TRANSMISSION WITH L1-L2 SHIFT METHOD WHILE ENGINE BRAKING
20170159815 ยท 2017-06-08
Assignee
Inventors
- Scott A. Kline (Richmond, MI, US)
- Patrick M. Gibson (Ypsilanti, MI, US)
- Raj Kommareddy (South Lyon, MI, US)
- Roberto Diaz (Novi, MI, US)
Cpc classification
F16H2200/2084
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2200/0065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2061/0237
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/21
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2061/0462
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/686
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/0213
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2061/0496
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2200/2079
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H61/688
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A transmission includes a stationary member, an input member, and gear sets each having a plurality of nodes. The transmission includes a first clutch that connects a node of one gear set to the stationary member to establish an L1 mode, and a second clutch that connects a node of another gear set to the stationary member to establish a 2L mode. A SOWC is connected between nodes of two gear sets, and a controller, in response to a requested shift L1-L2 shift while engine braking, executes a method to release the first clutch and thereby enters a neutral mode. The SOWC is released when slip across the first clutch exceeds a first threshold, then the first clutch reapplied when a SOWC slip level exceeds another threshold to thereby enter a 1.sup.st gear freewheeling mode. The second clutch is reapplied to enter the L2 mode and resume engine braking.
Claims
1. A transmission for use with an engine, the transmission comprising: a stationary member; an input member connectable to the engine; a plurality of gear sets each having a plurality of nodes, including a ring gear, a sun gear, and a carrier member; a first clutch that, when applied, connects a node of one of the gear sets to the stationary member to establish a 1.sup.st gear low (L1) mode; a second clutch that, when applied, connects a node of another one of the gear sets to the stationary member to establish a 2.sup.nd gear low (2L) mode; a selectable one-way clutch (SOWC) connected between nodes of two of the gear sets; and a controller programmed, in response to a requested shift from the L1 mode to the L2 mode during an engine braking maneuver, to release the first clutch and thereby enter a neutral mode of the transmission, release the SOWC when a slip level across the first clutch exceeds a first calibrated slip threshold, reapply the first clutch when a slip level of the SOWC exceeds a second calibrated slip threshold to thereby enter a 1.sup.st gear freewheeling mode, and apply the second clutch to enter the L2 mode and resume the engine braking maneuver.
2. The transmission of claim 1, wherein the plurality of gear sets includes first, second, third, and fourth gear sets, the first clutch connects a node of the first gear set to the stationary member, the SOWC is connected between nodes of the second and third gear sets, and the second clutch connects the fourth gear set to the stationary member.
3. The transmission of claim 2, wherein the transmission is a 9-speed automatic transmission.
4. The transmission of claim 3, wherein the first clutch connects a sun gear of the first gear set to the stationary member, the second clutch connects a sun gear of the fourth gear set to the stationary member, and the SOWC is connected between a ring gear of the third gear set and a carrier member of the third gear set.
5. The transmission of claim 1, further comprising a plurality of speed sensors positioned with respect to the transmission and operable for measuring rotational speeds of the input member, the output member, and a mid-transmission member of the transmission, wherein the controller is programmed to calculate the slip levels using the measured rotational speeds.
6. The transmission of claim 1, wherein the controller is programmed to release the SOWC by reducing a pressure command to the SOWC.
7. The transmission of claim 6, wherein the SOWC includes a pair of races, a plurality of struts, and a selector plate operable for depressing the struts into mating strut wells of one of the races, and wherein reducing pressure to the SOWC causes rotation of the selector plate sufficient for depressing the struts into the mating strut wells.
8. The transmission of claim 6, wherein the controller is programmed to request additional torque output from the engine to facilitate the release of the SOWC.
9. A method of shifting from a 1.sup.st gear low (L1) mode to a second gear low (L2) mode in a transmission having a plurality of gear sets each having a plurality of nodes, including a ring gear, a sun gear, and a carrier member, the method comprising: detecting a requested shift maneuver from the L1 mode to the L2 mode during an engine braking maneuver; releasing a first clutch to enter a neutral mode of the transmission, wherein releasing the first clutch disconnects a node of one of the gear sets from a stationary member to exit the L1 mode; releasing a selectable one-way clutch (SOWC) when a slip level across the first clutch exceeds a first calibrated slip threshold, wherein the SOWC is connected between nodes of two of the gear sets; reapplying the first clutch when a slip level across the SOWC exceeds a second calibrated slip threshold to thereby enter a 1.sup.st gear freewheeling mode; and applying the second clutch to connect a node of another one of the gear sets to the stationary member and thereby enter the L2 mode and resume the engine braking maneuver.
10. The method of claim 9, wherein the plurality of gear sets includes first, second, third, and fourth gear sets, the first clutch when applied connects a node of the first gear set to the stationary member, the SOWC is connected between nodes of the second and third gear sets, and the second clutch when applied connects the fourth gear set to the stationary member.
