SLS 3D Printing Quality: Accuracy, Surface Finish, and Feature Detail in Real Parts

Table of Contents

What SLS 3D Printing Quality Actually Looks Like

Datasheets specify accuracy. Marketing photos show perfect surfaces. But when you are deciding whether SLS can replace injection molding or CNC machining for your application, you need to know what comes out of the printer — with measurements, not adjectives.

This article presents SLS 3D printing quality data from actual test parts printed on the TPM3D P360. The parts were printed in Precimid1172Pro GF30 BLK (glass beads filled PA12) and Precimid1172Pro BLK (PA12) at 0.12mm layer thickness. Every claim is backed by a measured number or a photographed surface.

We cover three dimensions of quality: dimensional accuracy, surface finish, and feature resolution — including where the process excels and where it has limitations you should design around.


Dimensional Accuracy: Measured Deviations

How We Tested

Reference test parts with known design dimensions were printed and measured with calipers. The deviations below are the difference between the CAD dimension and the actual printed dimension, in both the XY (horizontal) and Z (vertical) directions.

Horizontal Dimensions (XY Plane)

Design Dimension (mm) Measured Deviation What This Means
18.36 +0.03mm Within 0.2% of design
34.34 +0.01mm Within 0.03% of design

On horizontal dimensions, the P360 holds tolerances well under ±0.05mm for parts in the 18–35mm range. The slight positive bias (parts print marginally larger than design) is consistent and predictable — it can be compensated in CAD if needed.

Horizontal Dimensions (XY Plane) of SLS 3D printed parts

Vertical Dimensions (Z Axis)

Design Dimension (mm) Measured Deviation What This Means
26.64 -0.10mm Less than the height of a 0.12mm layer

Vertical deviation is larger than horizontal — this is expected in all layer-based processes. The -0.10mm deviation on a 26.64mm feature translates to less than the height of a single 0.12mm layer.

Vertical Dimensions (Z Axis) of SLS 3D printed parts on TPM3D P360 printer

Thin Walls

Wall Design Thickness (mm) Measured Deviation Notes
0.50 +0.02mm Excellent — 0.5mm walls print accurately
0.66 +0.04mm Consistent positive bias

Thin walls at 0.5mm are printable with only +0.02mm deviation. This is a meaningful result: 0.5mm walls are at the lower limit of what SLS can reliably produce, and the P360 handles them without closing up or distorting.


Surface Finish: What You See Out of the Printer

Top and Bottom Surfaces (Flat)

Test parts printed on the P360 show smooth, flat surfaces with laser scan lines that are not visibly obvious. The surface is uniform and matte — no pitting, no blistering, no visible defects.

This is the result you want for visible surfaces of functional parts. The surface is smooth enough that it does not require sanding for internal or structural applications. For customer-facing surfaces, media blasting or vapor smoothing will produce a uniform satin finish in minutes.

Top and Bottom Surfaces of an SLS 3D printed part

Sidewalls

Sidewalls show minimal orange peel and layer lines that are not obvious. Orange peel — a textured, rough appearance on vertical surfaces — is a common SLS defect caused by uneven powder spreading or thermal inconsistency. On these shown P360 printed parts, it is essentially absent.

Sidewalls of SLS 3D printed parts

The layer lines at 0.12mm layer thickness are visible only if you look closely. On vertical walls, they appear as very faint horizontal striations. On angled surfaces (30–60° from horizontal), stair-stepping is more pronounced but still subtle.

5

Corners: Clean and Sharp

Frame corners on test parts showed no protrusion or bumping — including at sharp-angle corners. Corner protrusion is a common SLS defect where excess heat accumulates at direction changes in the laser path, causing material to bulge. Thanks to the efficient laser path planning and precise energy control of the TPM3D P360, the laser automatically compensates for energy when scanning around corners.

Corners of SLS 3D printed parts

Why the Surface Quality Is Consistent

Two factors drive the smooth surface:

  1. Blade recoating system. The P360 uses a recoating blade (not a roller) to spread each powder layer. Blades produce a flat, even powder bed. Rollers can introduce vibration marks and static charge — both of which create surface defects.
  2. High laser absorption rate. The CO₂ laser achieves approximately 96% absorption with nylon powder. This means the laser energy goes precisely where it is aimed, with minimal thermal spread. The result is clean sintering without overheating surrounding powder — which would otherwise cause surface roughness and part growth.

