Starting device for an internal combustion engine
09797359 · 2017-10-24
Assignee
Inventors
- Stefan Kullberg (JÖNKÖPING, SE)
- JOAKIM PERSSON (SKILLINGARYD, SE)
- Anders Hansson (Huskvarna, SE)
- Håkan Fransson (Jönköping, SE)
Cpc classification
F02N15/027
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02N5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02N3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02N15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a starting device (10) for an internal combustion engine, the starting device (10) comprising a hub (12; 70) configured to drivingly engage an internal combustion engine when the hub (12; 70) is rotated in a first direction (A); a pulley (14; 47; 60) interconnected with the hub (12; 70) by a spring (23; 41); a shaft (21) on which the pulley (14; 47; 60) and hub (12; 70) are mounted independently rotatable; a flexible member (16) attached to and coiled about the pulley (14; 47; 60); and where the spring (23; 41) coupled at a first end (26; 53) to the hub (12; 70) and at a second end (28; 54) to the pulley (14; 47; 60). The pulley (14; 47; 60) comprises a recess (15) arranged to receive the flexible member (16), which recess has the shape of a conical helix having a first end (15A) with a first diameter and a second end (15B) with a second diameter, larger than the first diameter; and is attached to the pulley (14; 47; 60) at the second end (15B).
Claims
1. A starting device for an internal combustion engine, the starting device comprising: a hub configured to drivingly engage an internal combustion engine when the hub is rotated in a first direction; a pulley interconnected with the hub by a spring; a shaft on which the pulley and hub are mounted independently rotatable; a flexible member attached to and coiled about the pulley; and the spring coupled at a first end to the hub and at a second end to the pulley, wherein the pulley is rotated in the first direction when the flexible member is pulled and unwound, wherein the spring is arranged to act on the hub during start, wherein the pulley comprises a conical body with a recess arranged to receive the flexible member, wherein the recess substantially has the shape of a conical helix having a first end with a first radius and a second end with a second radius, the second radius being larger than the first radius; and wherein the flexible member is attached to the pulley at the second end.
2. A starting device according to claim 1, wherein the pulley comprises an annular recess for receiving therein at least a part of the spring.
3. A starting device according to claim 2, wherein the second end of the spring is attached to an outer periphery of the annular recess.
4. A starting device according to claim 2, wherein the pulley comprises an annular portion located in the recess and extending towards the hub.
5. A starting device according to claim 2, wherein the hub comprises an annular portion extending towards the pulley, wherein the first end of the spring is attached to the annular portion.
6. A starting device according to claim 5, wherein the annular portion of the hub extends into the annular recess in of the pulley.
7. A starting device according to claim 6, wherein at least the part of the spring is located in an annular space formed by the annular recess of the pulley and the annular portion of the hub.
8. A starting device according to claim 2, wherein at least the part of the spring is located in an annular space formed by a separate housing located in the annular recess of the pulley and the annular portion of the hub.
9. A starting device according to claim 1, wherein the conical helix forming the recess has a constant cone angle.
10. A starting device according to claim 1, wherein the conical helix forming the recess has at least two cone angles.
11. A starting device according to claim 10, wherein the conical helix forming the recess has a first cone angle adjacent the first end and has a second cone angle that decreases with each revolution towards the second end, and wherein the first cone angle, adjacent the first end, is greater than the second cone angle adjacent the second end.
12. A starting device according to claim 10, wherein the conical helix forming the recess has a first cone angle, adjacent the first end, that is less than a second cone angle adjacent the second end, and wherein the second cone angle that increases with each revolution towards the second end.
13. A starting device according to claim 1, wherein at least a part of a last coil of the flexible member is wound radially outward of a previous coil of the flexible member at the first end of the recess.
14. A starting device according to claim 1, wherein an aperture acting as a guiding means is provided for guiding the flexible member onto the pulley after an engine start, wherein the guiding means is closer to the second end of the recess than to the first end of the recess, measured along an axis of rotation of the pulley.
15. A starting device according to claim 1, wherein a rotation limiter is arranged between the pulley and the hub, wherein the pulley is rotated at least one revolution before engaging the hub.
16. A starting device according to claim 15, wherein a number of revolutions is selected to load the spring to a predetermined accumulated energy level.
17. A starting device according to claim 15, wherein, when the pulley is in engagement with the hub, the spring is arranged to release accumulated energy of the spring upon continued rotation of the pulley and the hub.
18. A starting device according to claim 1, wherein the starting device further comprises a rotatable part having first engagement means; wherein the pulley comprises second engagement means and the hub comprises third engagement means, wherein the starting device is arranged such that after rotation a first angular distance of the pulley in the first direction, starting from a reset position of the starting device, the second engagement means of the pulley engages the first engagement means of the rotatable part so that the rotatable part is brought into rotation together with the pulley, and after rotation of the pulley a further angular distance in the first direction, the first engagement means of the rotatable part engages the third engagement means of the hub so that the hub is brought into rotation in the first direction together with the rotatable part and the pulley.
