GROOVE FOLLOWER

20220381339 · 2022-12-01

    Inventors

    Cpc classification

    International classification

    Abstract

    A groove follower is provided for cooperating with a shift groove of a shift drum of a multi-step sequential transmission for a motor vehicle, comprising a groove follower body, comprising at least one contact surface for contacting a lateral face of the shift groove of the shift drum, wherein at least part of the at least one contact surface is formed as part of an outer surface of a three-dimensional helix with a helix diameter and a helix pitch.

    Claims

    1. A groove follower for cooperating with a shift groove of a shift drum of a multi-step sequential transmission for a motor vehicle, the groove follower comprising: a groove follower body, comprising at least one contact surface for contacting a lateral face of the shift groove of the shift drum, wherein at least part of the at least one contact surface is formed as part of an outer surface of a three-dimensional helix with a helix diameter and a helix pitch.

    2. The groove follower according to claim 1, wherein the groove follower body comprises four contact surfaces for contacting the shift groove of the shift drum, and wherein at least part of each of the four contact surfaces is formed as part of the outer surface of the three-dimensional helix.

    3. The groove follower according to claim 2, wherein two contact surfaces are generally positioned on a first side of the groove follower body, and two contact surfaces are generally positioned on a second side of the groove follower body.

    4. The groove follower according to claim 2, wherein two adjacent contact surfaces are joined by one or more curved surfaces.

    5. The groove follower according to claim 4, wherein the two adjacent contact surfaces comprise a first contact surface and a second contact surface that are joined by two or more curved surfaces.

    6. The groove follower according to claim 3, wherein a first contact surface positioned on the first side of the groove follower body is joined by a curved surface with a fourth contact surface positioned on the second side of the groove follower body.

    7. A shift drum for a multi-step sequential transmission for a motor vehicle, the shift drum comprising: a shift drum body with an outer surface; a shift groove in the outer surface of the shift drum body, wherein at least part of the shift groove is generally shaped as an outer surface of a three-dimensional helix with a helix diameter and a helix pitch.

    8. The shift drum according to claim 7, wherein the shift groove is generally defined by two lateral faces which are joined by a bottom face, and wherein the two lateral faces generally face each other.

    9. The shift drum according to claim 8, wherein at least one of the two lateral faces is joined with the outer surface by a curved surface.

    10. The shift drum according to claim 7, wherein at least part of at least one of the two lateral faces is crowned.

    11. A multi-step sequential transmission for a motor vehicle, the transmission comprising: a groove follower according to claim 1; a shift drum comprising a shift drum body with an outer surface and a shift groove in the outer surface of the shift drum body, at least part of the shift groove being generally shaped as an outer surface of a three-dimensional helix with a helix diameter and a helix pitch; wherein the groove follower is positioned at least partially in the shift groove of the shift drum.

    12. The transmission according to claim 11, wherein part of the outer surface of the groove follower has a shape corresponding to a shape of part of the shift groove of the shift drum.

    13. The transmission according to claim 11, wherein the helix diameter and the helix pitch of the three-dimensional helix after which part of the outer surface of the groove follower is generally formed correspond to the helix diameter and the helix pitch according to which part of the shift groove is generally shaped.

    14. A method of manufacturing the shift drum according to claim 7, the method comprising: providing the shift drum body; and using a milling machine with a rotating milling tool, milling at least one groove into the shift drum body to form the shift groove, wherein during at least part of the milling, the shift drum body is simultaneously rotated around a rotation axis and translated over said rotation axis relative to milling tool to form a shift slope.

    15. A method of manufacturing the groove follower according to claim 1, the method comprising: providing the groove follower body; and using a milling machine with a rotating milling tool, milling the at least one contact surface on the groove follower body, wherein during at least part of the milling, the groove follower body is simultaneously rotated around a rotation axis and translated over said rotation axis relative to milling tool to form the at least one contact surface.

    Description

    BRIEF DESCRIPTION OF THE FIGURES

    [0029] FIG. 1A shows an overview of part of a multi-step sequential transmission for a motor vehicle;

    [0030] FIG. 1B shows a section view of FIG. 1A;

    [0031] FIGS. 2A-2D depict embodiments of groove followers, respectively in a front perspective view, a rear perspective view, a top view, and a slightly tilted top view;

    [0032] FIGS. 3A and 3B show another example of a groove follower

    [0033] FIGS. 4A and 4B respectively depict an embodiment of the groove follower and an imaginary three-dimensional helix;

    [0034] FIG. 5A depicts an example of a shift drum in a side view; and

    [0035] FIG. 5B depicts detail A of FIG. 5A.

    DETAILED DESCRIPTION OF THE FIGURES

    [0036] FIG. 1A shows in a perspective view an overview of part of a multi-step sequential transmission 100 for a motor vehicle, comprising a shift drum 102 and a groove follower 200 positioned in a groove 104 of the shift drum 102. The shift drum 102 can be rotated around an axis of rotation 106.

    [0037] When the shift drum 102 is rotated around the axis of rotation 106, the shift drum 102 is moved relative to the groove follower 200. By virtue of the shape of the groove 104, the groove follower 200 may be moved axially when the shift drum 102 is rotated. An axial movement of the groove follower 200 may be approximately parallel to the axis of rotation 106. During axial movement of the groove follower 200, a contact surface of the groove follower 200 engages a shift slope 108, in particular a lateral face 109 of the shift slope 108. In particular, the groove follower 200 slides against the lateral face 109 of the shift slope 108.

