电视与显示器结构件用什么尼龙?越薄越大,支撑越难做

应用领域 发布时间: 2026-09-15 1467 阅读

189 TV and monitor structural components

The trend for TV structural components is thinner and lighter

TVs are getting thinner (under 10 mm in body) and larger (75-100 inches), with structural components providing support and heat dissipation in extremely thin spaces.

Must be flame-retardant (V-0 or 5VB), light (wall-mounted load-bearing), and affordable (sensitive to consumer electronics prices). With these three factors combined, the material options are actually quite limited.

The mainstream materials are PC/ABS and flame-retardant PS

Back cover: Large TVs use metal backplate + plastic frame, medium and small TVs use flame-retardant PS or PC/ABS. Midframe and internal structural parts: PC/ABS flame-retardant, good strength, dimensional stability, easy to form thin walls. Base and bracket: PA66-GF30 or aluminum alloy—need to bear load, plastic parts must be strong enough. PA is used in TVs but concentrated in load-bearing areas.

On-site reconstruction: 0.5mm battle

In March 2025, at a TV OEM factory in Qingdao, we watched a narrow-frame trial mold: rear shell frame width compressed to 0.5mm, injection molding parts warped poorly, assembly jamming failed.

When the engineering department came to me with questions, the yield was only 60%. "For every minute thinner, the material changes by one level, and the mold restarts again." The workshop director's statement is simple but precise.

The trend in TV structural components is thinner and lighter: the overall thickness of the device has been reduced from tens of millimeters a few years ago to just over ten millimeters, and the wall thickness of plastic parts on the back shell has shifted from 2.5mm to 1.2mm.

The chain reaction of thinning is all in the material: ordinary flame-retardant ABS can't withstand 1.2mm of fluidity and rigidity, so it's replaced with a high-flow flame-retardant brand (with 30% of flow length); If rigidity is insufficient, use fiberglass, but fiberglass has floating fiber issues on the surface, so switch to low-floating fiber systems—every step is linked, and every material upgrade is a real investment.

Our plan for this factory: the back shell should be high-flow, flame-retardant PC/ABS brand, and the internal supports should be low-float fiber-reinforced brand. The trial mold yield will drop from 60% to 92%.

The TV industry's profit margin is as thin as a blade; every point increase in material yield directly results in net profit—the material engineering of this family of products is essentially yield engineering.

Challenges in thin-wall molding

TV structural parts have wall thicknesses of 1.0-1.5 mm, and flow length ratios can reach 200:1.

This requires excellent material fluidity. PA66's fluidity is actually good for thin-walled products, but after glass fiber reinforcement, fluidity drops significantly.

Therefore, PA components in TVs are generally made of unreinforced or low-grade fiberglass, relying on structural reinforcement rather than materials.

Flame Retardant Ratings and Environmental Requirements

TVs must meet safety standards (CCC, UL, CE), internal components must meet UL94 V-0, and large parts may require 5VB.

Must also comply with RoHS, REACH, and halogen-free trends. Halogen-free flame retardants are 20-30% more expensive than brominated types, but most brand manufacturers have adopted halogen-free options.

Pay attention to the impact of flame retardants on material flow and appearance.

Deeper layer: dual door for flame retardant and environmental protection

Materials selection for TV structural components, industry-specific double door: forced flame retardant plus environmental mandatory, both gates must be passed and both doors tightened.

Flame retardant line: Safety regulations for the whole device determine the shell flame retardant rating based on shell opening size and internal live component layout; the mainstream TV back cover is V-0.

The evolution of flame retardants is the main theme: after the decabromine system was phased out, phosphorus-nitrogen systems became mainstream. The balance point for phosphorus-based flame retardants plus PC/ABS is hard to find—too much phosphorus reduces impact strength, too little doesn't reach V-0, high flow and flame retardant combined make the formula triangle only rely on specialized brands.

Environmental protection is stricter than flame retardant: RoHS (Limits of Hazardous Substances), REACH (Substances of Very Concern list expanding year by year), plus energy efficiency and recycling regulations in various markets.

Specific impact on plastic parts: halogen flame retardants are being phased out, phthalene plasticizers are restricted, and some phosphorus-based flame retardants are on REACH's watchlist—today's compliance grades may be on next year's watchlist, and the supply chain will have to leave replacement plans.

The practical meaning of the two gates overlapping: TV back covers are 'heavily regulated materials.' Suppliers must have the ability to continuously update compliance documents and proactively check with each regulatory expansion. This is a point that distinguishes a supplier's quality even more than price—suppliers who proactively issue compliance change notices and those who wait for customers to check are two different businesses.

