Emmissivity test instrument for overhead electrical transmission and distribution
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.
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.