改性尼龙与 LCP 怎么选?0.25mm薄壁,PA打不满

应用领域 发布时间: 2026-09-15 4624 阅读

223 How to choose between modified nylon and LCP

Starting with terminals with a wall thickness of 0.25 mm

Two years ago, a connector factory in Shenzhen received an order from a phone manufacturer: feedthrough terminals in camera modules, with a wall thickness of 0.25 mm, still needed to be reflow-soldered. The factory first tested molds with high-temperature nylon PA9T—pushing the material temperature to the top, but the flow ratio was still a bit lower. Out of eight cavities, only six were filled, and the two filled still had fusion lines, with a visible weak wire on the terminals.

After switching to LCP, it was a different world: the melt drilled into the cavity like water, the mold was fully filled, and reflow soldering at 260°C did not deform or warp after passing through the furnace. Buyers can't help but gasp when they look at LCP's quotation—it's three times the price of PA9T. But when it comes to the final score, the yield rate is raised from 75% to 98%, and the value of thin-walled parts covers all the price differences, leaving a surplus.

This story is about LCP's territory: cases where wall thickness is so thin that ordinary material can't flow, and where high-frequency signals have strict dielectric requirements. This article explains LCP's unique techniques and its weaknesses, helping you figure out when it's worth inviting them.

LCP What is

LCP (liquid crystal polymer) maintains an orderly molecular chain arrangement even in its molten state, which brings two unique properties: extremely low melt viscosity (excellent fluidity); Highly oriented during molding (self-strengthening). The result is that LCP has extremely high strength (150-200 MPa without reinforcement) and can produce ultra-thin parts. The cost is extremely high—4-8 times that of PA66.

LCP's unique advantage: ultra-thin molding

LCP can produce thin-walled parts of 0.1-0.2 mm, which most engineering plastics cannot achieve (PA66 has a limit of about 0.3-0.5 mm). This capability is irreplaceable in miniature connectors, miniature coil frames, and camera module mounts.

5G, smartphones, and miniaturized electronics are the main battlegrounds for LCP. PA simply cannot enter this scale. Other advantages of

LCP

extremely high heat resistance (HDT 250-350°C), can be passed through reflow soldering (SMT process); naturally good flame retardancy (generally reaches V-0 without flame retardants); excellent dimensional stability (water absorption rate < 0.03%);

excellent chemical resistance; good dielectric properties and stability at high frequencies. These combined advantages make LCP almost monopolize high-frequency high-speed connectors—the high-frequency requirements of 5G PAs are hard to meet.

LCP's shortcomings

Four points: first, extremely high price; Second, severe anisotropy—the performance difference between flow and vertical directions is 2-3 times, even worse than glass fiber-reinforced PA; Third, the weld marks are extremely weak—the liquid crystal orientation cannot be bridged at the weld joint, and the strength is only 20-30% of the body's; Fourth, it is not wear-resistant and has average toughness. These shortcomings limit the application range of LCP.

Competition with High-Temperature Nylon

In the SMT connector and high-temperature electronic components, LCP and high-temperature nylon (PA9T, PA10T) are competitors. Advantages of LCP: better flowability, can make thinner parts, and superior high-frequency dielectric. Advantages of high-temperature nylon: 50-70% lower price, good toughness, and high weld trace strength.

Selection logic: Thin wall + high-frequency LCP, conventional wall thickness + cost-sensitive choose high-temperature nylon.

LCP Processing Note

LCP There are several special points in processing: the mold temperature must be high (100-150°C), otherwise the surface will be rough; Injection speed must be fast, as shear thinning is used; Shear sensitivity—shear rate affects orientation; Mold must be wear-resistant—LCP melt has strong abrasion resistance to molds. Additionally, LCP generally does not need reinforcement and is already strong enough; adding glass fiber actually reduces the advantage of flowability.

When should LCP be considered ?

Four signals: First, wall thickness must be less than 0.3 mm; Second, operating frequencies are at the GHz level (5G, millimeter wave); Third, extremely high dimensional stability with tolerances at the micron level is required; Fourth, both PA and high-temperature nylon have been tested but fail.

Besides that, first test with PA and high-temperature nylon—LCP's price makes it the last option.

Engineering testing: 4 mandatory tests

Test 1: wall thickness. LCP can reach 0.1-0.2 mm, PA66 has a limit of 0.3-0.5 mm—ultra-thin LCP is the choice.

Test 2: strength. LCP is not reinforced tensile at 150-200 MPa, which exceeds most reinforced PA.

Test 3: Weld marks. LCP weld marks are only 20-30% of the body—design should avoid them.

