FLUID SYSTEM FOR A CONTINUOUSLY VARIABLE TRANSMISSION
20210270364 · 2021-09-02
Assignee
Inventors
Cpc classification
F16H9/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/66272
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B1/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B11/17
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/448
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H61/662
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B1/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B11/17
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A fluid system for a continuously variable transmission includes a first pump, a first actuation unit, a first line section, a second actuation unit, and a second line section. The first pump has a first sub-pump and a second sub-pump. The first actuation unit is assigned to a first disc set of the continuously variable transmission and the second actuation unit is assigned to a second disc set of the continuously variable transmission. The first line section fluidically connects the first pump to the first actuation unit and the second line section fluidically connects the first pump to the second actuation unit. The second sub-pump has a first connection that can be selectively fluidically connected to the first actuation unit via the first line section, or the second sub-pump has a second connection that can be selectively fluidically connected to the second actuation unit via the second line section.
Claims
1.-10.(canceled)
11. A fluid system for a continuously variable transmission, comprising: a first pump comprising a first sub-pump and a second sub-pump; a first actuation unit assigned to a first disc set of the continuously variable transmission; a first line section fluidically connecting the first pump to the first actuation unit; a second actuation unit assigned to a second disc set of the continuously variable transmission; and a second line section fluidically connecting the first pump to the second actuation unit; wherein: the second sub-pump comprises a first connection that can be selectively fluidically connected to the first actuation unit via the first line section; or the second sub-pump comprises a second connection that can be selectively fluidically connected to the second actuation unit via the second line section.
12. The fluid system of claim 11, further comprising an electric motor for driving the first pump.
13. The fluid system of claim 11, further comprising a second pump, wherein: the second pump is connected to the second line section; or the second pump can be connected to the second line section.
14. The fluid system of claim 13, further comprising an electric motor for driving the second pump.
15. The fluid system of claim 11, wherein: the first sub-pump and the second sub-pump are formed by respective wheel sets arranged on a common drive shaft; or the first sub-pump and the second sub-pump are formed by respective pressure-kidneys arranged on a common wheel set.
16. The fluid system of claim 11, further comprising: a first valve assembly; and a reservoir, wherein: in a first switching position of the first valve assembly, the first connection of the second sub-pump is fluidically connected to the first actuation unit; and in a second switching position of the first valve assembly, the first connection of the second sub-pump is fluidically connected to the reservoir.
17. The fluid system of claim 16, wherein the first valve assembly is formed by: two 2/2-way valves connected together; or a 3/2-way valve.
18. The fluid system of claim 11, further comprising: a second valve assembly; and a reservoir, wherein: in a first switching position of the second valve assembly, the second connection of the second sub-pump is fluidically connected to the second actuation unit; and in a second switching position of the second valve assembly, the second connection of the second sub-pump is fluidically connected to the reservoir.
19. The fluid system of claim 18, wherein the second valve assembly is formed by: two 2/2-way valves connected together; or a 3/2-way valve.
20. The fluid system of claim 11, wherein the first pump can be driven in a first direction of rotation and in a second direction of rotation, opposite to the first direction of rotation.
21. The fluid system of claim 11, wherein the first pump is formed by a hydraulic transformer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021] The disclosure is explained below with the aid of drawings. In the figures:
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION
[0026] The figures are only schematic in nature and serve only for understanding the disclosure. The same elements are provided with the same reference symbols. Features of the different exemplary embodiments can be interchanged.
[0027]
[0028] The first pump 3 is formed by a first sub-pump 10 and a second sub-pump 11, the connections of which are each fluidically connected to the first line section 4 and to the second line section 7. A first connection 12 of the second sub-pump 11 can be switchably fluidically connected via the first line section 4 to the first actuation unit 6 or to a reservoir/tank 13. In the first embodiment, a second connection 14 of the second sub-pump 11 is directly, i.e., not switchably, fluidically connected to the second actuation unit 9 via the second line section 7.
[0029] The first sub-pump 10 and the second sub-pump 11 are driven by an electric motor 15. Both sub-pumps 10, 11 are arranged on a common drive shaft 16 which is driven in rotation by the electric motor 15. Thus, in the first embodiment, the first pump 3 is part of an electric pump actuator (EPA).
[0030] The first connection 12 of the second sub-pump 11 is switchably fluidically connected to the first line section 4 or the first actuation unit 6 or to the reservoir 13 via a first valve assembly 17. In the first embodiment, the first valve assembly 17 is controlled by a first 2/2-way valve 18, which is arranged between the first connection 12 of the second sub-pump 11 and the first actuation unit 6, and a second 2/2-way valve 19, which is arranged between the first connection 12 of the second sub-pump 11 and the reservoir 13 is formed. The first and the second 2/2-way valve 18, 19 are switched jointly by a controller 20. The controller 20 is not shown in the further embodiments for the sake of simplicity. The first and the second 2/2-way valve 18, 19 can be designed, for example, as seat valves or as slide valves.
