SLS尼龙粉怎么选?粒径分布与复用次数两笔账

应用领域 发布时间: 2026-09-16 1834 阅读

This batch of writing method: clearly explain the material logic and honestly disclose the procurement channel (this batch uses the dedicated channel for petrochemical plants, not the modified granulation line).

Last month, a client who makes prototypes and functional parts sent a box of SLS printed parts.

Half of the box contains clips, and the other half contains gears, with a few pieces on the side noticeably yellowed.

He asked very directly over the phone:

You guys make modified nylon. Can you directly grind a barrel of printing powder for me?

I first asked three questions: Is this bucket of powder newly opened, or has it been reused several times? In which direction is the part under stress? How is the powder bed temperature of that equipment determined?

He replied: The powder is recycled, the clips are fastened laterally, and the powder bed temperature follows the equipment's default value.

In three sentences, the answer is clear — the problem is not with the item, but with the powder.

And first, I need to say this: the accounts for printing powder and the accounts for injection molding pellets are not the same.

The term SLS nylon powder refers to nylon powder used for selective laser sintering, with PA12 and PA11 as the main base materials.

This article talks about three things: what the criteria for powder are, why reused powder changes, and where the channels for this type of material are.

1. The four identities of a bucket of powder: particle size, morphology, flowability, and reuse

Let's start with a counterintuitive conclusion.

Injection molding focuses on melt flow index and mechanics, while when printing with powder, the first thing to look at is whether it can be spread evenly.

If it is not leveled properly, all subsequent mechanical data cannot be discussed.

Identity one, particle size distribution.

The powder used in SLS printing typically has a median particle size in the range of 40–60 μm, coarser than flour but finer than sugar.

The key is not the median, but the width of the distribution.

The distribution is wide, with the thick end supporting the layer thickness, and the thin end clumping on the powder bed.

A single conversion: the layer thickness is usually set at 0.1 mm, which is 100 μm. A 60 μm powder particle, combined with the compaction from the powder spreading roller, exactly spreads out this layer. If coarse particles exceed 100 μm, this layer becomes thicker, and the energy density from the laser scan changes accordingly.

The second identity is the particle morphology.

The ideal powder is nearly spherical, and the industry describes it using sphericity or roundness; good powder often achieves above 0.85.

The powder produced by the crushing method has sharp edges, and when piled up, the particles interlock with each other, resulting in poor flowability.

Another benefit of spherical shape is its good rolling ability when spreading powder, allowing layers to stack evenly.

The third aspect of identity is mobility.

Liquidity is invisible and intangible, but it has two proxies: the angle of repose and the bulk density.

The smaller the repose angle, the 'smoother' the powder; the more stable the bulk density, the more consistent the laid layer thickness.

Identity four, reuse.

The biggest difference between printing powder and injection molding material is that it needs to be recycled and reused.

After one batch is finished, the unsintered powder needs to be removed, sieved, and mixed back with some new powder.

The multiplexing ratio is the most expensive variable in this process.

2. The Four Operational Dimensions of the Printed Document

First, temperature.

The powder bed temperature is usually kept a few degrees to more than ten degrees below the melting point.

Taking PA12 as an example, the melting point is about 178°C, and the powder bed is usually set around 165–175°C.

This window is very narrow: if it's too low, the interlayer bonding is insufficient; if it's too high, clumps will form at the edge of the powder bed.

Secondly, layer thickness and energy density.

The layer thickness is commonly 0.08–0.12 mm, and the laser power and scanning speed together determine the energy density.

Layer thickness, power, and speed are a set of interlinked parameters; if you change one, you need to recheck the other two.

Third, reuse rounds.

The mixing ratio of new powder to reused powder is commonly between 50:50 and 70:30.

With each round of grinding, the powder undergoes heat exposure again, and its color and molecular weight are quietly changing.

Fourth, precision and appearance.

Dimensional accuracy commonly falls within ±0.1–0.3 mm (per 100 mm part), and the surface roughness is influenced by the powder particle size.

For prototypes, focus on appearance; for functional parts, focus on mechanics and interlayer strength. The emphasis is different on both sides.