    [0038] A shift drum may comprise any number of grooves, for example four as shown in FIG. 1A. A groove may comprise any number of stepped grooved sections, such as multiple stepped grooved sections, with multiple lateral faces against which a groove follower may slide.

    [0039] FIG. 1B shows the shift drum 102 and groove follower 200 of FIG. 1A in a section view in a plane perpendicular to the axis of rotation 106. As can be seen in FIG. 1B, the groove follower 200 is at least partially positioned inside the groove 104. A gap 105 may be present between the groove follower 200 and a bottom face 107 of the shift drum 102.

    [0040] FIGS. 2A-2D depict embodiments of a groove follower 200, respectively in a front perspective view, a rear perspective view, a top view, and a slightly tilted top view. The groove follower 200 comprises the groove follower body 202, which comprises four contact surfaces: a first contact surface 211, a second contact surface 212, a third contact surface 213, and a fourth contact surface 214.

    [0041] The first contact surface 211 and the second contact surface 212 are generally positioned on a first side 218 of the groove follower body, and the third contact surface 213 and the fourth contact surface 214 are generally positioned on a second side 220 of the groove follower body 202.

    [0042] As for example shown in FIG. 2A, two adjacent contact surfaces may be joined by one or more curved surfaces. In particular, the first contact surface 211 is adjacent to the second contact surface 212, and the first and second contact surface are joined by two curved surfaces 222′ and 222″. An edge between the two curved surfaces 222′ and 222″ may be rounded off.

    [0043] As for example shown in FIG. 2C, the first contact surface 211 and the fourth contact surface 214 are joined by a curved surface 224 or radius. Similarly, the second contact surface 212 and the third contact surface 213 are joined by a curved surface or radius.

    [0044] FIGS. 3A and 3B show another example of a groove follower 200, respectively in a side view showing the first contact surface 211 and the second contact surface 212, and a front view showing the first contact surface 211 and the fourth contact surface 214.

    [0045] As can be seen in FIG. 3A, as an option applicable to any embodiment of the groove follower, one or more or all of the curved surfaces joining contact surfaces may be tapered. For example, FIG. 3A shows tapered curved surfaces 222′, 222″, 222′″ joining the first contact surface 211 and the second contact surface 212. The tapered shape of a curved surface may be the result of at least part of at least one contact surface being formed as part of an outer surface of a three-dimensional helix.

    [0046] As shown in FIG. 3B, as an option applicable to any embodiment of the groove follower, a top section 226 of the groove follower body 202 may be joined with one or more of the contact surfaces via a curved top section 226.

    [0047] In general, curved sections may be used to allow or improve movement of the groove follower body through a groove of a shift drum, and/or to prevent or reduce line contacts or point contacts between the shift drum and the groove follower.

    [0048] Through the groove follower body 202, two optional through-holes 216 are provided, which may be approximately parallel to one or more of the contact surfaces. The through-holes 216 may be used for connecting one or more connection rods to the groove follower 200. A through-hole may for example have a circular, approximately oval or stadium shape. A stadium or racetrack shape will be understood as being constructed of a rectangle with semicircles at a pair of opposite sides.

    [0049] FIGS. 4A and 4B respectively depict an embodiment of the groove follower 200 and an imaginary three-dimensional helix 300 to further visualise the shape of at least part of at least one contact surface of the groove follower. The three-dimensional helix is formed by sweeping a rectangle 302 around a helix curve 304. In FIG. 3A, generally the diameter D and the pitch P of the helix curve are indicated.

    [0050] The three-dimensional helix 300 depicted in FIGS. 3A and 3B is used to define the shape of one of the four contact surfaces. Three other three-dimensional helixes may be used to define the shape of at least part of the other three contact surfaces. For clarity of FIGS. 3A and 3B, these other three three-dimensional helixes have been omitted.

    [0051] FIG. 5A depicts an example of a shift drum 102 in a side view. FIG. 5B shows detail A as indicated in FIG. 5A. As shown for example in FIG. 5A, groove 104″ is formed by two lateral faces 109′ and 109″, which face each other and are joined by bottom face 107.

    [0052] The detailed side view of FIG. 5B shows in more detail how a lateral face 109 may be adjoined by the bottom face 107. As an option, a curved surface 110 may be present joining the lateral face 109 and the bottom face 107.

    [0053] As a further option, at least part of a lateral face 109 may be curved or crowned. A crowned surface or crowned face has a slight curvature, in particular a slight convex curvature.

    [0054] A top section 112 of the lateral face 109 may be joined with an outer surface 114 of the shift drum body 103 with a curved, rounded, or bevelled edge. As such, in the side view of FIG. 5B, at least part of the groove 104′ is tapered or slightly tapered away from the outer surface 114.

    [0055] In the description above, it will be understood that when an element is referred to as being connect to another element, the element is either directly connected to the other element, or intervening elements may also be present. Also, it will be understood that the values given in the description above, are given by way of example and that other values may be possible and/or may be strived for.

    [0056] It is to be noted that the figures are only schematic representations of embodiments that are given by way of non-limiting examples. For the purpose of clarity and a concise description, features are described herein as part of the same or separate embodiments, however, it will be appreciated that the scope of the disclosure may include embodiments having combinations of all or some of the features described.

    [0057] The word ‘comprising’ does not exclude the presence of other features or steps. Furthermore, the words ‘a’ and ‘an’ shall not be construed as limited to ‘only one’, but instead are used to mean ‘at least one’, and do not exclude a plurality.