IP Library Granted Patent US 11,465,362
Granted Patent B2
US 11,465,362 · App. 16/917,194 · Granted Oct 11, 2022

Methods and systems for increasing print speed during additive manufacturing

Inventor: Kenneth J. Susnjara (Dale, IN)
Assignee: THERMWOOD CORPORATION
B29C64/393B29C64/112B29C64/307B29C64/118B29K2105/08B29K2995/0013B33Y10/00B33Y50/02
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Quick Facts
Patent No.
US 11,465,362
App. No.
16/917,194
Granted
Oct 11, 2022
Kind
B2
Abstract

An additive manufacturing method includes providing a polymeric material and changing a cooling rate of the polymeric material by adding a second material to the polymeric material. The additive manufacturing method also includes providing the polymeric material and the added second material to an additive manufacturing apparatus and depositing the polymeric material, having the changed cooling rate, with the additive manufacturing apparatus at a deposition rate that is based at least in part on the changed cooling rate of the polymeric material.

Claims (35)

1. An additive manufacturing method, comprising:

providing a polymeric material;

changing a cooling rate of the polymeric material by adding a second material to the polymeric material;

providing the polymeric material and the added second material to an additive manufacturing apparatus;

determining whether the changed cooling rate is associated with a deposition speed that is greater than a maximum deposition speed of the additive manufacturing apparatus; and if greater:

replacing at least one component of the additive manufacturing apparatus to increase the maximum deposition speed of the additive manufacturing apparatus; and

depositing the polymeric material, having the changed cooling rate, with the additive manufacturing apparatus at the deposition speed, based at least in part on the changed cooling rate of the polymeric material, the deposition speed being achieved with the at least one replaced component.

2. The additive manufacturing method of claim 1 , wherein the cooling rate of the polymeric material is changed by adding the second material to the polymeric material to increase a thermal conductivity of the polymeric material.

3. The additive manufacturing method of claim 1 , wherein the polymeric material includes a reinforcing fiber material and the second material is different than the polymeric material and the reinforcing fiber material.

4. The additive manufacturing method of claim 1 , wherein the second material includes at least one of carbon fiber, graphite, or a metallic material.

5. The additive manufacturing method of claim 1 , further including changing the cooling rate of the polymeric material by modifying a temperature of an environment of the additive manufacturing apparatus, wherein the modified temperature of the environment is lower than an ambient temperature of the additive manufacturing apparatus.

6. The additive manufacturing method of claim 5 , wherein the cooling rate of the polymeric material is increased by adding the second material to the polymeric material, and also by the modified temperature of the environment of the additive manufacturing apparatus.

7. The additive manufacturing method of claim 1 , wherein the deposition speed corresponds to the maximum deposition speed associated with the at least one replaced component.

8. The additive manufacturing method of claim 1 , wherein the at least one component of the additive manufacturing apparatus includes a feed housing, an extruder, or a gear pump.

9. An additive manufacturing method, comprising:

introducing a polymeric material to an additive manufacturing apparatus;

changing a cooling rate of the polymeric material by modifying a temperature of an environment of the additive manufacturing apparatus, wherein the changed temperature of the environment is lower than an ambient temperature of the additive manufacturing apparatus;

determining whether the changed cooling rate is associated with a deposition rate that is greater than a maximum deposition output of the additive manufacturing apparatus; and if greater:

replacing at least one component of the additive manufacturing apparatus to increase the maximum deposition output of the additive manufacturing apparatus; and

depositing the polymeric material with the replaced one or more components of the additive manufacturing apparatus at the deposition rate, the deposition rate being based at least in part on the changed cooling rate of the polymeric material.

10. The additive manufacturing method of claim 9 , wherein the temperature is modified by activating a cooling device or increasing an amount of cooling of the cooling device to reduce the temperature of the environment of the additive manufacturing apparatus.

11. The additive manufacturing method of claim 9 , wherein the deposition rate is associated with the maximum deposition output associated with a print head of the additive manufacturing apparatus after replacing the one or more components of the additive manufacturing apparatus.

12. The additive manufacturing method of claim 9 , wherein changing the cooling rate includes increasing the cooling rate of the polymeric material by reducing the temperature at a location where the polymeric material is deposited.

13. The additive manufacturing method of claim 12 , wherein the deposition rate is increased based at least in part on the increased cooling rate of the polymeric material.

14. The additive manufacturing method of claim 9 , wherein modifying the temperature of the environment causes an outer surface of a deposited bead of the polymeric material to harden at a relatively faster rate as compared to the ambient temperature.

15. The additive manufacturing method of claim 9 , further including adding at least one of carbon fiber, graphite, or a metallic material to the polymeric material.

16. An additive manufacturing method, comprising:

introducing a polymeric material to an additive manufacturing apparatus;

increasing a cooling rate of the polymeric material by: adding a second material to the polymeric material, modifying a temperature of an environment of the additive manufacturing apparatus, or both;

determining an increased deposition rate of the additive manufacturing apparatus that is faster than a current deposition rate; and

depositing the polymeric material, having the increased cooling rate, with the additive manufacturing apparatus at the increased deposition rate, the deposition rate being that is based at least in part on the changed cooling rate of the polymeric material.

17. The additive manufacturing method of claim 16 , wherein increasing the cooling rate of the polymeric material includes both adding the second material to the polymeric material and reducing the temperature of an environment of the additive manufacturing apparatus.

18. The additive manufacturing method of claim 17 , wherein the increased deposition rate is approximately equal to a maximum deposition rate of a print head of the additive manufacturing apparatus that is applied based at least in part on the changed cooling rate of the polymeric material.

19. The additive manufacturing method of claim 16 , wherein increasing the cooling rate includes reducing a temperature of a deposition location where the polymeric material is deposited with a cooling device.

20. The additive manufacturing method of claim 19 , wherein reducing the temperature of the deposition location does not include circulating forced air on the deposited polymeric material.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 1, 2020
From: SUSNJARA, KENNETH J.
To: THERMWOOD CORPORATION
Reel/Frame 053098/0743 →
Continuity (1)
Related Publication 20210402708A1 · Dec 30, 2021