开关插座面板用改性PP:CTI 掉一档,面板就做不薄

应用领域 发布时间: 2026-09-15 2581 阅读

Switch and socket panels use modified PP. First, everyone looks at flame retardancy, but what is most often overlooked is CTI. If the CTI drops by one level, the creepage distance required by safety standards increases, and the panel cannot be made thinner or smaller. This article explains how CTI is tested, how material groups are classified, why mineral fillers and flame retardants can actually lower it, and provides the verification sequence, reverse honesty section, and material replacement list.

Our panel has a flame retardant report of V-0 and has passed the glow wire test, so why is the whole machine still being held up during inspection?

After this sentence from the customer, there was a photo: on the report, a red line was drawn around the creepage distance of the socket panel.

Conclusion first: For switch and socket panels, flame retardancy is the entry ticket, but the part that is often overlooked is CTI. Just because it passes flame retardancy doesn't mean it passes CTI; if the CTI drops by one level, the creepage distance required by safety regulations has to be longer—meaning the panel can't be made thinner or smaller.

There are three types of such failures: the panel gets stuck after thinning (the material wasn't changed, it was just reduced from 2 mm to 1.6 mm, so the material grade couldn't hold up); increasing the amount to pass the flame retardancy test caused the CTI to drop; adding mineral filler to reduce shrinkage caused both the appearance and CTI to drop.

Three points point to the same thing: on this piece, 'size' and 'electrical' are on the same chain.

1. The switch and socket panels use modified PP; what's often problematic for people is not the flame retardancy but the CTI.

Conclusion first: CTI is a typical hidden threshold — it does not appear on the visual inspection sheet, yet it determines how thin the panel can be and how densely the sockets can be arranged.

V-0 However, on the test bench it burns right in front of you; CTI is not enough, the incident does not happen on the test bench, it happens on the dimensional table: CTI value → material group (I / II / IIIa / IIIb) → minimum creepage distance corresponding to that group → whether the panel wall thickness and socket spacing can meet the requirements.

"Can the panel be 0.5 mm thinner?" The answer is not with the mold, but with the material's CTI.

It is also important to distinguish one point: CTI is a surface indicator. The insulation resistance of the PP body itself is very high, but this is a different matter from whether the product's CTI is high or not—what matters is what is left after surface carbonization.

Flammability asks 'does it catch fire or not,' while CTI asks 'after getting damp or dirty, will the electricity still conduct?'

2. First, clearly understand the operating conditions of this piece: the six dimensions of the switch socket panel, report all the numbers first.

Conclusion first: Temperature and load determine 'how long the material can hold,' the medium and appearance determine 'whether the surface can still be maintained,' and compliance and lifespan are two veto items.

DimensionActual working conditions of switch and socket panelsRequirements for the materials
TemperatureThe main body of the panel is close to room temperature, and the terminal in the socket area has a temperature rise of no more than 45 K when powered for a long time (measured after 1 hour of power on); two levels of ball pressure, insulation parts that maintain the position of current-carrying components at 125±2°C, and external panel-like parts at 70±2°C.Two tests for heat resistance and ball pressure; long-term according to RTI ≥105°C
LoadThe main load is plugging and unplugging: 10 A rated sockets commonly require a plug-in and pull-out lifespan of ≥5000 times; during insertion, the area around the socket is subjected to friction and lateral forceThe surface hardness must be sufficient, and the clips must withstand assembly.
MediumWiping with detergent and a damp cloth is a daily action (including surfactants); the kitchen and bathroom also have grease and moistureChemical resistant, stain resistant. Surface condition directly affects CTI
LifespanAccording to the design life of building electrical systems, household sockets usually have a lifespan of around 10 years.Electrical leakage cannot cause tracking, and the panel cannot turn yellow
AppearanceLarge flat surface, highlights, mainly white and light colors, the entire panel is within the inspection scopeColor difference, gloss, and surface defects—none can be avoided.
ComplianceCTI (Material Group), Tracking Resistance and Creepage Distance, UL94 (with thickness), Glow-Wire 650°C / 850°C, Halogen-Free Quantification, RTI, Ball PressureMissing even one item doesn't count as passing.

The three numbers that should be reported first are—panel wall thickness, socket spacing, and target material group: the first two are provided by the structure, and the third is provided by the material.