Mechanical Strength: More Force to Deform and Break

Test parts were subjected to manual bending and breaking force comparison. P360-printed parts required more force to deform and more force to fracture than the reference baseline. This indicates that the sintering process produces dense, well-fused material — not just on the surface, but throughout the part cross-section.

The CO₂ laser’s 96% absorption rate with nylon means that each layer is fully sintered, not partially fused. Full sintering produces higher density and interlayer bonding — which translates directly to mechanical performance.

Mechanical Strength: More Force to Deform and Break

 


Frequently Asked Questions

What is the dimensional accuracy of SLS 3D printed parts?

On the TPM3D P360, horizontal features in the 18–35mm range hold ±0.03mm. Vertical features show slightly more deviation — approximately 0.10mm on a 27mm feature.

How smooth is the surface of an SLS printed part?

SLS parts have a matte, slightly grainy surface out of the printer. On the TPM3D P360, flat surfaces are smooth with no visible laser scan lines, and sidewalls show no orange peel. At 0.12mm layer thickness, layer lines are faint. Media blasting or vapor smoothing produces a uniform satin finish in 10–15 minutes, and further post-processing can be performed according to requirements, e.g., vapor smoothing for a smooth, glossy surface.

Can SLS print thin walls?

Yes. The TPM3D P360 reliably prints walls as thin as 0.5mm with only +0.02mm deviation. Walls at 0.66mm show +0.04mm deviation. Below 0.5mm, results become less predictable.

Are SLS printed parts strong?

TPM3D P360 parts require more force to deform and break compared to FDM printed parts, indicating full sintering density. The CO₂ laser’s 96% absorption rate with nylon powder ensures complete fusion between layers.

Why do SLS parts have rounded edges?

The laser spot diameter (0.25mm on the P360) sets the minimum edge radius. Because the beam has physical width, sharp edges and chamfers print with a small radius. This is inherent to the laser sintering process. Post-machine if razor-sharp edges are required.

What layer thickness should I use for SLS printing?

The TPM3D P360 supports 0.06–0.20mm layer thickness, with 0.12mm recommended for most applications. At 0.12mm, the balance between surface quality, accuracy, and print speed is optimal. Thinner layers (0.06mm) improve surface finish but significantly increase print time.

Read more:

Picture of Hanbo Wang

Hanbo Wang

Hanbo is an experienced professional in industrial and consumer 3D printing technologies. He supports global clients in applying selective laser sintering (SLS) solutions across different sectors. Looking for expert advice? Contact us for a free quote and customized application support.

Share:
Latest News
Talk to An Expert
Contact Form

Related Products

· Build Chamber: 600 x 600 x 800 mm

· Laser: 140W x 2 Double Laser

· Building Speed: 10~25 mm/h

· Max Scanning Speed: 25000 mm/s

· Build Chamber: 480 × 480 × 600 mm

· Laser: 100W

· Building Speed: 10~25 mm/h

· Max Scanning Speed: 21,000 mm/s

· Build Chamber: 550 x 550 x 850 mm

· Laser: 140W*2 Double Laser

· Building Speed: 10~25 mm/h

· Max Scanning Speed: 22,000 mm/s

· Build Chamber: 360 x 360 x 600 mm

· Laser: 60W

· Building Speed: 10~25 mm/h

· Max Scanning Speed: 15,000 mm/s

 

Related News

What Is SLS Rapid Prototyping? Selective Laser Sintering (SLS) is an additive manufacturing process that uses a laser to fuse

For decades, the boundary between prototyping and production was clearly defined by a single manufacturing process: injection molding. It was

In the current era of “agile manufacturing,” the focus of 3D printing has shifted from visual prototyping to the production

In the modern manufacturing landscape, additive manufacturing has evolved from a niche prototyping tool into a cornerstone of industrial production.

Scroll to Top

Get A Free Quote Now !

Contact Form
If you have any questions, please do not hesitate to contact us.