尼龙单丝料怎么选?拉丝级的八项判据与断头账

应用领域 发布时间: 2026-09-13 4331 阅读

This batch writing method: clearly explain the material logic and honestly disclose the procurement channels (these directions go through the petrochemical plant's dedicated material channels, not through the modified granulation line)

Last October, a customer who makes fishing lines and ribbons reported three words over the phone: 'Old breakage.'

In his hands is a wire drawing device with one or two old lines, capable of producing wires ranging from 0.10 to 0.30 mm.

He wasn't sure whether the problem was with the material or the equipment; he only said, 'This material has been used for three years, and it's always been like this.'

I asked him if he was using injection molding grade material. He was a bit stunned and said, 'The viscosity number I bought is quite high, so it should be fine, right?'

This sentence points the direction of the problem the wrong way. The difficulty with nylon monofilament material has never been whether the viscosity is high enough, but whether the window is correct.

This article talks about two things: which aspects the wire drawing grade gets stuck on, and where the procurement channels for this type of material are.

1. Monofilament and injection-molded parts are two sets of molecular weight languages

First, clarify a premise: monofilament is not 'making injection molded parts smaller'; its processing direction is almost the opposite.

What injection molded parts require is flowability — the material needs to move easily in the mold cavity, fill it completely, and the molding cycle also needs to be fast.

Monofilament requires stretchability—the melt is extruded from the spinneret, first rapidly cooled into an almost amorphous filament, and then drawn to three to five times its original length.

After drawing, the molecular chains change from random entanglement to alignment along the axis, and only then does the strength emerge.

Therefore, the primary requirement for drawing material is that the molecular weight is high enough, the distribution is narrow enough, and the impurities are few enough.

These three things point to the same thing: when stretching, the entire silk thread should deform together.

If there is even a single impurity, a gel point, or a section of material with lower molecular weight on a thread, it will break here first — it's not just that point that breaks, but the entire thread.

This has nothing to do with the logic of injection molding: if there is a shortage point on an injection molded part, at most that part is scrapped.

A break point on the drawing line causes the entire line to stop once.

A quick calculation: a PA6 monofilament with a diameter of 0.20 mm, one ton of material can produce about 28,000 kilometers of filament.

In other words: this length can wrap around two-thirds of the Earth's equator. So what you're buying when you purchase drawn wire isn't 'a ton,' it's nearly thirty thousand kilometers of continuity.

This sense of quantity determines how the criteria are written: all the indicators at the material end will eventually be folded into the same matter——the number of broken ends.

2. What several things must be ensured simultaneously when drawing wire

Looking at the working conditions separately, the constraints on the drawing line are much more concentrated than those on the injection molding machine, and they are continuous.

Temperature. The melt temperature in the extrusion section is usually between 250 and 280°C; the stretching section is divided according to the process, with the hot water stretching tank usually in the range of 70 to 95°C, and thermal setting will be even higher.

When the temperature fluctuates by more than ten degrees, the orientation and shrinkage of the filaments fluctuate accordingly.

Moisture content. This is the hardest aspect of the drawing material. Nylon will hydrolyze and break its chains when it encounters water in a molten state, causing the molecular weight to drop, making it easier to break during stretching.

The moisture content before entering the machine generally needs to be pressed down to the range of 0.05% to 0.10%, which is stricter than most injection molding situations.

Stretch ratio and orientation. The total stretch ratio of PA6 monofilament is commonly 3.5 to 5 times, done in one to three stages.

As the stretch ratio increases, the strength increases, but the risk of breakage also increases.

Thread diameter and tolerance. For a 0.20 mm thread, the diameter tolerance is usually given at the level of ±0.005 mm.

This tolerance is not for appearance: the tension control in subsequent weaving and webbing is maintained by the consistent filament diameter.

Medium and weather resistance. Outdoor fishing net threads and rope threads need to withstand ultraviolet light; toothbrush bristles need to withstand the abrasives in toothpaste and mouthwash; webbing threads need to withstand the temperatures and chemicals of the dyeing and finishing processes.

Lifespan. Breakage is the cost at the moment, while aging is the cost in the following years. The two accounts should be kept separate.

When we put the kiwis together, we will see a conclusion: the problems with drawn wire are all cumulative—the small deviations at the material end can be magnified into dozens of shutdowns over tens of thousands of meters in length.

3. Three material routes: PA6, PA66, PA610/PA612

Route 1: Drawing-grade PA6.

