CA1127099A - Drive engaging apparatus - Google Patents

Drive engaging apparatus

Info

Publication number
CA1127099A
CA1127099A CA386,754A CA386754A CA1127099A CA 1127099 A CA1127099 A CA 1127099A CA 386754 A CA386754 A CA 386754A CA 1127099 A CA1127099 A CA 1127099A
Authority
CA
Canada
Prior art keywords
clutch
output shaft
drive
clutch member
control member
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired
Application number
CA386,754A
Other languages
French (fr)
Inventor
Kass W. Sawyer
Elmer E. Croisant
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Brunswick Corp
Original Assignee
Brunswick Corp
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from US05/832,196 external-priority patent/US4223773A/en
Application filed by Brunswick Corp filed Critical Brunswick Corp
Priority to CA386,754A priority Critical patent/CA1127099A/en
Application granted granted Critical
Publication of CA1127099A publication Critical patent/CA1127099A/en
Expired legal-status Critical Current

Links

Landscapes

  • Mechanical Operated Clutches (AREA)

Abstract

Abstract of the Disclosure A clutch apparatus for a marine drive lower gear case includes a propeller shaft rotatably mounted in a gear case housing. A drive gear for both forward and reverse is positioned in the housing coaxial with the propeller shaft and a clutch member is rotatably fixed on the propeller shaft and movable axially into drive engagement with the drive gear.
Clutch engaging elements are provided on opposed portions of the drive gears and the clutch member. Shift means utilizing a positive acting cam means positively move the clutch member into and out of engagement from the drive gears. The shift means also include a releasable latch means to positively maintain the shift means in the engaged position and a preloading means between the shift means and the clutch member to snap the clutch member into engagement.

Description

- ~Z7Q~9 Background of the Invention This application is a division of Canadian patent application Serial No. 310,257 filed August Z9, 1978.
This invention relates to a clutch apparatus and particularly concerns a positively shifted clutch apparatus for marine propulsion engines.
Clutch mechanisms have been employed for selectivel~
connecting a drive gear and a driven gear to establish one of two opposite rotating outputs. In marine outboard engines, the lower gear case includes a propeller shaft. A pair of axially spaced driven bevel gears are rotatably mounted on the shaft and coupled to a drive bevel gear connected by a drive shaft to the internal combustion engine. The driven bevel gears are oppositely rotated. A clutch mechanism which includes a movable clutch collar is mounted on and coupled to the shaft by a pin and slot connection between the driven bevel gears. The clutch collar is movable between a neutral position, a forward position and a reverse position. The opposite faces of the clutch collar and the opposed faces of the bevel gears are formed with complementing positive engaging clutch teeth or jaws for positive coupling of the driven gears to the shaft. The clutch collar is generally spring-loaded to the forward drive posi-tion.
It is connected through a coaxial shift rod to a rotating cam mounted in the forward end of the gear case and actuated by a vertical shift shaft to position the clutch collar against the spring loading of the collar. The spring thus forms the actuating force on the collar when shifting from reverse -to neutral to forward shift positions. Generally, the clutch jaws of the clutch collar and reverse driven gear are formed with a positive angle drive face to create a disengaging force component of the driving force transmitted through the clutch jaws. The positive angle construction thus assist~ the spring 1~27~

in overcoming the friction at the driving jaw faces when shiftiny from reverse, and thereby permits shifting to neutral.
~lowever, the required posi~ive angle structure creates a relatively heavy loading of the cam and cam shift rod with a corresponding wear of the componen-ts. The worn components result in mislocation of -the clutch collar and prevent proper shifting into reverse. Fur-ther, the forward year an~ collar jaws are required to have a negative angle driving jaw face which assists the spring in holding the forward jaws engaged.
The heavy loading provided by the positive and negative jaw angles also require substantial shift opera-ting forces in shifting.
Summary of the Invention Broadly the present invention is directed to a clutch apparatus including a housing, an output shaft rotatably mounted in the housing, a drive member positioned in the housing coaxial with the output shaft, and a clutch member rotatably fixed on the output shaft and movably axially into drive engagement with the drive means. Shift means are provided for positively moving the clutch member on the output shaft between a first position with the clutch member disengaged from the drive means and a second position with the clutch member engaged with the drive means, the means for positively moving the clutch member including control means directly connected to the clutch member.
The invention to which the claims in this divisional application are directed pertains to such a clutch apparatus havin~ oppositely rotatable driven means, and a clutch member rotatably fixed to the output shaft and movable axially into engagement with the driven means to effect the ro-tation of the output shaft. Releasable means are provided between the output shaft and the clutch member and hold -the clutch member --2~