Operating conditions dimensionTypical valueRequirements for the powder
Powder bed temperatureA few degrees to more than ten degrees below the melting point (PA12 usually 165–175°C)The sintering window needs to be wide, and the oxidation resistance system needs to be sufficient.
Layer thickness0.08–0.12 mmThe particle size should match the layer thickness, and coarse powder should be pressed down.
ReuseThe mixing ratio of new and old is usually 50:50 to 70:30The liquidity and color difference after reuse must be controllable
AccuracyPer 100 mm piece, usually ±0.1–0.3 mmNarrow distribution, good sphericity, low water content

3. Three powder routes, each guarding a window segment

Route 1: PA12 powder.

The melting point is about 178°C, water absorption is low, the sintering window is relatively wide, and it has good toughness and chemical resistance.

It is currently the mainstay of SLS. The downside is its high unit price, and the supply is concentrated in the hands of a few powder manufacturers.

Route 2: PA11 Powder.

Melting point around 198°C, good toughness and low-temperature impact performance, raw materials come from renewable sources.

Its water absorption rate is slightly higher than PA12, the sintering window is relatively narrower, and the cost is also a level higher.

Route Three: Co-assembly system and filler system.

Co-clustering widens the window and reduces the shrinkage; using grades with glass fiber or minerals for functional parts improves rigidity and dimensional stability.

This category depends more on the specific application and is not a general substitute.

The three paths are not about replacing each other; it's about whether the part needs toughness, heat resistance, or rigidity.

RouteMelting Point (Typical)Sintering windowStrengthBe careful
PA12 powderAbout 178℃Relatively wideToughness, chemical resistance, low water absorptionHigh unit price, concentrated sources
PA11 Powderabout 198℃Relatively narrowToughness, low-temperature impactSlightly higher water absorption, cost rises to the next level
Copolymerization and Filling SystemAccording to the brand/gradeAccording to the brand/gradeAdjustable window, rigidity can be supplementedThe parameters need to be redone according to the grade and cannot be applied directly.

(The values in the table are typical; please refer to the grade TDS for specifics)

4. Seven Criteria for SLS Nylon Powder (This page is worth saving)

Threshold values are directional suggestions, not acceptance standards; the actual numbers are determined jointly by the device's powder bed, laser, and layer thickness.

IndicatorDirectional thresholdVerification Method / StandardCommon FailuresCommon solutionCorresponding auxiliary agent system
Particle size distributionMedian common 40–60 μm, distribution is narrowGB/T 19077-2016 (Laser Diffraction Method)Uneven powder spreading, layer thickness fluctuations, surface roughnessGraded sieving, proportioned blending according to distributionFlow aid (fumed silica type)
Particle MorphologySphericity commonly above 0.85Scanning Electron Microscopy Observation and Image AnalysisPoor accumulation, low bulk densitySelect spherical powder and remove the broken material tailNone
LiquidityThe repose angle is often required to be within 35°GB/T 16913-2008 (Dust Physical Property Test)Powder coating streaks, localized powder deficiencyAdd flow agent, dry, and then sieveFlow aid (vapor-phase silica type)
Bulk DensitySet according to the brand number, and be consistent between batchesGB/T 16913-2008 or GB/T 1033.1-2008Unstable layer thickness and heavy part deviationLock batch number, adjust powder spreading parameters according to densityNone
Melting and Crystallization (Sintering Window)The larger the difference between the melting point and the crystallization onset temperature, the better.GB/T 19466.3-2004 (DSC)Warping, interlaminar delaminationControl the powder bed temperature, deepen color maskingAntioxidant (a combination of hindered phenols and phosphite)
Thermal-oxidative stability after reuseYellowing and performance retention have thresholds set by roundGB/T 19466.6-2009 (Oxidation Induction Time)Turns yellow and becomes brittle after several usesControl the ratio of new and old blends, and supplement the antioxidant systemAntioxidant (a combination of hindered phenols and phosphite)
Moisture content and fine powderAfter drying, the moisture content should be pressed down to the 0.1% level; the fewer the fine particles, the better.GB/T 12006.2-2009 (Moisture Content)Powder bed clumping, air bubbles, dustDry and sieve out the fine powderNone

How to use this table: first look at the first two rows.

If particle size distribution and morphology are not included, the subsequent mechanical properties and precision cannot be measured for comparability.

There is also an order-related consideration: recycled toner must undergo iterative testing, as the data from a single batch of new toner cannot indicate what will happen in later cycles.

5. Four common failures and their real root causes

Failure 1: After several rounds of reuse, the parts begin to yellow and become brittle.

Most people's first thought is 'the powder got dirty,' but in fact, thermal-oxidative degradation is more common.

