IP Library Granted Patent US 9,683,897
Granted Patent B2
US 9,683,897 · App. 14/090,313 · Granted Jun 20, 2017

Temperature indicator for electrical equipment

Inventor: Bruce W. Nichols (Dallas, TX)
G01K1/02G01K11/02G01K11/06G01K13/00H01H1/0015H01H11/0062H01H9/0016H01H2011/0068
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Quick Facts
Patent No.
US 9,683,897
App. No.
14/090,313
Granted
Jun 20, 2017
Kind
B2
Abstract

A system for determining when an electrical contact or other component reaches a predetermined temperature. In operation, a trace material is dispersed into a surrounding environment (e.g., head space within a compartment above insulating oil), where the trace material is detected. A barrier may be ruptured or broken by temperature-induced gas pressure, or pierced by a spring-loaded member that is located within the same section that contains the trace material, and devices may be provided for moving the trace material through the foil barrier as the barrier is ruptured. The barrier may be opened solely by internal gas pressure. According to another embodiment, improved fail-safe operation may be achieved by providing a spring-loaded member and configuring the barrier to be ruptured by the pressure of the detectable gas material before the barrier is ruptured by the spring-loaded member.

Claims (40)

1. A device for responding to a temperature of an electrical component, the device comprising:

a first section containing a detectable material;

a cover for maintaining the detectable material within the first section; and

an open end; and

wherein the device is configured to apply a force to the cover to rupture the cover, and thereby release the detectable material from the first section, in response to the temperature of the electrical component increasing to a predetermined temperature; and

wherein the cover for maintaining the detectable material within the first section of the device is located between the first section of the device and the open end of the device.

2. The device of claim 1 , wherein the force that is applied to the cover to rupture the cover is generated solely by vapour pressure of the detectable material.

3. The device of claim 2 , wherein the cover includes a reverse-conical shaped, thin sheet of metal with a circular score line.

4. A device for responding to a temperature of an electrical component, the device comprising:

a first section containing a detectable material; and

a cover for maintaining the detectable material within the first section; and

wherein the device is configured to apply a force to the cover to rupture the cover, and thereby release the detectable material from the first section, in response to the temperature of the electrical component increasing to a predetermined temperature;

wherein the force that is applied to the cover to rupture the cover is generated solely by vapour pressure of the detectable material;

wherein the cover includes a reverse-conical shaped, thin sheet of metal with a circular score line; and

wherein the device includes openings for allowing the detectable material to disperse into a surrounding medium while retaining debris within the device.

5. The device of claim 4 , wherein the cover for maintaining the detectable material within the first section is spaced apart from the electrical component by the first section.

6. A device for responding to a temperature of an electrical component, the device comprising:

a first section containing a detectable material; and

a cover for maintaining the detectable material within the first section; and

wherein the device is configured to apply a force to the cover to rupture the cover, and thereby release the detectable material from the first section, in response to the temperature of the electrical component increasing to a predetermined temperature; and

wherein the device further includes: a spring-biased member for generating the force that is applied to the cover, and wherein the spring-biased member is located within the first section;

and a temperature-responsive fusible material for releasing the spring-biased member to open the cover and thereby release the detectable material from the first section.

7. The device of claim 6 , further comprising a collar slidably located on the spring-biased member for moving the spring-biased member after the collar moves an initial distance without causing movement of the spring-biased member.

8. The device of claim 6 , further comprising a coil compression spring for biasing the spring-biased member toward the cover.

9. The device of claim 8 , wherein the coil compression spring is encased within the fusible material.

10. The device of claim 6 , wherein the cover includes a foil barrier, and wherein the spring-biased member includes a sharp end for rupturing the foil barrier.

11. The device of claim 10 , wherein the foil barrier is configured to be ruptured by vapour pressure of the detectable material before the foil barrier is ruptured by the sharp end of the spring-biased member.

12. A method of releasing a detectable gas material in response to temperature of an electrical component, comprising:

providing a device with a rupturable barrier and a first section;

using the rupturable barrier to maintain the detectable gas material within the first section;

increasing the temperature of the detectable gas material so that vapour pressure of the detectable gas material within the first section causes the barrier to rupture; and

providing the device with an open end, and locating the rupturable barrier between the first section of the device and the open end of the device.

13. The method of claim 12 , further comprising the step of dispersing the detectable gas material into insulating oil.

14. The method of claim 12 , wherein the detectable gas material includes a trace chemical, and wherein the method further comprises the step of monitoring the surrounding environment for the trace chemical, or performing an oil analysis or diagnostic test, after its release from the first section.

15. A method of releasing a detectable gas material in response to temperature of an electrical component, comprising:

using a rupturable barrier to maintain the detectable gas material within a first section; and

increasing the temperature of the detectable gas material so that vapour pressure of the detectable gas material causes the barrier to rupture; and

wherein the method further includes the steps of providing a spring-biased member for rupturing the barrier, and using a fusible material to maintain the spring-biased member in a first position.

16. The method of claim 15 , further comprising the step of melting the fusible material to release the spring-biased member from the first position, and wherein the melting step occurs after the barrier is ruptured by the pressure of the detectable gas material.

17. The method of claim 16 , further comprising the step of causing a sharp end of the spring-biased member to pass through the barrier and into the first section, to thereby volumetrically displace the detectable gas material from the first section.

Continuity (3)
Continuation In Part 13047773 · Mar 14, 2011
Provisional Application 61313418 · Mar 12, 2010
Related Publication 20140211829A1 · Jul 31, 2014