19. A starting device for an internal combustion engine, comprising: a hub configured to drivingly engage an internal combustion engine when the hub is rotated in a first direction; a pulley interconnected with the hub by a spring; and the spring; wherein the starting device further comprises a rotatable part having first engagement means; wherein the pulley comprises second engagement means and the hub comprises third engagement means, wherein the starting device is arranged such that after rotation a first angular distance of the pulley in the first direction starting from a reset position of the starting device, the second engagement means of the pulley engages the first engagement means of the rotatable part so that the rotatable part is brought into rotation together with the pulley, and after rotation of the pulley a further angular distance in the first direction, the first engagement means of the rotatable part engages the third engagement means of the hub so that the hub is brought into rotation in the first direction together with the rotatable part and the pulley.
20. A starting device according to claim 19, wherein the rotatable part comprises a first disc and a second disc, the first and second discs being rotatable an angular distance relative to each other, and are located between the pulley and the hub, and the first engagement means comprises a first structure on the first disc, and a second structure and third structure on the second disc, wherein the starting device is arranged such that after rotation the first angular distance of the pulley in the first direction, starting from the reset position of the starting device, the second engagement means of the pulley engages the first structure of the first disc so that the first disc is brought into rotation together with the pulley, and after rotation of the pulley an additional second angular distance in the first direction, the first structure of the first disc engages the second structure of the second disc so that the second disc is brought into rotation in the first direction together with the first disc and the pulley, and after rotation of the pulley an additional third angular distance in the first direction, the third structure of the second disc engages the third engagement means of the hub so that the hub is brought into rotation in the first direction together with the pulley and the first and second discs.
21. A starting device according to claim 20, wherein the engagement means are configured such that the first, second and third angular distances are in a range of 180-360 degrees.
22. A starting device according to claim 19, wherein upon rotation of the pulley in the first direction and engagement of the first and third engagement means at a maximum relative rotation angle between the hub and the pulley, the spring is configured to have accumulated energy to a level not sufficient to be able to rotate the hub and start the engine by itself.
23. A starting device according to claim 19, wherein the rotatable part includes a first disc and a second disc and the first engagement means includes a radially projecting rotation stop on the first disc, and a first axially projecting stop on the second disc, and a second axially projecting rotation stop on the second disc and wherein the second engagement means includes an axially projecting driving catch on the pulley, and the third engagement means includes an axially projecting final stop on the hub.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1) In the following text, the invention will be described in detail with reference to the attached drawings. These schematic drawings are used for illustration only and do not in any way limit the scope of the invention. In the drawings:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
EMBODIMENTS OF THE INVENTION
(9)
(10) The starting device 10 comprises a hub 12 (or driver) configured to drivingly engage an internal combustion engine (not shown) when the hub 12 is rotated in a first direction A. The hub 12 is provided with a number of contact surfaces 13 (four surfaces in this example) intended to cooperate with corresponding surfaces on a device (not shown) for rotating the combustion engine crankshaft during cranking. When the combustion engine starts, the device will disengage the contact surfaces, or teeth 13 of the hub 12. Such arrangements are well known in the art and will not be described in further detail here.
(11) The hub 12 is interconnected with a pulley 14 by a torsion spring (
(12) Rotation of the pulley 14 will energize the torsion spring and rotate the hub 12 in a first direction A to crank the engine, when the accumulated energy of the energized torsion spring is sufficient. A return spring (not shown) is provided for rotating the pulley in the opposite direction, in order to rewind the flexible member onto the pulley.
(13)
(14) According to an alternative example, the last coil 15C (
(15) The pulley 14 comprises an annular recess 22 (
(16) The pulley 14 is interconnected with and rotatable relative to the hub 12 by means of the torsion spring 23 which torsion spring is integrated into the pulley 14. At a first, radially inner end 26 the torsion spring 23 is coupled to an axial slot 27 in the annular portion 25 of the hub 12. At a second, radially outer end 28 the torsion spring 23 is coupled to an axial slot 29 in the outer peripheral surface 30 of the annular recess 22 in the pulley 14. In order to prevent the torsion spring 23 from being displaced axially out of the annular recess 22, an annular cover 31 may be mounted over the recess to retain the torsion spring 23. The annular cover 31 has a central opening 32 to allow the hub 12 to be mounted onto the pulley 14. The hub 12 is attached by means of a fastener, such as a nut (not shown) screwed onto a threaded portion at the end of the shaft 21. Alternative means of attaching the hub 12 can include the use of circlips, or providing an internal threaded section in the shaft cooperating with a screw. According to a further alternative, the hub 12 can be arranged to function as a cover 31, which would eliminate the need for a separate cover.
(17) The pulley 14 is rotated in the first direction A when the flexible member 16 is pulled and unwound. As the flexible member 16 is pulled, rotation of the pulley 14 will cause the torsion spring 23 to coil tighter to accumulate energy. The torsion spring 23 is subsequently arranged to act on the hub 12 to rotate it in the first direction A when releasing the stored energy and drivingly engage the internal combustion engine during cranking.
