SYSTEM AND METHOD FOR COMPRESSOR LEAK DETECTION
20220326109 · 2022-10-13
Inventors
- Catherine B. Sarigiannis (Grand Island, NY, US)
- Jeremiah J. Rauch (Clarence, NY, US)
- Mårten Källström (Sala, SE)
Cpc classification
F05D2260/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01M3/26
PHYSICS
F04D27/0292
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2270/3015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D27/001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
G01M3/26
PHYSICS
Abstract
A method for leak detection in a system including a compressor. A first pressure differential is determined in the system via a first pressure differential indicator (PDI). The first pressure differential is converted into a first flow measurement. A second flow measurement is determined downstream of the compressor using a second PDI. The first flow measurement and the second flow measurement are compared to determine whether a leak exists between the first PDI and the second PDI.
Claims
1. A method for leak detection in a system having a compressor, the method comprising: determining a first pressure differential in the system via a first pressure differential indicator (PDI); converting the first pressure differential into a first flow measurement; determining a second flow measurement downstream of the compressor using a second PDI; and comparing the first flow measurement and the second flow measurement to determine whether a leak exists between the first PDI and the second PDI in the system.
2. The method of claim 1, wherein: the system comprises at least the compressor and a restriction; the first pressure differential is determined across the restriction; and the restriction comprises at least one of a surge flow cone, a strainer, a cooler, and a flow element.
3. The method of claim 2, wherein the first pressure differential is converted to the first flow measurement based on an absolute pressure at the first PDI, an absolute temperature at the first PDI, and a flow constant.
4. The method of claim 3, wherein the flow constant is set to a value that equates a historical first flow measurement to a historical second flow measurement at a data start point.
5. The method of claim 3, wherein the compressor comprises a main air compressor or a booster air compressor.
6. The method of claim 5, wherein the compressor comprises the main air compressor and the first pressure differential is converted to the first flow measurement based on a humidity factor that accounts for a variation of water in air at the first PDI.
7. The method of claim 6, wherein the humidity factor is determined based on an absolute pressure at the first PDI, a temperature at the first PDI, and a relative humidity.
8. The method of claim 1, wherein the second flow measurement is based on a temperature at the second PDI and a pressure at the second PDI.
9. The method of claim 1, wherein comparing the first flow measurement and the second flow measurement comprises determining a percent change between the first flow measurement and the second flow measurement, which indicates a leak percentage between the first PDI and the second PDI.
10. The method of claim 1, wherein the comparing of the first flow measurement and the second flow measurement is repeated over time to determine a magnitude and a duration of the leak.
11. A compressor system comprising: a compressor; a first pressure differential indicator (PDI) configured for determining a first pressure differential in the compressor system; a second PDI downstream of the compressor and configured for determining a second pressure differential; a controller configured to: convert the first pressure differential into a first flow measurement; convert the second pressure differential into a second flow measurement; compare the first flow measurement and the second flow measurement to determine whether a leak exists between the first PDI and the second PDI in the compressor system.
12. The compressor system of claim 11, further comprising a restriction, wherein: the first pressure differential is determined across the restriction; and the restriction comprises at least one of a surge flow cone, a strainer, a cooler, and a flow element.
13. The compressor system of claim 12, wherein the controller converts the first pressure differential to the first flow measurement based on an absolute pressure at the first PDI, an absolute temperature at the first PDI, and a flow constant.
14. The compressor system of claim 13, wherein the flow constant is set to a value that equates a historical first flow measurement to a historical second flow measurement at a data start point.
15. The compressor system of claim 13, wherein the compressor comprises a main air compressor or a booster air compressor.
16. The compressor system of claim 15, wherein the compressor comprises the main air compressor and the controller converts the first pressure differential to the first flow measurement based on a humidity factor that accounts for a variation of water in air at the first PDI.
17. The compressor system of claim 16, wherein the controller is further configured to determine the humidity factor based on an absolute pressure at the first PDI, a temperature at the first PDI, and a relative humidity.
18. The compressor system of claim 11, wherein the controller converts the second pressure differential to the second flow measurement based on a temperature at the second PDI and a pressure at the second PDI.
19. The compressor system of claim 11, wherein, in comparing the first flow measurement and the second flow measurement, the controller is configured to determine a percent change between the first flow measurement and the second flow measurement, which indicates a leak percentage between the first PDI and the second PDI.
20. The compressor system of claim 11, wherein the controller is further configured to repeat the comparing of the first flow measurement and the second flow measurement over time to determine a magnitude and a duration of the leak.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008] The above and other aspects, features, and advantages of certain embodiments of the present disclosure will be more apparent from the following detailed description, when taken in conjunction with the accompanying drawings, in which:
[0009]
[0010]
[0011]
[0012]
[0013]
DETAILED DESCRIPTION
[0014] Hereinafter, embodiments of the present disclosure are described in detail with reference to the accompanying drawings. It should be noted that the same elements will be designated by the same reference numerals although they are shown in different drawings. In the following description, specific details such as detailed configurations and components are merely provided to assist with the overall understanding of the embodiments of the present disclosure. Therefore, it should be apparent to those skilled in the art that various changes and modifications of the embodiments described herein may be made without departing from the scope of the present disclosure. In addition, descriptions of well-known functions and constructions are omitted for clarity and conciseness. The terms described below are terms defined in consideration of the functions in the present disclosure, and may be different according to users, intentions of the users, or customs. Therefore, the definitions of the terms should be determined based on the contents throughout this specification.