Test 4: Price. LCP is 4-8 times that of PA66—last resort.

boundary declaration

operating conditionsrecommended materials
ultra-thin 0.2mm piecesLCP
high-frequency 5G connectorsLCP
SMT conventional connectorsPA9T or PA10T
cost-sensitivehigh-temperature nylon
welded welded stressavoiding LCP

engineering memo

LCP exclusive domain: ultra-thin + high-frequency. The price is 4-8 times that of PA, and the weld marks are extremely weak, so it's only used in situations where PA can't do it.

Practical Case: Common pitfalls and correct answers

Pitfall 1: Nylon and LCP are judged only by strength. When selecting materials, you need to look at the shortcomings—PA's drawbacks are water absorption and acid resistance, PBT's is heat and impact resistance, and metal's weaknesses are weight and cost. Correct answer: Make a comparison table to see which brand's weakness isn't fatal under this working condition.

Pitfall 2: When replacing metal with plastic, make plastic parts directly according to the shape of the metal part. Correct answer: The design logic of plastic and metal is different. Plastic relies on reinforcing ribs and wall thickness distribution, metal relies on cross-sectional moment of inertia, so it must be redesigned. Pitfall 3: Changing materials means not recalculating cost.

If the material is cheaper but the wall thickness needs to be increased or post-processing steps increase, the total cost may actually be higher. Correct answer: Calculate the whole piece cost, not the price per kilogram.

Extended judgment: Two easily confused concepts

In the material selection discussions between nylon and LCP, two concepts have long been confused. The first is flame retardancy and insulation.

Flame retardant solves the problem of no fire, while insulation and anti-electric mark protection solve the problem of no creeping or breakdown. These are two different things.

One material can be flame-retardant V-0, but CTI is only 250 V, so mounting it on live parts still causes problems.

The second is strength and toughness. Glass fiber reinforcement increases strength but reduces toughness; toughening improves toughness but reduces strength and rigidity.

For the same piece, structural parts need strength, fasteners require toughness. Generally, two types of materials are needed. Using one material for convenience results in either snap clips or the body cracks.

Writing these three things into a sheet and sending it to suppliers is more effective than making ten phone calls—the communication cost for nylon and LCP selection is basically spent on repeated confirmation of these items.

Anisotropy: LCP's temperament must be used in the right place

LCP The most easily underestimated shortcoming is its anisotropy

The rigid molecular chains in the liquid crystalline state have higher overall orientation during flow: they have higher strength and lower shrinkage along the flow direction, but lower strength and greater shrinkage in the vertical direction. The finished parts have extremely high dimensional accuracy in the flow direction, but the strength of the fusion line is only about half that of the main body—when two material streams merge in the cavity, molecular chains with opposite orientations do not mesh tightly, which becomes the starting line for cracks.

Therefore, there is a strict rule in the design of LCP parts: the welding line position must be predicted in advance and proactively arranged—pushing the welding line to a non-stressed area, or opening venting or adding an overflow well to change the merging position. Using the PA approach to make LCP molds will result in parts that crack in places you least expected.

Gate design also needs to follow your temperament: single-point pouring and large flow length ratio to ensure consistent orientation; Multi-point pouring inevitably produces fusion splice lines, so use one and skip two. The mold at that Shenzhen factory succeeded on the first try because the mold master arranged the welding wire into the terminal mounting slot—where metal inserts were already pressed, so even if it cracked, it wouldn't be forced.

Understanding this means you understand: LCP is not a higher-grade nylon, but a different material philosophy—it focuses strength and precision on your design, but at the cost is that you have to rearrange the entire mold and product thinking around its orientation. If you follow its rules, it gives you thin walls and high-frequency performance that ordinary materials can't provide.

LCP High-Frequency Q&A

Q: How do LCP and high-temperature nylon work? In short: For high-frequency signal applications with wall thickness below 0.5 millimeters, LCP is the domain; For high-temperature parts with wall thickness over 1 mm and structural load, high-temperature nylon offers much better cost performance. The overlap area between the two is very small; when selecting materials, measure wall thickness first, then ask about frequency, and the direction will be clear.

Q: Can LCP parts be post-processed? Electroplating, spraying, and laser welding have all been done, but low surface energy is an inherent condition; pretreatment requires an additional activation step than PA. Laser through-circuit welding is a plus for LCP—the natural color transparency is sufficient, and this method is commonly used for radomes and sensor windows.

Question: Can LCP remix be used? Be cautious. The orientation structure determines the performance direction of refill material and the main body. If 20% remix is added, you can see the difference on the fusion line. In mass production, the remix ratio is generally very low, so precision parts simply don't use it—the material is expensive, and the cost of wrong doping is even higher.

