Hydrostatic torque converter and torque amplifier
An example includes a hydraulically controllable coupling to couple a rotating input and to an output to rotate, or to decouple the input and the output, with coupling and decoupling modes selected by switching a hydraulic device such as a vane pump between a pumping mode and a mode in which it does not pump. In an example, the system cooperates with a transmission to increase the number of possible gear ratios in some examples.
1. A hydraulically controllable coupling, comprising:
an input shaft coupled to rotate one of a body defining a chamber, the body in fluid communication with an inlet, and a rotating group disposed in the chamber;
an output shaft coupled to rotate the other of the body and the rotating group, wherein the rotating group comprises:
a rotor to rotate around an axis inside the chamber, with the rotor defining a first slot extending parallel to the axis along an exterior of the rotor and opening to the chamber, and a second slot opposite the first and opening to the chamber, the rotor further defining a retainer passage in fluid communication with the first slot;
a first vane disposed in the first slot;
a second vane disposed in the second slot; and
a hydraulically controlled retainer disposed in the retainer passage to retain the first vane in a retracted vane mode of operation and to release the first vane in a vane extended mode of operation in which the first vane and the second vane extend to meet the body to hydraulically work fluid when the first vane and the second vane are moved with respect to the body;
a programmable torque device to select a desired torque between the input shaft and the output shaft that is independent of vane position; and
wherein the input and the output are coupled to rotate together in the vane extended mode of operation, and the input and output are free to rotate with respect to one another in the vane retracted mode of operation.
2. The hydraulically controllable coupling of claim 1 , comprising:
a torque producer coupled to the input shaft;
a load coupled to the output shaft; and
a hydraulic pump motor including a second output shaft, the hydraulic pump motor including a pump motor inlet in fluid communication with a discharge pressure of hydraulic couple.
3. The hydraulically controllable coupling of claim 1 , comprising:
a torque producer coupled to the input shaft;
a powertrain coupled to the output shaft; and
a hydraulic pump motor including a second output shaft, the hydraulic pump motor including a pump motor inlet in fluid communication with a discharge pressure of hydraulic couple.
4. The hydraulically controllable coupling of claim 3 , wherein the torque producer is one of an internal combustion engine and an electrical motor.
5. The hydraulically controllable coupling of claim 3 , wherein the first vane is a roller tipped vane.
6. The hydraulically controllable coupling of claim 1 , wherein an outlet of the body is in fluid communication with a relief valve.
7. The hydraulically controllable coupling of claim 6 , wherein and the relief valve is associated with an overload torque to allow the rotating group to spin with respect to the body in the vane extended mode of operation and pump oil over the relief valve.
8. The hydraulically controllable coupling of claim 1 , wherein the retainer is a ball.
9. A method, comprising:
coupling an input of a vane pump to a torque producer, and an output to a load;
adjusting a pilot signal pressure to the rotating group of the vane pump to lock vanes in a vane retracted mode of operation such that the input of a vane pump, coupled to one of a body and rotor of the vane pump, is free to spin with respect to the output of the vane pump and the other of the body and the rotor of the vane pump;
adjusting the pilot signal pressure to lock vanes in a vane extended mode of operation such that the input of a vane pump drives the output of the vane pump and the other of the body and the rotor of the vane pump; and
adjusting a torque setting of the vane pump that is independent of vane position by setting a variable relief valve.
10. The method of claim 9 , further including pumping oil with the rotating group in response to overloading the vane pump.
11. The method of claim 10 , wherein pumping oil includes pumping oil over the variable relief valve.
12. The method of claim 9 , comprising storing hydraulic pressure in an accumulator in a regenerative braking mode in which the vane pump is in the extended mode of operation, in which the output of the vane pump is driven by the load.
13. The method of claim 12 , comprising bleeding pressure generated by the vane pump over the variable relief valve when the accumulator is full.
14. The method of claim 12 , comprising driving, after the regenerative braking mode, the load using hydraulic pressure stored in the accumulator.