SHIFT CONTROL APPARATUS FOR ELECTRONIC SHIFT SYSTEM
20200240515 ยท 2020-07-30
Assignee
Inventors
Cpc classification
F16H2059/081
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H59/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H59/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A shift control apparatus configured for an electronic shift system, may include shift dial disposed on a main housing to be able to turn in a first direction or a second direction and having a permanent magnet; a main PCB disposed on the main housing opposite the permanent magnet, and recognizing gear stages and outputting signals for the recognized gear stages to a transmission control unit in accordance with a change in position of the permanent magnet when the shift dial is turned; a shift button being movable upwards and downwards with respect to the shift dial; and a sub PCB coupled to the shift dial and outputting a gear stage signal, which is generated when the shift button is operated, to the transmission control unit.
Claims
1-12. (canceled)
13. The shift control apparatus of claim 5, wherein the detent includes: a detent boss disposed on the main housing; a detent pin slidably combined with the detent boss to be configured to protrude toward the shift dial; a gear plate combined with the shift dial to rotate together and having teeth formed on an external edge portion of the gear plate in contact with the end portion of the detent pin; and a spring elastically supporting the detent pin to keep the end portion of the detent pin in contact with the teeth.
14. The shift control apparatus of claim 13, wherein, when the shift dial is turned one click in the first direction with an R-stage currently selected, the main PCB outputs an N-stage signal as a final gear stage signal, wherein, when the shift dial is turned at least two clicks in the first direction with the R-stage currently selected, the main PCB outputs a D-stage signal as the final gear stage signal, and wherein, when the shift dial is turned one or more clicks in the second direction with the R-stage currently selected, the main PCB outputs an R-stage signal as the final gear stage signal.
15. The shift control apparatus of claim 13, wherein, when the shift dial is turned one or more clicks in the first direction with an N-stage currently selected, the main PCB outputs a D-stage signal as a final gear stage signal, when the shift dial is turned one or more clicks in the second direction with the N-stage currently selected, the main PCB outputs an R-stage signal as the final gear stage signal, and when the shift dial is not turned and the shift button is pressed with the N-stage currently selected, the main PCB outputs a P-stage signal as the final gear stage signal.
16. The shift control apparatus of claim 13, wherein, when the shift dial is turned one click in the second direction with a D-stage currently selected, the main PCB outputs an N-stage signal as a final gear stage signal, when the shift dial is turned at least two clicks in the second direction with the D-stage currently selected, the main PCB outputs an R-stage signal as the final gear stage signal, and when the shift dial is turned one or more clicks in the first direction with the D-stage currently selected, the main PCB outputs a D-stage signal as the final gear stage signal.
17. The shift control apparatus of claim 13, wherein, when the shift dial is turned one click in the first direction or the second direction with a P-stage currently selected, the main PCB outputs an N-stage signal as a final gear stage signal, when the shift dial is turned at least two clicks in the first direction with the P-stage currently selected, the main PCB outputs a D-stage signal as the final gear stage signal, and when the shift dial is turned at least two clicks in the second direction with the P-stage currently selected, the main PCB outputs an R-stage signal as the final gear stage signal.
18. A shift control apparatus for an electronic shift system, wherein a P-stage is selected by pressing a shift button, one of an R-stage, an N-stage, and a D-stage is selected by turning a shift dial, the R-stage is disposed at a first end portion of the shift dial in a first direction, the D-stage is disposed at a second end portion in a second direction, and a null-stage is disposed between the R-stage and the D-stage, when the shift dial is turned, the shift dial is self-returned to the null-stage by a spring force when the shift dial is turned from the null-stage to the R-stage and then released, and the shift dial is self-returned to the null-stage by the spring force when the shift dial is turned from the null-stage to the D-stage and then released.
19. The shift control apparatus of claim 18, wherein the null-stage is divided into an Nr-stage and an Nd-stage, and the Nr-stage is disposed at a side of the R-stage, the Nd-stage is disposed at a side of the Nr-stage, and the D-stage is disposed at a side of the Nd-stage, when the shift dial is turned from the R-stage to the D-stage.
