Belt drive transmission system
11221064 · 2022-01-11
Assignee
Inventors
Cpc classification
F16H2037/088
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H9/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/0202
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2061/6601
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K17/165
PERFORMING OPERATIONS; TRANSPORTING
F16H2009/163
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/0248
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2061/66295
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2037/044
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H37/0846
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/662
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2037/0886
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2037/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H37/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/662
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A transmission system for a vehicle having a belt drive transmission. The belt drive has an adjustable input and output ratio, where the output of the belt drive is provided as a first input to a differential coupling. A further rotating connection is provided as a second input to the differential coupling, so that the output of the differential coupling is arranged as the output of the transmission system. Accordingly, the transmission output is based on the aggregate sum of the rotation of the first and second inputs to the differential coupling, wherein adjustment of the input and output ratio of the belt drive allows for a continuously variable transmission system.
Claims
1. A belt drive transmission system comprising: an input shaft to be driven by a prime mover of a vehicle; a first belt drive having an input and an output, the first belt drive driven in a first direction by the input shaft, the first belt drive having an adjustable input and output ratio; a second belt drive having an input and an output, the second belt drive input driven by the input shaft in a second direction opposite to the first direction, the second belt drive having an adjustable input and output ratio; and a differential coupling having an output connected to a driven axle of the vehicle, the differential coupling driven by the outputs of the first belt drive and the second belt drive to provide an aggregate drive at the output of the differential coupling, wherein the output of the differential coupling can be varied by adjusting the input and output ratio of the first and second belt drives, the output of the differential coupling being driven in a forward or reverse direction based on the output speeds of the first and second belt drives; and wherein the transmission system further comprises a speed select mechanism having an input and an output, the output of the belt drive transmission provided as input to the speed select mechanism, and the output of the speed select mechanism connected to the driven axle, and wherein the speed select mechanism comprises a plurality of selectable geared connections arranged to provide a variety of speed ranges in the transmission path between the prime mover and the driven axle.
2. The transmission system of claim 1, wherein the first and second belt drives comprise at least one variator arranged to adjust the input and output ratio of at least one of the first and second belt drives.
3. The transmission system of claim 1, wherein the first belt drive and the second belt drive comprise separately adjustable input and output ratios.
4. An agricultural or off-road vehicle, comprising: an engine; and the belt drive transmission system as claimed in claim 1, the input shaft of the belt drive transmission driven by the engine, the output of the differential coupling driving the driven axle.
5. The vehicle of claim 4, wherein the driven axle is a rear axle of the vehicle.
6. The vehicle of claim 4, wherein the vehicle further comprises an electronic control unit (ECU), the ECU configured to control an adjustable input and output ratio of the first and second belt drives.
7. The vehicle of claim 4, wherein the vehicle further comprises a throttle input, and an electronic control unit (ECU) wherein the ECU receives throttle data from the throttle input, and wherein the ECU is configured to control the first and second belt drives to adjust the output of the transmission based on the throttle data.
8. The vehicle of claim 4, wherein the first direction corresponds to a forward drive direction and the second direction corresponds to a reverse drive direction, wherein the vehicle further comprises a user input, and an electronic control unit (ECU) configured to receive from the user input an request for forward direction or reverse direction, and when forward direction is requested, the ECU controls the first and second belt drives such that the output of the first belt drive is greater than the output of the second belt drive, to provide a forward drive output to the driven axle; and when reverse direction is requested, the ECU controls the first and second belt drives such that the output of the second belt drive is greater than the output of the first belt drive, to provide a reverse drive output to the driven axle.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Embodiments of the invention will now be described, by way of example only, with reference to the accompanying drawings, in which:
(2)
(3)
(4)
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DETAILED DESCRIPTION OF THE INVENTION
(6) In
(7) The tractor 10 further comprises at least one Electronic Control Unit (ECU) 22, which is arranged to control operation of various tractor systems. The cab section 18 is provided with operator controls 24 for control of the different components of the tractor 10. The operator controls 24 may comprise mechanical levers and/or electronic control systems incorporating configurable switches, touchscreen displays, etc. It will be understood that the ECU 22 is provided in communication with the engine 20 and with the operator controls 24.
(8) The tractor 10 further comprises a transmission system arranged to transfer power from the engine 20 to a driven axle of the tractor 10, which may be the front or rear axle. With reference to
(9) The transmission system 26 comprises a bevel gear system 36 coupled to the input 28 of the transmission system 26, the bevel gear system 36 connected to a first shaft 38 rotating in a first direction and a second shaft 40 rotating in a second, opposite, direction. The first and second shafts 38,40 are arranged substantially orthogonal to the input 28. The first shaft 38 is connected as the input to a first belt drive 42, having a first input pulley 44 and a second output pulley 46, with a belt 48 connected therebetween. At least one of the first and second pulleys 44,46 is provided as an adjustable variator pulley, such that the input:output ratio of the first belt drive 42 can be varied. Accordingly, the rotational speed of an output shaft 50 coupled to the output pulley 46 can be adjusted by controlling the input:output ratio of the first belt drive 42 relative to the speed of the first shaft 38.