The powder stays in the powder bed at high temperature for a long time, accumulating heat history cycle after cycle, causing the molecular weight to decrease.

An attribution from the additives side: antioxidants are considered consumables, and once they are used up, every subsequent round is 'bare running'.

Common approach: Control the mixing ratio of new and old powder, record the trends of color difference and mechanical properties in rounds, and don't wait until the parts turn yellow to look back.

Failure 2: Stripes appear in the powder coating, or there is partial powder loss.

This type is usually not a problem with the laser, but with fluidity and water content.

When the powder gets damp, it forms small clumps. Once clumps form, the powder roller pushes out a groove.

Common solution: Dry until within the process window, sieve to remove fine powder, and add flow agent if necessary.

Failure 3: Warping of the part, delamination between layers.

Don't rush to change the powder; first look at the powder bed temperature field and scanning strategy.

If the powder bed temperature is too low, or the part cools too quickly in the cylinder, stress will remain in the part.

Here's something to say straight: 'Changing to a new toner cartridge' is often the most expensive way to troubleshoot.

After eliminating the temperature field and scanning strategy, then suspect the powder.

Failure Four: The same bucket of powder, the first half is good, the second half is bad.

If you investigate carefully, the problem often lies in not recording the reuse ratio.

Which barrel had how much mixed in, how many times it was reused, and what mesh was used for sifting—all rely on the master's memory, so there is no way to discuss trends.

Common approach: Create a card for each barrel of powder, writing down the mixing ratio, mesh size, and number of rounds.

The traceability of residual powder is the quality system of this set of processes.

A timeline that can be used for reference.

Starting point: When that device was first launched, the master added new powder according to the manufacturer's recommendation, the proportion was determined by tapping, and the pieces were made beautifully.

Latent: At the start of the third round, the surface of the item was slightly yellowed. Polishing it made it unnoticeable, and no one mentioned it.

Outbreak: After the sixth round, the buckle would crack as soon as it was fastened, and the client began returning goods in batches.

Tracing back: Only when reviewing the records did I realize that the accounts only show 'how many jars were made,' but not 'how much new powder was added or what mesh size was sieved.'

Settlement: Conduct another batch of reusable cycle tests, re-determine the blending steps and sieve mesh size. The time lost due to stopping the machine before and after is much more expensive than the saved powder.

The sentence you should remember most from this line is: The color of powder changes gradually, but a piece can break suddenly.

6. Processing and verification: spread powder and reuse each tube for a section

Apply the powder in this section.

Layer thickness and powder bed temperature are a set of parameters and should be determined according to the powder's particle size and the sintering window.

The rotation speed of the powder roller and the pressure determine the density between the layers.

Reuse this section.

Cleaning the powder, sieving, and remixing—records must be kept for all three steps.

The sieve mesh size is determined according to the fine powder content; the mixing ratio is done in steps per batch, do not mix it all at once.

Dry this section.

Printing powder is more sensitive to moisture than injection molding plastic: damp powder doesn't mean 'no parts can be printed', it means 'the parts that are printed are unsafe to use'.

A realistic note here: Ordinary hot air dryers are basically ineffective for nylon, and powders also need dehumidifying drying; this is especially noticeable during the plum rain season in the south.

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

First, powder aspects — particle size distribution, sphericity, angle of repose, moisture content, should be checked upon entering the factory.

Secondly, single layers and small pieces—look at the interlayer bonding and density.

Third, standard test strips—tensile strength and elongation at break, density.

Fourth, at the component level — dimensional accuracy, appearance, assembly.

Fifth, reuse cycles — retest the trends of color difference, mechanical properties, and fluidity by rounds.

The order cannot be changed. If the previous item fails, you move on, and the subsequent data cannot be explained.

Don't use the strength of a jar of new powder to push parts after the fourth reuse.

7. Where is the passage in this direction: make your point clear

The procurement channel for SLS printing powder is a professional powder material channel between the powder factory and the polymerization factory, not a modified granulation line.

Three reasons:

First, the morphology is different. This process requires micron-level powder: narrow distribution, good sphericity, low fine powder content, and acceptable flowability. The output of the modified granulation line is 2–4 mm cylinders or pellets, with a complete set of powder-making, classification, and spheronization equipment in between.

Secondly, the thresholds are different. The criteria for printing powder are 'spreads evenly, sinters reliably, can be reused'—including repose angle, bulk density, sintering window, and oxidation induction time. This set of criteria is not the same as the melt flow index, glass fiber content, or heat deflection temperature of particle material.