20. The shift control apparatus of claim 18, wherein the shift dial is self-returned to an Nr-stage by a spring force when the shift dial is turned from the Nr-stage to the R-stage and then released, and the shift dial is self-returned to an Nd-stage by the spring force when the shift dial is turned from the Nd-stage to the D-stage and then released.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0036]
[0037]
[0038]
[0039]
[0040]
[0041] It may be understood that the appended drawings are not necessarily to scale, presenting a somewhat simplified representation of various features illustrative of the basic principles of the invention. The specific design features of the present invention as included herein, including, for example, specific dimensions, orientations, locations, and shapes will be determined in portion by the intended application and use environment.
[0042] In the figures, reference numbers refer to the same or equivalent parts of the present invention throughout the several figures of the drawing.
DETAILED DESCRIPTION
[0043] Reference will now be made in detail to various embodiments of the present invention(s), examples of which are illustrated in the accompanying drawings and described below. While the invention(s) will be described in conjunction with exemplary embodiments, it will be understood that the present description is not intended to limit the invention(s) to those exemplary embodiments. On the other hand, the invention(s) is/are intended to cover not only the exemplary embodiments, but also various alternatives, modifications, equivalents and other embodiments, which may be included within the spirit and scope of the invention as defined by the appended claims.
[0044] A shift control apparatus configured for an electronic shift system according to exemplary embodiments of the present invention is described hereafter in detail with reference to the accompanying drawings.
[0045] A shift control apparatus configured for an electronic shift system according to an exemplary embodiment of the present invention, as shown in
[0046] The apparatus further includes an elastic pad 40 disposed on the sub PCB 30 and having contact points 41 with the shift button 50 on the contact points 41. When the shift button 50 is operated and the contact points 41 of the elastic pad 40 come in contact with the sub PCB 30, the sub PCB 30 outputs a gear stage signal (P-stage signal) to the TCU.
[0047] Clockwise rotation of the shift dial 20 means rotation in a first direction and counterclockwise rotation of the shift dial 20 means rotation in a second direction.
[0048] The main housing 1 is disposed on a console close to a driver and the shift dial 20 and the shift button 50 protrude upward through the top portion of the main housing 1 so that the driver can operate them.
[0049] The shift dial 20 is rotatably disposed on a main housing shaft 1a on the main housing 1 and a knob bracket 91 is disposed in an upwardly open space of the shift dial 20. The knob bracket 91 is fixed to the main housing shaft 1a of the main housing 1 by a fastener 90 such as a screw or a bolt.
[0050] The knob bracket 91 has a space 95 open upward, the sub PCB 30 is fixed in the upwardly open space 95 of the knob bracket 91, the elastic pad 40 made of rubber and having the contact points 41 is accommodated on the sub PCB 30, and the shift button 50 is disposed on the elastic pad 40. The shift button 50 is guided up and down by a retainer 51.
[0051] Since the shift button 50 may be moved upwards and down with respect to the shift dial 20, when a driver presses down the shift button 50, the elastic pad 40 is pressed and the contact points 41 come in contact with the sub PCB 30. Furthermore, when the pressed shift button 50 is released, the elastic pad 40 made of rubber returns and moves up and returns the shift button 50 that has moved down to the initial position. Furthermore, when the shift button 50 is moved upwards. The contact points 41 come off the sub PCB 30.
[0052] When the shift button 50 is moved down and the contact points 41 come in contact with the sub PCB 30, the sub PCB 30 outputs a P-stage signal to the TCU 2.
[0053] The main PCB 60 is fixed to the main housing 1 to face the permanent magnet 10 with a predetermined gap therebetween.
[0054] When the position of the permanent magnet 10 is changed by a rotation of the shift dial 20, the main PCB 60 outputs a switch signal for the gear stage selected on the basis of a current value corresponding to changed magnetic flux to the TCU 2, the TCU 2 controls the solenoid or the electric motor of the transmission on the basis of a control signal from the main PCB 60, and hydraulic pressure is applied or not applied to the hydraulic circuit for each gear stage by operation of the solenoid or the electric motor, whereby electronic shift control is performed.
