IP Library Granted Patent US 8,510,075
Granted Patent B2
US 8,510,075 · App. 12/565,821 · Granted Aug 13, 2013

Emmissivity test instrument for overhead electrical transmission and distribution

Inventors: Daniel Lawry (Alplaus, NY); Bernard Francis Fitzgerald (Schenectady, NY)
Assignee: Electric Power Research Institute, Inc.
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Quick Facts
Patent No.
US 8,510,075
App. No.
12/565,821
Granted
Aug 13, 2013
Kind
B2
Abstract

This invention relates to an emissivity test instrument for measuring the emissivity of overhead electric transmission conductors. The emissivity test instrument includes a vacuum chamber, a data acquisition module connected to the vacuum chamber and adapted to receive data therefrom, and a computing device. The vacuum chamber is adapted to seat a test sample therein. The computing device is connected to the data acquisition module and is adapted to perform a test on a test sample and generate a test results report.

Claims (76)

1. A method of determining the emissivity of overhead electric transmission conductors, comprising the steps of:

(a) providing an emissivity test instrument;

(b) preparing a test sample for testing by the emissivity test instrument, wherein the test sample is prepared by:

(i) removing an inner core of the test sample;

(ii) inserting a heater into the test sample; and

(iii) banding the test sample to prevent the test sample from expanding;

(c) running a test on the test sample;

(d) collecting test data; and

(e) using the test data to determine the emissivity of the test sample using

q

r

=

0.138

D

ɛ

·

[

(

T

c

+

273

100

)

4

-

(

T

a

+

273

100

)

4

]

.

 where q r is the radiated heat loss, D is the diameter of the test sample in inches, ε is the emissivity of the test sample, T c is the temperature of the test sample in degrees Celsius, and T a is the ambient temperature in degrees Celsius.

2. A method of determining the emissivity of overhead electric transmission conductors, comprising the steps of:

(a) providing an emissivity test instrument having:

(i) a vacuum chamber;

(ii) a data acquisition module; and

(iii) a computing device;

(b) preparing a test sample for testing by the emissivity test instrument;

(c) hanging the test sample in the vacuum chamber and sealing the test sample therein;

(d) heating the test sample to a first stage of heat where the test sample reaches a temperature T rating −T anticipation , where T ratinq is equal to a temperature rating of the test sample and T anticipation is equal to a pre-determined temperature constant of the test sample;

(e) initiating the computing device and running a test on the test sample; and

(f) determining the emissivity of the test sample.

3. The method according to claim 2 , wherein the step of preparing the test sample includes the steps of:

(a) removing an inner core of the test sample;

(b) inserting a heater into the test sample; and

(c) banding the test sample to prevent the test sample from expanding.

4. The method according to claim 3 , wherein the step of preparing the test sample further includes the steps of:

(a) measuring a length of the test sample; and

(b) measuring a diameter of the test sample.

5. The method according to claim 2 , wherein the step of preparing the test sample includes the steps of:

(a) removing an inner core of the test sample;

(b) installing a first thermally insulated end cap on a first end of the test sample;

(c) inserting a heater into the test sample;

(d) installing a second thermally insulated end cap on a second end of the test sample; and

(e) banding the test sample to prevent the test sample from expanding.

6. The method according to claim 2 , further including the step of using the data acquisition module to receive data from the vacuum chamber.

7. The method according to claim 2 , further including the step of creating a vacuum in the vacuum chamber to seal the test sample therein.

8. The method according to claim 2 , further including the step of inputting data into the computing device.

9. The method according to claim 2 , further including the step of heating the test sample to a second stage of heat where the test sample remains within a range

(T rating −0.5)<T sample <(T rating −0.5).

10. The method according to claim 2 , further including the step of heating the test sample to a third stage of heat where the test sample is held at a steady-state condition.

11. The method according to claim 2 , further including the steps of:

(a) inserting a heater into the test sample;

(b) using the heater to apply maximum heat to the test sample until the test sample reaches the temperature T rating −T anticipation ;

(c) using the heater to apply a controlled heat to the test sample after the test sample has reached the temperature T rating −T anticipation until the test sample has maintained the test sample in the range (T rating −0.5)<T sample <(T rating −0.5) for a specified period of time; and

(d) using the heater to apply a constant heat for a specified period of time after the temperature of the test sample has been maintained in the range of (T rating −0.5)<T sample <(T rating −0.5).

12. The method according to claim 2 , further including the step of measuring ambient temperature, test sample temperature, and power in the test sample.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 24, 2009
From: LAWRY, DANIEL; FITZGERALD, BERNARD FRANCIS
To: ELECTRIC POWER RESEARCH INSTITUTE, INC.
Reel/Frame 023276/0599 →
Continuity (2)
Provisional Application 61099644 · Sep 24, 2008
Related Publication 20100076719A1 · Mar 25, 2010