IP Library › Granted Patent US 10,882,159
Granted Patent B2
US 10,882,159 · App. 16/078,358 · Granted Jan 5, 2021

Control valve for shot peening

Inventors: Chia Loon Cheng (Singapore, SG); Chong Wei Lee (Singapore, SG); Keng Huat Tan (Singapore, SG); Ser Hean Tan (Singapore, SG)
Assignee: ABRASIVE ENGINEERING PTE LTD
B24C5/08B24C1/10B24C7/0069
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Quick Facts
Patent No.
US 10,882,159
App. No.
16/078,358
Granted
Jan 5, 2021
Kind
B2
Abstract

A control valve ( 100 ) comprises a conduit ( 102 ), a controller ( 104 ), a sensor unit ( 106; 146, 148 ), a cylindrical housing ( 112 ) and one or more regulating columns ( 124, 126 ). The conduit further comprises a hollow cylindrical body ( 114 ) and two smaller and shorter cylindrical extensions ( 116, 118 ) for the insertion of the regulating columns which are orthogonal to the hollow cylindrical body and provide a contactless means to control the flow of the medium ( 101 ) in the conduit.

Claims (38)

1. A control valve for regulating shot peening, the control valve comprising:

a conduit for transferring a ferrous shot medium;

a magnet aligned with the conduit for applying a magnetic field to the ferrous shot medium; and

an oscillator connected to the magnet for causing the magnetic field to oscillate from 8 Hz to 30 Hz,

wherein the magnet comprises a first magnet and a second magnet, the first magnet and the second magnet being at an angle so as to not be parallel with respect to each other for regulating transference of the ferrous shot medium by the magnetic field, and

wherein the oscillator is configured to change polarity of the magnetic field.

2. The control valve of claim 1 , wherein the magnet comprises an electromagnet.

3. The control valve of claim 2 , wherein the electromagnet comprises a magnetic conductor as an extension.

4. The control valve of claim 1 , further comprising a control circuit that is connected to the magnet for operating the magnet as a closed feedback loop.

5. A shot peening equipment for enhancing fatigue strength of components, the shot peening equipment comprising:

the control valve of claim 1 ; and

a nozzle connected to the control valve for directing the ferrous shot medium to an object.

6. A method for regulating a ferrous shot medium, the method comprising:

providing ferrous shot medium;

presenting a first magnet and a second magnet that are at an angle so as to not be parallel with respect to each other for generating a magnetic field to the ferrous shot medium in order to regulate transference of the ferrous shot medium;

oscillating the magnet for causing the magnetic field to oscillate from 8 Hz to 30 Hz and for changing polarity of the magnetic field; and

circulating used shot medium in a shot peening machine.

7. The method of claim 6 , wherein the presenting the first magnet and the second magnet comprises regulating the magnetic field according to the transference of the ferrous shot medium.

8. The method of claim 6 , wherein the presenting the first magnet and the second magnet comprises accelerating, decelerating, stopping, shaking, pushing the ferrous medium or a combination thereof.

9. The method of claim 6 , wherein the presenting the first magnet and the second magnet comprises conducting the magnetic field from a permanent magnet, an electromagnet or both.

10. The control valve of claim 1 , wherein the oscillator comprises an electronic oscillator for converting direct current from a power supply to an alternating current.

11. A control valve for regulating shot peening, the control valve comprising:

a conduit for transferring a ferrous shot medium;

a magnet aligned with the conduit for applying a magnetic field to the ferrous shot medium;

an oscillator connected to the magnet for causing the magnetic field to oscillate from 8 Hz to 30 Hz; and

a housing for enclosing the magnet in order to prevent infiltration of foreign particles or moisture,

wherein the housing comprises at least one detachable cover for allowing access to internal components of the control valve, and

wherein the oscillator is configured to change polarity of the magnetic field.

12. The control valve of claim 11 , wherein the magnet comprises an electromagnet.

13. The control valve of claim 12 , wherein the electromagnet comprises a magnetic conductor as an extension.

14. The control valve of claim 11 , further comprising a control circuit that is connected to the magnet for operating the magnet as a closed feedback loop.

15. The control valve of claim 11 , wherein the oscillator comprises an electronic oscillator for converting direct current from a power supply to an alternating current.

16. The method of claim 6 , further comprising adjusting oscillation rate of the magnet according to flow rate of the ferrous shot medium.

17. The control valve of claim 1 , wherein the conduit further comprises a first cylindrical extension and a second cylindrical extension for inserting the first magnet and the second magnet, respectively, and

wherein the first cylindrical extension and the second cylindrical extension are spaced apart equally by an acute angle of less of than less ninety degrees.

18. The control valve of claim 17 , wherein the first magnet and the second magnet comprises a first cylindrical rod and a second cylindrical rod configured to insert into the first cylindrical extension and the second cylindrical extension, respectively.

19. The control valve of claim 11 , wherein the conduit further comprises a hollow cylindrical body, and a first cylindrical extension and a second extension joined orthogonally to the hollow cylindrical body.

20. The control valve of claim 19 , wherein the magnet comprises a first cylindrical rod and a second cylindrical rod configured to insert into the first cylindrical extension and the second cylindrical extension, respectively.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 22, 2018
From: CHENG, CHIA LOON; LEE, CHONG WEI; TAN, KENG HUAT; TAN, SER HEAN
To: ABRASIVE ENGINEERING PTE LTD
Reel/Frame 046657/0183 →
Priority Claims (1)
SG 10201602833V · Apr 11, 2016 · national
Continuity (1)
Related Publication 20190337121A1 · Nov 7, 2019
Cited By (2)
US 12,359,742 US 12,466,029