3. What is CTI and how to measure it: Why use the droplet method to grade the leakage tracking resistance of sockets

Conclusion first: CTI tests the ability of a material's surface to resist leakage and tracking under 'electric field and electrolyte contamination.' The method is to repeatedly drop liquid on the surface to see if a conductive carbon path forms.

According to the publicly available technical review (Class B), the path of leakage-induced tracking is: electrolyte wets the surface → uneven resistance of the liquid film causes the current to first evaporate the local moisture, forming a 'dry band' → voltage is almost entirely across the dry band, triggering spark discharge → high temperature causes material decomposition and carbonization. The branching point is at the last step: if the product is non-conductive gray-white residue, the process stops there; if it leaves conductive black carbon marks, insulation failure will occur.

According to GB/T 4207 (adopting IEC 60112 equivalently), the key parameter of the droplet method is:

- Electrodes: Two platinum electrodes, spaced 4 mm apart, at an angle of 60°, pressure 1 N

- Electrolyte: Solution A 0.1% ammonium chloride solution (use Solution B when stronger corrosion conditions are needed)

- Drops: one drop every 30 seconds, total 50 drops

- Determination: Current ≥ 0.5 A and lasts for 2 s, or the material burns or is perforated

- CTI Test Method: Starting from 100 V, increase by 25 V each time, and take the "highest voltage that can withstand 50 drops without failure"

An insider detail: CTI is measured with 'pass at 25 V', so the values in the report are almost always multiples of 25 V — 175, 250, 300, 375, 600 repeatedly appear because of this.

The CTI value itself is just a voltage number; what the safety standard actually uses is the 'material group' derived from it. According to the public interpretation of GB/T 16935.1 (which adopts IEC 60664-1):

Material GroupCTI intervalExamples of common materials (according to public industry information, Grade B)Creepage distance relative height
ICTI ≥ 600 VSystems such as PA, PBT, PMMA, and PTFE with inherently high CTIRequire the shortest distance
II400 ≤ CTI < 600 VHigh CTI formulation system, some engineering plastic flame retardantsOne more gear
IIIa175 ≤ CTI < 400 VConventional PP, PE (publicly available data gives 300–400 V), PCOne more level
IIIb100 ≤ CTI < 175 VCommon phenolic type (a common grade of traditional thermosetting socket panels)Longest

The CTI of the PP body falls in the 300–400 V range, right at the lower edge of Group II. The substrate is only one step away from Group II, but once the flame retardant and filler are added, it is easy to pull it back down.

Golden saying: CTI is often considered an electrical index, but in fact, it is also a dimensional index.

4. Conversion between CTI and creepage distance: How thin a socket panel can be is determined by this.

Conclusion first: The material category is one of the inputs for looking up creepage distance — if the category drops by one level, the required distance under the same voltage and pollution level goes up, and the thickness of the panel is 'replaced' in this way.

According to the public guidance of GB/T 16935.1 (equivalent to IEC 60664-1), the inputs for checking the minimum creepage distance are four variables: operating voltage, pollution degree (PD1 sealed and non-polluted; PD2 occasional condensation indoors; PD3 conductive pollution or frequent condensation; PD4 persistent conductive pollution), material group (determined by CTI), and insulation type (functional/basic/supplementary/reinforced). The third variable is the one provided by the material.

According to a published technical document (B-level) case study: 1500 V DC, PD3, basic insulation, Group I about 16.0 mm, Group II about 20.0 mm (25%), Group IIIa over 25 mm (56%), Group IIIb about 32 mm (100%). Dropping one grade in a group usually requires returning a few millimeters.

When it comes to the socket, according to the public interpretation of GB/T 2099.1, Chapter 27 (Class B): the creepage distances between components with different polarities under pollution level II and 250 V are given; for material group II, it starts at about 3.0 mm, and when the group drops to IIIa, it needs to be increased (the IEC 60884-1 standard specifies approximately 3.6 mm). The same interpretation also states that the insulation materials generally require a CTI ≥175 for resistance to tracking. The above is the public interpretation; the specifics should comply with the original standard and the complete machine manufacturer's specifications—on the left is the material group, on the right is millimeters, and there is no other conversion in between.

So the correct question is not 'Can the material be made thin?', but rather: What is the minimum creepage distance given by the safety standard? Can the CTI of this material withstand it?

5. Material routes for switch and socket panels: halogen-free flame retardant with mineral filling, glass fiber reinforced, as well as engineering plastics and thermosetting.

