再生PPS的性能与颜色:280℃熔点不缩水,但颜色黑得像烤焦了

塑料知识科普 发布时间: 2026-09-13 1843 阅读

What's the biggest fear when buying recycled PPS?

It's not that the strength isn't strong enough. This thing has a melting point of 280°C, and without flame retardants it can pass UL94 V-0. Below 200°C, almost no solvent can dissolve it. It's a natural hardcore player.

What you really should fear is the color—the injection-molded parts look as black as burnt, and the customer's reaction when holding them is: Did you use recycled slag on me?

What's even more frustrating is that even though the strength has been tested and the flame retardant meets V-0, the customer rejects the whole batch just because the color is dark and the surface turns white.

This article won't pile on specs, but will focus on two things: how much performance has actually dropped in recycled PPS, and why its color is so distinctive black. After reading this, you have a clear idea before placing your order.

First, let's give you a basic look at the base of the original PPS.

The raw GF40 PPS has tensile strength of 165 to 200 MPa, flexural strength of 220 to 295 MPa, thermal distortion temperature of 260 to 280°C, and density of about 1.66. What does this base mean? It doesn't collapse in an environment of 200°C, doesn't dissolve in acids, alkalis, or salts, and goes out on its own when ignited—this is what makes PPS stand up to the word 'special' among engineering plastics.

What about recycled materials? Because of the additional breaking, melting, and pelletizing steps, mechanical properties do drop significantly, with tensile and bending 15% to 30% lower than virgin.

But interestingly, the few things it kept at the bottom of the box didn't fall off: the thermal distortion temperature remained stable above 260°C, UL94 V-0's flame-retardant properties are written in the molecular chain, and it doesn't disappear just because of recycling. Its chemical resistance below 200°C is still there.

To put it bluntly, recycled PPS loses its bones—tensile strength, rigidity, surface fineness; But it holds its temper—heat resistance, flame retardancy, solvent resistance. If you compare it to virgin PPS for fine work, it does not stand out, but when it does work that requires temperature, flame retardancy, and corrosion resistance, it still holds its own.

So when buying recycled PPS, don't just use native GF40 test reports on it—native stretch 200 MPa, recycled material at 120 to 150 MPa is normal. What you need to do isn't complain about its low value, but figuring out which 15% to 30% gap it falls in, and whether your application is acceptable.

Thermal degradation isn't mystique; it's molecular chains breaking

So at what step is this 15% to 30% performance lost?

The answer is thermal degradation. PPS processing temperatures are naturally between 290 and 320°C, higher than most engineering plastics. Virgin material can travel through this temperature range once without issue, but recyclable material must be crushed, washed, and repelled, essentially repeatedly roasted at high temperatures.

What's even more troublesome is that PPS primary synthesis uses a route of sodium sulfide plus NMP solvent, so some sodium sulfide and NMP inevitably remain in the recycled material. These two substances become degradation catalysts above 300°C, cutting the sulfur bonds in the molecular chain segment by segment. Once the temperature exceeds 340°C, the chain breakage rate skyrockets exponentially.

So recycled PPS has a counterintuitive phenomenon: many people think that after many recycles, molecular chains break, the melting index will rise higher and the material will become thinner and thinner—wrong. At high temperatures, PPS not only breaks chains but also oxidizes and cross-links. Once cross-linking starts, molecular weight doesn't decrease but actually increases, while the melting index actually goes down, making the material thicker and stickier.

This is why insiders controlling the melting fingers of recycled PPS can't assume that just a few more cycles will make it easier—it might just get thicker and thicker, making injection molding and filling difficult. Controlling thermal history and preventing the same material from repeatedly being tested above 300°C is the first step in maintaining its performance.

Glass fiber breaks faster than noodles

Besides molecular chains, another product that is repeatedly tested is glass fiber.

The fiberglass in virgin GF40 is long fiberglass, each strand supported like steel bars inside the substrate, relying entirely on them for tensile and bending strength. Recyclable material is first crushed into 3 to 10 mm pieces, then fed into an extruder where it is melted and sheared on the screw — this breaking, shearing, and the average length of the fiberglass drops rapidly.

The rebar breaks into short nails, unable to support the original beam. This is the direct reason why recycled material stretches and bends 15% to 30% less than virgin. More obviously, the surface: the fiberglass breaks short and is sheared and pushed to the surface, causing the surface of injection-molded parts to easily expose the fiberglass, leaving streaks of white marks. The appearance parts are shaken in shock.

Here is an industry-standard blending ratio: recycled material mixed with 10% to 25% is almost mechanical damage, with strength profiles basically following the virgin material; But once fully recycled, the fibers are completely broken and shortened, thermal history stacks up, and both performance and appearance suffer .

Yuyao has a customer who makes automotive electronic water pump housings. Previously, the cheap 100% locally recycled material showed exposed glass fiber sheets on the shell, with tensile value dropping from original 180 MPa to below 120 MPa. After installation, the customer tested high-temperature rig cracking, with a return rate of 9%. Later, Ningbo Kelong New Materials Co., Ltd. imported PIR sprue material from Southeast Asia, with ample dark color supply and controllable thermal history. They stabilized the blending ratio at around 20%, combined with a glass fiber length retention process, and stretched back above 155 MPa. The exposed glass fiber surface basically disappeared, and the return rate was reduced to 0.7%.

