Laterally shiftable plow
10865532 ยท 2020-12-15
Assignee
Inventors
Cpc classification
E01H5/066
FIXED CONSTRUCTIONS
E01H5/06
FIXED CONSTRUCTIONS
International classification
Abstract
A side shift push frame assembly including a bracket arranged on a first side and configured to be attached to a vehicle, a frame configured to be attached to the bracket, a mold board support beam arranged on the frame on a side opposite to the bracket, and configured to be attached to a mold board. An actuator is configured to be attached to the mold board for moving the mold board in a lateral direction relative to the frame while the frame remains in a fixed position.
Claims
1. A side shift push frame assembly, comprising: a bracket arranged on a first side and configured to be attached to a vehicle; a frame configured to be attached to the bracket; a mold board support beam arranged on the frame on a side opposite to the bracket, and configured to be attached to a mold board; an actuator configured to be attached to the mold board for linearly moving the mold board in a lateral direction relative to the frame while the frame remains in a fixed position.
2. The side shift push frame assembly according to claim 1, further comprising: at least one upper slide shaft arranged on the frame; a resilient force assembly including at least one resilient member configured to impart a force on the mold board, the at least one resilient force assembly configured to be fixed to the mold board at one end, and at another opposite end including at least one bore for receiving a respective slide shaft of the at least one upper slide shaft which is configured to travel through the bore, wherein the resilient force assembly is configured to move along with the mold board.
3. The side shift push frame assembly according to claim 1, wherein the frame is rotatable.
4. The side shift push frame assembly according to claim 2, wherein the at least one resilient member comprises a coil spring.
5. The side shift push frame assembly according to claim 1, wherein the actuator is a hydraulic cylinder.
6. The side shift push frame assembly according to claim 1, wherein the actuator is a hydraulic motor.
7. The side shift push frame assembly according to claim 1, wherein the actuator is an electric motor.
8. A side shift push frame assembly, comprising: a bracket arranged on a first side and configured to be attached to a vehicle; a frame configured to be attached to the bracket; a mold board; a mold board support beam arranged on the frame on a side opposite to the bracket, and configured to be attached to the mold board; an actuator configured to be attached to the mold board for moving the mold board in a lateral direction relative to the frame while the frame remains in a fixed position; at least one upper slide shaft arranged on the frame; and a resilient force assembly including at least one resilient member configured to impart a force on the mold board, the at least one resilient force assembly configured to be fixed to the mold board at one end, and at another opposite end including at least one bore for receiving a respective slide shaft of the at least one upper slide shaft which is configured to travel through the bore, wherein the resilient force assembly is configured to move along with the mold board, wherein the mold board comprises: at least one upper flange arranged on an upper part of the mold board and connected to the resilient force assembly; a lower slide shaft, wherein the mold board support beam includes a plurality of flanges each having a bore, the lower slide shaft being arranged to slide laterally in the bores of the plurality of flanges and is supported thereby.
9. A vehicle comprising: a vehicle body; and a side shift push frame assembly, the side shift push frame assembly comprising: a bracket arranged on a first side and configured to be attached to the vehicle body; a frame configured to be attached to the bracket; a mold board support beam arranged on the frame on a side opposite to the bracket, and configured to be attached to a mold board; and an actuator configured to be attached to the mold board for linearly moving the mold board in a lateral direction relative to the frame while the frame remains in a fixed position.
10. The vehicle according to claim 9, wherein the side shift push frame assembly comprises: at least one upper slide shaft arranged on the frame; a resilient force assembly including at least one resilient member configured to impart a force on the mold board, the at least one resilient force assembly configured to be fixed to the mold board at one end, and at another opposite end including at least one bore for receiving a respective slide shaft of the at least one upper slide shaft which is configured to travel through the bore, wherein the resilient force assembly is configured to move along with the mold board.
11. The vehicle according to claim 9, wherein the frame is rotatable.
12. The vehicle according to claim 9, wherein the at least one resilient member comprises a coil spring.
13. The vehicle according to claim 9, wherein the actuator is a hydraulic cylinder.
14. The vehicle according to claim 9, wherein the actuator is a hydraulic motor.
15. The vehicle according to claim 9, wherein the actuator is an electric motor.
16. A vehicle comprising: a vehicle body; and a side shift push frame assembly, the side shift push frame assembly comprising: a bracket arranged on a first side and configured to be attached to the vehicle body; a frame configured to be attached to the bracket; a mold board; a mold board support beam arranged on the frame on a side opposite to the bracket, and configured to be attached to the mold board; an actuator configured to be attached to the mold board for moving the mold board in a lateral direction relative to the frame while the frame remains in a fixed position; at least one upper slide shaft arranged on the frame; and a resilient force assembly including at least one resilient member configured to impart a force on the mold board, the at least one resilient force assembly configured to be fixed to the mold board at one end, and at another opposite end including at least one bore for receiving a respective slide shaft of the at least one upper slide shaft which is configured to travel through the bore, wherein the resilient force assembly is configured to move along with the mold board, wherein the mold board comprises: at least one upper flange arranged on an upper part of the mold board and connected to the resilient force assembly; a lower slide shaft, wherein the mold board support beam includes a plurality of flanges each having a bore, the lower slide shaft being arranged to slide laterally in the bores of the plurality of flanges and is supported thereby.