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, mineral-filled (phosphorus-nitrogen intumescent system, talc, aluminum hydroxide type)Pass V-0; the glowing wire can reach 650 / 850 in two levels; mineral filling supplements rigidity, reduces shrinkage, and increases surface hardness; flaky minerals and hydrated metal hydroxides can also, mechanistically, inhibit surface charring pathways.The flame retardant dosage is generally increased by 25–30%, which inevitably reduces mechanical strength and toughness; if the filler is increased further, impact resistance drops another level; gloss and color differences become more difficult to manage; CTI depends on how the system is chosen.Large thin-walled parts such as panels and bottom shells
Glass fiber reinforced flame-retardant PPRigidity, heat resistance, and dimensional stability are all a level higher, with significantly lower shrinkage.Surface floating fibers damage appearance; anisotropy causes warping; public information indicates that glass fibers and mineral surfaces are inherently more prone to tracking, and the finer the glass fibers and the smaller the mineral particle size, the better the CTI.Base, structural components, not exterior panels
Engineering plastic flame retardants / thermosetting (PC, PC-ABS, ABS flame retardants; phenolic, urea-formaldehyde types)PC/ABS flame-retardant materials have good appearance and toughness, and can be produced with high gloss without painting; phenolic types have traditional advantages in heat resistance and rigidity.PC and PC-ABS are expensive; ABS has average heat resistance; the CTI rating of phenolic types depends on the formulation.Highlights: paint-free panels, positions with higher heat resistance

The distinction among the three routes is not in price, but in 'Which veto line does your part fall on': if the veto line is 'make it thin / creepage distance,' the selection revolves around CTI; if the veto line is 'white high-gloss color difference,' mineral-filled balancing plays the main role.

There is one more point that must be made clear: the amount of flame retardant in PP generally falls in the range of 25–30%, and the resulting mechanical loss is a structural issue of PP, not a formulation-level problem.

6. ★ Selection Criteria Table: Seven Indicators and Verification Methods for Flame-Retardant PP Used in Switch and Socket Panels

Conclusion first: The biggest difference between this table and a regular physical properties table is the fourth column 'Verification Method · Standard Number'—what often trips you up is not 'which item to look at,' but 'what to measure it with and what measurement count as passing'.

IndicatorThreshold Value (Typical)Verification Method · Standard NumberCommon FailuresCommon solution
CTI / Material GroupTarget material group II (400 ≤ CTI < 600 V); ordinary indoor sockets start from CTI ≥175GB/T 4207 (equivalent to IEC 60112) Drip method: platinum electrode spacing 4 mm, 0.1% ammonium chloride solution, 50 drops, current ≥0.5 A for 2 s to determine failureGear group drops → Creepage distance moves up → Panel cannot be made thinChange the flame-retardant system (phosphorus-nitrogen / organophosphorus system replacing bromine-based and red phosphorus) and adjust the mineral particle size and filling amount
Creepage Distance / Electrical ClearancePollution degree II, 250 V range: Category II starts at about 3.0 mm, Category IIIa at about 3.6 mmGB/T 2099.1 Chapter 27 (Table 24); measured with a creepage distance cardThe whole machine failed inspection, modify the mold or change the materialRaise the material group; or lengthen the surface path using ribs or grooves
UL94 Vertical BurningV-0, the thickness must also be reported (e.g., 1.6 mm V-0)GB/T 5169.16 (equivalent to IEC 60695-11-10)Returned for insufficient levelHalogen-free phosphorus-nitrogen intumescent system Char-forming synergism
Scorching wire (socket caliber)Insulating parts that keep current-carrying components in place 850℃, other external components 650℃—not the same classification as the one used for household appliances.GB/T 5169.11 (equivalent to IEC 60695-2-11)Ignition near the terminalMaterial category selected to 850℃ setting Filling system
halogen-free quantificationBromine <900 ppm, Chlorine <900 ppm, Total <1500 ppmHalogen content testing (XRF / IC), according to IEC 61249-2-21Environmental compliance not up to standardHalogen-free system, no halogen-containing synergists needed
Heat Resistance and Ball PressureInsulating parts that maintain the position of current-carrying components 125±2℃ / 1 h, indentation ≤2 mm; external panel-type components 70±2℃Ball indentation provision of GB/T 2099.1 (Interpretation of public testing methods, Grade B)Panel deformation after long-term temperature riseIncrease crystallinity and filler content
Surface Hardness and Chemical ResistanceNo visible scratches or whitening appear in the plug-in area; gloss and color difference do not deteriorate after wipingThe wiping test is carried out according to the complete machine manufacturer's specifications; scratches are according to PV3952 caliber (10 N, dL < 1.5)The plug-and-play area is whitening and loses shine after wipingMineral filling to improve surface hardness Control particle size

In the seven items, only the first and second rows are the main focus of this article: the material side provides the group, the structure side provides the millimeters, and if they don't match, it's sent for inspection and gets stuck. The 650/850 settings of the hot wire also need to be recorded separately—the classification for sockets is not the same as for complete home appliances.

