Remote Wireless Hydraulic Frame
20230235533 ยท 2023-07-27
Inventors
- Mark McKinley (Wauwatosa, WI, US)
- Brittney Bembenek (Milwaukee, WI, US)
- Matthew Seeger (Franskville, WI, US)
Cpc classification
F15B13/0864
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A remote wireless hydraulic frame preferably includes a frame member, a frame transceiver, a frame bridge controller and an electro-hydraulic conversion valve. The frame bridge controller receives signals from a cab bridge controller through a cab transceiver and the frame transceiver. The frame member preferably includes a frame support, an engine, a hydraulic pump, at least one electrical component and a plurality of hydraulicly operated components. The electro-hydraulic conversion valve preferably includes a valve block and a plurality of proportioning valves. The plurality of proportioning valves receive a hydraulic electrical signal from a hydraulic control device located in a remote wireless hydraulic cab through the cab bridge controller. Hydraulic fluid is sent from the valve block to a plurality of hydraulic operated components on the frame support. Control electrical signals are also received from the cab bridge controller to operate at least one electrical component on the frame support.
Claims
1. A remote wireless hydraulic frame for communication with a remote wireless hydraulic cab, the remote wireless hydraulic cab includes at least one hydraulic control device, an output from the at least one hydraulic control device is converted into at least one hydraulic electrical signal, the at least one hydraulic electrical signal is wirelessly transmitted to the remote wireless hydraulic frame, comprising: a frame member; a frame transceiver receives the at least one wireless hydraulic electrical signal from the remote wireless cab; a frame bridge controller receives the at least one wireless hydraulic electrical signal from said frame transceiver; and an electro-hydraulic conversion valve includes a plurality of proportioning valves, pressurized fluid is supplied to said plurality of proportioning valves, a return passage is connected to said plurality of proportioning valves, a plurality of supply outlets are connected to said plurality of proportioning valves, wherein said plurality of supply outlets are connected to a plurality of hydraulic components on the frame member, said frame bridge controller outputs at least one hydraulic electrical signal to said plurality of proportioning valves.
2. The remote wireless hydraulic frame of claim 1, further comprising: a hydraulic bulkhead includes a plurality of quick coupling ends for retention of a plurality of outlet lines which extend from said plurality of supply outlets.
3. The remote wireless hydraulic frame of claim 1, further comprising: a wireless diagnostic device communicates with said frame transceiver.
4. The remote wireless hydraulic frame of claim 1, further comprising: a diagnostic device is connected to said frame bridge controller.
5. A remote wireless hydraulic frame for communication with a remote wireless hydraulic cab, the remote wireless hydraulic cab includes at least one hydraulic control device, an output from the at least one hydraulic control device is converted into at least one hydraulic electrical signal, the at least one hydraulic electrical signal is wirelessly transmitted to the remote wireless hydraulic frame, comprising: a frame member; a frame transceiver receives the at least one wireless hydraulic electrical signal from the remote wireless cab; a frame bridge controller receives the at least one wireless hydraulic electrical signal from said frame transceiver; and an electro-hydraulic conversion valve includes a valve block and a plurality of proportioning valves, a plurality of threaded taps are formed in the valve block to receive the plurality of proportioning valves, pressurized fluid is supplied to said plurality of proportioning valves through a pressurized pathway in said valve block, a return passage is formed in said valve block and connected to said plurality of proportioning valves, a plurality of supply outlets are connected to said plurality of proportioning valves through said valve block, wherein said supply outlets are connected to a plurality of hydraulic components on the frame member, said frame bridge controller outputs at least one hydraulic electrical signal to said plurality of proportioning valves.
6. The remote wireless hydraulic frame of claim 5, further comprising: a hydraulic bulkhead includes a plurality of quick coupling ends for retention of a plurality of outlet lines which extend from said plurality of supply outlets.
7. The remote wireless hydraulic frame of claim 5, further comprising: a wireless diagnostic device communicates with said frame transceiver.
8. The remote wireless hydraulic frame of claim 5, further comprising: a diagnostic device is connected to said frame bridge controller.