17. The side shift push frame assembly according to claim 1, wherein the actuator is configured to linearly move the mold board in the lateral direction relative to the mold board support beam while the mold board support beam remains in a fixed position.
18. The vehicle including according to claim 9, wherein the actuator is configured to linearly move the mold board in the lateral direction relative to the mold board support beam while the mold board support beam remains in a fixed position relative to the vehicle body.
19. The side shift push frame assembly according to claim 2 in combination with a mold board wherein the mold board comprises: at least one upper flange arranged on an upper part of the mold board and connected to the resilient force assembly; a lower slide shaft, wherein the mold board support beam includes a plurality of flanges each having a bore, the lower slide shaft being arranged to slide laterally in the bores of the plurality of flanges and is supported thereby.
20. The vehicle according to claim 10 in combination with a mold board wherein the mold board comprises: at least one upper flange arranged on an upper part of the mold board and connected to the resilient force assembly; a lower slide shaft, wherein the mold board support beam includes a plurality of flanges each having a bore, the lower slide shaft being arranged to slide laterally in the bores of the plurality of flanges and is supported thereby.
21. The side shift push frame assembly according to claim 1, wherein the actuator is configured to be attached to the mold board for linearly moving the mold board in the lateral direction relative to the frame while the frame remains in the fixed position relative to the bracket, such that the mold board is linearly displaceable relative to both the frame and the bracket, and wherein the mold board and the frame are rotatable together relative to the bracket.
22. The vehicle according to claim 9, wherein the actuator is configured to be attached to the mold board for linearly moving the mold board in the lateral direction relative to the frame while the frame remains in the fixed position relative to the bracket, such that the mold board is linearly displaceable relative to both the frame and the bracket, and wherein the mold board and the frame are rotatable together relative to the bracket.
Description
BRIEF DESCRIPTION OF THE DRAWING FIGURES
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DETAILED DESCRIPTION OF THE INVENTION
(6) Several preferred embodiments of the invention are illustrated in the enclosed Figures in which:
(7) Referring to the drawings,
(8) In an exemplary embodiment of the disclosure, there is a rotatable frame 103 including a mold board support beam 104 for attaching and supporting a mold board 106 on the rotatable frame 103. The rotatable frame 103 is rotatably attached to the bracket 102 on a side of the bracket 102 which faces away from the motor vehicle 500. The mold board support beam 104 extends lengthwise in the lateral direction. The rotatable frame 103 can pivot relative to the bracket 102 about a vertical axis to change an angle of the mold board 106 relative to the bracket 102, and thus relative to the front of the motor vehicle 500. Arranged at intervals along a side of the mold board support beam 104 facing away from the motor vehicle 500 are lower slide shaft brackets 108 including through-holes 110 having arranged therein bushings 112. A lower portion of the mold board 106 is attachable to the side shift push frame assembly 100 via a lower slide shaft 114 provided on a rear of the mold board 106 (i.e., the side of the mold board 106 intended to face the motor vehicle 500). The lower slide shaft 114 may pass through the through-holes 110 of the lower slide shaft brackets 108 while being supported by the bushings 112.
(9) The number of lower slide shaft brackets 108 arranged on the mold board support beam 104 can be any suitable number. As shown in
(10) In an exemplary embodiment of the disclosure as depicted in
(11) In an exemplary embodiment of the disclosure depicted in
(12) The actuator 126 can be any suitable actuator 126 such as a hydraulically operated cylinder, a hydraulic motor or an electric motor. The actuator 126 can be a dedicated device for shifting the mold board 106 to the left or right or can be arranged to provide other control of the mold board 106 such as rotating the mold board 106 via the rotatable frame 103 or moving the mold board 106 in an up/down direction (i.e., vertically raising/lowering the mold board 106 and/or changing the vertical pitch of the mold board 106).
(13) When the mold board 106 is shifted laterally to the left or right, the lower slide shaft 114, rigidly attached to the mold board 106, travels through the bushings 112 of lower slide shaft brackets 108 attached to the mold board support beam 104 of the side shift push frame assembly 100. The upper portion of the mold board 106 includes resilient member attachment brackets 128 arranged substantially equidistance (within 10%) from a top center of the mold board 106 in the lateral direction. The resilient force assembly 116 may be attached to resilient member attachment brackets 128, for example, as shown in
(14) In an exemplary embodiment according to the disclosure, control for the actuator 126 of the side shift push frame can be provided in the cab of the motor vehicle 500 via a joystick or other suitable interface.
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(18) The foregoing description of the specific embodiments will so fully reveal the general nature of the invention that others can, by applying knowledge within the skill of the art, readily modify and/or adapt for various applications such specific embodiments, without undue experimentation, without departing from the general concept of the present invention. Therefore, such adaptations and modifications are intended to be within the meaning and range of equivalents of the disclosed embodiments, based on the teaching and guidance presented herein. It is to be understood that the phraseology or terminology herein is for the purpose of description and not of limitation, such that the terminology or phraseology of the present specification is to be interpreted by the skilled artisan in light of the teachings and guidance.
(19) Although the invention is illustrated and described herein with reference to specific embodiments, the invention is not intended to be limited to the details shown. Rather, various modifications may be made in the details within the scope and range equivalents of the claims and without departing from the invention.