System and method for active vibration cancellation for use in a snow plow
10174473 ยท 2019-01-08
Inventors
Cpc classification
E01H5/065
FIXED CONSTRUCTIONS
E01H5/06
FIXED CONSTRUCTIONS
International classification
Abstract
A system of actively introducing opposite phase vibrations to reduce or cancel vibrations caused by operating a snow plow. The invention also relates to a method of actively introducing such opposite phase vibrations.
Claims
1. A vibration cancellation system for use with a snow plow including a vehicle, a moldboard, and a frame interconnecting the moldboard to the vehicle, the system including: at least two vibration sensors, each one of said at least two vibration sensors connected to said moldboard, adapted to sense vibrations of said moldboard in three substantially orthogonal directions, wherein one of said directions is a substantially vertical direction, another of said directions is a substantially horizontal direction, and the third of said directions is a substantially fore-aft direction, and adapted to transmit electrically information regarding vibrations of said moldboard in each of the three directions; at least two dampers selected from the group consisting of magnetorheological dampers and electrorheological dampers, each of said at least two dampers mounted on said snow plow and adapted to operatively act upon said frame so as to impart substantially opposite phase vibrations in said frame in a fore-aft direction; at least two vibration cancellation mount assemblies, each of said at least two mount assemblies mounted on said snow plow and adapted to operatively act upon said frame so as to impart substantially opposite phase vibrations in said frame in either a substantially horizontal direction or a substantially vertical direction or both substantially horizontal and substantially vertical directions; a controller adapted to receive information regarding moldboard vibrations transmitted electrically from each of said vibration sensors and to transmit electronically to each of said dampers and said mount assemblies opposite phase vibration instructions based on the received information; each of said dampers and said mount assemblies adapted to electrically receive the opposite phase vibration instructions from said controller and to impart substantially opposite phase vibrations in said snow plow in accordance with the instructions.
2. The vibration cancelling system according to claim 1 wherein said snow plow is adapted to traverse over a ground terrain and wherein said snow plow further includes a plow height control system adapted to selectively raise said moldboard up and away from the ground terrain beneath said moldboard and to selectively lower said moldboard down and toward the ground terrain beneath said moldboard, and wherein said plow height control system is adapted to generate an electrical signal to said controller indicative of a condition wherein said moldboard is substantially in a lowermost position relative to the ground terrain beneath said moldboard and wherein said controller is configured to transmit electronically said opposite phase vibration instructions only in response to said signal.
3. The vibration cancelling system according to claim 1 wherein said at least two vibration sensors include at least two accelerometers.
4. The vibration cancelling system according to claim 1 wherein said moldboard extends substantially laterally and possesses a first lateral end and an opposing second lateral end and wherein one of said at least two vibration sensors is disposed at said first lateral end of said moldboard and another of said at least two vibration sensors is disposed at said second lateral end of said moldboard.
5. The vibration cancelling system according to claim 1 wherein each of said at least two vibration sensors is adapted to transmit information regarding the amplitude of vibration of said moldboard in each of the three directions and wherein said controller is configured to transmit electronically said opposite phase vibration instructions only if the amplitude of vibrations from any one of said at least two vibration sensors exceeds a predetermined threshold value.
6. The vibration cancelling system according to claim 1 wherein each of said at least two vibration sensors is adapted to transmit information regarding the amplitude of vibration of said moldboard in each of the three directions and wherein said controller is configured to transmit electronically said opposite phase vibration instructions only if the amplitude from each of said at least two vibration sensors exceeds a predetermined threshold value.
7. The vibration cancelling system according to claim 1 wherein each of said at least two vibration sensors is adapted to transmit information regarding the amplitude of vibration of said moldboard in each of the three directions and wherein said opposite phase vibration instructions include inducing an opposite phase vibration having an amplitude of substantially equal and opposite amplitude to the moldboard vibrations sensed by said at least two vibration sensors and wherein each of said dampers and said mount assemblies is adapted to impart substantially opposite phase vibrations of substantially equal and opposite amplitude in said snow plow in accordance with the instructions.
