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Best practices for printing with Form 4 and Form 4L generation printers

Best practices for printing with Form 4 and Form 4L generation printers

For the best print results, consider the following tips and guidelines when working with your Form 4 or Form 4L generation printer.

Model design

A successful 3D print starts with a well designed model. See the design specifications for your printer for best practices to optimize designs and reduce failures.

Preparing the printer

Before starting a print, perform the following checks to reduce the risk of print defects or failures due to debris.

  • Inspect the resin tank for debris.
  • Inspect the build platform and make sure that it is clean and dry.
  • If you are printing with the Form 4 Flex Build Platform or Form 4L Flex Build Platform, follow Formlabs guidance for setting up prints for flexible print surfaces.
  • Use one mixer per resin tank. If you transfer a mixer to a tank that uses a different material, always wash it with clean solvent (for example, in the Form Wash) for 5–10 minutes first. Transferring mixers between opaque and transparent resins may cause color contamination.

When setting up a print job, carefully consider how your model is oriented. Printing the same model in different orientations can lead to notably different results in surface finish, print time, and dimensional accuracy. In some cases the orientation of a model can even make the difference between a successful print and a print failure. See Moving and rotating a model in PreForm for more information on how to manipulate models in PreForm.

This section describes some general recommendations for model orientation when printing with Form 4 and Form 4L generation printers, but not every recommendation applies to every model or print job.

In summary:

  • Print larger sections of the part closer to the build platform. If possible, print directly on the build platform to better constrain the part and prevent warping.
  • Minimize the XY cross sectional area of your model’s layers and orient parts vertically along the longest dimension to help mitigate curling. Similarly, minimize the change in area between layers.
  • Parts can be self supporting when the material is stiff and rigid if the angle to the horizontal is greater than 45°.
  • Orient models so that features branch off of a common base during printing rather than merge.

Print directly on the build platform

Print parts directly on the build platform whenever possible. This requires at least one flat face, though having small chamfers around the edges of that face may help for part removal. Parts printed directly to the build platform will generally have the least amount of warpage and shrinkage, in addition to using fewer supports.

Since the build platform constrains shrinkage, bottom layers will often be oversized in the XY plane. You may need to adjust your models if a perfect fit is critical. You can still support a part printed directly on the build platform by changing the raft type to None, taking advantage of both the supports and the build platform.

Model in PreForm on the build platform with supports

For parts printed directly on the build platform without supports or rafts:

  • Chamfer the edges of the surface placed against the build platform.
  • If your parts do not adhere to the build platform, leave at least one edge of the face printing directly on the build platform unchamfered. Making one face of the part perpendicular to the print surface reduces and changes the angle of this force vector, helping the part adhere to the build platform.
  • For slender parts that may have trouble adhering to the build platform, particularly on Form 4L generation printers, add a brim to increase the contact area. You can add a brim with your 3D modeling software of choice or with the PreForm Settings Editor. Modify the Early Layer Exposure and Offset array field and add a small negative offset to purposefully create a brim.

Orient largest regions closest to the build platform

Orienting large, long models with the heavier part of the model towards the build platform allows for more touchpoints to be attached to the model earlier on in the print, reducing the likelihood that the part will rip off the supports.

A long part with its heaviest features oriented away from the build platform
A long part with its heaviest features oriented towards the build platform
In the orientation on the left, the smallest cross-sectional areas are located closest to the build platform, and the part grows in size over the course of the print. There are relatively few touchpoints adhered to the part until the end of the print. These factors make it more likely for the part to be pulled off of touchpoints from the force of lifting the part away from the tank film after each layer.
In the orientation on the right, the part of the model with the larger cross-sectional area is printed first, allowing for more touchpoints to be adhered to the model in the early layers of the print. Tilting this part more vertically would also help avoid curling of the flat face at the bottom of the model. For more information, seeOrienting models to avoid part warpage.

Avoid merging features

Models with branching features should be oriented so that the branches build off a common base, rather than merging together. This can also be thought of as decreasing the number of minima on the sample.

A part whose branching features print separately before merging, increasing the risk of a print failure
A part whose branching features print off of a shared base

In the orientation on the left, the eyestalks of the snail are first printed as separate features that merge into the head, which may lead to print failures. The orientation on the right is preferred because the eyestalks will build off the head of the snail. This orientation also allows for the most detailed features of the model to be oriented away from the build platform to avoid support marks on the top of the snail's shell.

Orienting models to avoid part warpage

Warpage is one of the most common problems in 3D printing, causing parts to be dimensionally inaccurate, have surface defects, or even fail completely early in the printing process. Below is a table of warping artifacts you may see when using a Form 4 or Form 4L generation printer, an explanation of why they occur, and strategies to mitigate or avoid them.

Print defectImproper model orientationCauseMitigation strategies

Shrinkage from sudden changes in cross-sectional area (also known as “H-bar shrinkage”)

H-bar shrinkage example
Improper model orientation that can cause H-bar shrinkage

Shrinkage across a long span or a large cross-sectional area.

The figure below shows a model with multiple internal boxes. If it is oriented with the boxes parallel to the build platform, it will warp at the layer that has a sudden increase in cross-sectional area. This concept applies to many geometries, including C-shaped or box-shaped parts.

alttext alttext

Reorient the model so it is oriented at 45° to the horizontal, reducing the change in cross-sectional area between layers.