This is the main force of monofilament. The melting point is about 220°C, the stretching window is relatively wide, and the cost is controllable.

Its shortcoming is a high water absorption rate — if it isn't thoroughly dried, the ends will break off.

Route 2: Drawing-grade PA66.

Melting point is about 265°C, with higher strength and heat resistance, and also good wear resistance.

The trade-off is a narrower processing window, greater sensitivity to drying and temperature, and higher requirements for equipment and processes.

Route 3: PA610, PA612, and other long-chain carbon systems.

The water absorption rate is significantly lower than that of PA6, it has good dimensional stability, and also good hydrolysis resistance.

This path is used for toothbrush bristles and some high-end bristles; the cost is a high unit price and limited supply.

The three routes are not about one replacing another; each caters to a specific segment of demand.

Here's a 'why': Long-chain nylon absorbs less water because the density of amide groups on the molecular chain is low.

Amide groups are hydrophilic and also a source of hydrogen bonds. When there are more carbon atoms in the chain, there are fewer amide groups per unit length, so water absorption naturally decreases.

The cost is that the melting point and rigidity also decrease — so within the nylon family, 'heat resistance' and 'low water absorption' are inherently at opposite ends.

This one determines the order of trade-offs when making selections later.

(Supplement: The finished strength account of fishing nets and ropes is covered in a separate article; what is mentioned here is all about the fiber itself.)

4. Eight criteria for drawing grade (this page is worth saving)

The threshold value is a directional recommendation, not an acceptance standard. The actual value must be determined together with the wire diameter, use, and subsequent processes.

IndicatorDirectional ThresholdVerification Method / StandardCommon FailuresCommon solutionCorresponding auxiliary agent system
Relative viscosity (molecular weight)The window is narrow, commonly 2.6–3.2 for brushed grade (formic acid method)GB/T 1632.1 (Ubbelohde Viscometer)Fractured stretching section, insufficient strengthLock the viscosity window, lock the batch number for purchaseDetermined by the intrinsic properties of the material, not relying on additives.
Molecular weight distributionThe narrower the distribution, the more stable it isGPC or melt flow rate comparisonUneven stretching, filament diameter fluctuationControlled Aggregation and Mixing ProcessNone
Moisture contentBefore entering the machine, it is generally pressed to 0.05%–0.10%GB/T 12006.2 (Karl Fischer)Hydrolytic chain breakage, fraying, brittle filamentsDehumidify and dry, with the dew point lowered below −40℃Antioxidant (hindered phenol with phosphite)
Gel point and impuritiesMeasured in microns, the fewer the betterOptical Microscopy / Pressure Filtration ValueTensile fracture, fish-eye fractureIncrease the mesh count and ensure clean feedingThe dispersion and dosage of the lubricant need to be controlled
Stretch Ratio and OrientationThe total multiple is commonly 3.5–5 times, given in stagesMeasured filament diameter and strength before and after stretchingIf the orientation is insufficient, the strength is low; if it is too high, it breaks.Conduct window tests in layers and draw the fracture boundaryNone
Fracture strength and elongationDetermined by wire diameter and usageGB/T 14337 (Monofilament Tensile Test)Finished product lacks strength, weaving broken threadsDraw ratio and heat settingNone
Thread diameter and diameter toleranceAlways press at a ±0.005 mm levelLaser Diameter Measurement / MicrometerUnstable weaving tension, excessive thickness deviationStable melt pressure and winding tensionLubricant (surface of silk threads)
Dry heat shrinkage rateDetermine according to the temperature of the subsequent processGB/T 6505 related methodsShrinkage or dimensional deviation during dyeing and finishing or dryingHeat-setting temperature and tensionCrystallization behavior determines, nucleation can be fine-tuned

How to use this table: Do not score line by line, look at the first and third lines first.

If the relative viscosity window and water content cannot pass, all the subsequent data are meaningless.

Because the broken-end accounts are interconnected—once the material end loosens, the stretch section breaks; once it breaks, the data on strength and shrinkage are impossible to discuss.

A reminder: There are several items in the table that do not have a fully corresponding existing national standard (such as tolerances for finer single filaments). When there is no standard to follow, include the verification plan in the technical agreement, rather than omitting this item.

5. Five Types of Split Ends and Their True Causes

Failure 1: Fractured in the middle of the tensile groove, fracture surface is shiny.

This type is mostly gel spots or impurities. When the filament is stretched to orientation, that point does not participate in deformation and becomes a stress concentration point.