Q: Why can't high-frequency components avoid it? Low dielectric constant and stable with frequency, with small tangent angle—at 5G high-frequency ranges, PA-based dielectric loss is already several times the dielectric difference. For components like radomes and high-frequency terminals, LCP is not the better option, but a must.

Switching from high-temperature nylon to LCP

If you really want to change LCP, go through each item on this list; if you don't get any of them, just hold off.

Wall thickness review. The thinnest part of the product exceeds 0.8 millimeters and is a load-bearing part; using LCP is questionable—first calculate whether high-temperature nylon can handle it, don't pay three times the material for selling points.

Flow simulation pre-arranged welding line. Before opening the mold, simulate the welding line position to ensure it falls in a non-stressed area or an insert pressed down—this is the most valuable step in the LCP project.

Drying standards raised. LCP requires moisture content below 1/0,000, which is one order of magnitude stricter than PA. Factories with ordinary drying conditions must upgrade their drying equipment first.

Negotiate the recycling policy in advance. The material price is three times that of high-temperature nylon, and the plan for repurchasing or downgrading sprue material must be clearly stated in the procurement contract; otherwise, mass production material consumption will become an invisible cost black hole.

Wait until the list is completed before moving the mold—the failure of the LCP project is almost entirely due to preparation rather than the material itself.

Question: What should be noted about environmental compliance in LCP? The body contains no halogens, so the pressure of RoHS and Reach compliance for exporting high-frequency components is not significant; Flame retardant grades require attention to the system; grades without halogen phosphate are easier to export, and when selecting grades, submit the compliance list to the supplier for verification, which is much less hassle than remediating afterwards.

Question: For wall thicknesses below 0.2 millimeters, what other options are available besides LCP? The selectable range is very narrow. PPS can also be made thin-walled, with lower flow and dielectric parameters, so parts that are not sensitive to signals can be considered second-tier; If the requirements are higher, the industry approach is metallization or direct structural modification—when materials can't be selected, redesigning often comes faster than forcing materials.

Fusion line rehearsal: Three rounds of mold reopening

LCP Half of the mold work is done before mold opening.

The terminal mold at that connector factory in Shenzhen conducted three rounds of flow simulation before molding. The first version of the solution had two points of pouring, and the simulation showed the fusion splicing line falling on the terminal's cantilever beam—right there was the plug-and-pull force zone, which was directly rejected. The second version changed to single-point pouring, extending the process by 40%, with uncertain end filling, and an overflow well added as a safeguard.

In the third version, the pouring point was moved to the side of the installation groove, the welding line was pushed into the non-stressed area pressed by the insert, and only then was the mold signed and opened.

First mold trial production, fully full on one mold, the welding line position was exactly the same as the simulation, yield 98%. The mold technician later said that if the mold had been opened directly according to PA customs, this mold would have needed at least two rounds of rework—LCP's mold cost was 30% higher than PA's, and the real issue was in these pre-productions.

The conclusion was simple: LCP wasn't expensive because of the material, but because the entire design had to follow its direction. Only after thinking carefully before applying it did its returns pay off.

LCP The cost calculation caliber for

LCP parts must be read using a different algorithm.

Divide the material price by yield, then divide by the number of single-mold cavities—this is the real material cost per piece. The Shenzhen factory's account: LCP material price is three times that of PA9T, but the single mold produces half more qualified products, and the price difference per piece is eaten up by yield ;

Plus reflow soldering requires no secondary repair, the assembly terminal defect rate drops, but the total cost is actually inverted—LCP is cheap.

This standard also holds true: for parts with generous wall thickness, easy welding lines, and yield above 95%, LCP's yield dividend is not realized, and triple the material price is blatantly present.

Therefore, LCP cost discussions should never be limited to how much per kilogram—only when yield, post-processing, and assembly defects are all factored into the unit cost, will the conclusion emerge. Whether to buy expensive material or the right material is not the budget, but this algorithm.

Question: What are the key points for LCP injection-molded screws? Two points: The retention time must be short; if LCP stays too long in the barrel, it will carbonize and produce black fibers; Choose the lower compression ratio; excessive shear will damage molecular orientation. The molding window is narrow, and the parameters are locked on the process card. During shift changes, you only look at the cards and don't rely on feel—the stability of LCP mass production depends on discipline.

Conclusion

Still the same after three or five years—the earlier you ask about material selection, the easier it is.

For these kinds of pieces, you can discuss material selection and mold trials together

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