To put it bluntly, the value of imported materials isn't about price, but about the number of times each segment is heat-fried—if the heat history is controllable, fiberglass won't break so badly.

Color is the second face of recycled PPS

If performance drops, you can still fix it with formulas; color is basically a matter of fate.

The color of recycled PPS is just a clearly marked price list: black is just over 10,000 yuan per ton, which is the entry price; dark brown and light brown just over 20,000; natural white and natural color 35,000; and bright red custom colors at 43,000, which is the market high.

Why is it mostly dark colors? Because PPS must be processed at 290 to 320°C, the recycled material must be repeatedly heated, and the molecular chains undergo discoloration all the way under the action of hot oxygen—the natural color first turns yellow, yellow turns brown, brown turns dark brown, dark brown and finally black. Baoli has confirmed that 100% recycled material causes obvious discoloration. After multiple heat histories, the light-colored base material cannot be preserved, and in the end, the only option is to go darker. Dark colors have another advantage: they cover up impurities, exposed fiberglass, and color deviations, naturally keeping costs low.

Why are White and Dahong materials two or three times more expensive? Because light colors must use natural sprue materials that have not been barely overheated, with strict thermal control and additional titanium white or dyeing systems to cover up the yellow-brown base color. Material sources are scarce and the process is tricky, so the price is naturally two to three times higher than black parts.

So friends who make exterior parts think carefully: if you want dark-colored parts, you can pick any recycled PPS product—enough material and stable price; If you want light-colored, white, or red parts, you have to accept the reality of scarce light-colored materials and double the price. Don't force color changes with dark recycled materials—that yellow-brown base won't even be covered by titanium dioxide. Before ordering, ask suppliers to send samples of the same color number, and make a sample yourself to see the real color difference. Don't just look at the bag photos and decide on it.

Chemical resistance is PPS's last stubborn strength

After talking about its shortcomings for a long time, I have to give recycled PPS a fair answer: the hard nut at the bottom of the box is still there after recycling. The molecular structure of

PPS determines its chemical resistance—below 200°C, almost no solvents can dissolve it, and it resists inorganic acids, alkalis, and salts. Even if part of the molecular chain is lost due to thermal degradation, this chemically resistant base is still preserved, with retention rates better than most engineering plastics.

This is why recycled PPS dares to continue being used in pump and valve linings, chemical fittings, heat exchangers, and other areas where chemicals are soaked.

But there is one type of waste that is especially tricky to recycle—dust filter bags. The main destination of PPS fiber grade is high-temperature flue gas dust removal in power plants and waste incineration plants. When these filter bags are removed, they are covered in dust and often laminated with PTFE membranes and aramid. To chemically dissolve it into pure PPS, you need α-chlorinaphthalene solvents, which cost over 300,000 yuan per ton, with low recovery rates and high costs, making them economically unfeasible

So, the vast majority of recycled PPS on the market comes not from filter bags, but from injection molding sprue material and defective parts from automotive electronics disassembly. The filter bag route is currently more of a concept and is still far from mass production and pelletizing. When making selections, don’t be misled by the stories of filter bag recycling — the stable material source you can actually purchase comes from the injection-grade PIR sprue material.

Four modification directions, explained in one sentence

Heat degradation resistance modification: Add antioxidants during processing, control temperature, and shorten heating time to reduce heat damage above 300°C, preserving melt index and molecular weight.

Glass fiber length retention technology: Optimize screw shear, reduce the breaking force, keep the glass fibers as long as possible, and recover part of the 15%-30% that would otherwise break.

Light-colored high-cleanliness material: Specifically select natural-colored sprue material, strictly control heat history, add titanium dioxide for coverage, to make white or light-colored appearance parts, which cost two to three times more than dark-colored material.

Chemical-resistant retention type: During recycled modification, do not damage the molecular foundation that provides solvent resistance, so that it can still be used for pump and valve linings, chemical piping, and other parts exposed to chemical media.

Final note: Six inspection tips

1. Check melt index: Don’t think adding more recycled material will make it easier to process; PPS crosslinking will thicken the material with more recycling;

2. Check mixing ratio: 10% to 25% is safe, 100% fully recycled will definitely fail;

3. Check heat resistance: Recycled material should still withstand above 260°C, don’t trust it if it drops too much;

4. Check surface: If glass fibers are exposed in sheets, the appearance parts are an automatic fail;

5. Check color: Dark colors are easy to choose, for light colors use natural sprue material, cost doubles;

6. Check material source: Only material with controllable heat history has stable color and strength.

Final note: The performance and color of recycled PPS ultimately depend on how many layers of heat history and how many glass fibers are broken. Ningbo Kolon New Materials Co., Ltd. has been producing recycled PPS for many years. The material imported from Southeast Asia has controllable color, abundant dark-colored source, and controlled heat history, which ensures that each batch maintains strength and presents a good color.

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