's reminder to OEMs: The cost of compliance lies in the 'contingency plan,' not in the 'testing'—testing buys data, contingency plans buy time. During the regulatory transition window, factories with contingency plans clear inventory properly, while those without contingency plans study regulations in customs warehouses.

Cooling and Electromagnetic Compatibility

TV has a power board and main control board inside, generating 20-50 W. Thin body heat dissipation is difficult, so plastic parts must be designed with heat dissipation (ventilation holes, metal back plate for heat conduction).

Regarding electromagnetic compatibility, plastic casings are not shielded; internal insulation should be filled with conductive foam or metal shielding covers. Both of these factors affect the shape design of structural components.

The reality of cost pressure

TVs are the most fiercely competitive consumer electronics category, with structural component costs pushed to the limit.

Common practice: Use cheap flame-retardant PS for large parts, PP for areas with low load, and PA66-GF30 for only key load-bearing points.

So the material scheme in TVs is usually a combination of five or six materials, each used in the right position.

Engineering Testing: 4 mandatory tests

Test 1: Thin-walled flow. Wall thickness 1.2 mm, flow length ratio 200:1, PC/ABS can be filled, PA66-GF30 is difficult to fill—thin-walled materials use less high-fiberglass.

Test 2: Flame retardancy. Halogen-free flame-retardant PC/ABS meets V-0 (1.6 mm), meeting RoHS and halogen-free requirements.

Test 3: Load-bearing. Base PA66-GF30 supports 50 kg, deformation < 1 mm—PA for load-bearing parts.

Test 4: Heat dissipation. Metal backplate solution internal temperature is 12°C lower than all-plastic—large sizes require a metal backplate.

Follow-up triple question: The three most frequently asked questions in procurement

First question: Can the back shell still be used for ABS? No going back: the triple threshold of thin wall construction, flame retardant, and rigidity. The yield of ABS high-flow flame-retardant brands is unstable at 1.2 mm wall thickness, PC/ABS alloy is currently the mainstream solution, and some high-end ultra-thin models are fully PC. The ABS market still has a few years of lifespan in mid- to low-end large-size models, and the online PC/ABS market share is increasing year by year.

Question 2: How to resolve the conflict between cooling holes and EMC? EMC rectification in TVs mainly involves shielding the power board; the conflict between the rear shell's heat dissipation holes and EMC is limited—the conflict point is the port openings on the back shell (such as HDMI), and the edges of the openings are designed with upper limits according to waveguide principles, with metal shielding covers inside the holes. The plastic back cover itself does not provide shielding, which differs from industrial control computers. Don't copy the shielding approach of industrial control computers.

Three Questions: Can materials still be saved under cost pressure? The way to save is not in material reduction levels, but in yield: high-flow brands are 10% more expensive, yield increases by 20 points, and overall costs are reduced. Many purchasers don't know how to calculate this algorithm—just list the unsold cost allocation statements, and the material upgrade ledger becomes clear. In the TV industry, material cost reduction is half formula cost reduction, half is yield cost reduction, and the latter often has more room for improvement. ### Calculate the material account: yield is net profit

TV OEM material ledger The sharpest measure is yield—if you calculate this thoroughly, all resistance to material upgrades disappears.

Taking thin-walled back shells as an example: high-flow flame-retardant PC/ABS is 10% more expensive than regular grades, with a single-machine price difference of about 4 yuan. Ordinary brands have a 60% injection molding yield at 1.2 mm wall thickness, while high-flow models have 92%.

Calculated for single machines: yield difference of 32 points means that for every 100 molded parts, 32 fail. The total cost (materials, labor, cost) of a single back shell is about 25 yuan, 32 pieces lose 800 yuan in scrap products, and when spread over 68 good parts, the hidden cost per unit is 11.8 yuan.

Add back that 4 yuan material price difference, so the real cost of a regular brand is 15.8 yuan per unit—nearly four times more expensive than high-flow brands.

Many factories haven't calculated this account: finance records scrap losses as 'manufacturing expenses' and material price differences as 'direct materials.' If the two accounts don't meet, the material upgrade account will never be balanced. Including yield cost sheets in material decision models is one of the most worthwhile process reforms for manufacturing companies.

The TV industry's net profit margin hovers between 2% and 3% year-round, and every point contributed to yield is calculated as a multiple of net profit. Half of the value of materials engineers in this industry lies in the formula, and the other half is in the boss's account. ### Boundary Declaration

Operating ConditionRecommended Materials
Large Rear Shell PartsFlame Retardant PS or Metal Backplate
Middle Frame Structural PartsPC/ABS Flame Retardant
Base BracketPA66-GF30
Internal Small PartsPP or ABS
Requires ShieldingConductive Foam or Metal Cover

Engineering Memo

TV structural parts must undergo thin-wall filling + flame retardant + load-bearing before mass production. PA is concentrated at the load-bearing position, while large parts use PS and PC/ABS.

