IP Library › Granted Patent US 12,278,531
Granted Patent B2
US 12,278,531 · App. 17/717,630 · Granted Apr 15, 2025

Vacuum pressure impregnation method for insulation system

Inventor: Jan de Swardt (Eustis, FL)
Assignee: The Timken Company
H02K15/12H02K15/105
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Quick Facts
Patent No.
US 12,278,531
App. No.
17/717,630
Granted
Apr 15, 2025
Kind
B2
Abstract

A vacuum pressure impregnation process includes placing a room temperature coil/winding into a pressure vessel with a camera aimed at the coil/winding for inspection, and sealing the pressure vessel to draw a first vacuum level, maintained for a first duration. The coil/winding is flooded with resin and remotely monitored. A second vacuum level is maintained for a second duration while remotely monitoring. A first positive pressure level is applied for a third duration while remotely monitoring, before releasing and drawing a third vacuum level, maintained for a fourth duration while remotely monitoring. A second positive pressure level is applied for a fifth duration while remotely monitoring, before releasing pressure and removing the coil/winding from the pressure vessel.

Claims (48)

1. A vacuum pressure impregnation process comprising:

placing a room temperature electric machine coil/winding into a pressure vessel with a camera aimed at the coil/winding for inspection thereof;

sealing the pressure vessel and drawing a vacuum therein to a first vacuum level;

maintaining the vacuum at the first vacuum level for a first duration of time;

flooding the coil/winding with low viscosity epoxy or silicone resin and remotely monitoring at a location away from the pressure vessel with images provided by the camera;

drawing a vacuum in the pressure vessel to a second vacuum level and maintaining the vacuum at the second vacuum level for a second duration of time while remotely monitoring at a location away from the pressure vessel with images provided by the camera;

releasing the second vacuum level and applying a first positive pressure level in the pressure vessel for a third duration of time while remotely monitoring at a location away from the pressure vessel with images provided by the camera;

releasing the first positive pressure level and drawing a vacuum in the pressure vessel to a third vacuum level and maintaining the vacuum at the third vacuum level for a fourth duration of time while remotely monitoring at a location away from the pressure vessel with images provided by the camera;

releasing the third vacuum level and applying a second positive pressure level in the pressure vessel for a fifth duration of time while remotely monitoring at a location away from the pressure vessel with images provided by the camera;

releasing the second positive pressure level in the pressure vessel; and

removing the coil/winding from the pressure vessel,

wherein the coil/winding is not preheated before the step of flooding the coil/winding with low viscosity epoxy or silicone resin.

2. The vacuum pressure impregnation process of claim 1 , wherein the first vacuum level is a pressure of 2 Torr or less, and the first duration of time is at least 45 minutes.

3. The vacuum pressure impregnation process of claim 1 , wherein the second vacuum level is a pressure in the range of 2.5 Torr to 400 mTorr, and the duration of time is at least 45 minutes.

4. The vacuum pressure impregnation process of claim 1 , wherein the first positive pressure level is 80 to 100 psi, and the third duration of time is at least 6 hours.

5. The vacuum pressure impregnation process of claim 1 , wherein the third vacuum level is a pressure in the range of 2 Torr to 400 mTorr, and the fourth duration of time is at least 45 minutes.

6. The vacuum pressure impregnation process of claim 1 , wherein the second positive pressure level is 80 to 100 psi, and the fifth duration of time is at least 4 hours.

7. A vacuum pressure impregnation process comprising:

placing a room temperature electric machine coil/winding into a pressure vessel without preheating;

drawing a vacuum in the pressure vessel to a first vacuum level;

maintaining the vacuum at the first vacuum level for a first duration of time;

flooding the coil/winding with low viscosity epoxy or silicone resin;

drawing a vacuum in the pressure vessel to a second vacuum level and maintaining the vacuum at the second vacuum level for a second duration of time;

releasing the second vacuum level and applying a first positive pressure level in the pressure vessel for a third duration of time;

releasing the first positive pressure level and drawing a vacuum in the pressure vessel to a third vacuum level and maintaining the vacuum at the third vacuum level for a fourth duration of time;

releasing the third vacuum level and applying a second positive pressure level in the pressure vessel for a fifth duration of time;

releasing the second positive pressure level in the pressure vessel; and

removing the coil/winding from the pressure vessel,

wherein the coil/winding is not preheated before the step of flooding the coil/winding with low viscosity epoxy or silicone resin.

8. The vacuum pressure impregnation process of claim 7 , wherein the coil/winding is remotely monitored at a location away from the pressure vessel with images provided by a camera.

9. The vacuum pressure impregnation process of claim 8 , wherein the coil/winding is remotely monitored at a location away from the pressure vessel with images provided by the camera throughout the steps from the resin flooding to the application of the second positive pressure level.

10. The vacuum pressure impregnation process of claim 7 , wherein the first vacuum level is a pressure of 2 Torr or less, and the first duration of time is at least 45 minutes.

11. The vacuum pressure impregnation process of claim 7 , wherein the second vacuum level is a pressure in the range of 2.5 Torr to 400 mTorr, and the duration of time is at least 45 minutes.

12. The vacuum pressure impregnation process of claim 7 , wherein the first positive pressure level is 80 to 100 psi, and the third duration of time is at least 6 hours.

13. The vacuum pressure impregnation process of claim 7 , wherein the third vacuum level is a pressure in the range of 2 Torr to 400 mTorr, and the fourth duration of time is at least 45 minutes.

14. The vacuum pressure impregnation process of claim 7 , wherein the second positive pressure level is 80 to 100 psi, and the fifth duration of time is at least 4 hours.

15. A vacuum pressure impregnation process comprising:

placing an electric machine coil/winding into a pressure vessel;

drawing a vacuum in the pressure vessel to a first vacuum level;

maintaining the vacuum at a first vacuum level of 2 Torr or less for a first duration of at least 45 minutes;

flooding the coil/winding with low viscosity epoxy or silicone resin;

drawing a vacuum in the pressure vessel to a second vacuum level of 2.5 Torr to 400 mTorr for a second duration of time of at least 45 minutes;

releasing the second vacuum level and applying a first positive pressure level of 80 to 100 psi in the pressure vessel for a third duration of time of at least 6 hours;

releasing the first positive pressure level; and

removing the coil/winding from the pressure vessel,

wherein the coil/winding is not preheated before the step of flooding the coil/winding with low viscosity epoxy or silicone resin.

16. The vacuum pressure impregnation process of claim 15 , wherein after releasing the first positive pressure level and before removing the coil/winding from the pressure vessel, the process further comprises drawing a vacuum in the pressure vessel to a third vacuum level of 2 Torr to 400 mTorr for a fourth duration of time of at least 45 minutes before releasing the third vacuum level in the pressure vessel and applying a second positive pressure level of 80 to 100 psi in the pressure vessel for a fifth duration of time of at least 4 hours.

17. The vacuum pressure impregnation process of claim 15 , wherein the coil/winding is remotely monitored at a location away from the pressure vessel with images provided by a camera throughout the steps from the resin flooding to the application of the second positive pressure level for the fifth duration of time.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 27, 2026
From: THE TIMKEN COMPANY
To: TIMKEN GEARS & SERVICES INC.
Reel/Frame 073601/0815 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 11, 2022
From: DE SWARDT, JAN
To: THE TIMKEN COMPANY
Reel/Frame 059561/0849 →
Continuity (2)
Provisional Application 63186413 · May 10, 2021
Related Publication 20220360153A1 · Nov 10, 2022
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