Adaptor for attaching a prime mover to an actuator
11668336 ยท 2023-06-06
Inventors
Cpc classification
B66D3/20
PERFORMING OPERATIONS; TRANSPORTING
F16B17/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/20523
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B35/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B21/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/2053
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B17/05
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16B17/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B66D3/20
PERFORMING OPERATIONS; TRANSPORTING
F04B17/05
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An adaptor is used to couple a prime mover to an actuator. The adaptor includes a first portion that attaches to the prime mover and a second portion that attaches to the actuator. The outer surface of the first portion is defined by at least one flat portion connected by at least one arcuate portion. The second portion has a bore configured to accept the first portion, with an inner surface shaped to complement the outer surface of the first portion. A bore through the first portion accepts a drive shaft of the prime mover therethrough where the drive shaft is configured to engage the actuator.
Claims
1. An adaptor for connecting an internal combustion engine powered prime mover to an actuator assembly, wherein the adaptor comprises: a first member configured to attach to the internal combustion engine prime mover, the first member having a non-circular outer surface and an interior through bore configured to pass a drive shaft therethrough; and a second member configured to attach to the actuator assembly, the second member having a through bore with a non-circular inner surface, wherein the non-circular inner surface is configured to accept the non-circular outer surface of the first member, and wherein the non-circular surfaces are configured to prevent rotation of the first member within the second member, wherein the second member includes at least one bore that intersects the central cavity and allows a securing mechanism to pass therethrough and frictionally engage the outer surface of the first portion, thereby securing the first and second portions together.
2. The adaptor of claim 1 wherein the actuator assembly comprises: a hydraulic actuator; and a hydraulic pump configured to drive the hydraulic actuator, wherein the adaptor is configured to connect the prime mover to the hydraulic pump such that the prime mover is configured to power the pump to drive the actuator.
3. The adaptor of claim 1 wherein the actuator assembly comprises: an actuator; and a gear box configured to convert at least one speed value and at least one torque value output by the prime mover to at least one speed value and at least one torque value input to the actuator, wherein the adaptor is configured to connect the prime mover to the gear box such that the prime mover is configured to drive the actuator at the at least one input speed and the at least one input torque.
4. The adaptor of claim 3 wherein the actuator is a winch.
5. The adaptor of claim 1 wherein the internal combustion engine is configured to be fueled by propane.
6. The adaptor of claim 1, and further comprising: a mounting plate having at least one mounting bore configured to accept at least one mounting bolt to secure the mounting plate to the prime mover, and having at least one adaptor bore configured to accept at least one adaptor bolt to secure the first member to the mounting plate, and wherein the second member has at least one cavity configured to accept the at least one mounting bolt such that the first member and the second member abut.
7. The adaptor of claim 1 wherein the prime mover further comprises a centrifugal clutch, and a drive shaft wherein the drive shaft is configured to be coupled to the actuator assembly, and wherein the centrifugal clutch is configured to engage the drive shaft to drive the actuator assembly.
8. An actuating system comprising: a hydraulic actuator; a hydraulic pump comprising a pump drive shaft and configured to drive the actuator; a prime mover comprising an internal combustion engine powering a drive shaft; and an adaptor for connecting the prime mover to the pump, the adaptor comprising: a first member configured to attach to the prime mover, the first member having an non-circular outer surface and an interior through bore configured to pass the drive shaft therethrough; and a second member configured to attach to the hydraulic pump, the second member having a through bore with a non-circular inner surface, wherein the non-circular inner surface is configured to accept the non-circular outer surface of the first member, and wherein the non-circular surfaces are configured to prevent rotation of the first member within the second member, wherein the adaptor is configured to connect the prime mover to the hydraulic pump such that the prime mover is configured to power the pump to drive the hydraulic actuator.
9. The actuating system of claim 8 wherein the through bore of the second member is configured to provide access to the pump drive shaft such that the drive shaft can engage the pump drive shaft.
10. The actuating system of claim 8 wherein the hydraulic actuator is configured to be connected to a dump box of a dump trailer.
11. The actuating system of claim 8, and further comprising: a mounting plate having at least one mounting bore configured to accept at least one mounting bolt to secure the mounting plate to the prime mover, and having at least one adaptor bore configured to accept at least one adaptor bolt to secure the first member to the mounting plate, and wherein the second member has at least one cavity configured to accept the at least one mounting bolt such that the first member and the second member abut.
12. The actuating system of claim 8 wherein the prime mover further comprises a centrifugal clutch, wherein the drive shaft is configured to be coupled to the hydraulic pump, and wherein the centrifugal clutch is configured to engage the drive shaft to drive the hydraulic pump to power the actuator.
13. A actuating system comprising: a prime mover comprising an internal combustion engine; an actuator; a gear box coupled to the actuator, the gear box configured to provide at least one speed and torque conversion between the prime mover and the actuator; and an adaptor for connecting the prime mover to the gear box, the adaptor comprising: a first member configured to attach to the prime mover, the first member having an non-circular outer surface and an interior through bore configured to pass a drive shaft therethrough; and a second member configured to attach to the gear box, the second member having a through bore with a non-circular inner surface, wherein the non-circular inner surface is configured to accept the non-circular outer surface of the first member, and wherein the non-circular surfaces are configured to prevent rotation of the first member within the second member; and wherein the adaptor is configured to connect the prime mover to the gear box such that the prime mover is configured to drive a winch.