~2~9 disengaged from the driven means. The control means are positioned in the housing unit coaxial with the output shaft for moving the clutch means, wi-th resilient means provided between the clutch means and the control means. The shift me~ns are connected to the control means to stress the resilient means and overcome the force o~ the releasable means and to move the clutch member into engaged position with one of the driven means.

The positive positioning particularly in reverse gear provided by the invention eliminates the high compressive force of the prior spring ac-tuated cam follower. This reduces the shift forces and driving torque requirement as well as eliminating the need for positive Ipush out) clutch jaws. In addition the snapping into gear permits the operator to shift gears without any gear engagement noise.

Brief Descrlp_ion of the Drawlng_ Figure 1 is a fragmentary side view, partially in section, of a marine propulsion lower unit constructed in accordance with this invention;
Figure 2 is an enlarged vertical section through the gear case showm in Figure l;
Figure 3 is a pictorial exploded view of the clutch mechanism shown in Figures 1 - 2;
Figure 4 is a view similar to Figure 2 taken on a horizontal section and illustrating the forward drive pos:ition;
Figure 5 is a view similar to Figure 4 illustrating the reverse drive position;
Figure 6 is a plan view of the shift mechanism taken generally on line 6 - 6 of Figure 2;
Figure 7 is a transverse vertical section taken generally on line 7 - 7 of Figure 2, appearing with Figures 1 and 8; and ~2~7~9 Fiyure 8 is a txansverse vertical section taken yenerally on line 8 - 8 of Figure 2, appearing with Figures 1 and 7.
Descr_ ~t on of the Preferred Embodiment Referring to the drawings and particularly Figure 1, a fragmentary portion of an outbGard mOtQr is shown including a drive shaft housing 1 which supports a drive engine ~not shown) at its upper end. A lower unit 2, secured to the lower end of housing 1, includes a gear case 3 integrally formed as a torpedo-shaped section to a narrow strut 4 having a top planar mounting face. A propeller or output shaft 5 is rotatably mounted within the gear case 3 and protrudes from the rear end.
A propeller 6 is secured to the output shaft 5. The rear end of case 3 is truncated and propeller 6 includes hub 7 which extends the configuration of the case 3 to the end of the outputshaft 5.
The output shaft 5 and the propeller 6 are driven by a vertical drive shaft 8 connected at the upper end to the engine.
The drive shaft 8 is rotatably supported in the strut 4 with the lower end located immediately above the gear chamber 9 formed by gear case 3. A drive bevel gear 10 is secured to the lower splined end of drive shaft 8. Bevel gear 10 meshes with aligned forward and reverse driven bevel gears 11 and 12 which are rotatably mounted coaxially with shaft 5 by suitable ball bearing units 13 and 14 within the gear chamber 9. Driven gear 11 and 12 are drive members to output shaft 5. The bevel gears 11 and 12 are selectively coupled to output shaft 5 by a clutch member 15 which provides for rotation of propeller 6 in a forward or reverse direction.
Clutch engaging elements 16 and 17 formed with clutch teeth 18 and 19 are fitted within the driven bevel gears 11 and 12. A clutch member or collar 20 is slidably mounted on output shaft 5 by splined connection 20a. The end face of the clutch collar 20 is also formed with clutch teeth 21 and 22 which mate with the teeth 18 and 19 on the clutch engaginy elements 16 and 17 of the bevel gears 11 and 12.

