Tools and method for installation of a transmission shift cable bushing
10619723 ยท 2020-04-14
Inventors
Cpc classification
F16C1/145
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H59/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H59/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T29/49698
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T29/53913
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16H2057/0062
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C43/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H59/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C1/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Installation of a bushing into the shift cable end of an automatic transmission, without replacing the entire shift cable end, is accomplished via methods and specialized tools that do not divert the force applied by compressive tools away from the non-load-bearing surfaces of the bushing and shift cable end, and maintain the axial alignment of the bushing with the shift cable end during installation, thus preventing deformation of the shift cable end and bushing during installation, and ensuring the proper coupling of the shift cable end and shift lever. In particular embodiments, a shift cable end protective member is secured to the shift cable end, a bushing installation member is inserted into the bushing, through the shift cable end and into the protective member, and a compressive force is applied simultaneously to the protective member and installation member, thus pressing the bushing into place within the shift cable end. The protective member and installation member work in tandem to divert the compressive force away from the shift cable end, average the compressive force across the bushing, and maintain the alignment of the bushing with the shift cable end as the bushing is pressed into the shift cable end.
Claims
1. An apparatus for installation of a bushing into a control cable end, said control cable end having a coupling aperture extending through the control cable end, a mounting aperture carried in the coupling aperture, a semi-spherical member extending axially from the rear surface of the control cable end, said semi-spherical member having a concentric aperture, a cylindrical member extending from the circumferential surface of the control cable end, said bushing having a sleeve carrying a leading and trailing shoulder and having an aperture running the length of the sleeve, said aperture carrying an inner annular ridge, comprising: a control cable end protective member having a first side and second side; a peripheral surface extending from the first side of the protective member, said peripheral surface carrying an opening; a cavity in the first side of the protective member; a sleeve centered in the cavity; a bushing seating member having a first side and a second side; a first alignment member extending axially from the bushing seating member; a second alignment member extending axially from the first alignment member; a third alignment member extending axially from the second alignment member.
2. An apparatus for installation of a bushing into a control cable end, said control cable end having a coupling aperture extending through the control cable end, a mounting aperture carried in the coupling aperture, a semi-spherical member extending axially from the rear surface of the control cable end, said semi-spherical member having a concentric aperture, a cylindrical member extending from the circumferential surface of the control cable end, said bushing having a sleeve carrying a leading and trailing shoulder and having an aperture running the length of the sleeve, said aperture carrying an inner annular ridge, comprising: a control cable end protective member having a first side and second side; a peripheral surface extending from the first side of the protective member, said peripheral surface carrying an opening; an annular cavity in the first side of the seating member; a cylindrical sleeve centered in the annular cavity; a bushing seating member having a first side and a second side; a first cylindrical member extending axially from the bushing seating member; a second cylindrical member extending axially from the first cylindrical member; a third cylindrical member extending axially from the second cylindrical member.
3. An apparatus as in claim 2 wherein the peripheral annular surface is of a diameter greater than the outer diameter of the control cable end.
4. An apparatus as in claim 2 wherein the semi-circular opening is of a diameter marginally greater than the diameter of the cylindrical member extending from the circumferential surface of the control cable end.
5. An apparatus as in claim 2 wherein the annular cavity is of a diameter greater than the diameter of the semi-spherical member and a height greater than the distance between the rear surface of the shift cable end and the concentric aperture atop the semi-spherical member.
6. An apparatus as in claim 5 wherein the cylindrical sleeve centered in the annular cavity has an inner diameter slightly greater than the diameter of the second cylindrical member extending from the bushing seating member.
7. An apparatus as in claim 6 wherein the cylindrical sleeve carries a conical guiding surface that extends radially outward from the inner diameter to the outer diameter of the cylindrical sleeve.
8. An apparatus as in claim 2 wherein the first cylindrical member extending from the bushing seating member is of a diameter less than the diameter of the aperture running through the sleeve of the bushing, and of a length less than the distance from between the trailing shoulder and inner annular ridge of the bushing.
9. An apparatus as in claim 8 wherein the second cylindrical member extending from the first cylindrical member is of a diameter less than the diameter of the inner annular ridge of the bushing, and of a length less than the distance from the inner annular ridge to the outer surface of the leading shoulder of the bushing.