Thirdly, the uses are different. Printing powder is usually supplied by kilogram or by drum, and also requires matching process parameters and reusable data; modified particles are supplied by ton or by piece.

So in this direction, we do not take orders, nor do we plan to.

I wrote this because many people search for 'SLS printing powder,' but few take the time to clearly calculate the reuse costs.

If you are choosing powder, the seven criteria and verification sequence in this article can be used directly.

As for the direction of the particles—for injection-molded parts and extruded profile parts that require modified nylon, that is the path we can walk with you to the end.

By the way, a note about modification on this production line: the auxiliary system in the formula is matched according to the operating conditions by batch — conventional auxiliaries are kept in stock, special types are matched as needed; you report the operating conditions and grade, and the materials and auxiliaries are prepared all at once.

Selection Risk List (What needs to be done when changing toner)

link; segment; partWhat needs to be reconfirmed?The points most easily overlooked
Particle size distributionDistribution width of new powder and proportion of fine powderOnly look at the median particle size, not the extremes
Powder bed temperatureThe window needs to be reset according to the new powder weight.Directly use someone's temperature
Layer Thickness and EnergyLayer thickness, power, and speed need to be re-verified in conjunctionJust adjust one parameter to increase the output
apply powderRoller speed and pressing force, powder spreading uniformityWhen stripes appear, first blame the equipment instead of checking if the powder is damp.
Blending ratioRecord of Old and New Powder Ratios and RoundsRelying on the master's memory, no ledger
ScreeningMesh Number and Fine Powder Removal RateIf the sieve is not replaced for a long time, fine powder will accumulate more and more.
Cold Cylinder and Clear PowderCooling rhythm and powder cleaning methodCools too quickly, stress remains in the part
Verification orderPowder end → Single layer → Test strip → Parts → Reuse cycleIf 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 focus on particle size distribution and sphericity, then discuss the sintering window and reuse.
What does it matter?Powder bed temperature, layer thickness, and energy, ratio of new and old powder
Test whatDistribution width, resting angle, moisture content, oxidation induction time, mechanical trends after reuse
Where is the passage?The specialized powder material channel between the powder plant and the polymer plant is not on the modified granulation line.
When can the volume increase?After several rounds of reuse, color difference and mechanical properties are controllable, and parts accuracy and assembly stability are maintained.

Two questions readers often ask

Question: Can grinding injection molding grade PA12 pellets by myself save money?

It doesn't hold, and the difficulty is not in grinding, but after grinding. The powder produced by the crushing method has angular edges, wide distribution, and a lot of fine particles, so it can't pass the powder-spreading step; the density and interlayer strength of the formed parts are also compromised. What needs to be improved on this path is the entire set of powder-making and classification equipment, not just a single mill.

Question: At what ratio should new and old powder be mixed, and can it be mixed continuously?

The ratio is determined jointly by the equipment, the powder bed temperature, and the intended use of the part, and there is no universal answer. What can be confirmed are two things: the blending ratio should be verified step by step, not all at once; in each round, color differences and mechanical data should be recorded, focusing on trends rather than single points.

Conclusion

The selection of printer toner, after all, is a closed-loop problem.

The decision chain has only three links: distribution and morphology determine powder spreading → sintering window determines forming → reuse management determines long-term consistency.

Once the three conditions are set, the question of whether this bucket of powder can go into my tank naturally has an answer. The first three questions at the beginning—new powder or reused powder, direction of applied force, powder bed temperature—are asking about the first and third of these three conditions.

If you currently have a batch of powder to determine, sending over three things can give some direction: equipment and layer thickness parameters, the current ratio of new to old powder, and which issue it is stuck on (striping, warping, or yellowing after reuse).

Make things clear first, then discuss the price—regarding the powder line, let's first clarify the channels.

Whether sub-card materials can be used or not, this question has a whole set of rules for particle materials; when it comes to printing powders, the answer is even more straightforward—the differences between batches will be printed on the parts exactly as they are.

The distribution, sphericity, and reuse criteria of micron-scale powders, and the batch-level particles made by the modified granulation line, are two different sets of terminology. The entry point of this terminology is in the professional powder material line of the powder plant, not on our line.

What we can do is clearly explain the boundary between powder materials and part-level materials, so you can avoid taking a detour. For the part-level modified nylon line, material selection and trial molding can be discussed together.

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