Download the FORM file to test the part yourself.

Model oriented to avoid H-bar shrinkage

Curling of edges

Part showing edge curling
Improper model orientation that can cause edge curlingEach new layer imparts a force on the part as it shrinks. Over time, the build up of these forces can cause the part to warp or break free of the supports.

Reorient the model so it is oriented at 45° to the horizontal, minimizing the shrinkage.

Download the FORM file to test the part yourself.

Model oriented to avoid edge curling

Curling of large surfaces

Part showing large surface curling
Improper model orientation that can cause large surface curlingThe forces described above for edge curling can also affect and be seen in bulky parts.

Rotating the largest surface away from the build platform minimizes the cross-sectional area and avoids any larger merging features.

Printing directly on the build platform would also likely keep the part flat if the part doesn’t curl away during printing. However, this can cause the bottom layers to be oversized.

Download the FORM file to test the part yourself.

Model oriented to avoid large surface curlingModel oriented to avoid large surface curling

Bat-winging

Part showing bat-winging
Improper model orientation that can cause bat-wingingFaces tilted at a shallow angle relative to the build platform may exhibit “bat wing” distortion, where the part curls away from the build platform at the ends of its long axis. This is caused by insufficient support density. Large spans between the support touchpoints allow for deformation due to printing forces.

Orient parts more vertically. If that is impossible, increase support density and ensure that the touchpoints are spaced evenly.

Download the FORM file to test the part yourself.

Model oriented to avoid bat-winging

Note:

The defects listed above occur during printing, but parts can also sag and warp during post-curing. Sagging occurs when heavy parts are placed into a post-cure chamber, such as a Form Cure or Form Cure L, without sufficient support, resulting in the part drooping as it post-cures. Longer cure times and softer materials are more prone to this defect.

Avoiding surface defects from support touchpoints and the LPU release texture

Orient parts so that surfaces that are complex, aesthetically critical, or need to mate with another part are oriented away from the supports as much as possible.

Parts printed parallel to the build platform may have slight dimpling from the release texture on the Light Processing Unit (LPU). Instead, orient large flat surfaces at a shallow angle relative to the build platform. In PreForm, models can be rotated in 15° increments by holding the Shift key while rotating the part.

Avoiding suction forces from symmetric expanding areas

For models with one or more axes of symmetry, such as cones, be careful to avoid expanding areas along that axis. Layers that get progressively larger can create suction forces and cause print defects. Tilt models to avoid expanding areas, placing the thickest areas towards the bottom. If that is not possible, orient them at an angle to avoid the symmetrical expansion.

Orienting a cone so it expands symmetrically away from the build platform
Orienting a cone so it expands asymmetrically away from the build platform
Orienting a cone so it converges as it prints

Examples

The examples below show different models whose geometries could cause the print defects described above, the ideal orientation to avoid those defects, and a picture of the final printed part.

Example 1: Case

This model has multiple geometric and aesthetic features that can make it challenging to properly orient and successfully print. Key considerations for orienting this part include:

  1. H-bar shrinkage risk: The geometry, while not a true H-shape, still creates overhangs that can lead to shrinkage.
  2. Merging vertical features: Several sections of the part merge along the Z-axis, which can cause print defects.
  3. Large cupped areas: These may introduce minor issues but are less critical than the points above.
  4. Aesthetic and mating surfaces: The part must connect cleanly to a separate lid and maintain a high-quality appearance.

Download the FORM file to test the part yourself.

Case model in PreForm
Ideal orientationReasonsPrinted partFlatness
Recommended orientation for a case

This orientation generally reduces H-bar shrinkage and warping as well as the number of merging features in the part.

This orientation does introduce a cup. To avoid related surface defects, add a drain hole.

Printed case in the recommended orientation
Case with no warpage
Front of the case printed in the recommended orientation with no warp, shown with a machining parallel for reference.

Example 2: Form 2 printer base

This part can curl dramatically when printed nearly flat or when angled only in a single direction. When it is printed at an angle relative to both the X- and Y-axis, the warpage is dramatically reduced.

Download the FORM file to test the part yourself.

Printed Form 2 printer base
Ideal orientationReasonsPrinted partFlatness
Recommended orientation for a Form 2 printer base

Shrinkage and internal stresses can cause the entire part to curl upwards, away from the build platform. This is especially noticeable on bottom surfaces.

Tilting the part in both the X- and Y-axis reduces the cross-sectional area change as the ribs are printed.

Printed Form 2 printer base in the recommended orientation
Form 2 printer base with no warpage
Edge of the part printed in the recommended orientation, shown with a machining parallel for reference. There is still some slight shrinkage along the longest axis. Ideally, that edge would have been tilted at 45°, but that would not fit in the printer’s print volume.

Example 3: Resin tank frame

This part nearly fills the print volume of the Form 4L, constraining the possible orientations. Rotating about a single axis creates a strong H-bar at the top of the part, resulting in buckled corners. To avoid this, use as much of the second axis as possible.

Download the FORM file to test the part yourself.

Printed resin tank frame
Ideal orientationReasonsPrinted partFlatness
Recommended orientation for a resin tank frameMinimizes changes in cross-sectional area between layers and avoids any larger merging features.Printed resin tank frame in the recommended orientation
Resin tank frame with no warpage
Edge of the part printed in the recommended orientation with no warp, shown with a machining parallel for reference.