[0055] According to an exemplary embodiment of the present invention, any one of the R-stage, N-stage, and D-stage is selected when the dial 20 is turned clockwise or counterclockwise, and the P-stage is selected when the shift button 50 is pressed. Accordingly, it is possible to prevent mis-operation when shifting to the D-stage from the R-stage or to the R-stage from the D-stage by turning the shift dial 20 and, it is also possible to improve the convenience of shifting using the shift dial 20.
[0056] Furthermore, the apparatus according to an exemplary embodiment of the present invention further includes a light 70 coupled to the shift button 50 and electrically connected to the sub PCB 30 to be controlled to be turned on or off by the sub PCB 30. That is, the light 70 is turned on when the P-stage is selected and is turned off in shifting to other gear stages (R-, N-, and D-stages) from the P-stage.
[0057] The light 70 is formed in a annular shape and light is exposed over the shift button 50 when the light 70 is turned on, but the position and shape of the light 70 may be changed in various ways.
[0058] The shift button 50 is covered by a button cover 80 and the button cover 80 is separably combined with the shift dial 20. Accordingly, the shift button 50 is prevented from being separated upward by the button cover 80.
[0059] The shift dial 20 includes a dial knob 21 and a knob housing 22.
[0060] The knob housing 22 is fitted on the main housing shaft 1a of the main housing 1 to be rotatable in the first direction (clockwise) or the second direction (counterclockwise) and the permanent magnet 10 facing the main PCB 60 is combined with the knob housing 22.
[0061] The dial knob 21 is combined with the knob housing 22, so it is rotated with the knob housing 22.
[0062] The knob bracket 91 is disposed in the upwardly open space of the dial knob 21 and fixed to the main housing 1 by the fastener 90, the sub PCB 30, the elastic pad 40, the shift button 50, and the retainer 51 are disposed in the open space of the knob bracket 91, the light 70 and the button cover 80 are coupled to the top portion of the shift button 50, the knob housing 22 combined with the dial knob 21 is combined with the main housing 1 to be rotatable clockwise or counterclockwise, the permanent magnet 10 is combined with the knob housing 22, and the main PCB 60 is combined with the main housing 1 opposite to the permanent magnet 10.
[0063] The apparatus according to an exemplary embodiment of the present invention further includes a detent 100 or 200 combined with the main housing 1 and the shift dial 20 in contact with each other to click so that a driver can feel shifting when turning the shift dial 20.
[0064]
[0065] The detent 100 according to the various exemplary embodiments of the present invention includes: a detent boss 110 radially protruding from the shift dial 20; a detent pin 120 combined with the detent boss 110 to be configured to protrude in the radial direction of the shift dial 20; a detent block 140 fixed to the main housing 1, being in contact with the front end portion of the detent pin 120, and having a grooved portion 130 for shifting on the surface being in contact with the detent pin 120; and a spring 150 elastically supporting the detent pin 120 to keep the front end portion of the detent pin 120 in contact with the grooved portion 130.
[0066] The detent boss 110 radially protrudes from the knob housing 22 of the shift dial 20, one or two detent bosses may be provided, and when two detent bosses are provided, they are disposed with an interval of 180 degrees.
[0067] The grooved portion 130 formed at the detent block 140 has ridges and grooves continuously formed. A left groove 132 and a right groove 133 having the same depth are formed at the left and right sides of a middle ridge 131 at the center and are connected to a left ridge 136 and a right ridge 137 through a left slope 134 and a right slope 135, respectively. The peak T1 of the middle ridge 131 is positioned between the left slope 134 and the right slope 135.
[0068] Accordingly, the detent 100 according to the various exemplary embodiments has an R-stage point M1 on the left slope 134, a D-stage point M2 on the right slope 135, and an Nr-stage point M3 and an Nd-stage point M4 at the left groove 132 and the right groove 133, respectively. The Nr-stage point M3 and Nd-stage point M4 are all null stages and N-stages.
