US2022074437A1PendingUtilityA1

Hydraulic Power Pack System

Assignee: GREEN HYDRAULIC POWER INCPriority: Jan 4, 2019Filed: Nov 16, 2021Published: Mar 10, 2022
Est. expiryJan 4, 2039(~12.4 yrs left)· nominal 20-yr term from priority
F04B 49/20F15B 2211/20546F04B 49/03F15B 2211/5157F15B 11/028F15B 2211/6651F04B 53/20F15B 11/0423F15B 2211/6653F15B 2211/6323F15B 21/08F04B 23/028F15B 1/26F15B 2211/8616F15B 2211/30525F04B 17/03F15B 2211/6309F15B 2211/7054F04B 49/08F15B 2211/50518F15B 2211/6654Y02P80/10F15B 2211/20515
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Claims

Abstract

A hydraulic power pack for use in a hydraulic system includes a reservoir configured to receive hydraulic fluid. A pump is in communication with the reservoir and is fluidly connectable to the hydraulic system. The pump is configured to pump hydraulic fluid from the reservoir into the hydraulic system when connected thereto. A hydraulic fluid sensor is fluidly connectable to the hydraulic system to sense a fluid characteristic of the hydraulic fluid within the hydraulic system. A variable speed drive is operatively coupled to the pump and the hydraulic fluid sensor to receive sensor data therefrom, with the variable speed drive being configured to generate a pump control signal based on the received sensor data. The pump is configured to operate at various speeds based on the pump control signal received from the variable speed drive.

Claims

exact text as granted — not AI-modified
1 . A hydraulic power pack for use in a hydraulic system, the hydraulic power pack comprising:
 a reservoir configured to receive hydraulic fluid;   a pump in communication with the reservoir and fluidly connectable to the hydraulic system, the pump being configured to pump hydraulic fluid from the reservoir into the hydraulic system when connected thereto;   a hydraulic fluid sensor fluidly connectable to the hydraulic system to sense a fluid characteristic of the hydraulic fluid within the hydraulic system;   an electrically driven variable speed drive operatively coupled to the pump and the hydraulic fluid sensor to receive sensor data therefrom, the electrically driven variable speed drive being configured to generate a pump control signal based on the received sensor data; and   a user interface in operative communication with the electrically driven variable speed drive and having a communications circuit configured to facilitate bi-directional communication with a remote electronic device;   the pump being configured to operate at various speeds based on the pump control signal received from the electrically driven variable speed drive.   
     
     
         2 . The hydraulic power pack recited in  claim 1 , further comprising a motor coupled to the electrically driven variable speed drive and the pump, the motor being configured to drive the pump in accordance with the pump control signal. 
     
     
         3 . The hydraulic power pack recited in  claim 1 , wherein the hydraulic fluid sensor is a pressure sensor. 
     
     
         4 . The hydraulic power pack recited in  claim 1 , further comprising a filter in fluid communication with the pump to filter impurities from the hydraulic fluid as the hydraulic fluid flows through the filter. 
     
     
         5 . The hydraulic power pack recited in  claim 1 , further comprising a heat exchanger in fluid communication with the pump to facilitate heat transfer in relation to the hydraulic fluid flowing therethrough. 
     
     
         6 . The hydraulic power pack recited in  claim 1 , further comprising a pressure relief valve in fluid communication with the pump and the reservoir, the pressure relief valve being transitional between a closed position and an open position, in the closed position, hydraulic fluid is restricted from flowing through the pressure relief valve, and in the open position, hydraulic fluid is capable of flowing through the pressure relief valve and toward the reservoir, the pressure relief valve being configured to transition from the closed position toward the open position in response to pressure upstream of the pressure relief valve being higher than a prescribed pressure threshold. 
     
     
         7 . The hydraulic power pack recited in  claim 1 , wherein the hydraulic power pack is configured to operate in at least one operational mode at a noise level that is a maximum of 65 dBA. 
     