(18)
(19)
(20) As the flexible member 16 is pulled, the radius at which it acts on the pulley 14 will increase from the initial radius R.sub.1/2 towards the maximum radius R.sub.2/2 at a decreasing rate, while still providing an increasing torque to compensate for the gradually increasing resistance from the torsion spring 23 (see
(21) The relatively low torque applied to the pulley 14 by the flexible member 16 when located at the smallest radius R.sub.1 of the recess 15 will therefore be sufficient for the initial coiling of the torsion spring. As the flexible member 16 is pulled further the radius at which it acts on the pulley 14 will increase, providing an increasing torque to compensate for the gradually increasing resistance from the torsion spring as it is loaded by being coiled tighter.
(22)
(23) According to a second alternative example, shown in
(24) The separate housing 42 forms an annular space or cavity that encloses the torsion spring 41. The separate housing 42 is located in a cylindrical recess 46 in a pulley 47. It is appreciated that the recess 46 does not have to be cylindrical as long as it is adapted to receive separate housing 42. The recess 46 is arranged in an end surface of the pulley 47 adjacent the end of a helical recess 48 (see
(25) The torsion spring 41 is coupled at its first, radially inner end 53 to the hub (see
(26) The second radially outer end 54 of the torsion spring 41 is coupled to the outer cylindrical wall 43 of the separate housing 42. The radial projection 49 extending from the separate housing 42 into the corresponding radial recess 50 in the pulley 47 is provided with a slot 55 adapted to form an attachment for the radially outer end 54 of the torsion spring 41. In order to prevent the torsion spring 41 from being displaced axially out of the housing 42, an annular cover 56 is mounted over the annular cavity to retain the torsion spring 41.
(27) Depending on the desired characteristics of the pulling force and/or the internal combustion engine to be started, the pulley and its recess can be adapted accordingly. Hence, the cone angle can be selected constant, gradually decreasing or gradually increasing. The conical helix forming the recess can have a cone angle that decreases or increases, respectively, at a predetermined rate with each revolution from the first end towards the second end of the recess. Such arrangements will both reduce the size of the pulling force and minimize fluctuations in pulling force when starting the engine.
(28)
(29) A second disc 67 is placed in contact with and is rotatable relative to the first disc 65 over a predetermined second angle. The second disc 67 has a substantially annular shape and is provided with a first axial rotation stop 68 extending axially from its outer periphery and a second axial rotation stop 69 extending axially from its inner periphery. The first axial rotation stop 68 is arranged to cooperate with the radial rotation stop 66. During a starting operation, the radial rotation stop 66 will contact the first axial rotation stop 68 and begin to rotate the second disc 67 when the pulley 60 and the second disc 65 have been rotated together over the second predetermined angle. The first, second and third predetermined angles are between 180 and 360 degrees, and preferably about 300 degrees.
(30) The second disc 67 is placed in contact with and is rotatable relative to a hub 70 over a third predetermined angle. The second axial rotation stop 69 is arranged to cooperate with a circumferential groove (“71” see
(31) The first and second discs 65, 67 are held in place by an annular portion 73 (see
(32)
(33) The operation of the rotation limiter will now be described with reference to
(34) The first disc 65 and the pulley 60 then engage and continue to rotate as a unit. The first disc 65 can rotate freely over a second angle of 300° until the radial rotation stop 66 reaches the first axial rotation stop 68 of the second disc 67.
(35) The second disc 67, first disc 65 and the pulley 60 then engage and continue to rotate as a unit, pushed forward by the rotated pulley 60. The second disc 67 can rotate freely over a third angle of 300° until the second axial rotation stop 69 hits the final rotation stop 72 in the groove 71 in the hub 70.
(36) When the second axial rotation stop 69 hits the final rotation stop 72 in the groove 71, the torsion spring in the pulley 60 is fully loaded. At this point the torsion spring located in the pulley 60 (see
(37) As the operator continues to pull the handle, the hub will rotate the crankshaft to displace the piston past the top dead centre. The piston then starts to accelerate due to the lower compression and the hub 70 continues to exert torque on the crankshaft, while releasing the accumulated energy in the spring. The hub 70 will be rotated in the same direction of the pulley, as the spring energy build-up is neutralized. The first and second discs 65, 67 are forced to rotate accordingly. The hub 70 rotates 300° in the same direction indicated in
(38) An advantage of the rotation limiter is that the rotation limiter protects the torsion spring from being over-stressed, as the pulley and the hub will engage before the torsion spring can be overloaded. The rotation limiter also enables the use of an optimized torsion spring, which creates a more compact and slim starting apparatus. In addition, a broader pulling speed interval is allowed, from a pulling speed lower than a conventional given minimum speed to a pulling speed faster than said given minimum speed.
(39) A rotation limiter as described above is applicable to any one of the above examples described in
(40) The invention is not limited to the above embodiments, but may be varied freely within the scope of the claims.