IP Library Patent Application 14097884
Patent Application
App. No. 14/097,884

METHODS FOR USE IN TESTING GAS TURBINE FILTERS

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Patent No.
US None
App. No.
14/097,884
Abstract

Methods of testing gas turbine filter elements under high or low temperature operating environments are provided. In one aspect, the method includes performing a fractional efficiency test on a filter. The method also includes heating or cooling the filter to a temperature that is higher or lower than an ambient temperature. The method further includes performing a second fractional efficiency test on the filter after the filter has been heated or cooled for a period of time at the temperature.

Claims (40)

1 . A method of testing a gas turbine filter for use in a high ambient temperature operating environment, said method comprising:

performing a first fractional efficiency test on the filter;

heating the filter to a first temperature that is higher than the ambient temperature surrounding the filter; and

performing a second fractional efficiency test on the filter after the filter has been heated for a predetermined amount of time at the first temperature.

2 . The method in accordance with claim 1 , further comprising:

loading the filter with a dust material;

heating the loaded filter to a second temperature that is higher than the ambient temperature; and

cooling the loaded filter from the second temperature to the ambient temperature after the loaded filter has been heated for a predetermined amount of time at the second temperature.

3 . The method in accordance with claim 2 , further comprising running a wet loss of efficiency test on the loaded filter and determining that the loaded filter has passed the wet loss of efficiency test.

4 . The method in accordance with claim 3 , further comprising running a wet burst test on the loaded filter after determining that the loaded filter has passed the wet loss of efficiency test.

5 . The method in accordance with claim 1 , wherein heating the filter to the first temperature comprises heating the filter at a controlled ramp rate to the first temperature.

6 . The method in accordance with claim 5 , wherein heating the filter comprises heating the filter at a ramp rate of between about 0.1° C. and about 15° C. per minute.

7 . The method in accordance with claim 1 , wherein heating the filter further comprises maintaining the filter at the first temperature for a period of time between about one hour to about twenty-four hours.

8 . The method in accordance with claim 7 , wherein heating the filter further comprises cycling the first temperature at a controlled ramp rate to a third temperature that is lower than the ambient temperature.

9 . The method in accordance with claim 8 , wherein cycling the first temperature comprises cooling the filter at a ramp rate of between about 0.1° C. and about 15° C. per minute.

10 . The method in accordance with claim 8 , further comprising:

performing at least once:

heating the filter to the first temperature;

maintaining the filter at the first temperature for a period of time between about one hour to about twenty-four hours; and

cycling the first temperature to the third temperature at a ramp rate of between about 0.1° C. and about 15° C. per minute.

11 . A method of testing a gas turbine filter for use in a low ambient temperature operating environment, said method comprising:

performing a first fractional efficiency test on the filter;

cooling the filter to a first temperature that is lower than the ambient temperature surrounding the filter; and

performing a second fractional efficiency test on the filter after the filter has been cooled for a predetermined amount of time at the first temperature.

12 . The method in accordance with claim 11 , further comprising:

loading the filter with a dust material;

cooling the loaded filter to a second temperature that is lower than the ambient temperature; and

warming the loaded filter from the second temperature to the ambient temperature after the loaded filter has been cooled for a predetermined amount of time at the second temperature.

13 . The method in accordance with claim 12 , further comprising running a wet loss of efficiency test on the loaded filter and determining that the loaded filter has passed the wet loss of efficiency test.

14 . The method in accordance with claim 13 , further comprising running a wet burst test on the loaded filter after determining that the loaded filter has passed the wet loss of efficiency test.

15 . The method in accordance with claim 11 , wherein cooling the filter to the first temperature comprises cooling the filter to the first temperature at a controlled ramp rate of between about 0.1° C. and about 15° C. per minute.

16 . The method in accordance with claim 11 , wherein cooling the filter further comprises maintaining the filter at the first temperature for a period of time between about one hour to about twenty-four hours.

17 . The method in accordance with claim 16 , wherein cooling the filter further comprises pulsing the filter a predetermined number of times.

18 . The method in accordance with claim 16 , wherein cooling the filter further comprises cycling the first temperature at a controlled ramp rate to a third temperature that is higher than the ambient temperature.

19 . The method in accordance with claim 18 , wherein cycling the first temperature comprises warming the filter at a ramp rate of between about 0.1° C. and about 15° C. per minute.

20 . The method in accordance with claim 18 , further comprising:

performing at least once:

cooling the filter to the first temperature;

maintaining the filter at the first temperature for a period of time between about one hour to about twenty-four hours; and

cycling the first temperature to the third temperature at a controlled ramp rate of between about 0.1° C. and about 15° C. per minute.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 12, 2014
From: GENERAL ELECTRIC COMPANY
To: BHA ALTAIR, LLC
Reel/Frame 033085/0216 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 5, 2013
From: KIPPEL, BRAD AARON; HINER, STEPHEN DAVID; BRYANT, PAUL SHERWOOD; MARCHETTI, GIORGIO
To: GENERAL ELECTRIC COMPANY
Reel/Frame 031724/0446 →