1~7~9 The clutch collar 20 is axially movable to a neu-tral position midway between elements 16 and 17 which permits opera-tion of -the engine without rotatiny the propeller 6. The collar 20 is movable in opposite directions from the neutral position to selectively engage either the clutch teeth 18 and 21 to establish a forward drive rotation of outpu-t shaE-t 5 with propeller 6 or the clutch teeth 19 and 22 -to estahlish a reverse ; rotation -thereof.
The clutch collar 20 is axially positioned by a rotating shift shaft 23 rotatably mounted within the forward portion of the lower unit 2 and the drive shaft housing 1. The shift shaft 23 is rotated by a suitable lever means (no-t shown) such as a manuall~v operated lever coupled with a remote cable shift control.
The present invention is particularly directed to shif-t means for positively moving the clutch collar 20. The shift means includes control means which include a con-trol rod or member 26, engaging cam means to positively move the clutch collar 20 and releasable latch means to positively maintain the shift means engaged.
Referring to ~igures 2 through 5 the output shaft 5 is formed with an axial bore 25 extending inwardly from the innermost end through the splined connection. The control member 26 is slidably mounted within the bore 2S. The shift means also includes preloading means for snapping the clu-tch collar 20 into engagement with the drive members or bevel gears 11 and 12. The preloading means include resilient means connecting between the clutch collar 20 and the shift means and releasable connecting means engaging between the clutch collar 3~ 20 and the outpu-t shaft 5. The resilient means and -the releasable connec-ting means cooperate to provide a snap actlon engagement of the clutch collar 20 and the drive member or bevel gear 11 or 12 and the resilient means separately provides a slip 7~
, ., between the drive member and the clutch member ~hen the output shaft 5 rotates at a speed greater than the speed of the drive member.

The resilient means inclucle a cross pin member 30, a radial slot 28 through -the control member and recess means or axial bore 33 extended to the opposite sides of the radial slot.
28 and spring means or coil springs 34 and 35 positioned within the recess means to the opposite sides of the cross pin ~ember 30 and resiliently holding the cross pin member 30 substantiall~
centered within said radial slot 28. The output shaft 5 also includes an axial slot 29 and the clutch collar 20 has a~ial holes 31 and 32 aligned with the slots 28 and 29. The cross pin member 30 extends through the slots 28 and 23 and i.s secured in the holes 31 and 32 in the clutch collar 20. The outer end of the bore 33 is closed by pin 36 and the coil springs 34 and 35 are stressed to urge and hold -the pin 30 centrally of -the slo-t 28, and thereby locate the collar 20 substantially centered in neutral drive position upon the splined connection 20a.

The releasable connecting means include at least one detent notch in the output shaft ~, at least one detent pin in a radi.al hole in the clutch collar 20 and spring means forcing the detent pin into engagement with the detent notch. In the preferred embodiment there are two detent notches 39 and 40 in the output shaft 5 and two detent pins 41 and 42 each having a ball end positioned in openings 44 in the clutch collar 20. The spring means includes a wrapped coil spring 37 surrounding the clutch collar within a center recess or groove 38 and having at-least one.end bent in a radial direction with the clutch collar.
The bent end engages the detent pin to force the de-teh-t pin into the notch. In the preferred embodiment illustrated in Figures 2 and 3 the spring means has two bent ends 43 -to force each of the two deten-t pins 41 and 42 into matiny notches.
The detent pins 41 and 42 releasably hold the collar 20 in the neutral position until the force on the coil springs 34 and 35 is greater than the holding Eorce o.~ the ~etent pins 41 and 42 in -the de-tent notches 39 and 40. I'he initial move~en~ of the control member 26 from the neutral position does not move -the cross pin 30 but partially compresses the spring 34 or 35 whichever is opposing such movement. For example, forcing control member 26 to the left in Figure 2 results in the spring 35 being compressed, until i-ts force is greater -than the holding force from the detents. The detents 41 and 42 then release from the detent notches 39 and 40 and the spring 35 rapidly expands snapping the clutch collar 20 from neutral into engagement with the clutch teeth 18 of the forward driven gear 11 as shown in Figure 4. This avoids the usual raking of the teeth and results in a smooth silent shifting, The opposite movement of the control member 26 to -the right as viewed in Figure 2, similarly compresses spring 34 -to provide a snapping of the clutch collar 20 into engagement with the reverse drive gear 12.
The control member 26 and collar 20 are positively held in the neutral position by the detent notches 39 and 40 and the detent pins 41 and 42 and in the drive positions by a releasable latch means. The releasable latch means i.ncludes a latchi.ng surface on the cam and a mating latching surface on the cam follower.
: The shift means also includes engaging cam means to positively move the clutch collar 20. The engaging cam means include a cam 46 positioned in the gear case 3 and a cam follower 45 rotatably connected to the shift means and positioned in the housing to engage the cam 46 to positively position the control member 26 for moving the clutch collar.

