US2019207477A1PendingUtilityA1

Systems and methods for regulating fluid flow for internal cooling and lubrication of electric machines

Assignee: CLEAN WAVE TECH INCPriority: Aug 25, 2010Filed: Jul 13, 2018Published: Jul 4, 2019
Est. expiryAug 25, 2030(~4.1 yrs left)· nominal 20-yr term from priority
H02K 9/12H02K 9/19F16C 35/042F16C 33/6659H02K 5/20F16C 2380/26F16C 37/007H02K 1/32H02K 1/20H02K 5/203H02K 9/193H02K 5/15
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Claims

Abstract

The invention provides systems and methods for cooling and lubrication of high power density electric machines with an enhanced fluid injection system. Multiple fluid flow passages may be provided within the electric machine, which may include one or more bearing fluid flow pathways and one or more rotor fluid flow pathways. The bearing fluid flow pathway may comprise one or more passages which may direct a fluid to contact one or more bearings for lubrication and cooling of the one or more bearings. The rotor fluid flow pathway may comprise one or more passages which may direct a fluid along the rotatable shaft toward the rotor and stator for cooling of the rotor and stator. The electric machine may also include a fluid flow passage leading to a junction, wherein the fluid flow pathway may split between the bearing fluid flow pathway and the rotor fluid flow pathway. Additionally, the electric machine may include a fluid flow metering device at the junction between the bearing fluid flow pathway and the rotor fluid flow pathway, wherein the metering device is configured to determine the relative amount of fluid that flows to the bearing and fluid that flows toward the rotor and stator.

Claims

exact text as granted — not AI-modified
What is claimed is: 
     
         1 . An electric machine comprising:
 a rotor fixed to a rotatable shaft and supported by means of one or more bearings;   a stator stationary in relation to the rotatable rotor and shaft with a gap between the rotor and the stator;   one or more fluid flow passages within the machine, wherein at least one fluid flow passage leads to a junction wherein the fluid flow splits into a bearing fluid flow pathway to contact the one or more bearings and into a rotor fluid flow pathway toward the rotor and stator; and   a fluid flow metering device at the junction between the bearing fluid flow pathway and the rotor fluid flow pathway, wherein the fluid flow metering device is configured to determine the relative amount of fluid that flows to contact the one or more bearings and fluid that flows toward the rotor and stator.   
     
     
         2 . The electric machine of  claim 1  wherein the fluid flow metering device is removable, such that if the machine is operated without the fluid flow metering device, the relative amount of fluid that flows to contact the one or more bearings and fluid that flows toward the rotor and stator is altered. 
     
     
         3 . The electric machine of  claim 1  wherein the fluid flow metering device is replaceable, such that if the fluid flow metering device is replaced by one or more different metering devices of different sizes and/or configurations, the relative amount of fluid that flows to contact the one or more bearings and fluid that flows toward the rotor and stator is altered. 
     
     
         4 . The electric machine of  claim 1  wherein the fluid flow metering device is adjustable, such that if the configuration or position of the fluid flow metering device is adjusted, the relative amount of fluid that flows to contact the one or more bearings and fluid that flows toward the rotor and stator is altered. 
     
     
         5 . The electric machine of  claim 1  wherein the rotor fluid flow pathway comprises a fluid injector nozzle, wherein the fluid injector nozzle surrounds the rotatable shaft and a gap between the fluid injector nozzle and the rotatable shaft is formed, and wherein fluid is directed to flow along the rotatable shaft through the gap between the fluid injector nozzle and the rotatable shaft toward the rotor and stator. 
     
     
         6 . The electric machine of  claim 5  wherein the fluid flow metering device is captured between the fluid injector nozzle and the one or more bearings, and wherein the fluid flow metering device and the one or more bearings are secured in place by the fluid injector nozzle. 
     
     
         7 . The electric machine of  claim 1  wherein the fluid flow metering device comprises a plate which forms a gap between the one or more bearings and the rotor fluid flow pathway, such that the size of the gap determines the relative amount of fluid that flows to contact the one or more bearings and fluid that flows toward the rotor and stator. 
     
     
         8 . A method for regulating fluid flow for internal cooling and lubrication of an electric machine comprising:
 providing a rotor fixed to a rotatable shaft and supported by means of one or more bearings;   providing a stator stationary in relation to the rotatable rotor and shaft with a gap between the rotor and the stator;   providing one or more fluid flow passages within the machine, wherein the one or more fluid flow passages comprise:
 one or more bearing fluid flow pathways comprising one or more passages which direct fluid to contact the one or more bearings for lubrication and cooling of the one or more bearings; 
 one or more rotor fluid flow pathways comprising one or more passages which direct fluid along the rotatable shaft toward the rotor and stator for cooling of the rotor and stator; and 
 an introductory fluid flow passage leading to a junction, wherein the fluid flow splits between the bearing fluid flow pathway and the rotor fluid flow pathway; and 
   providing a fluid flow metering device at the junction between the bearing fluid flow pathway and the rotor fluid flow pathway, wherein the fluid flow metering device is configured to determine the relative amount of fluid that flows to contact the one or more the bearings and fluid that flows toward the rotor and stator.   
     
     
         9 . The method of  claim 8  further comprising operating the machine without the fluid flow metering device, thereby altering the relative amount of fluid that flows to contact the one or more bearings and fluid that flows toward the rotor and stator. 
     
     
         10 . The method of  claim 8  further comprising replacing the fluid flow metering device by one or more different metering devices of different sizes and/or configurations, thereby altering the relative amount of fluid that flows to contact the one or more bearings and fluid that flows toward the rotor and stator. 
     
     
         11 . The method of  claim 8  further comprising adjusting the configuration or position of the fluid flow metering device, thereby altering the relative amount of fluid that flows to contact the one or more bearings and fluid that flows toward the rotor and stator. 
     
     
         12 . The method of  claim 8  wherein the one or more rotor fluid flow pathways comprise a fluid injector nozzle, wherein the fluid injector nozzle surrounds the rotatable shaft and a gap between the fluid injector nozzle and the rotatable shaft is formed, and wherein fluid is directed to flow along the rotatable shaft through the gap between the fluid injector nozzle and the rotatable shaft toward the rotor and stator. 
     
     
         13 . The method of  claim 12  wherein the fluid flow metering device is captured between the fluid injector nozzle and the one or more bearings, and wherein the fluid flow metering device and the one or more bearings are secured in place by the fluid injector nozzle. 
     
     
         14 . The method of  claim 8  wherein the fluid flow metering device comprises a plate which forms a gap between the one or more bearings and the rotor fluid flow pathway, such that the size of the gap determines the relative amount of fluid that flows to contact the one or more bearings and fluid that flows toward the rotor and stator.

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