Common solution: First check the specification of the net changer and the filter replacement cycle, then look at the proportion of reused materials.

Failure two: Broken heads change with the weather, becoming more frequent when the plum rain season arrives.

The root cause is dryness, not the material.

The humidity in the southern workshop is high. The material either isn't fully dried in the dryer or absorbs moisture again in the hopper, causing the moisture content to exceed the limit when entering the machine, which results in chain breakage.

Common approach: Measure both the dew point and the moisture content, don't just look at the drying time.

Failure three: The filament diameter fluctuates between thick and thin, making winding unstable before and after.

This is not 'the material changing,' but more likely molten pressure fluctuations — slippage in the feeding section, screw wear, or a high proportion of recycled material mixed in.

Common solution: First, look at the melt pressure curve and feed stability.

Here's something that needs to be said directly: When drawing customers encounter breakage, their first reaction is often 'this batch of material is no good' and they ask to change the material. But breakages on the drawing line mostly occur in the drying and temperature zones, not in the material bag. First rule out drying, filtering, and temperature zones; only then should the material be considered.

Failure four: The surface of the thread strip turns white and the oil application is uneven.

The root cause is often excessive use of lubricant or uneven dispersion — when there is too much external lubricant, it will move to the surface of the filament, forming a visible deposit.

Common solution: reduce the external lubrication ratio, switch to primarily internal lubrication, and check the dispersion process of the masterbatch.

This phenomenon is also often misjudged as 'material instability,' but it is actually related to the side of the additives.

Failure Five: The same batch of material performs well during the day shift, but breaks more often during the night shift.

This is not 'the batch of material is changing'; it is more likely that the antioxidant or color masterbatch is not evenly dispersed during the mixing stage.

Seeing this phenomenon, first check the mixing process and masterbatching, don't rush to change the material.

6. Processing and Verification: Several Things That Must Be Decided in Advance

Drying. The drying of filament material is not just 'baking it'; it requires lowering the dew point to below -40°C and stabilizing the moisture content within the process window. The choice of dryer is more important than the drying time.

Filtration. The mesh size of the screen changer should be determined according to the cleanliness of the material and the filament diameter. Finer filaments have a lower tolerance for coarse particles.

Spinneret plate and quenching. The condition of the holes on the plate surface and the temperature of the water tank determine the initial crystallization state of the filaments, and all subsequent stretching is done on this basis.

Stretching and heat setting. Do it in sections, mark the broken edge boundaries, and then set the multiple. The temperature and tension of heat setting directly determine the dry heat shrinkage rate.

Verify the order, it is recommended to arrange it like this:

1. Material inspection: viscosity, moisture content, gel point count (to be done upon arrival at the factory)

2. Single Coil: Filament Diameter and Tolerance, Appearance, Winding Condition

3. Stretch window: layered testing, draw the fracture boundary

4. Physical properties: breaking strength, elongation, dry heat shrinkage

5. Post-process: Re-testing of dyeing and finishing or weaving (only done if there are subsequent processes)

The order cannot be changed. If the previous item does not pass, moving on will make it impossible to explain the data measured later.

Here's an insider detail: for the same equipment with the same parameters, leaving one roll of sample for comparison during the day shift and the night shift is more useful than just looking at the random inspection data. A big difference indicates that the problem lies in the environment or mixing, not in the formula.

7. The accounts for monofilament materials and fishing net materials are not the same book.

There is one thing that needs to be separated first, so that people reading this won’t go to the wrong place.

This article discusses the drawing-grade criteria of the monofilament material itself—viscosity, moisture content, gel point, and drawing window.

At the other end of the fishing nets and ropes, it’s a different story: knot strength, breaking strength, seawater aging resistance, and wear resistance.

A considerable part of that account is determined by the weaving structure and post-processing, not entirely by the material end; another article covers that specifically.

Mixing two sets of accounts in discussions makes procurement the most likely to suffer losses: using the stickiness of monofilament to negotiate the finished strength of fishing nets just doesn’t work.

8. Where is the passage in this direction: make it clear

The procurement channel for nylon monofilament material is the drawing material line between petrochemical plants and specialized spinning material factories, not the modified pelletizing line.

Three are presented, each one more specific than the last.

First is the difference in form. What is required for drawing is ultra-clean, low-gel, narrow-viscosity window slices. The modified wire, on the other hand, comes out as part-level granules with added glass fiber, flame retardant, or toughening.