10. An apparatus as in claim 9 wherein the third cylindrical member extending from the second cylindrical member is of a diameter less than the diameter of the cylindrical sleeve in the annular cavity.
Description
DESCRIPTION OF THE DRAWINGS
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(I) DETAILED DESCRIPTION
(9) The degradation of a factory-installed bushing or the equivalent in the shift cable end of various motor vehicles requires the replacement of the entire shift cable, wherein the new shift cable is pre-fitted with a factory bushing or the equivalent. The replacement of the entire shift cable as a means of installing a shift cable bushing is the generally accepted method because there is no known method for the installation of a factory bushing or the equivalent that ensures the proper coupling of the shift cable and shift lever, maintains the alignment of the bushing with the shift cable end during installation, and prevents the shift cable end and bushing from being damaged during installation.
(10) As noted above, it remained for the present inventor to recognize that devising a method and tools for the installation of a bushing into a transmission shift cable end would provide a number of benefits, including lower supply and labor costs. The present inventor further recognized that the proper installation of a shift cable end bushing in various motor vehicles could be achieved by developing a method and specialized tools that divert the force applied from compression tools away from the non-load-bearing members of the bushing and shift cable end, while simultaneously ensuring the axial alignment of the bushing with the shift cable end and the proper coupling of the shift cable and shift lever or gear selector.
(11) Referring to
(12) In this example (
(13) In accordance with the present invention,
(14) An example of a shift cable end protective tool 41 is illustrated in
(15) This particular embodiment of a shift cable end protective tool 41 further includes a means for diverting the force applied by a compression tool, such as pliers, away from the semi-spherical member 21 of the shift cable end 11, and to the rear surface 22 of the shift cable end 11, said force-diverting means comprising an annular cavity 55 with a diameter slightly greater than the diameter of the semi-spherical member 21 and a depth slightly greater than the distance between the rear surface 22 of the shift cable end 11 and the concentric aperture 23 of the semi-spherical member 21, whereby the shift cable end protective tool 41 does not make contact with the semi-spherical member 21 during installation of the bushing 31. A compressive force applied to the shift cable end protective tool 41 is thereby diverted to the rear surface 22 of the shift cable end 11.
(16) This example of a shift cable end protective tool further includes an alignment means to ensure the alignment of the bushing 31 with the shift cable end 11 during installation, said alignment means comprising an alignment sleeve 56 centered longitudinally within the annular cavity 55, wherein the bushing installation tool 42 is inserted during installation, thereby aligning the bushing 31 within the shift cable end 11. The alignment sleeve 56 includes a conical guiding surface 57 that guides the bushing installation tool 42 into the alignment sleeve 56 during installation.
(17) An exemplary illustration of a force-averaging bushing installation tool is provided in
(18) The second member is an inner alignment member 63 that maintains the alignment of the inner annular member 35 and leading shoulder 34 of the bushing 31 with the bushing installation tool 42 during installation. The inner alignment member 63 is of a diameter less than the diameter of the inner annular member 35 and extends from the leading surface 64 of the outer alignment member 62 to the leading edge of the inner annular member 35, thereby aligning the bushing 31 with the bushing installation tool 42 during installation. The third member is a bushing installation tool alignment member 65 that maintains the axial alignment of the bushing installation tool 42 with the shift cable end protective tool 41 and shift cable end 11 during installation. The bushing installation tool alignment member 65 is inserted into the alignment sleeve 56 of the shift cable end protective tool 41, thereby maintaining the alignment of the bushing installation tool 42, and thus the bushing 31, with the shift cable end protective tool 41 and shift cable end 11 as a compressive force is applied to press the leading shoulder 34 of the bushing 31 through the mounting aperture 14 and into the semi-spherical member 21.
(19) A system comprising both a shift cable end protective tool and a bushing installation tool may be made of any metal, polymer, copolymer or other material capable of being molded for the particular application and capable of withstanding the physical force applied by a compression tool, such as pliers. The shift cable end protective tool 41 and bushing installation tool 42 of the illustrative embodiment are made of acrylonitrile-butadiene-styrene.