IP Library › Granted Patent US 10,987,856
Granted Patent B2
US 10,987,856 · App. 16/063,842 · Granted Apr 27, 2021

Method and device for producing an object by using a 3D printing device

Inventors: Maximilian Peter (Altoetting, DE); Dag Ager (Landshut, DE); Peter Schablitzki (Landshut, DE); Peter Wirtz (Landshut, DE)
Assignee: Wacker Chemie AG
B29C64/112B29C64/118B29C64/209B29C64/264B29C64/393B33Y10/00B33Y30/00B33Y50/02B33Y70/00
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,987,856
App. No.
16/063,842
Granted
Apr 27, 2021
Kind
B2
Abstract

3D printed articles, especially those composed of elastomeric silicones, are provided with details including corners and surfaces of high accuracy by placing voxels or strands of curable material at target locations, where the actual position of the print head is determined, and this actual location rather than an assumed location is used to control material placement.

Claims (29)

1. In a method of producing an object using a 3D printing device having at least one printhead having at least one discharge device,

wherein the discharge device is set up to place curable print materials at target positions of the print materials in order to additively manufacture the object, the improvement comprising:

constantly determining the actual position of the printhead and the instantaneous speed of the printhead by a position measurement unit,

placing the print materials at the target positions of the print materials by the discharge device depending on the constantly determined actual position of the printhead and on the constantly determined instantaneous speed of the printhead.

2. The method of claim 1 , further comprising detecting erroneously unplaced print materials and reprinting before the object is cured.

3. The method of claim 1 , wherein the print materials are cured in a location-selective manner or over a full area by means of radiation or by thermal means.

4. The method of claim 1 , wherein curing of the print materials is effected after the placing of a layer of print materials, after the placing of multiple layers of print materials, or directly during printing of the print materials.

5. The method of claim 1 , wherein curable print materials are placed in the form of voxels, and

a) an edge sharpness of the object is readjusted by adjusting the voxel size,

b) a surface quality of the object is readjusted by adjusting a voxel offset, and/or

c) a dimensional stability of the object is readjusted by adjusting a movement strategy of the discharge device.

6. The method of claim 1 , wherein a position of the printhead and/or of a baseplate on which the object is disposed is readjusted depending on the constantly determined actual position of the printhead to acquire an exact position.

7. The method of claim 1 , further comprising placing curable print materials in the form of strands, and adjusting the placing of the print materials depending on the constantly determined instantaneous speed of the printhead by adjusting a volume flow rate.

8. The method of claim 1 , wherein the object is an elastomer part.

9. The method of claim 1 , wherein the object is a silicone elastomer part.

10. An elastomer part produced by the method of claim 1 .

11. A computer program for performing the method of claim 1 , wherein the computer program is executed in a programmable computer unit.

12. A 3D printing device for production of an object by a 3D printing method, having at least one printhead having at least one discharge device,

wherein the position of the discharge device is determined by a control unit to place print materials at target positions of the print materials in order to additively manufacture the object,

wherein the 3D printing device has a position measurement unit by means of which the actual position of the printhead is constantly determined,

wherein the position measurement unit is connected to the control unit to control the position of the discharge device,

and wherein the discharge device is configured to place the print materials at the target positions of the print materials as a function of the constantly determined actual position of the printhead and a constantly determined instantaneous speed of the printhead.

13. The 3D printing device of claim 12 , whereby discharge device has at least one jetting nozzle actuated by the control unit and/or a dispenser.

14. The 3D printing device of claim 12 , wherein the position measurement unit includes at least one step counter on a motor, a rotary encoder, an optical scale, a GPS sensor, a radar sensor, an ultrasound sensor, a LIDAR sensor, and/or at least one light barrier.

15. The 3D printing device of claim 12 , wherein the 3D printing device has a main controller containing a template of the object to be printed, where the main controller and the control unit of the discharge device are configured for bidirectional communication with one another.

16. The 3D printing device of claim 12 , wherein the 3D printing device has multiple discharge devices assigned to a printhead, the multiple discharge devices configured to place print materials depending on the constantly determined actual position of the printhead and the constantly determined instantaneous speed of the printhead.

17. The method of claim 1 , wherein curable print materials are placed in the form of strands, and

a) an edge sharpness and a surface quality of the object is readjusted by adjusting a volume flow rate, and/or

b) a dimensional stability of the object is readjusted by adjusting a movement strategy of the discharge device.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 11, 2018
From: PETER, MAXIMILIAN; AGER, DAG; SCHABLITZKI, PETER; WIRTZ, PETER
To: WACKER CHEMIE AG
Reel/Frame 046834/0478 →
Continuity (1)
Related Publication 20180370147A1 · Dec 27, 2018