7. Common Failures and Root Causes: Four phenomena of the socket panel, four root causes

Conclusion first: Among the four types, only the second type truly arises from 'choosing the wrong material'; the other three are, respectively, not re-checking after changing the structure, overdoing the filling, and treating CTI as something that can be compensated with additives.

Failure 1: After the panel was thinned, it got stuck due to creepage distance. The root cause is not that 'the material quality has worsened,' but that the part structure was changed without updating the material grade accordingly. Verify the grade first, then discuss material replacement.

Failure 2: The flame retardancy improved, but the CTI dropped. The root cause is that these two factors are not aligned. The trend in public data is very clear: for brominated systems, CTI decreases significantly as bromine content increases; some studies show that at 16.5 wt% bromine, it drops to 175 V. Adding red phosphorus up to 30 wt% allows glass-fiber reinforced PA66 to pass V-0, but CTI decreases from 600 V to 400 V. Organic phosphorus-based compounds (such as hypophosphite types) generally have no negative effect; public data show cases achieving 600–650 V. Whether it drops or not depends on which type you choose.

Failure Mode Three: Adding mineral fillers to suppress shrinkage causes appearance and CTI to decrease together. The root cause is that the amount of filler, particle size, and surface condition are originally three aspects of the same issue. The public mechanism: flaky fillers can cover the surface, allowing resin to exist in a discontinuous form, interrupting the carbonization path; hydrated metal hydroxides release crystallization water when heated, which reacts with decomposition products to make it difficult for carbon to deposit on the surface—both of which help improve CTI; however, excessive filling or overly coarse particles make the surface rough and attract contamination, actually pulling both down together. It's not a case of more is better, nor less is better.

Failure Four (Dare to contradict a common practice): "CTI is insufficient, add an additive to make up for it." This is wrong. CTI is directly related to the composition of the flame retardant and filling system and belongs to the formulation structure level. Adjusting its content is about the system, not the amount. The most costly consequence is the sequence: putting CTI in at the end as a 'supplementary check'—by then the system is already fixed, and the only things left to change are the mold and cost.

By the way, the most expensive appearance issue with this part: why is color variation on white glossy panels harder to control than on regular parts? There are four reasons combined — the inspected surface is a large flat plane, white is most sensitive to color differences, the dispersion and particle size differences of mineral fillers are amplified by the gloss, plus local gloss changes from insertion and removal friction and wiping, and yellowing from sunlight near windows.

8. Verification sequence: For socket panels made of modified PP, first screen CTI and then test flame retardancy.

Conclusion first: the verification sequence is 'start with the cheapest and most likely to veto item'—CTI screening first, then flame retardancy testing, followed by mechanical and chemical resistance, then aging and color difference, and finally complete device safety compliance.

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① CTI preliminary screening (low cost, short cycle, strong one-vote veto power)

According to GB/T 4207 drop test method, first see which material group it falls into

↓ The creepage distance of the target cannot be supported → Revert to changing the flame-retardant system (not the dosage)

② Flame Retardant Testing V-0 (report along with thickness) Glow-wire 650 / 850 two levels

↓ But → Return ①

③ Mechanical and chemical resistance Flexural modulus, notched impact, surface hardness, resistance to cleaning agents

↓ However → Return ② Renegotiate the filling ratio

④ Aging and Color Difference Heat Resistance and Ball Pressure, Window UV, ΔE

↓ However → Return ③ Re-discuss filling and masterbatch

⑤ Complete machine safety standards: creepage distance and clearance measured, withstand voltage, re-measurement after damp conditions, temperature rise, plug-in and pull-out durability

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Why is CTI ranked first? First, it has a veto power; if the group is insufficient, subsequent validations become meaningless. Second, it is the cheapest; the cost and cycle of a single drip method are much lower than opening a panel mold. Third, it is the least reversible; once the system is fixed, the adjustment space for CTI is very limited.