[0069] The front end portion of the detent pin 120 is moved between the R-stage point M1 and the D-stage point M2 (within an angle A1) by a rotation of the shift dial 20, and two null-stage points M3 and M4 exist between the R-stage point m1 and the D-stage point m2.
[0070] The detent 100 according to the various exemplary embodiments of the present invention has the shifting pattern shown in
[0071] In Case 1 to Case 3, the currently selected stage is the R-stage. In the present state, when the detent pin 120 is moved from the Nr-stage point M3 to the Nd-stage point M4 by a rotation of the shift dial 20, the main PCB 60 outputs an N-stage signal as a final gear stage signal. When the detent pin 120 is moved from the Nr-stage point M3 to the Nd-stage point M4 and is further moved to the Nr-stage point M3, the main PCB 60 outputs an R-stage signal as the final gear stage signal. When the detent pin 120 is moved from the Nr-stage point M3 to the R-stage point M1 or moved back to the Nr-stage point M3 over the R-stage point M1, the main PCB 60 outputs the R-stage signal as the final gear stage signal.
[0072] In Case 4 to Case 8, the currently selected gear stage is the N-stage. In the present state, when the detent pin 120 is moved from the Nd-stage point M4 to the Nr-stage point M3, the main PCB 60 outputs the R-stage signal as the final gear stage signal, when the detent pin 120 is moved from the Nr-stage point M3 to the Nd-stage point M4, the main PCB 60 outputs a D-stage signal as the final gear stage signal, when the detent pin 120 is moved from the Nr-stage point M3 to the R-stage point M1, the main PCB 60 outputs the R-stage signal as the final gear stage signal, when the detent pin 120 is moved from the Nd-stage point M4 to the D-stage point M2, the main PCB 60 outputs the D-stage signal as the final gear stage signal, and when the detent pin 120 is not moved and the shift button 50 is pressed, the main PCB 60 outputs a P-stage signal as the final gear stage signal.
[0073] In Case 9 to Case 11, the currently selected gear stage is the D-stage. In the present state, when the detent pin 120 is moved from the Nd-stage point M4 to the Nr-stage point M3, the main PCB 60 outputs the N-stage signal as the final gear stage signal. When the detent pin 120 is moved from the Nd-stage point M4 to the Nr-stage point M3 and then moved to the Nd-stage point M4, the main PCB 60 outputs the D-stage signal as the final gear stage signal. When the detent pin 120 is moved from the Nd-stage point M4 to the D-stage point M2 or is moved back to the Nd-stage point M4 over the D-stage point M2, the main PCB 60 outputs the D-stage signal as the final gear stage signal.
[0074] In Case 12 to Case 13, the currently selected gear stage is the P-stage. In the present state, when the detent pin 120 is moved from the Nr-stage point m3 to the Nd-stage point M4, the main PCB 60 outputs the D-stage signal as the final gear stage signal, and when the detent pin 120 is moved from the Nd-stage point M4 to the Nr-stage point M3, the main PCB 60 outputs the R-stage signal as the final gear stage signal.
[0075] Case 3 is a situation in which the detent pin 120 is self-returned to the Nr-stage point M3 over the R-stage point M1 by the left slope 134 and the return force of the spring 150 (see the arrow T1 in
[0076] Accordingly, when the shift dial 20 is turned, the detent pin 120 self-returns to the Nr-stage point M3 over the R-stage point M1, self-returns to the Nd-stage point M4 over the D-stage point M2, or moves between the Nr-stage point M3 and the Nd-stage point M4, whereby clicking is generated. Accordingly, according to an exemplary embodiment of the present invention, a driver can easily feel shifting when shifting by turning the shift dial 20.
[0077]
[0078] The detent 200 according to the various exemplary embodiments of the present invention includes: a detent boss 210 disposed on the main housing 1 and protruding toward the shift dial 20; a detent pin 220 combined with the detent boss 120 to be configured to protrude toward the shift dial 20; a gear plate 230 coupled to the bottom portion of the shift dial 20 to rotate with the shift dial 20 and having teeth 231 formed on the external edge portion in contact with the front end portion of the detent pin 220; and a spring 240 elastically supporting the detent pin 220 to keep the front end portion of the detent pin 220 in contact with the teeth 231.