Practical Case: Common pitfalls and correct answers

Pitfalls 1: Selecting TV structural components according to room temperature physical property tables without considering long-term operating temperature. Home appliances work long-term at 60-90°C, and even high room temperature strength will cause thermal aging failure. Correct answer: Use data after thermal aging to select materials. For PA66 long-term operation at 80°C, choose grades resistant to thermal and oxygen aging. Pitfall 2: To reduce costs, replace reinforcing material with non-reinforced material, or lower GF30 to GF15. The glass fiber content of TV structural parts is calculated, not just filmed. Correct answer: To reduce glass fiber content, creep and strength must be recalculated, not based on experience. Pitfall 3: Noise and abnormal noises were checked last and found to be plastic parts rubbing or loosening. Correct answer: Noise complaints account for a high proportion of home appliance complaints, so plastic fitting tolerances and self-lubrication must be determined during the design phase.

Reverse Case: A batch of lost orders for floating fibers

In July 2024, a TV OEM bid for an export order, but the sample stage was rejected: the rear shell's surface showed visible fibers, but the client's quality control voted against it under lighting.

Origin of the floating fiber: That batch of back shells was branded with fiberglass reinforced for rigidity, but the injection molding process didn't keep up, causing the fiberglass to stick out on the surface, and the exterior surface showed white spots under side lighting. The formula was correct and rigidity met standards, but the failure was the 'appearance hurdle.'

revised the plan for two weeks: the appearance was replaced with a low-floating fiber special brand (surface modification technology plus compatibility system), and the structural side was retained with a regular reinforced brand—both inner and outer materials, covering both appearance and rigidity. The second round of sample submission passed, and the order was secured.

In terms of cost, the low-floating fiber brand was 8% more expensive, with yield dropping from 78% during the trial mold period to 93%. Based on the allocation of the entire machine casing, this 8% material price difference was recovered by yield threefold.

The contract manufacturing industry's bidding model is the final exam for materials and processes—usually, process data look good, but prototypes show real results in half an hour. This factory later incorporated 'side-light floating fiber inspection' into its self-inspection SOP: when the lighting angle changes, the floating fiber can't be hidden. Details are something that anyone who sees first wins the order.

Extended Judgment: The Most Easily Overlooked Hidden Variable

In mass production accidents involving TV structural components, half of them are not due to material selection errors, but because the hidden variable is not controlled.

The first variable is moisture content. For PA-based materials, the actual moisture content at the factory, drying conditions, and storage time before injection molding together determine the actual moisture content. If the moisture content is incorrect, strength and appearance will change.

The second variable is mold temperature. If the mold temperature is 20°C, the surface float fiber and weld joint strength may differ by half.

The third variable is the time after assembly. Torque, size, and seal compression amount after 24 hours and 30 days after installation are all different.

None of these three variables are listed in the physical property report, but they are all listed in the failure report.

Writing these three things into a single sheet and sending it to the supplier is more effective than making ten phone calls—the cost of TV structural component selection and communication is basically spent on repeated confirmation of these items.

Additional note: Three on-site judgment signals

Signal One: Thin-walled parts warp, assembly stuck not to materialize. Lack of both fluidity and rigidity; test the high flow brand first, then adjust mold temperature; don't force the holding pressure parameter—the yield from these parameters is unstable.

Signal Two: White spots on the surface float fiber. Exposed glass fiber, switch to a low-float fiber brand or internal and external material separation; the ceiling for process optimization is one level lower than replacement.

Signal 3: Regulatory switch notice arrives, but inventory is still suppressed. Lack of compliance plans, immediate inventory and transition production scheduling for formula switching—customs and market window period, can't wait for supply chain response speed. ### Verification sequence: Complete three steps before placing an order

Step one, total accounting: material price difference and yield loss are calculated together, unit price difference yields to total cost difference per unit.

Step two, appearance inspection: low floating fiber and surface texture are checked according to side light standards; appearance indicators of appearance parts are hard indicators.

Step three, monitoring compliance: institutionalize tracking of changes in flame retardant and environmental regulations, with contingency plans preceding switching. After completing these three steps, material decisions for TV structural parts can keep pace with the speed of overall machine rolling.

Conclusion

We hear this every week—the earlier you ask about material selection, the easier it is.

For material selection and mold trials for these types of pieces, you can chat about them together

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