CONSTANT-INPUT-TORQUE, CONTINUOUSLY-VARIABLE-SPEED, AUTOMATIC TRANSMISSION USING JUXTAPOSED CONES, AND AN INCLINED PLANE TORQUE COUPLER
20210404540 · 2021-12-30
Inventors
Cpc classification
F16H15/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H63/067
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
This CONSTANT-INPUT-TORQUE, CONTINUOUSLY-VARIABLE-SPEED, AUTOMATIC TRANSMISSION USING JUXTAPOSED CONES, AND AN INCLINED PLANE TORQUE COUPLER (herein: “Transmission”) is a simple, light weight, ‘constant input torque’, infinitely-variable speed, automatic transmission which uses two oppositely oriented (juxtaposed) cones and control mechanisms, appropriately interconnected by a serpentine belt. The output of the Transmission is connected to the useful load for which the Transmission is used. This Transmission has the inherent property that, regardless of the load resistance connected, the torque at the Transmission input remains approximately constant, while output rotational velocity (speed) varies as load increases or decreases.
Claims
1. The design of a constant-input-torque, infinitely-variable-drive-ratio, automatic transmission mechanism (herein: “Transmission”) for accomplishing automatically-adjustable rotational output variability of a juxtaposed-cone-based transmission via a constant-input torque and using a device comprised of a/an: Thrust Assembly; an Actuator Assembly; a Ratio Control Rod with pulley; and a Biasing Member; and used in combination with two juxtaposed cones and one interconnecting serpentine belt; together with supports as necessary to affix the Transmission in position, as desired.
2. The Transmission mechanism of claim 1, wherein the rotating, but not translating, Thrust Assembly transmits torque via an inclined plane to the surface-mated, and approximately-rotationally-synchronized, rotating Actuator Assembly.
3. The Transmission mechanism of claim 1, wherein the rotating Actuator Assembly receives the transmitted torque via an inclined plane, and, when sufficient torque is applied to overcome the resistance of the Biasing Member and the load, the Actuator Assembly is translated axially, toward the juxtaposed-cone combination.
4. The Transmission mechanism of claim 1, wherein the Actuator Assembly linearly translates a Ratio Control Rod, and an affixed Ratio Control Rod Pulley parallel to the axes of the juxtaposed-cone combination. The Ratio Control Rod Pulley moves a serpentine belt which connects the Ratio Control Rod Pulley, the Thrust Cone, and the Drive Cone. The Drive Cone is firmly affixed to, and rotates, the Drive Cone Pulley. The Drive Cone Pulley connects to the desired output [e.g.: wheel, propeller, etc.] via a belt, chain or similar mechanism; AND where the serpentine belt affects the opposing-diameter-based ratio of the input (Thrust Cone) RPM to the output (Drive Cone) RPM. Note: The functional details regarding the varying ratio of input RPM to corresponding output RPM of juxtaposed-cone-based transmissions is explained by other patents (e.g.: U.S. Pat. No. 7,803,077 B1).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023]
[0024]
DETAILED DESCRIPTION
[0025] With reference to
[0026] When greater resistance than normal is encountered in the drive train (at the Drive Cone Pulley 21 which is connected to, and rotates with, the Drive Cone 19; to overcome initial inertia when accelerating, or when encountering increased system load) the Thrust Assembly Inclined Plane Member 6 forces the Actuator Assembly Inclined Plane Member 10 to slide along the inclined mating plane between Thrust Assembly Inclined Plane Member 6 and Actuator Assembly Inclined Plane Member 10. This, consequently, forces a longitudinal translation of the rotating Actuator Assembly Inclined Plane Member 10 and the Actuator Assembly Plate 11 toward the two juxtaposed cones 18 and 19.
[0027] The Actuator Assembly Inclined Plane Member 10 and the Actuator Assembly Plate 11, are free to translate along the Actuator Assembly Axle 1 axis, and also rotate with the Actuator Assembly Axle 1 axis, at the same rotational speed as the thrust cone 18, and generally at the same rotational speed with the Thrust Assembly Plate 5 and the Thrust Assembly Inclined Plane Member 6.
[0028] The rotating Actuator Assembly Plate 11 pushes against a non-rotating Ratio Control Rod 15. Limited by the Support 13 and supported by the Ratio Control Rod Support 16 and the Ratio Control Rod Support Slide Guide 14 (of which there are two guides, one on each side of the Ratio Control Rod Support 16), the Ratio Control Rod 15 is consequently translated toward the two cones 18 and 19.
[0029] Connected near the end of the Ratio Control Rod 15 is the Ratio Control Rod Pulley 17 which rotates on an axis parallel to the rotational axes of the two cones 18 and 19.
[0030] A Biasing Member 12 (typically a coil spring) acts to force the Ratio Control Rod 15, the Actuator Assembly Plate 11 and the Actuator Assembly Inclined Plane Member 10 toward the Thrust Assembly Plate 5 when torque at the Thrust Assembly 100 is reduced.
[0031] The Drive Cone 19 is supported by the Supports 13 and 20.
[0032] The Thrust Cone 18 is attached to, and coaxial with, and rotates with, the Actuator Assembly Axle 1 and the Actuator Assembly Plate 11.
[0033] The Thrust Cone 18 is supported by the general supports 13 and 20.
[0034] In this embodiment the Thrust Assembly Inclined Plane Member 6 is shown as an exponential curved solid extending from the approximate center of the Thrust Assembly Plate 5 to the approximate outer edge of the Thrust Assembly Plate 5. However, almost any other geometric solid would also function appropriately for the Thrust Assembly Inclined Plane Member 6, providing there is a mating surface between Actuator Assembly Inclined Plane Member 10 and the Thrust Assembly Inclined Plane Member 6.
[0035] In this embodiment, the Ratio Control Rod Support Slide Guides 14 are shown as circular rods, but any cross-sectional shape may be used.
[0036] In this embodiment the Ratio Control Rod 15 is shown as a “T-ended” square rod, but any cross-sectional shape may be used. Additionally, in other possible embodiments, the end abutting the Actuator Assembly Plate 11 may have a rolling mechanism (such as a captive ball(s) or a rolling wheel) to reduce friction between the Actuator Assembly Plate 11 and the Ratio Control Rod 15.
[0037] With reference to
[0038] In this embodiment the Actuator Assembly Inclined Plane Member 10 is shown as a curved solid extending approximately one-half way around the Actuator Assembly Plate 11 at the approximate outer edge of the Actuator Assembly Plate 11, declining in height along its length. However, almost any other geometric solid would also function appropriately for the Actuator Assembly Inclined Plane Member 10, providing there is a smooth, inclined-plane, mating surface between the Actuator Assembly Inclined Plane Member 10 and the Thrust Assembly Inclined Plane Member 6.
[0039] Various nuts, washers, and C-rings (not shown) retain members in their appropriate positions, together with bearings and harm-preventing shielding are additional members of the Transmission, but are not substantial to the description of the Transmission device functionality.