     
         8 . A hydraulic system comprising:
 a reservoir configured to receive hydraulic fluid;   a pump in communication with the reservoir and configured to pump hydraulic fluid from the reservoir;   a hydraulic actuator including a cylinder and a piston moveable within the cylinder, the piston and cylinder collectively defining a first chamber and a second chamber;   a direction control valve in communication with the pump, the reservoir and the hydraulic actuator, the direction control valve being transitional between a first position and a second position, in the first position, the direction control valve directs fluid from the pump into the first chamber, and exhausts the second chamber by directing fluid therefrom toward the reservoir, in the second position, the direction control valve directs fluid from the pump into the second chamber, and exhausts the first chamber by direction fluid therefrom toward the reservoir;   a hydraulic fluid sensor downstream of the pump and upstream of the hydraulic actuator to sense a fluid characteristic of the hydraulic fluid between the pump and the hydraulic actuator; and   an electrically driven variable speed drive operatively coupled to the pump and the hydraulic fluid sensor to receive sensor data therefrom, the electrically driven variable speed drive being configured to generate a pump control signal based on the received sensor data; and   a user interface in operative communication with the electrically driven variable speed drive and having a communications circuit configured to facilitate bi-directional communication with a remote electronic device;   the pump being configured to operate at various speeds based on the pump control signal received from the electrically driven variable speed drive.   
     
     
         9 . The hydraulic system recited in  claim 8 , further comprising a motor coupled to the electrically driven variable speed drive and the pump, the motor being configured to drive the pump in accordance with the pump control signal. 
     
     
         10 . The hydraulic system recited in  claim 8 , wherein the hydraulic fluid sensor is a pressure sensor. 
     
     
         11 . The hydraulic system recited in  claim 8 , further comprising a filter in fluid communication with the pump to filter impurities from the hydraulic fluid as the hydraulic fluid flows through the filter. 
     
     
         12 . The hydraulic system recited in  claim 8 , further comprising a heat exchanger in fluid communication with the pump to facilitate heat transfer in relation to the hydraulic fluid flowing therethrough. 
     
     
         13 . The hydraulic system recited in  claim 8 , further comprising a pressure relief valve in fluid communication with the pump and the reservoir, the pressure relief valve being transitional between a closed position and an open position, in the closed position, hydraulic fluid is restricted from flowing through the pressure relief valve, and in the open position, hydraulic fluid is capable of flowing through the pressure relief valve and toward the reservoir, the pressure relief valve being configured to transition from the closed position toward the open position in response to pressure upstream of the pressure relief valve being higher than a prescribed pressure threshold. 
     
     
         14 . The hydraulic system recited in  claim 8 , wherein the hydraulic system is configured to operate in at least one operational mode at a noise level that is a maximum of 65 dBA. 
     
     
         15 . A method of operating a hydraulic system, the method comprising the steps of:
 pumping hydraulic fluid from a reservoir to a hydraulic actuator;   sensing a pressure of the hydraulic fluid flowing from the pump to the hydraulic actuator;   facilitating bi-directional communications with a remote electronic device via a communications circuit;   generating a pump control signal based at least in part on received communications from the remote electronic device at an electrically driven variable speed drive operatively coupled to the pump based on the sensed pressure; and   modifying the speed of the pump based on the pump control signal received from the electrically driven variable speed drive.   
     
     
         16 . The method recited in  claim 15 , further comprising the step of operating a motor coupled to the electrically driven variable speed drive and the pump, the motor being configured to drive the pump in accordance with the pump control signal. 
     
     
         17 . The method recited in  claim 15 , further comprising the step of filtering impurities from the hydraulic fluid. 
     
     
         18 . The method recited in  claim 15 , further comprising the step of exchanging heat with the hydraulic fluid. 
     
     
         19 . The method recited in  claim 15 , further comprising the step of transitioning a pressure relief valve between a closed position and an open position, in the closed position, hydraulic fluid is restricted from flowing through the pressure relief valve, and in the open position, hydraulic fluid is capable of flowing through the pressure relief valve and toward the reservoir, the pressure relief valve being configured to transition from the closed position toward the open position in response to pressure upstream of the pressure relief valve being higher than a prescribed pressure threshold. 
     
     
         20 . (canceled) 
     
     
         21 . The hydraulic power pack recited in  claim 1 , wherein the hydraulic power pack is configured to meet specifications associated with the Internet of Things (IoT).

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