baffle. Second, the combustion time requirements for V-2 and V-1 are exactly the same; the only difference is whether droplets are allowed to ignite the degreased cotton. Third, the verification order is more expensive than the verification items: safety standard position → flame-retardant level → substrate and filler → mechanical compensation → ESC.

Next article will talk about switches and socket panels—the challenge of that part lies in mineral filling trimming and electrical performance.

About Us

Selection gets stuck at a very specific step.

is it that you don't know whether to use homopolymer or impact-resistant copolymer, whether it's toughening but worried about whitening scratches, or that the shrinkage anisotropy of fiberglass material can't withstand tolerances—clearly explaining where the stucks are is much more useful than saying "I want a good material."

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

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