The most common mistake is to skip step ① and go straight to ②③: first determine flame retardancy, then determine fillers, then try the mold, and finally send for inspection, only to find that the material group is incorrect. When the order is reversed, the costs are ultimately borne in the overall machine certification and mold fees.

9. Reverse Honesty: In these three situations, switch socket panels should not use modified PP

Conclusion first: As long as something appears that 'PP can't get,' don't force it.

The situation that occurredWhy is modified PP not suitableWhich way should I go?
Requires material group I (CTI ≥600 V), and also needs to withstand long-term use above 120℃The CTI of the PP body is in the 300–400 V range, and approaching 600 V requires changing the system; high temperatures also demand higher flame retardant content and filling, pulling both ends together.Use higher-level core CTI systems (PA, PBT type) or thermosetting materials
High gloss spray-free panels required (white / light color, tight ΔE requirement)Mineral filling inevitably brings surface roughness and dispersion color difference, and white highlights are the hardest to suppress; spraying is not allowed, nor is subsequent spraying for coverage.ABS / PC-ABS a type of high-gloss system that can be either paint-free or paintable
Requires long-term outdoor exposure or strong ultraviolet exposure near windowsThe UV aging and yellowing of PP is a systemic problem, and weather-resistant systems can only slow it down; the panels are thin-walled large planes, so there is nowhere to hide the yellowing.ASA / PC type exterior system, or return to PP after modifying the structure (shading, protective cover)

The pattern is consistent: whenever there are 'two opposite requirements being demanded at the same time,' it indicates that this piece should not be forced with PP. Forcing the subsequent orders will ultimately require rework and return.

10. What needs to be changed when switching materials: The seven-item checklist for switching from raw materials to flame-retardant mineral-filled PP

Conclusion first: The customer's real concern is often not performance, but 'do I need to change my current mold and process.' It is recommended to review this table once before testing the material.

Items to moveWhat needs to be confirmedWhat will happen if I don't do it?
Mold shrinkage rateThe shrinkage rate of mineral fillers is significantly lower than that of raw materials, and the panel hole spacing is the most sensitive.The dimensions are off, and the socket doesn't align.
Gate and VentingHigh filler content, flame retardant, with narrowed flow and exhaust windowsUnderfill, 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, CTI fluctuations
DryConfirm according to the specific system, it cannot be copied directly from the original processSilver threads, bubbles, surface mist spots
Pressure holding and demoldingShrinkage differences of high filler content cause deformation and crown whiteningPanel warping and ejection scratches
Color differenceThe white high-gloss panel must first have the color swatch and gloss level confirmed before being processed on the machine.Batch color difference dispute, entire batch reworked
Verification orderCTI Preliminary Screening → Flame Retardant → Mechanical and Chemical Resistance → Aging and Color Difference → Complete Device Safety StandardsThe risk is fully pushed to the last step; CTI is the least reversible

Changing materials involves three aspects: the mold, the process, and the appearance. The thing that should be discussed first is still the verification sequence. Skipping the CTI and going straight to mold testing is equivalent to leaving the most irreversible item until the end to find out.

Eleven, One-Page Report Comparison Table: Material Directions for Four Types of Socket Panel Scenarios

Conclusion first: There is only one criterion—to determine whether the client can use this sheet to settle the direction in a single meeting.

SceneRecommended RouteKey indicatorsVerification StandardConditions that need to be confirmed first
Standard indoor socket panel (white high gloss)Halogen-free flame-retardant PP, mineral-filled, phosphorus-nitrogen intumescent system, fine particle mineralsMaterial group II as the target; V-0 (including thickness); 650°C glowing wireGB/T 4207, GB/T 5169.16, GB/T 5169.11Panel wall thickness, socket spacing, target material group
Bottom shell / Base / Structural partsHalogen-free flame retardant PP, either glass fiber reinforced or highly filledBending modulus, shrinkage rate, 850℃ glowing wireGB/T 9341, ISO 294-4, GB/T 5169.11Load-bearing path, assembly torque, whether there is a visible surface
Panel with USB / fast charge moduleHalogen-free flame-retardant PP reaches high hot-wire ignition levels, with additional local heat dissipation and creepage distance designLocal temperature rise, CTI, 850℃ gradeGB/T 4207, GB/T 5169.11, complete machine temperature rise testModule power, internal space, heat dissipation path
Panels for humid places such as kitchens and bathroomsHalogen-free flame-retardant PP, chemical-resistant and anti-fouling surface system, reinforced / groove-extended pathCTI, creepage distance, resistance to cleaning agentsGB/T 4207, GB/T 2099.1 Chapter 27, wiping testTypes of cleaning agents and protection level requirements

Among the four scenarios, only the first one uses CTI as the primary criterion for material determination, while the other three each have their own primary criteria. Panels and bottom cases on the same production line should not use the same grade of material in the first place.