[0015] The present disclosure may have various modifications and various embodiments, among which embodiments are described below in detail with reference to the accompanying drawings. However, it should be understood that the present disclosure is not limited to the embodiments, but includes all modifications, equivalents, and alternatives within the scope of the present disclosure.
[0016] Although the terms including an ordinal number such as first, second, etc. may be used for describing various elements, the structural elements are not restricted by the terms. The terms are only used to distinguish one element from another element. For example, without departing from the scope of the present disclosure, a first structural element may be referred to as a second structural element. Similarly, the second structural element may also be referred to as the first structural element. As used herein, the term “and/or” includes any and all combinations of one or more associated items.
[0017] The terms used herein are merely used to describe various embodiments of the present disclosure but are not intended to limit the present disclosure. Singular forms are intended to include plural forms unless the context clearly indicates otherwise. In the present disclosure, it should be understood that the terms “include” or “have” indicate the existence of a feature, a number, a step, an operation, a structural element, parts, or a combination thereof, and do not exclude the existence or probability of the addition of one or more other features, numerals, steps, operations, structural elements, parts, or combinations thereof.
[0018] Unless defined differently, all terms used herein have the same meanings as those understood by a person skilled in the art to which the present disclosure belongs. Terms such as those defined in a generally used dictionary are to be interpreted to have the same meanings as the contextual meanings in the relevant field of art, and are not to be interpreted to have ideal or excessively formal meanings unless clearly defined in the present disclosure.
[0019]
[0020] The compressor system includes a restriction 202, which may be embodied as a surge flow cone, a strainer, a cooler, or an FE. The restriction 202 feeds into a compressor 204, which may be of any type. The compressor 204 feeds into an aftercooler 206 and then a recirculation valve 208 for recirculation back to the restriction 202. A first pressure differential is measured at the restriction 202 via a first PDI 210, which is typically performed for surge control purposes.
[0021] A first TI 224 and a first PI 226 provide a temperature and a pressure, respectively, within the compressor system at a location proximate to the restriction 202. Using the three measurements within the compressor system, a flow indicator 228 determines a compressor flow based on Equation (1) below:
[0028] The hf is determined using Equation (2) below:
[0031] The units of the terms defined above can be variable and do not affect the accuracy of the flow comparison.
[0032] Downstream of the compressor 204 is a compressor vent 212, after which a process flow measurement is performed. A second pressure differential is measured at an FE 214 via a second PDI 216. The FE 214 may be embodied as an orifice, a ventury, or a pilot tube, for example. A temperature is measured at a second TI 218 and a pressure is measured at a second PI 220 at locations proximate to the flow element 214. A flow indicator 222 uses the pressure differential at the second PDI 216, the temperature at the second TI 218, and the pressure at the second PI 220 to determine a process flow for the system.
[0033] A controller 230 of the system compares the compressor flow within the compressor system to the process flow downstream of the compressor in order to determine a percent difference or error between the two flows. The percent difference or error is also equivalent to a leak percentage between the first PDI 210 and the second PDI 216. The controller 230 may also be used to determine both the controller flow and the process flow. Using the above-described method, bypass leaks are identified by their region and quantified, as set forth in the examples below.
[0034]
[0035] A leak is illustrated as a separation between BAC flow lines in
[0036]
[0037]
[0038]
[0039] At 404, the first pressure differential is converted into a first flow measurement. The first pressure differential is converted based on an absolute pressure at the first PDI, an absolute temperature at the first PDI, and a flow constant. The flow constant is previously set at a data start point such that a historical first flow measurement and a historical second flow measurement are equal. The first pressure differential is also converted based on a humidity factor, when the compressor is a MAC. The humidity factor accounts for a variation of water in air at the first PDI and is based on the absolute pressure at the first PDI, a temperature at the first PDI, and a relative humidity.
[0040] At 406, a second flow measurement is determined downstream of the compressor using a second PDI. The second flow measurement is based on a temperature at the second PDI and a pressure at the second PDI.
[0041] At 408, the first flow measurement and the second flow measurement are compared to determine whether a leak exists between the first PDI and the second PDI. A percent change or difference between the first flow measurement and the second flow measurement is determined, which indicates an air leak percentage between the first PDI and the second PDI. The comparison of the first flow measurement and the second flow measurement is repeated over time, as shown in
[0042]
[0043] The apparatus also includes the processor 506 for controlling the conversion of pressure differentials into flow measurements and computing percent changes between flow measurements. The processor may also control computation of a flow constant and a humidity factor. Additionally, the apparatus may include a communication interface 508 that receives signals, such as, for example, pressure differentials, temperatures, pressures, and flows, and transmits or outputs signals, such as, for example, percent changes between flow measurements.
[0044] Although certain embodiments of the present disclosure have been described in the detailed description of the present disclosure, the present disclosure may be modified in various forms without departing from the scope of the present disclosure. Thus, the scope of the present disclosure shall not be determined merely based on the described embodiments, but rather determined based on the accompanying claims and equivalents thereto.