SYSTEM FOR COOLING POWER GENERATION SYSTEM OF A LOCOMOTIVE
20170267258 ยท 2017-09-21
Assignee
Inventors
Cpc classification
B61C3/00
PERFORMING OPERATIONS; TRANSPORTING
B61C17/00
PERFORMING OPERATIONS; TRANSPORTING
B61C7/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B61C7/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A system for cooling a power generation system of a locomotive. The power generation system includes an alternator and an engine system. The alternator is coupled to the engine system. The engine system comprises one or more components. The system includes a fan providing air flow, a first sensing module to determine a first temperature of the alternator, a second sensing module to determine a second temperature of the one or more components of the engine system, and a controller. The controller regulates the air flow based on the first temperature and the second temperature.
Claims
1. A system for cooling a power generation system of a locomotive, the power generation system includes an alternator and an engine system, the alternator coupled to the engine system, the engine system comprising one or more components, the system comprising: a fan configured to provide an air flow for cooling the alternator and the engine system; a first sensing module configured to determine a first temperature of the alternator; a second sensing module configured to determine a second temperature of the one or more components of the engine system; and a controller in communication with the first sensing module and the second sensing module, the controller is configured to regulate the air flow from the fan based on the first temperature and the second temperature.
2. The system of claim 1, wherein the one or more components are positioned proximate to the alternator.
3. The system of claim 1, wherein the one or more components include an aftercooler.
4. The system of claim 1, wherein the one or more components include a turbocharger.
5. The system of claim 1, wherein the air flow from the fan is regulated by regulating a speed of the fan.
6. The system of claim 1, wherein the alternator is positioned upstream of the engine system.
7. The system of claim 6, wherein the alternator is housed within an enclosure, the enclosure having one or more openings permitting the air flow to reach the engine system.
8. A locomotive comprising: an engine system comprising one or more components; an alternator coupled to the engine system; a fan configured to provide an air flow for cooling the alternator and the engine system; a first sensing module configured to determine a first temperature of the alternator; a second sensing module configured to determine a second temperature of the one or more components of the engine system, wherein the one or more components are positioned proximate to the alternator; and a controller in communication with the first sensing module and the second sensing module, the controller is configured to regulate the air flow from the fan based on the first temperature and the second temperature.
9. The locomotive of claim 8, wherein the one or more components include an aftercooler.
10. The locomotive of claim 8, wherein the one or more components include a turbocharger.
11. The locomotive of claim 8, wherein the air flow from the fan is regulated by regulating a speed of the fan.
12. The locomotive of claim 8, wherein the alternator is positioned upstream of the engine system.
13. The locomotive of claim 12, wherein the alternator is housed within an enclosure, the enclosure having one or more openings permitting the air flow to reach the engine system.
14. A method for cooling a power generation system of a locomotive, the power generation system includes an alternator and an engine system, the alternator coupled to the engine system, the engine system comprising one or more components, the method comprising: providing an air flow for cooling the alternator and the engine system using a fan; determining a first temperature of the alternator using a first sensing module; determining a second temperature of the one or more components of the engine system using a second sensing module; providing the first temperature and the second temperature to a controller; and regulating the air flow by the controller, based on the first temperature and the second temperature.
15. The method of claim 14, wherein the one or more components are positioned proximate to the alternator.
16. The method of claim 14, wherein the one or more components include an aftercooler.
17. The method of claim 14, wherein the one or more components include a turbocharger.
18. The method of claim 14, wherein the air flow provided by the fan is regulated by regulating a speed of the fan.
19. The method of claim 14, wherein the alternator is upstream of the engine system.
20. The method of claim 19, wherein the alternator is housed within an enclosure, the enclosure having one or more openings permitting the air flow to reach the engine system.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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[0011]
DETAILED DESCRIPTION
[0012] Reference will now be made in detail to embodiments of the invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers will be used throughout the drawings to refer to the same or like parts.
[0013]
[0014] As shown in
[0015] As illustrated in
[0016]
[0017] As illustrated in
[0018] As shown in
[0019]
INDUSTRIAL APPLICABILITY
[0020] The present disclosure discloses the system for cooling 102 the power generation system 110 of the machine 100. The disclosure provides for regulation of the air flow 107 by the controller 116. The disclosure provides for the first sensing module 126 and the second sensing module 132 determining the first temperature of the alternator 122 and the second temperature of the component 130 respectively. The controller 116 is in communication with the first sensing module 126 and the second sensing module 132 to regulate the air flow 107 provided from the fan 106.
[0021] In an aspect of the present disclosure, the fan 106 is coupled to the alternator 122 via conduit 128. The opening 136 in the enclosure 134 permits the air flow 107 to reach the component 130 of the engine system 124. In an embodiment, the alternator 122 is positioned upstream of the engine system 124. In other words, the air flow 107 first passes through the alternator 122. The air flow 107 from the fan 106 is regulated by the controller 116 using the first temperature and the second temperature. This helps in effective cooling of the component 130 as the fan 106 is not slowed/stopped only on the basis of the first temperature of the alternator 122. During certain operating situations like during idling of the locomotive 100, the first temperature of the alternator 122 is below a lower threshold temperature and thus the fan 106 is either slowed or stopped in existing systems. As the same air flow 107 is also used to cool the component 130, the present system for cooling 102 regulates the air flow 107 based both on the first temperature and the second temperature. This will ensure more efficient cooling of the power generation system 110.
[0022] Further, in an embodiment, the component 130 is positioned proximate to the alternator 122. By taking in account the proximity of the component 130 as a parameter for regulating the air flow 107, the chances of the overheating of the component 130 is reduced. This eventually leads to enhanced accuracy of the system for cooling 102 the power generation system 110. Further, there is only one additional parameter added for regulation of the air flow 107 that is the second temperature of the component 130. This provides for no extra usage of the existing memory/processing power. Consequently, there is no noticeable lag after retrofitting any existing power generation systems.
[0023] In an aspect of the present disclosure, the air flow 107 provided by the fan 106 is regulated. In an embodiment, the air flow 107 is regulated by regulating the speed of the fan 106. The controller 116 may regulate the air flow 107 by regulating the speed of the fan 106 based on the first temperature and the second temperature. One may note that the air flow 107 from the fan 106 may be also regulated by using other methods. One of such methods may be by regulating the air flow 107 reaching the component 130 of the engine system 124 by controlling the opening 136 of the enclosure 134. Thus the opening 136 may be fully or partially opened based on the first temperature and the second temperature. Another method could be by redirecting the air flow 107 away from the engine room 118 based on the first temperature and the second temperature. This helps in standardizing the application of the system for cooling 102 as per the cost, availability of space, applicability of the working environment and like aspects of any existing power generation system.
[0024] In another aspect of the present disclosure, the regulation of the air flow 107 is done by the controller 116. The controller 116 uses the first temperature determined by the first sensing module 126 and the second temperature determined by the second sensing module 132. Thus, the system for cooling 102 requires only one change in hardware of existing systems for cooling and that is the addition of the second sensing module 132. This reduces the additional cost required to retrofit any existing systems for cooling. Further, adding only one additional hardware element does not add any complexity in the existing systems.
[0025] In yet another aspect of the present disclosure, a method 400 for cooling the power generation system 110 is disclosed. Referring to