FLUID COUPLING FOR A CONTINUOUS VARIABLE TRANSMISSION
20220373068 · 2022-11-24
Inventors
Cpc classification
F16H41/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The present invention discloses a fluid coupling and a coupling method for a continuous variable transmission. The fluid coupling comprises a pump having a first demi-torus body, and a turbine having a second demi-torus body. The first and second demi-torus body together forms a torus body. A first set of fluid directing blades radially disposed at the first demi-torus body. The first set of blades extends from a rim of the first demi-torus body and ends at a region proximate to a hub of the first demi-torus body. A second set of fluid directing blades radially disposed at the second demi-torus body. The second set of blades extends from a rim of the second demi-torus body and ends at a region proximate to a hub of the second demi-torus body. The fluid coupling device is configured to de-couple the negative coupling action and provide a continuously variable transmission.
Claims
1. A fluid coupling device, comprising: a pump having a first demi-torus body; a turbine having a second demi-torus body, wherein the first and second demi-torus body together forms a torus body; a first set of fluid directing blades radially disposed at the first demi-torus body, wherein the first set of blades extends from a rim of the first demi-torus body and ends at a region proximate to a hub of the first demi-torus body, and a second set of fluid directing blades radially disposed at the second demi-torus body, wherein the second set of blades extends from a rim of the second demi-torus body and ends at a region proximate to a hub of the second demi-torus body.
2. The fluid coupling device of claim 1, further comprises a first split-guide ring having a demi-torus shape disposed between the hub and rim of the first demi-torus body.
3. The fluid coupling device of claim 1, further comprises a second split-guide ring having a demi-torus shape disposed between the hub and rim of the second demi-torus body.
4. The fluid coupling device of claim 1, further comprises a housing to encase the pump and turbine filled with hydraulic fluid.
5. The fluid coupling device of claim 1, wherein the first split-guide ring and the second split-guide ring are configured to prevent turbulence in the fluid flow.
6. The fluid coupling device of claim 1, wherein the first set of fluid directing blades comprises an area around the hub free of blade elements.
7. The fluid coupling device of claim 1, wherein the second set of fluid directing blades comprises an area around the hub free of blade elements.
8. The fluid coupling device of claim 1, is configured to de-couple the negative coupling action and provide a continuously variable transmission.
9. A fluid coupling method, comprising the steps of: providing a fluid coupling comprising, a pump having a first demi-torus body; a turbine having a second demi-torus body, wherein the first and second demi-torus body together forms a torus body; a first set of fluid directing blades radially disposed at the first demi-torus body, wherein the first set of blades extends from a rim of the first demi-torus body and ends at a region proximate to a hub of the first semi-toroidal body, and a second set of fluid directing blades radially disposed at the second demi-torus body, wherein the second set of blades extends from a rim of the second demi-torus body and ends at a region proximate to a hub of the second semi-toroidal body, rotating the pump by input from a prime mover; flinging a fluid from the pump to the turbine via the first set of fluid directing blades; rotating the turbine to the speed of the pump on exertion of momentum of fluid onto the second set of fluid directing blades, thereby providing a first positive coupling action; and flowing of fluid from the turbine to pump without influencing the first and second set of fluid directing blades with vortex motion and accelerates vortex speed, thereby providing second positive coupling action, wherein the first positive coupling action and the second positive coupling action enables to multiply torque and provide a continuously variable transmission.
10. The fluid coupling method of claim 9, wherein the first set of fluid directing blades and the second set of fluid directing blades comprises an area around the hub free of blade elements.
11. A fluid coupling device, comprising: a pump having a first demi-torus body; a turbine having a second demi-torus body, wherein the first and second demi-torus body together forms a torus body; a first set of fluid directing blades radially disposed at the first demi-torus body, wherein the first set of blades extends from a rim of the first demi-torus body and ends at a region proximate to a hub of the first demi-torus body, and wherein the first set of fluid directing blades comprises an area around the hub free of blade elements that receives a fluid into the pump, and a second set of fluid directing blades radially disposed at the second demi-torus body, wherein the second set of blades extends from a rim of the second demi-torus body and ends at a region proximate to a hub of the second demi-torus body and wherein the second set of fluid directing blades comprises an area around the hub free of blade elements that exits the fluid into the pump from turbine.