8. The vibration cancelling system according to claim 1 wherein each of said dampers and each of said mount assemblies is disposed in said frame.
9. A system mounted on a snow plow including a vehicle, a moldboard, and a frame interconnecting the moldboard to the vehicle for substantially negating the transmission of vibrations from the moldboard to said vehicle, the system including: at least one vibration sensor adapted to sense the magnitude of vibrations of said moldboard in either a forward-rearward direction, a lateral direction, or both directions; a vibration inducing assembly adapted to impart vibrations in said snow plow; a controller operationally connected to said at least one vibration sensor and configured to monitor the magnitude of vibrations of said moldboard in at least one of said directions as sensed by said at least one vibration sensor and operationally connected to said vibration inducing assembly and configured to provide opposite phase vibration instructions to said vibration inducing assembly in response to the magnitude of vibrations monitored, and wherein said vibration inducing assembly is configured to impart vibrations in said snow plow in accordance with the instructions.
10. The system according to claim 9 wherein said at least one vibration sensor comprises an accelerometer.
11. The system according to claim 9 wherein said controller is configured to provide opposite phase vibration instructions only if the magnitude of vibrations monitored attains at least a predetermined threshold level.
12. The system according to claim 9 wherein said frame includes at least one hydraulic ram adapted to maneuver said moldboard and wherein said vibration inducing assembly imparts vibrations in said at least one hydraulic ram.
13. The system according to claim 9 wherein said controller is configured to provide opposite phase vibration instructions in which the magnitude of the opposite phase vibrations is substantially equal and opposite to the magnitude of the vibrations monitored.
14. The system according to claim 9 wherein the moldboard is moveable between an upper position and a lower position where said moldboard is positioned so as to function in displacing types of frozen water, and wherein said controller is configured to provide opposite phase vibration instructions only if said moldboard is in the lower position.
15. A method of inducing active vibration cancellation in a snow plow including a vehicle and a plow assembly, said plow assembly moveable between an upper position and a lower position where said plow assembly is positioned so as to function in displacing frozen water, the method comprising: monitoring a magnitude and a direction of vibrations of said plow assembly as said vehicle moves and when said plow assembly is in the lower position and is displacing frozen water; and in response to the monitored magnitude and direction of plow assembly vibrations, inducing vibrations in said plow assembly that substantially cancel the monitored plow assembly vibrations.
16. The method of claim 15 further comprising: setting a first threshold magnitude of plow assembly vibrations, and wherein the act inducing vibrations occurs only when the monitored magnitude of plow assembly vibrations exceeds the first threshold magnitude.
17. The method of claim 15 further comprising: setting a first threshold magnitude of plow assembly vibrations and a second threshold magnitude of plow assembly vibrations higher than the first threshold magnitude, and wherein the act of inducing vibrations occurs only when the monitored magnitude of plow assembly vibrations is between the first threshold magnitude and the second threshold magnitude.
18. The method of claim 15 wherein said plow assembly includes at least one hydraulic ram and wherein the vibrations are induced on said at least one hydraulic ram.
19. The method of claim 15 wherein said plow assembly includes at least one actuator selected from the group consisting of a magnetorheological actuator and an electrorheological actuator, and wherein the vibrations are induced by said at least one actuator.
20. The method of claim 15 wherein the act of monitoring monitors a magnitude of vibrations in each of three substantially orthogonal directions.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will now be described with reference to the accompanying drawings, wherein like referenced numerals refer to the same item.
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DESCRIPTION OF A PREFERRED EMBODIMENT
(8) The present invention will be described with reference to the accompanying drawings wherein like reference numerals refer to the same item. It should be appreciated that the following description is intended to be exemplary only and that the scope of the invention envisions other variations and modifications of these particular exemplary embodiments.