%~9 The rotation of the cam 46 reciprocates the cam follower 45 which in turn reciprocates the control member 26. ~t the end of its travel in both rotational directions the cam 46 and cam follower 45 provide latching by the releasable latch means as presently described.
The cam engaging means 27 includes the cam follower 4S
connected to the control member 26 and the cam 46 coupled to and rota-ted by shaft 23. The rOtatiQn of cam 46 reciprocates the cam follower 45 and control member 26 and at the end of its travel in both directions positively latches the clutch collar 20.
In the illustrated embodiment, the control member 26 is connected by a linkage or rotary coupling 24 to the cam follower 45. The rotary coupling 24 includes a necked and button "T"
head 47 on the control member which is rotatably journaled in a stepped cylindrical recess 48 in the end of the cam follower 45.
The recess 48 is provided with an entrance slot 50 permitting assembly of the "T" head to the cam follower 45. This permits a reciprocating movement-of the cam follower 45 and a rotational movement of the control member 26.
The cam follower 45 includes a body portion 51 shown as a solid cylindrical member having cam recess 52 formed in the upper surface with a generally U-shaped cam surface or wall 53.
Cam 46 is coupled to the shift shaft 23 by a splined connec-tion 54, with the shi~t shaft 23 extending through a splined hole in the cam 46 and ending in a hole in gear case 3 which forms a bearing support for the end of the shift shaft 23. Cam 46 has a cam surface 57 located in sliding engagement with the cam ; surface 53 in cam follower 45. The cam 46 and cam follower 45 are formed with bisymmetrical mating cam ramps. Therefore, opposite rotation of the cam 46 directly and positively control the linear movement of the cam follower 45 and control member ~6.

1~7~9 More particularly as shown in Figures 3, 4 and 5 the cam ~6 is generally a semi-circular member having the splined connection 5~ with the shi.ft shaft 23 adjacent the center of the semi-circular periphery. The cam sur~ace 57 of the cam 46 similarly curves rapidly inwardly in -the opposite direction from the center and abou-t the splined connection 5~ to similar curved forward and reverse operating cam suraces 5~
and 59. The cam surfaces 58 and 59 merge into latching means or forward and reverse latch cam ramps 60 and 61 at each of the opposite ends of cam ~6.
The cam recess 52 in cam follower 45 and particularly U shaped cam wall 53 is similarly formed wi.th a central, generally flat portion 62 connected to s.imilar curved end cam surfaces 63 and 64 of outwardly diverging wall construction and each including transverse flat walls 65 and 66. In the neutral position the cam 46 is symmetrically located within the cam recess 53 with the opposite ends of the cam ramps 60 and 61 abutting the cam surfaces 63 and 64 at the connection to the latch walls 65 and 66.
Rotation of the cam 46, in the clockwise directi.on as shown in Figure 4, causes the shift cam surface 59, to move outwardly of the neutral position into the adjacent offset portion of the cam recess 52. The opposite shift cam surface 58 rotates and moves inwardly of the neutral position of the curved end cam surface 63, exerting a force thereon which forces the cam follower 45 to move to the left as the shift cam surface 59 moves outwardly. The full shi~t rotation of the shift shaft 23 and the attached cam 46 moves the latch or cam ramp 60 into the curved end cam surface or latch portion 63 of the recess 52. The control member 26 is thereby pulled to the left, loads spring 35 and by the time of latchi.ng to the shift position moves the pin 30 to 7~9 the left in the radial slot 29 in the output shaft 5. The clutch teeth 21 of the clutch collar 20 snap into engagement with the clutch teeth 18 of the forward rotating bevel gear 11 because the coil spring 35 is compressed ancl as the detent forcc is overcome the clutch collar 20 is released from thc neutral position as previously described.
The reverse rotation of the cam 46 causes the la-tch cam ramp 60 to move out of engagement with cam follower surface 63 while the opposite shift cam surface 59 engages the curved end cam surface of cam follower 45 to positively unlatch the la-tched cam follower ~5. The counterclockwise rotation of the cam 46 causes the opposite shift cam surface 59 to engage -the curved end cam surface 64 and outer cam ramp surface of recess 52 to positively reposition the cam follower 45 at the neutral position. Referring to Figure 5, if the counterclockwise rotation is continued to a complete reverse position, the opposite shift cam surface 59 engages the opposite curved end cam surface 64 and similarly reversely positions the cam follower 45 and control member 26 to engage the opposite drive teeth 22 of the collar 20 with the reverse drive gear 12 and correspondingly rotate the propeller 6 for reverse propulsion.
The latch cam ramp 61 moves against the curved end cam surface 64 and again positlvely latches the cam follower 45 and control member 26 in the shifted position.