14. The actuating system of claim 13, and further comprising: a mounting plate having at least one mounting bore configured to accept at least one mounting bolt to secure the mounting plate to the prime mover, and having at least one adaptor bore configured to accept at least one adaptor bolt to secure the first member to the mounting plate, and wherein the second member has at least one cavity configured to accept the at least one mounting bolt such that the first member and the second member abut.
15. The actuating system of claim 13 wherein the prime mover further comprises a centrifugal clutch and a drive shaft, wherein the drive shaft is configured to be coupled to the gear box, and wherein the centrifugal clutch is configured to engage the drive shaft to drive the gear box to power the actuation.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(13) A dump trailer 10 with a hydraulic hoist 12 is generally illustrated in
(14) Power is supplied to the hydraulic hoist 12 by a hydraulic pump 30 that is coupled to an engine 32, which is typically configured to utilize propane as a fuel, but may be configured to use other fuels, such as for example, natural gas, gasoline, diesel fuel, or biofuel. A throttling mechanism 33 may be mechanically coupled to the engine 32 to manipulate the rotational speed of the engine 32 and therefore, the power provided to the hydraulic pump 30. The throttling mechanism 33 may be used to adjust the speed at which the hydraulic hoist 12 raises and lowers the dump box 22. While an engine is described and illustrated, any prime mover is within the scope of the present disclosure, including, but not limited to, fossil fuel powered engines, pneumatic motors, hydraulic motors and electric motors.
(15) Referring to
(16) The length of the reservoir 34, hydraulic pump 30, and a typical twelve volt battery is about 18 inches. When coupled together, the hydraulic pump 30, reservoir 34, and a typical propane-powered engine 32 with the adaptor 40 is about twenty three inches in length. Due to the compact nature of adaptor 40 and engine 32, little or no modification to the dump trailer 10 is likely required to convert the drive mechanism from an electric motor to a engine powered by propane.
(17) As illustrated in
(18) Referring to
(19) As shown in
(20) Engine attaching portion 60 includes a continuous outer surface 80 that has substantially arcuate portions 82 with a constant radius that are connected by substantially flat portions 84. The engine attaching portion 60 includes an interior bore 61 configured to allow a drive shaft 140 and a bearing 141 that carries the shaft 140 to pass therethrough, as described below.
(21) Referring to
(22) Referring to
(23) The pump attaching portion 50 includes a through bore 120 that passes from the front surface 110 to the back surface 112 and provides access to a pump drive shaft that drives the pump impeller. Surface 122 of bore 120 complements outer surface 80 of engine attaching portion 60, and includes arcuate portions 124 and substantially flat portions 126. The engine attaching portion 60 may be positioned within the bore 120 of the pump attaching portion 50 such that the arcuate portions 82 and 124 and the substantially flat portions 84 and 126 of the engine attaching portion 60 and the pump attaching portion 50 interact. The engagement of the flat portions 84 and 126 prevent rotation of the engine attaching portion 60 relative to the pump attaching portion 50. Any number and configuration of flat and arcuate portions may be used, so long as the flats of the respective portions 50, 60 engage to prevent relative rotation of the portions 50, 60 of adaptor 40. Further, polygonal configurations, elliptical configurations, mating protuberances and slots for the surfaces can be within the scope of the present disclosure. Also, it is contemplated that the pump attaching the portion 50 nests with the engine attaching portion 60.
(24) Referring to
(25) Referring to
(26) As the speed of the engine 32 is increased, for example with throttling mechanism 34, the clutch engages the shaft 140 and forces shaft 140 to engage a drive shaft of the pump 30 causing pressurized fluid to be transferred to the actuator, thereby causing the actuator 12 to expand and raise the dump box 22. To disengage the actuator 12 and, for example, lower dump box 22, the engine speed is reduced or stopped such that shaft 140 disengages the drive shaft of the pump 30. With the engine 32 throttled down or off, the actuator 12 is contracted due to the weight of the trailer bed.
(27) Referring to
(28) A winch and a hydraulic hoist are described herein, but adaptor 40 may be used to couple an engine 32 to any actuator, either directly or through an intermediate device that, for example, controls speed or torque or performs power conversion, such as a gear train or a hydraulic or pneumatic pump. Adaptor 40 may be used to convert an actuator or intermediate device designed for use with an electric or other power source to be used with an internal combustion engine, such as for example, a propane powered engine.
(29) Although the subject matter has been described in a language specific to structural features and/or methodological acts, it is to be understood that the subject matter defined in the appended claims is not necessarily limited to the specific features or acts described above as has been determined by the courts. Rather, the specific features and acts described above are disclosed as example forms of implementing the claims. In addition, any feature disclosed with respect to one embodiment may be incorporated in another embodiment, and vice-versa.