12. The fluid coupling device of claim 11, further comprises a housing to encase the pump and turbine filled with the hydraulic fluid.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION OF EMBODIMENTS
[0029] A description of embodiments of the present invention will now be given with reference to the figures. It is expected that the present invention may be embodied in other specific forms without departing from its spirit or essential characteristics. The described embodiments are to be considered in all respects only as illustrative and not restrictive. The scope of the invention is, therefore, indicated by the appended claims rather than by the foregoing description. All changes that come within the meaning and range of equivalency of the claims are to be embraced within their scope.
[0030] Referring to
[0031] Referring to
[0032] A second set of fluid directing blades or second set of blades 410 radially disposed at the second demi-torus body. The second set of blades 410 extends from a rim of the second demi-torus body and ends at a region proximate to a hub of the second demi-torus body. A first split-guide ring 412 having a demi-torus shape is disposed between the hub and the rim of the pump 406. A second split-guide ring 414 having a demi-torus shape is disposed between the hub and the rim of the turbine 404. A housing 402 encases both the pump 406 and turbine 404, and filled with hydraulic fluid. The split-guide ring (412, 414) is configured to prevent turbulence in the fluid flow.
[0033] The housing 402 is made as an integral part of the pump 406. The housing 402 rotates at the same speed as the pump 406 while the turbine 404 is allowed to rotate at a different speed. Power is input via the housing 402 or pump 406, and output is provided via the turbine 204 connected to an output shaft 420 with a seal 422 to prevent the fluid from leaking. The coupling 400 further comprises retaining rings 416 and bearings 418.
[0034] Referring to
[0035] Both the first demi-torus body and the second demi-torus body comprises an area around the hub free of blade elements. Such modification de-couples the negative coupling action by letting the fluid to leave the turbine 404 at E and enter the pump 406 at F as in
[0036] Referring to
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[0041] In one embodiment, during starting off, at standstill (v=0), engine running at 800 rpm in throttle position 1, the fluid coupling 400 produces an output torque of 220 N−m at point K but is slipping because the wheel brake is on. Upon releasing the brake while keeping the throttle steady, the vehicle moves along KL and further to M and reach a maximum speed of 23 km/h. The driver may start off more quickly by pressing on the accelerator pedal to throttle position 3 where starting torque is 400 N−m at point N and if the throttle is kept at position 3 the car will accelerate along NP and then to Q where terminal speed is 47 km/h. To reach the 47 km/h goal the driver may press the pedal to the floor to throttle position 9 according to
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[0044] Advantageously, the present invention minimizes slippage, improves efficiency, enables to multiply torque, provides a continuously variable ratio transmission and eliminates the need for mechanical gear to multiply torque in steps. The present invention is mainly intended for automotive applications. The present invention is used in automotive viable on land, sea and air. The present invention could also be used in any industrial plant where very high starting torque for a rotating machine is needed. The present invention is also well suitable for a prime mover that is able to reverse its direction of rotation because of its radial blades configuration.
[0045] [45] The foregoing description comprise illustrative embodiments of the present invention. Having thus described exemplary embodiments of the present invention, it should be noted by those skilled in the art that the within disclosures are exemplary only, and that various other alternatives, adaptations, and modifications may be made within the scope of the present invention. Merely listing or numbering the steps of a method in a certain order does not constitute any limitation on the order of the steps of that method. Many modifications and other embodiments of the invention will come to mind to one skilled in the art to which this invention pertains having the benefit of the teachings presented in the foregoing descriptions. Although specific terms may be employed herein, they are used only in generic and descriptive sense and not for purposes of limitation. Accordingly, the present invention is not limited to the specific embodiments illustrated herein. While the above is a complete description of the preferred embodiments of the invention, various alternatives, modifications, and equivalents may be used. Therefore, the above description and the examples should not be taken as limiting the scope of the invention, which is defined by the appended claims.