Claims (5)

The embodiments of the invention in which an exclusive property or privilege is claimed are defined as follows:
1. A clutch apparatus comprising a) a housing unit, b) an output shaft rotatably mounted in said housing unit, c) oppositively rotatable driven means, d) a clutch member rotatably fixed to said output shaft and moveable axially into engagement with said driven means to effect the rotation of said output shaft, e) releasable means between said output shaft and said clutch member and holding said clutch member disengaged from said driven means, f) control means positioned in said housing unit coaxial with said output shaft for moving said clutch means, g) resilient means between said clutch means and said control means and h) shift means connecting to said control means to stress said resilient means and overcome the force of said releasable means and to move said clutch member into engaged position with one of said driven means.
2. A clutch apparatus comprising a) a housing, b) an output shaft rotatably mounted in said housing, c) a drive member positioned in said housing coaxial with said output shaft, d) a clutch member rotatably fixed on said output shaft and moveable axially into drive engagement with said drive member, e) a releasable connecting means positioned between said clutch member and said output shaft to hold said clutch member disengaged from said drive member, f) said output shaft formed with an axial opening, a control member slidably mounted in said axial opening, g) said output shaft and said control member formed with aligned axial slots and said clutch member formed with axial holes aligned with said slots, a cross pin member extending through said slots in said output shaft and said control member and secured in said holes in said clutch member, h) said control member having internal recesses to the opposite sides of said slot, resilient means located in said recesses to the opposite sides of said cross pin member and resiliently holding said cross pin member within a central portion of said slot, and i) shift means coupled to said control member for preloading and moving said control member in either of opposite axial directions to stress one of said resilient means against said cross pin until said releasable connecting means is released and said clutch member is snapped into operative engagement with said drive member.
3. A clutch apparatus comprising a) a housing, b) an output shaft rotatably mounted in said housing, c) a drive member positioned in said housing coaxial with said output shaft, d) a clutch member rotatably fixed on said output shaft and moveable axially into drive engagement with said drive member, e) clutch engaging elements provided on opposed portions of said drive member and said clutch member, f) a control member mounted for reciprocal movement relative to said clutch member, g) a coupling member axially moveable on said control member, h) resilient means positioned between said control member and said coupling member to A) permit initial preloading of said coupling member in the direction of movement and B) permit said clutch engaging elements to slip in a rotational direction opposite to the drive direction, i) releasable means between said clutch member and said output shaft to A) hold said clutch member to said output shift and permit initial preloading of said coupling member in response to movement of said control member, and j) shift means attached to said control member to positively move said control member to preload said coupling member to overcome said releasable means.
4. A clutch apparatus as defined in claim 3 wherein said clutch member has two radial holes therethrough, said output shaft has two radial slots therethrough corresponding in axial alignment with said holes in said clutch member and an axial opening therethrough, and said control member having an axial opening therethrough in axial alignment with said holes and said slots, said coupling member comprises a cross pin member, said resilient means comprises two compression springs, said control member positioned in said axial opening in said shaft, said two springs positioned in said axial opening in said control member and said cross pin member extending through the slot in said control member between said two springs and through the slot in said output shaft and secured in said holes in said clutch member.
5. A marine propulsion apparatus including a) lower reversing gear case, (claim 5 cont'd) b) a propeller shaft rotatably supported in the gear case, c) a pair of oppositely rotatable driven gears mounted in said gear case substantially concentric with said propeller shaft, d) a clutch member rotatably fixed to said shaft and moveable axially on said shaft into engagement with said gears to rotate said shaft wherein the improvement comprises A) a releasable connecting means positioned between said clutch member and said propeller shaft, and holding said clutch member disengaged from said pair of oppositely rotatable driven gears, B) said propeller shaft formed with an axial opening, a control member slidably mounted in said axial opening, C) said propeller shaft and said control member formed with aligned axial slots and said clutch member formed with axial holes aligned with said slots, a cross pin member extended through said slots in said propeller shaft and said control member and secured in said holes in said clutch member, e) said control member having internal recesses to the opposite sides of said slot, resilient means located in said recess to the opposite sides of said cross pin member and resiliently holding the pin within a central portion of said slot.
CA386,754A 1977-09-12 1981-09-25 Drive engaging apparatus Expired CA1127099A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CA386,754A CA1127099A (en) 1977-09-12 1981-09-25 Drive engaging apparatus