9. A remote wireless hydraulic frame for communication with a remote wireless hydraulic cab, the remote wireless cab includes at least one hydraulic control device and at least one electrical control device, an output from the at least one hydraulic control device is converted into at least one hydraulic electrical signal, the at least one hydraulic electrical signal and the at least one control electrical signal are wirelessly transmitted to the remote wireless hydraulic frame, comprising: a frame member; a frame transceiver receives the at least one wireless hydraulic electrical signal and the at least one wireless control electrical signal from the remote wireless cab; a frame bridge controller receives the at least one wireless hydraulic electrical signal and the at least one wireless control electrical signal from said frame transceiver; and an electro-hydraulic conversion valve includes a plurality of proportioning valves, pressurized fluid is supplied to said plurality of proportioning valves, a return passage is connected to said plurality of proportioning valves, a plurality of supply outlets are connected to said plurality of proportioning valves, wherein said supply outlets are connected to a plurality of hydraulic components on the frame member, said frame bridge controller outputs at least one hydraulic electrical signal to said plurality of proportioning valves, said frame bridge controller outputs at least one control electrical signal to at least one electrical component.
10. The remote wireless hydraulic frame of claim 9, further comprising: a hydraulic bulkhead includes a plurality of quick coupling ends for retention of a plurality of outlet lines which extend from said plurality of supply outlets.
11. The remote wireless hydraulic frame of claim 9, further comprising: a wireless diagnostic device communicates with said frame transceiver.
12. The remote wireless hydraulic frame of claim 9, further comprising: a diagnostic device is connected to said frame bridge controller.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0024] With reference now to the drawings, and particularly to
[0025] A hydraulic pressure line 102 and a hydraulic return line 104 of a hydraulic pump 100 are connected to an input of a hydraulic circuit block 36. The hydraulic pump 100 distributes hydraulic fluid to the plurality of hydraulic joysticks 24 and hydraulic treadles 26 through the hydraulic circuit block 36. The plurality of quick disconnect adapters 36 are threadably engaged with the plate member 32 on one side thereof. The plurality of threaded adapters 38 are threadably engaged with the plurality of quick disconnect adapters 36 on an opposing side of the plate member 32. A plurality of hydraulic pressure sensors 34 are threaded into the plurality of threaded adapters 38. Hydraulic pressure in the joysticks 24 and foot treadles 26 hydraulic lines 28 are measured by the plurality of hydraulic pressure sensors 34. An electrical output from each hydraulic pressure sensor 34 is connected to the cab bridge controller 20. The electrical bulkhead 18 includes a signal socket 42 and a power socket 44. A signal cable 46 includes a bulkhead plug 48 extending from one end and a controller plug 50 extending from an opposing end. The bulkhead plug 48 is plugged into the signal socket 42 and the controller plug 50 is plugged into the cab bridge controller 20 for transfer of electrical signals from the cab member 10 to the cab bridge controller 20. A vehicle controller 45 is preferably used to receive electrical signals from a button panel 47. The vehicle controller 45 is also used to display information to an operator display 49. The operator display 49 also includes a touch screen. The touch screen may be used to send electrical signals from the operator display 49. The vehicle controller 45 is also connected to the cab bridge controller 20 through electrical bulkhead 18.
[0026] An output from the cab bridge controller 20 is connected to the cab transceiver 22. The cab bridge controller 20 converts the electrical signals from the plurality of hydraulic sensors 34 and the vehicle controller 45 into a suitable form for wireless transmission. The cab transceiver 22 transmits the plurality of electrical signals from the plurality of hydraulic pressure sensors 34 and electrical signals from the signal socket 42 to a frame transceiver 52. The frame transceiver sends the electrical signals to a frame bridge controller 53, which in turn sends electrical signals, which control hydraulic proportioning valves in an electro-hydraulic conversion valve 55. A power cable 54 includes a generator plug 56 on one end and a power plug 58 on an opposing end. The generator plug 58 is plugged into an electrical generator 106 and the power plug 56 is plugged into the power socket 44. With the hydraulic pump 100 and the electric generator 106 connections, the remote wireless hydraulic cab 1 is capable of operating remotely with a remote wireless hydraulic frame 2 through wireless communication.