Second is the difference in thresholds. The cleanliness and moisture thresholds for the wire-drawing grade are one to two orders of magnitude stricter than those for the injection molding grade. The processes on the modified filament line, such as blending, conveying, and pelletizing, inherently introduce fluctuations in pellets and moisture, whereas wire-drawing is exactly most sensitive to such fluctuations.

Third is the difference in uses. The drawing material is supplied continuously by the ton, running for dozens of hours with one end connected to the spinneret plate; modified pellets are calculated by piece and mold cycle.

So we won't take this direction.

This end about the color masterbatch also needs to be clarified: the one used for drawing is a spinning-grade color masterbatch, which is not the same system used for the color matching of injection-molded parts, and likewise does not follow the modification route.

I am writing this because many people ask about this topic, but few explain the thresholds clearly.

If you are selecting wire-drawing material, the eight criteria above and that verification sequence can be directly incorporated into your own checklist.

As for that path of parts—modified nylon used for injection molded parts and extruded profile parts is what we can support all the way.

By the way, for the modified line: the additive system in the formula is configured according to the working conditions for each product — regular additives are kept in stock, special types are matched as needed; you report the working conditions and grade, and the materials and additives are prepared all at once.

Selection Risk List (What needs to be changed when switching wire drawing material)

link; segment; partWhat needs to be reconfirmed?The points most easily overlooked
Sticky Number WindowRelative viscosity of new material and batch bandwidthOnly compare the single-point viscosity, without considering bandwidth
DryDoes the dew point and water content still fall within the window?Using the drying time of the old material, the dew point was not measured
FilterMesh size of screen changer and replacement cycleThe number of openings wasn't adjusted according to the cleanliness of the new material
Spinneret and quenchingPanel Condition and Tank TemperatureIgnore the change in crystalline state and directly use the old parameters.
StretchSegmented multiple and temperature retryOnly try one specification and start mass production
Heat settingRe-measurement of temperature, tension, and dry heat shrinkageShrinkage leakage measurement before post-processing dyeing and finishing
Color masterbatchThe proportion and dispersion of spinning-grade color masterbatchUsing injection molding color masterbatch on top, dispersion is uneven
Verification orderMaterial End → Single Roll → Stretching Window → Physical Properties → Downstream ProcessIf the previous item fails, just move on.

One-page report sheet (for people who need to report upwards)

itemA one-sentence conclusion
What to chooseFirst lock the tackiness window and moisture content, then discuss other indicators.
Move whatDrying dew point, filter mesh count, stretch layering, heat setting tension
Test whatViscosity and bandwidth, moisture content, gel point count, filament diameter, dry heat shrinkage
Where is the passage?The drawing material lines of petrochemical plants and specialized spinning material factories are not on the modified granulation line.
When can the volume increase?Tensile test passed, continuous multiple rolls without breakage, re-inspection in later process passed

Two questions readers often ask

Question: If you buy a higher viscosity, does that mean it's less likely to break?

No. The stickiness number is only one end of the window, and the stickiness window of the drawn material is originally narrow — if you buy a higher value, the melt viscosity and stretching behavior will change accordingly, and it doesn't necessarily mean fewer breakages. What really needs to be done is to clarify both the window and the bandwidth, and also lock the batch number.

Question: Is it possible to mix a little modified particles into monofilament material to reduce costs?

It doesn't hold, and it's not a matter of proportion. Drawing wire is continuously processed with cleanliness measured in microns. The fillers, color masterbatch, or glass fibers in the modified particles become breakpoints on the wire. This approach is not the right direction.

Conclusion

Back to that first question.

The judgment chain actually has only three links: the stickiness and moisture content set the lower limit → the stretching window determines success or failure → heat setting comes at the final stage.

Once all three are set, the question of whether this batch of material can go on my line naturally has an answer.

If you currently have a drawing machine and need to set the material, sending over three things will give guidance: wire diameter specification, drawing ratio and temperature window, and which section is breaking now.

These three things we never guess—raw materials, craftsmanship, and environment; for each, we rely on data to speak.

The viscosity window for drawing grade, the ultra-clean requirements, and the breakage criteria, as well as the piece-level particles produced on the modified granulation line, are two different sets of language. The entry point for this set of language is in the drawing material lines of petrochemical plants and specialized spinning material factories, not on our line.

What we can do is clearly explain this dividing line, so you take fewer detours. For the line of component-level modified nylon, material selection and trial mold can be discussed together.

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