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
US05/832,196 US4223773A (en) 1977-09-12 1977-09-12 Drive engaging apparatus
CA310,257A CA1127097A (en) 1977-09-12 1978-08-29 Drive engaging apparatus
CA386,754A CA1127099A (en) 1977-09-12 1981-09-25 Drive engaging apparatus
US832,196 1986-02-24

Publications (1)

Publication Number Publication Date
CA1127099A true CA1127099A (en) 1982-07-06

Family

ID=27165831

Family Applications (1)

Application Number Title Priority Date Filing Date
CA386,754A Expired CA1127099A (en) 1977-09-12 1981-09-25 Drive engaging apparatus

Country Status (1)

Country Link
CA (1) CA1127099A (en)

Similar Documents

Publication Publication Date Title
US4223773A (en) Drive engaging apparatus
US4416345A (en) Rotary assistance mechanisms, more especially for vehicle steering
DE19801986B4 (en) Device for switching operating modes for a hammer drill
US4679682A (en) Marine drive shift mechanism with detent canister centered neutral
DE60121844T2 (en) Transmission and clutch control
US6264516B1 (en) Outboard motor with disconnectable shift selection and throttle control in a tiller handle
JP2902403B2 (en) Shifting device for marine drive unit
JPH0539814U (en) Power transmission mechanism for rotary power tools
CA1076975A (en) Park lock and gear shift for a vehicle transmission
US6123591A (en) Shifting mechanism for marine transmission
US4648497A (en) Single lever control
KR19990067034A (en) Vehicle Door Actuator
CA1127099A (en) Drive engaging apparatus
DE20305853U1 (en) Electric drill with hammer or rotational operation has pressure ring with catches to control movement of arms controlling drill shaft drive
US4543846A (en) Interlocking construction in transmission manipulation device for manual transmission
US6817461B1 (en) Clutch mechanism with overtravel capability
DE60102114T2 (en) Gearbox with shift actuator
US5016488A (en) Shift mechanism for engaging sliding gear in manual transmission
WO1989007210A1 (en) Shiftable gearbox with forward and reverse gears for motorized vehicles or similar
CN214661967U (en) Lock plate for transmission, transmission for vehicle, and vehicle
JP2660259B2 (en) Valve drive device in engine
US5575456A (en) Lever operated hoist
JPS6141444Y2 (en)
JPS6233161Y2 (en)
JP3024098B2 (en) Propeller drive for ship propulsion

Legal Events

Date Code Title Description
MKEX Expiry