[0079] The detent 200 according to the various exemplary embodiments of the present invention has the shifting pattern shown in
[0080] In Case 21 to Case 23, the currently selected gear stage is the R-stage. In the present state, when the dial 20 is turned one click clockwise (in the first direction), the main PCB 60 outputs an N-stage signal as the final gear stage signal, when the shift dial 20 is turned two or more clicks clockwise (in the first direction), the main PCB 60 outputs the D-stage signal as the final gear stage signal, and when the shift dial 20 is turned one or more clicks counterclockwise (in the second direction), the main PCB 60 outputs the R-stage signal as the final gear stage signal.
[0081] In Case 24 to Case 26, the currently selected gear stage is the N-stage. In the present state, when the shift dial 20 is turned one or more clicks clockwise, the main PCB 60 outputs the D-stage signal as the final gear stage signal, when the shift dial 20 is turned one or more clicks counterclockwise, the main PCB 60 outputs the R-stage signal as the final gear stage signal, and when the shift dial 20 is not turned and the shift button 50 is pressed, the main PCB 60 outputs the P-stage signal as the final gear stage signal.
[0082] In Case 27 to Case 29, the currently selected gear stage is the D-stage. In the present state, when the shift dial 20 is turned one click counterclockwise, the main PCB 60 outputs the N-stage signal as the final gear stage signal, when the shift dial 20 is turned two or more clicks counterclockwise, the main PCB 60 outputs the R-stage signal as the final gear stage signal, and when the shift dial 20 is turned one or more clicks clockwise, the main PCB 60 outputs the D-stage signal as the final gear stage signal.
[0083] In Case 30 to Case 33, the currently selected gear stage is the P-stage. In the present state, when the dial 20 is turned one click clockwise or counterclockwise, the main PCB 60 outputs the N-stage signal as the final gear stage signal, when the shift dial 20 is turned two or more clicks clockwise, the main PCB 60 outputs the D-stage signal as the final gear stage signal, and when the shift dial 20 is turned two or more clicks counterclockwise, the main PCB 60 outputs the R-stage signal as the final gear stage signal.
[0084] When the detent 200 according to the various exemplary embodiments of the present invention is provided, the shift dial 20 is infinitely turned clockwise or counterclockwise (see the arrow T11 in
[0085] According to the exemplary embodiment of the present invention described above, the R-stage, N-stage, and D-stage are selected by turning the shift dial 20 and the P-stage is selected by pressing the shift button 50. Furthermore, the R-stage is positioned at the counterclockwise end portion of the shift dial 20 and the D-stage is positioned at the clockwise end. Accordingly, it is possible to prevent mis-operation when shifting from the R-stage to the D-stage or from the D-stage to the R-stage, using the shift dial 20, and It is possible to improve the convenience of shifting.
[0086] Furthermore, since the shift button 50 for selecting the P-stage is separate from the shift dial 20 for selecting other gear stages in an exemplary embodiment of the present invention, it is possible to more safely engage the P-stage.
[0087] For convenience in explanation and accurate definition in the appended claims, the terms upper, lower, inner, outer, up, down, upper, lower, upwards, downwards, front, rear, back, inside, outside, inwardly, outwardly, internal, external, inner, outer, forwards, and backwards are used to describe features of the exemplary embodiments with reference to the positions of such features as displayed in the figures.
[0088] The foregoing descriptions of specific exemplary embodiments of the present invention have been presented for purposes of illustration and description. They are not intended to be exhaustive or to limit the invention to the precise forms disclosed, and obviously many modifications and variations are possible in light of the above teachings. The exemplary embodiments were chosen and described to explain certain principles of the invention and their practical application, to enable others skilled in the art to make and utilize various exemplary embodiments of the present invention, as well as various alternatives and modifications thereof. It is intended that the scope of the invention be defined by the Claims appended hereto and their equivalents.