(10) Similarly, the second shaft 40 is connected as the input to a second belt drive 52, having a first input pulley 54 and a second output pulley 56, with a belt 58 connected therebetween. At least one of the first and second pulleys 54,56 is provided as an adjustable variator pulley, such that the input:output ratio of the second belt drive 52 can be varied. Accordingly, the rotational speed of an output shaft 60 coupled to the output pulley 56 can be adjusted by controlling the input:output ratio of the second belt drive 52 relative to the speed of the second shaft 40.
(11) The first and second output shafts 50,60 are arranged as inputs to a differential coupling 62, the output of the differential coupling forming the transmission output 30. As a result, the transmission output 30 is provided as the aggregate sum of the rotation of the outputs 50,60 of the first and second belt drives 42,52. As the first belt drive 42 is driven in the first direction, and the second belt drive 52 is driven in the opposite direction, accordingly, accordingly if the first belt drive 42 is faster than the second belt drive 52, the output 50 rotates faster in the first direction than the output 60 rotates in the second direction. The aggregate sum of the outputs 50,60 then causes the transmission output 30 to rotate in the first direction over the second direction. It will be understood that appropriate control of the input:output ratios of the first and second belt drives 42,52 allows for adjustment of the output 30 of the transmission across a range of speeds across both the forward and reverse directions. The use of two belt drives in this configuration provides a continuously variable transmission having relatively low cost, relatively low weight, and which is relatively easily serviceable.
(12) It will be understood that the tractor 10 comprising the transmission system 26 as described above may be implemented in any other configuration. For example, a further embodiment of a transmission system configuration is illustrated in
(13) While the transmission system 30 of the above embodiments is described as having first and second belt drives both with adjustable input:output ratios, it will be understood that the transmission system may be provided with just one of the two belt drives as having an adjustable input:output ratio, wherein the other of the two belt drives operates at a defined input:output ratio.
(14) A further embodiment of the invention is illustrated in
(15) The transmission system 126 comprises a bevel gear system 136 coupled to the input 128 of the transmission system 126, the bevel gear system 136 connected to a first orthogonal shaft 138. In addition, the transmission system 126 comprises a fixed shaft 140 arranged to rotate with the input shaft 128 from the engine 20, at the speed of the input shaft 128.
(16) The first shaft 138 is connected as the input to a first belt drive 142, having a first input pulley 144 and a second output pulley 146, with a belt 148 connected therebetween. At least one of the first and second pulleys 144,146 is provided as an adjustable variator pulley, such that the input:output ratio of the first belt drive 142 can be varied. Accordingly, the rotational speed of an output shaft 150 coupled to the output pulley 146 can be adjusted by controlling the input:output ratio of the first belt drive 142 relative to the speed of the first shaft 138.
(17) The first output shaft 150 and the fixed shaft 140 are arranged as inputs to a differential coupling 162, the output of the differential coupling forming the transmission output 130. As a result, the transmission output 130 is provided as the aggregate sum of the rotation of the output shaft 150 and the fixed shaft 140.
(18) In this embodiment, the fixed shaft 140 and the first belt drive 142 are configured to both rotate in the same direction. Accordingly, the system further comprises a forward-reverse selector mechanism 164 connected to the output 130 of the transmission 126. The forward-reverse selector mechanism 164 may comprise any suitable selectable gear connection which is arranged to transfer a rotation at the input into a forward or a reverse rotation direction at an output 166 of the selector mechanism 164. The output 166 of the forward-reverse selector mechanism 164 is coupled with the rear axle system 32 arranged to drive rear wheels 14 via left and right driven rear axles 34a,34b. It will be understood that the selector mechanism 164 can be controlled by the ECU 22 or directly by the operator controls 24, to provide appropriate control of forward-reverse selection.
(19) It will be understood that the individual features of the different embodiments may be combined without departing from the scope of the invention, for example it will be understood that the embodiment of
(20) The use of such a transmission system, wherein a continuously-variable transmission is provided through the use of at least one belt drive having an adjustable input:output ratio as a first input to a differential coupling, provides a transmission system having relatively low weight and cost, and reduced service requirements compared to prior art systems.
(21) The invention is not limited to the embodiments described herein, and may be modified or adapted without departing from the scope of the present invention.