METHODS FOR USE IN TESTING GAS TURBINE FILTERS
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.
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.