[0027] The docking station 12 may be used to provide a physical foundation and an operational base for the remote wireless hydraulic cab 1. The docking station 12 includes a base member 60, the hydraulic pump 100 and the electrical generator 106. The base member 60 includes a support base 62 and at least two upright mounting members 64. The at least two upright mounting members 64 extend upward from the support base 62. At least one threaded tap or hole is formed through a top of each upright mounting member 64 to receive a retention bolt inserted through a floor 15 of the cab enclosure 14. The hydraulic sensor plate 16, cab bridge controller 20 and the cab transceiver 22 are preferably retained on the support base 62. The hydraulic pump 100 and the electrical generator 106 are attached to a top surface of the support base 62. With reference to
[0028] However, the remote wireless hydraulic cab 1 does not have to be used with the docking station 12. The hydraulic pump 100 and the electrical generator 106 may be connected to the remote wireless hydraulic cab 1 from any other suitable source, besides the docking station 12. The hydraulic sensor plate 16, the cab bridge controller 20 and the cab transceiver 22 would be physically retained on the remote wireless hydraulic cab 1 and not on the docking device 12.
[0029] A diagnostic device 66 may be connected to the cab bridge controller 20 through a wired connection to monitor hydraulic pressures of the joysticks 24 and foot treadles 26, and status of the buttons of the button panel 47. A diagnostic device 68 may be connected to the cab bridge controller 20 through a wireless connection.
[0030] With reference to
[0031] A supply passage 108 is formed in the valve block 90 to supply the plurality of proportioning valves 92 with hydraulic fluid from the frame pilot circuit 96. A return passage 110 is formed in the valve block 90 to receive hydraulic fluid from the plurality of proportioning valves 92. A supply outlet 112 of each proportioning valve 92 supplies hydraulic pressurized hydraulic to a particular hydraulicly operated component 114 preferably through a hydraulic bulkhead 116. An output pressure of each proportion valve 92 is determined by a hydraulic electrical signal sent from the frame bridge controller 53. The hydraulic electrical signal originates at a hydraulic control device, such as the hydraulic joystick 24 or the hydraulic foot treadle 26. A control electrical signal originates from an electrical control panel 47 or an operator display 49. The electrical control panel 47 includes a plurality of buttons and knobs. The operator display 49 includes a touch screen. The joystick, foot treadle, electrical control panel and touch screen are located in the hydraulic remote cab 1. A hydraulic pressure transmitted from the joystick 24 or foot treadle 26 is converted into the hydraulic electrical signal by the hydraulic pressure sensor 34. The hydraulic electrical signals and control electrical signals are sent to the cab bridge controller 20. The plurality of hydraulic electrical signals and control electrical signals are converted into a suitable protocol by the cab bridge controller 20 and sent to the cab transceiver 22. The cab transceiver 22 wirelessly transmits the hydraulic and control electrical signals to the frame transceiver 52.
[0032] The frame bridge controller 53 receives the hydraulic and control electrical signals from the frame transceiver 52 and converts the signals into a suitable form. The hydraulic and control electrical signals are sent from the frame bridge controller 53 to the electro-hydraulic conversion valve 55, a hydraulic controller, an engine controller and the at least one electrical component 86. The hydraulic electrical signals sent to the electro-hydraulic conversion valve 55 operate the plurality of proportioning valves 92 to control the flow of hydraulic fluid to various hydraulicly operated components 114. However, a remote wireless electrical cab could be used with the remote hydraulic frame. The remote wireless electrical cab would have electrical joysticks and foot treadles, instead of hydraulic joysticks and foot treadles. The hydraulic controller 118 would be used to operate the hydraulic operated components 114 and the at least one tool 88 instead of the electro-hydraulic conversion valve 55. Outlet hydraulic lines 112 from the electro-hydraulic conversion valve 55 preferably include quick coupling ends for retention in a plurality of hydraulic connectors in the hydraulic bulkhead 116. The hydraulic electrical signals are also sent to the hydraulic controller 118. The control electrical signals go to the engine controller or the at least one electrical component 86.
[0033] A diagnostic device 122 may be connected to the frame bridge controller 53 through a wired connection to monitor various hydraulic pressures of the frame operated components 114 and status of the hydraulic controller 118, the engine controller 120, and electrical components 86. A wireless diagnostic device 124 may be connected to the cab bridge controller 20 through a wireless connection.
[0034] While particular embodiments of the invention have been shown and described, it will be obvious to those skilled in the art that changes and modifications may be made without departing from the invention in its broader aspects, and therefore, the aim in the appended claims is to cover all such changes and modifications as fall within the true spirit and scope of the invention.