(9) There shown in
(10) Each lateral end of the moldboard 100 may be optionally fitted with a plow shoe 106 generally fashioned as a horizontally extending disk adapted to contact and glide over the ground terrain. Typically plow shoes 106 are used to help the moldboard 100 float over relatively soft terrain surfaces such as gravel, dirt, or grass. Contact of the shoes 106 with uneven terrain or obstacles may result in jarring or bouncing of the moldboard.
(11) Although the moldboard 100 as shown in
(12) The frame 102 as shown in
(13) The frame 102 as shown in
(14) The frame 102 will also typically include a hydraulic power unit that includes a hydraulic pump, motor, and fluid reservoir. The hydraulic motor as well as hydraulic valves are normally controlled and operated via an operator control panel 122 located within the vehicle and in reach of the operator.
(15) Although the moldboard 100 and the frame 102 depicted in
(16) With reference to
(17) As shown in the embodiment of
(18) The vibration sensors, such as the accelerometers 124, 126, 128, may be operatively connected to a controller 134, preferably mounted on the frame 102, so as either to wirelessly communicate or to communicate via electrical wiring with the controller. The controller 134, in turn, either wirelessly or via electrical wires, communicates with each of the magnetorheological or the electrorheological dampers 130 and the vibration cancellation mount assemblies 132. The controller 134 preferably polls each of the vibration sensors to determine a magnitude or amplitude and a direction of any vibration. If the magnitude of vibration for any one sensor does not exceed a predetermined threshold, or the amplitudes detected by each of the three sensors do not achieve predetermined, different thresholds, then the controller 134 may be programmed not to introduce any vibration cancellation vibration via the dampers 130 or the cancellation mount assemblies 132.
(19) If the vibration force or wave is in a lateral or vertical direction, then controller 134 is programmed to instruct the vibration cancellation mount assemblies 132 to impart an active vibration that is of the same amplitude and frequency, but in the opposite phase, of the detected vibration. If the vibration force or wave is in the forward and rearward direction, then the controller 134 is programmed to direct the magnetorheological or electrorheological dampers 130 to impart vibrations of the same amplitude and frequency, but in the opposite phase. Again, preferably, the controller 134 is programmed so that no instructions to impart an active vibration by either the magnetorheological or electrorheological dampers 130 or the vibration cancellation mount assemblies 132 occurs unless there is a predetermine magnitude of vibration in the lateral direction, the vertical direction, or in the forward-rearward direction.
(20) It will also be appreciated that the sensors, such as accelerometers 124, 126, 128, are located a distance from each of the dampers 130 and mount assemblies 132. Thus, a vibration sensed by the right-most accelerometer 128 as viewed in
(21) The invention also contemplates that the controller 134 would be programmed to induce cancellation vibrations only when the moldboard 100 is in its relatively lower-most position, that is, only when the moldboard 100 is positioned so as to function in displacing types of frozen water. Accordingly, the controller 134 may be in operational communication with a vehicle plow raising and lowering control device which generates a signal indicative of when the moldboard 100 is in its unraised, lower-most position.
(22) The invention also recognizes that many moldboards and frames are provided with trip springs and perhaps other passive shock absorbing mechanisms that tend to reduce or moderate the amplitude vibration in the moldboard before it is transmitted to the frame, or more importantly, before it is transmitted to the dampers and the vibration cancellation mount assemblies. The invention contemplates that for severe vibrations, especially those in a forward-rearward direction, the controller 134 would induce an active opposite phase vibration having an amplitude less than the amplitude that is sensed. Accordingly, the invention further contemplates that the controller 134 may be programmed so as either not to induce any active vibration cancellation in a damper or a vibration cancellation mount assembly or induce an active vibration that is of a reduced magnitude if the sensed vibration amplitude exceeds a threshold.
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(24) As a further, more detailed example with respect to
(25) While exemplary embodiments have been presented in the foregoing description of the invention, it should be appreciated that a vast number of variations within the scope of the invention may exist. The foregoing examples are not intended to limit the nature or the scope of the invention in any way. Rather, the foregoing detailed description provides those skilled in the art with a foundation for implementing other exemplary embodiments of the invention.