11. The method of claim 10, wherein the transmission is a 9-speed automatic transmission.
12. The method of claim 9, further comprising: measuring, via a plurality of speed sensors positioned with respect to the transmission, rotational speeds of an input member, output member, and mid- transmission member of the transmission; and calculating the slip levels via the controller using the measured rotational speeds.
13. The method of claim 9, wherein releasing the SOWC includes reducing pressure to the SOWC.
14. The method of claim 13, wherein the SOWC includes a pair of races, a plurality of struts, and a selector plate operable for depressing the struts into mating strut wells of one of the races, and wherein reducing pressure to the SOWC includes causing the selector plate to depress the struts into the mating strut wells.
15. The method of claim 13, wherein releasing the SOWC also includes requesting additional torque output from the engine via the controller to facilitate the release of the SOWC.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008]
[0009]
[0010]
[0011]
DETAILED DESCRIPTION
[0012] Referring to the drawings, wherein like reference numerals refer to like or similar components throughout the several figures, an example multi-speed automatic transmission 10 is shown in
[0013] As explained below with reference to
[0014] The controller 25 shown schematically in
[0015] In a non-limiting example embodiment, the transmission 10 of
[0016] The transmission 10 of
[0017] Each gear set 20, 30, 40, and 50 includes multiple gear elements or nodes. For instance, the gear set 20 includes nodes S1, CM1, and R1 representing a sun gear, carrier member, and ring gear, respectively. Gear set 30 includes nodes S2, CM2, and R2 respectively representing a sun gear, carrier member, and ring gear. Likewise, the gear sets 40 and 50 include ring gears, carriers, and sun gears, i.e., R3 and R4, CM3 and CM4, and S3 and S4, respectively.
[0018] In the example embodiment of
[0019] With respect to the various braking clutches of this embodiment, clutches CB29 and CB38 selectively connect nodes S4 of gear set 50 and S3 of gear set 40 to the stationary member 17. Clutch CB123456 selectively connects node S1 of gear set 20 to the stationary member 14. Clutches CB123456 and CB29 are respectively designated as first and second clutches C1 and C2 and controlled as set forth below with reference to
[0020] Speed sensors S.sub.I and S.sub.O may be connected to the input and output members 14 and 16. One or more mid-transmission speed sensors SM may be connected to a corresponding mid-transmission member, e.g., element 23 which connects the SOWC to nodes CM3 and R2 or node S3 in different embodiments. Thus, the input signals (arrow 11) may include the measured speeds of the input, mid-transmission, and output members, with the speeds indicated as arrows N.sub.14, N.sub.M, and N.sub.16, respectively. Other input signals (arrow 11) may include a low gear setting from a park, reverse, neutral, drive, low (PRNDL) lever, such that the controller 25 is operable for detecting a requested L1-L2 mode shift via detection of a position of such a PRNDL lever as is known in the art.
[0021] Referring to
[0022] To address such a control problem, the controller 25 receives the input signals (arrow 11) and selectively commands the momentary release of an input or first gear clutch, e.g., the first clutch C1 shown in
[0023] Referring to
[0024] The various traces of
[0025] At step S104, the controller 25 commands a momentary release of the first clutch C1, i.e., the clutch CB123456 in the example transmission 10 of
[0026] Step S106 entails comparing a measured or calculated amount of slip of the first clutch C1 to a first calibrated slip threshold. That is, at about ti of
[0027] Step S108 includes releasing the SOWC 12 in response to exceeding the first calibrated slip threshold in step S106. Step S108 may vary with the particular control strategy used to pressurize the SOWC 12. For instance, a given pressure control solenoid may be commanded off to enable the SOWC 12 to release oil and complete the commanded release. Optionally, step S108 may include requesting positive engine torque to assist with the release of the SOWC 12. For instance, between t.sub.2 and t.sub.3 the controller 25 may determine that the first clutch C1 is fully released, and may as a result transmit a request to an engine control module (not shown) as part of the control signals (arrow 13) or other control signals to supply a brief increase in engine torque from the engine 15 of
[0028] At step 5110, the controller 25 next determines whether the SOWC 12 has slipped above a second calibrated slip threshold. Slip of the SOWC 12, i.e., trace N.sub.12 of
[0029] Step S112 includes reapplying the first clutch C1, as indicated by the rise in the clutch pressure command (trace P.sub.C1) to first clutch C1 in
[0030] At step S114, the controller 25 next commands application of the second clutch C2, i.e., clutch CB29 in the example embodiment of
[0031] Using the method 100 described above, engine braking functionality is made available in first gear of the transmission 10 while still obtaining the fuel economy, packaging, mass, and cost benefits of a selectable one-way clutch in lieu of a conventional friction plate clutch. As a result, engine braking is extended from 2.sup.nd gear to 1.sup.st gear. Other possible limitations are also addressed, such as eliminating the conventional requirement that the transmission 10 be locked in a first gear mode until positive engine torque is requested.
[0032] While the best modes for carrying out the disclosure have been described in detail, those familiar with the art to which this disclosure relates will recognize various alternative designs and embodiments for practicing the disclosure within the scope of the appended claims.