12. The part that is most prone to problems in this item is often not that there is insufficient flame retardant added.

The most common deviations in this type of component in the industry are two things: first, treating CTI as an 'auxiliary item for flame retardancy,' assuming that passing V-0 solves the issue along the way; second, only checking the material group after the panel has been made thinner, by which time the system, filler, and mold are already fixed. At the criteria level, the tabulated input for minimum creepage distance includes working voltage, pollution degree, material group, and insulation type; for sockets at this level, there is a one-grade difference between Group II and IIIa (about 3.0 mm versus 3.6 mm).

The industry-standard approach is to move CTI to the first step of the selection process for screening; for flame-retardant systems, prioritize directions that are CTI-friendly (such as organophosphorus or metal hydroxides); for mineral fillers, choose fine particle sizes, control the filling amount, and consider 'suppressing surface carbonization pathways' together with 'surface gloss and color difference'.

Ningbo Kolon New Materials Co., Ltd. commonly supplies self-produced halogen-free flame-retardant modified PP with mineral filling for this part. The corresponding flame-retardant level and filling/particle size mix are provided according to three positions: panel, bottom case, and damp location parts. CTI can first screen material groups using small samples, and then proceed according to the verification sequence. The formulation is adjusted according to the part, and multiple varieties in small batches can also be accepted.

Frequently Asked Questions

Question: The report says V-0, does that mean CTI is fine?

Answer: They are not the same thing. V-0 tests vertical burning and dripping, while CTI tests whether the surface will form a conductive path when contaminated and wet. If you want CTI, directly request the GB/T 4207 report and ask clearly which material group it falls into.

Question: The CTI is not enough. Can it be supplemented by adding an additive?

Answer: Basically not feasible. In publicly available data, effective approaches involve changing the system (organophosphorus systems, metal hydroxides, surface treatment, and particle size optimization) — bromine-based and red phosphorus types, on the other hand, tend to drag it down.

Question: If the panel is intended to be made thinner than 1.5 mm, what should be confirmed first?

Answer: First calculate the minimum creepage distance given by safety regulations on this path, then see if the material group can hold up; thin walls will also make filling and floating fiber issues more difficult.

Operating conditionKey criterionRegular supply
Panel (white highlight, thin wall)CTI material group, V-0 (including thickness), 650°C glowing wireHalogen-free flame-retardant modified PP Fine particle mineral filling direction
Bottom shell / Base / Structural partsBending modulus, shrinkage rate, 850℃ glowing wireHalogen-free flame-retardant modified PP, fiber glass reinforced or high-filling direction
Moist area panel / Kitchen and bathroomCTI, creepage distance, resistance to cleaning agentsHalogen-free flame retardant, chemical-resistant and anti-fouling surface system direction

Finally, three points. First, flame retardancy is the entry ticket, CTI is the dividing line—it determines how thin this panel can be made. Second, mineral fillers affect not only the rigidity of the panel, but also its appearance and CTI. Third, the order of validation is more costly than the validation items themselves: first screen CTI → flame retardancy → mechanical and chemical resistance → aging and color difference → complete device safety standards.

The next article discusses semiconductor ESD carriers and trays — the difficulty of that component lies in how to control the surface resistance.

About Us

When a part has a problem, the most common mistake is to change the material first.

Brittle cracking at low temperatures, warping, cracking, strong odor — each of these issues has more than one possible cause. It could be that the base material setting is wrong, the molding conditions are not appropriate, or there really is a problem with the material. First locate the cause, then change the material; if the order is reversed, you often end up making several changes and still remain in the same place.

Ningbo Kolon New Materials Co., Ltd. produces modified polypropylene (PP) pellets, covering three types of base materials: homopolymer, random copolymer, and impact copolymer, as well as various modification directions including filled, glass fiber reinforced, toughened, flame retardant, low odor/low VOC, weather-resistant, and scratch-resistant without painting; and also trades PP resins, by-product materials, and bulk materials from major petrochemical plants.

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