[0031] In a rest position of the first valve assembly 17, the first 2/2-way valve 18 is in an open position, in which the first connection 12 of the second sub-pump 11 and the first actuation unit 6 are fluidically connected to one another, and the second 2/2-way valve 19 is in a blocking position in which the first connection 12 and the reservoir 13 are fluidically separated from one another. In an actuating position of the first valve assembly 17, the first 2/2-way valve 18 is in a blocking position in which the first connection 12 of the second sub-pump 11 and the first actuation unit 6 are fluidically separated from one another, and the second 2/2-way valve 19 is in a passage position in which the first connection 12 and the reservoir 13 are fluidically connected to one another.
[0032] In the rest position of the first valve assembly 17, the two sub-pumps 10, 11 work in parallel for a largest volume flow towards the first disc set 5 (or towards the second disc set 8). In the actuating position of the first valve assembly 17, only the first sub-pump 10 works for the volume flow to the first disc set 5 and the second sub-pump 11 acts as a hydraulic motor that supports the drive of the first sub-pump 10 when the pressure on the first disc set 5 is larger than on the second disc set 8.
[0033] A second pump 21 is fluidically connected to the second line section 7. The second pump 21 is driven by an electric motor 22 and is therefore part of a further electric pump actuator (EPA) that generates pressure on the second disc set 8.
[0034] In
[0035]
[0036] In the third embodiment, the second valve assembly 24 is controlled by a third 2/2-way valve 25, which is arranged between the second connection 14 of the second sub-pump 11 and the second actuation unit 9, and a fourth 2/2-way valve 26, which is arranged between the second connection 14 of the second sub-pump 11 and the reservoir 13 is formed. The third and fourth 2/2-way valves 25, 26 are switched jointly by a controller. The third and fourth 2/2-way valves can also be controlled separately.
[0037] In a rest position of the second valve assembly 24, the third 2/2-way valve 25 is in an open position, in which the second connection 14 of the second sub-pump 11 and the second actuation unit 9 are fluidically connected to one another, and the fourth 2/2-way valve 26 is in a blocking position in which the second connection 14 and the reservoir 13 are fluidically separated from one another. In an actuating position of the second valve assembly 24, the third 2/2-way valve 25 is in a blocking position in which the second connection 14 of the second sub-pump 11 and the second actuation unit 9 are fluidically separated from one another, and the fourth 2/2-way valve 26 is in a passage position in which the second connection 14 and the reservoir 13 are fluidically connected to one another. The second valve assembly 24 can also be formed by a 3/2-way valve, analogously to the second embodiment, even if this is not shown.
[0038] According to the third embodiment, there are four switching positions: When all 2/2-way valves 18, 19, 25, 26 are in the rest position, the two sub-pumps 10, 11 work in parallel for the greatest volume flow to the first disc set 5 (or to the second disc set 8). The switching position is used to achieve maximum performance. When all 2/2-way valves 18, 19, 25, 26 are in the actuating position, i.e., switched, the first sub-pump 10 works solely for the volume flow and the second sub-pump 11 also runs moment-neutral. The switching position is used for energy-saving operation with low volume requirements. When the first and second 2/2-way valves 18, 19 are in the actuating position and the third and fourth 2/2-way valves 25, 26 are in the rest position, the second sub-pump 11 works as a hydraulic motor and supports the drive of the first sub-pump 10. The switching position is used for extended energy-saving operation during normal travel (pull), i.e., when the pressure on the first disc set 5 is greater than that of the second disc set 8. When the first and second 2/2-way valves 18, 19 are in the rest position and the third and fourth 2/2-way valves 25, 26 are in the actuating position and when the pressure on the second disc set 8 is greater than that on the first disc set 5 (push), the first sub-pump 10 works through the pressure gradient for the volume flow towards the first disc set 5 and experiences a braking backpressure gradient, which lowers a necessary drive torque for the first pump 3.
[0039]
Reference Numerals
[0040] 1 Fluid system [0041] 2 Transmission [0042] 3 First pump [0043] 4 First line section [0044] 5 First disc set [0045] 6 First actuation unit [0046] 7 Second line section [0047] 8 Second disc set [0048] 9 Second actuation unit [0049] 10 First sub-pump [0050] 11 Second sub-pump [0051] 12 First connection [0052] 13 Reservoir [0053] 14 Second connection [0054] 15 Electric motor [0055] 16 Drive shaft [0056] 17 First valve assembly [0057] 18 First 2/2-way valve [0058] 19 Second 2/2-way valve [0059] 20 Controller [0060] 21 Second pump [0061] 22 Electric motor [0062] 23 3/2-way valve [0063] 24 Second valve assembly [0064] 25 Third 2/2-way valve [0065] 26 Fourth 2/2-way valve [0066] 27 Hydraulic transformer [0067] 28 First connection [0068] 29 Second connection [0069] 30 Third connection