This non-provisional patent application claims priority under 35 U.S.C. §119(a) from Patent Application No. 201010250323.8 filed in The People's Republic of China on Aug. 2, 2010.
This invention relates to an electric starter motor used for starting an internal combustion engine, such as a gasoline engine, a diesel engine and the like.
A starter for an engine typically includes an output axle driven by an electric motor, an output gear, a driving plate, and an elastic friction member all directly mounted on the output axle. The driving plate is movable along the output axle. The friction member is located between the driving plate and the output gear. The driving plate defines screw threads in mesh with screw threads defined on the output axle, such that the driving plate moves along the output axle when the output axle rotates, and the driving plate thus urges the friction member and transmit the torque to the output gear via the friction member. However, lubrication oil filled in the gap between the driving plate and the output axle is liable to leak to the friction member, impairing performance of the friction member. As a result, the torque of the output axle can not be transmitted to the output gear efficiently.
Therefore, there is a need in the art to provide an improved starter for engine which can overcome the above described shortcomings.
Accordingly, in one aspect thereof, the present invention provides a starter motor for an engine, the starter motor comprising a rotatable output axle; a driving member mounted around the output axle, the driving member comprising a hub mounted around the output axle with screw threads, and a driving portion extending radially from the hub; an output gear rotatably mounted around the output axle, the output gear being movable along the output axle; and a friction member sandwiched between the output gear and the driving portion of the driving member, wherein the hub of the driving member extends through the friction member and into the output gear.
Preferably, the starter motor further comprises a pressure spring abutting the output gear and urging the output gear against the friction member.
Preferably, the hub of the driving member extends into a first central hole of the output gear and supports the output gear.
Preferably, the first central hole is defined in one end of the output gear, the output gear further defines a second central hole in an opposite end, the first central hole communicates with the second central hole, and the first central hole has a diameter larger than that of the second central hole.
Preferably, the hub of the driving member contacts an inner surface of the output gear corresponding to the first central hole, and the output axle contacts an inner surface of the output gear corresponding to the second central hole.
Preferably, the hub defines a plurality of screw threads along all the length of the inner surface in mesh with screw threads defined on an outer surface of the output axle.
Preferably, the friction member is annular.
Preferably, the driving portion of the driving member, the friction member and the output gear have a substantially same maximal overall diameter.
According to a second aspect, the present invention also provides a starter motor, comprising a rotatable output axle with a plurality of first screw threads defined on an outer periphery; a driving member mounted around the output axle, the driving member comprising a hub defining a plurality of second screw threads on an inner surface, and a driving portion, wherein the second screw threads are in mesh with the first screw threads of the output axle; an output gear rotatably mounted around the output axle, the output gear being movable along the output axle; and a friction member mounted around the hub of the driving member and in friction contact with the output gear and the driving portion of the driving member, wherein the hub of the driving member extends through the friction member and into the output gear.
Preferably, the starter motor further comprises a pressure spring abutting the output gear and urging the output gear against the friction member.
Preferably, the hub of the driving member extends into a first central hole of the output gear and supports the output gear.
Preferably, the first central hole is defined in one end of the output gear, the output gear further defines a second central hole in an opposite end, the first central hole communicates with the second central hole, and the first central hole has a diameter larger than that of the second central hole.
Preferably, the hub of the driving member contacts an inner surface of the output gear corresponding to the first central hole, and the output axle contacts an inner surface of the output gear corresponding to the second central hole.
Preferably, the second screw threads are defined along all the length of the inner surface of the hub.
Preferred embodiments of the invention will now be described, by way of example only, with reference to figures of the accompanying drawings. In the figures, identical structures, elements or parts that appear in more than one figure are generally labeled with a same reference numeral in all the figures in which they appear. Dimensions of components and features shown in the figures are generally chosen for convenience and clarity of presentation and are not necessarily shown to scale. The figures are listed below.
Referring to
When the starter starts to rotate, the driving member 21 driven by the rotating output axle 13 moves along the output axle 13, and pushes against the friction member 24. The friction member 24, in turn, presses against the output gear 26, to move the output gear 26 to a working position, where the output gear 26 engages with a flywheel of the engine. After the output gear 26 has engaged the flywheel, the output gear 26 stops moving along the output axle 13. As the output axle 13 continues rotating, the driving member 21 which has a tendency to move towards the output gear 26 continues to press against the friction member 24, increasing friction forces between the friction member 24 and both the driving member 21 and the output gear 26. When the friction forces reach a certain value, the friction member 24 and the output gear 26 rotate with the driving member 21. Therefore, the torque of the output axle 13 is transmitted to the output gear 26 via the driving member 21 and the friction member 24, to thereby drive the engine.
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The thin portion 12 of the output axle 13 is fittingly received in the second central hole 29 of the output gear 26, contacting an inner surface of the output gear 26 corresponding to the second central hole 29. A free end of the hub 23 of the driving member 21 extends into the first central hole 28 of the output gear 26, and the hub 23 of the driving member 21 contacts an inner surface of the output gear 26 corresponding to the first central hole 28. As the hub 23 of the driving member extends into the first central hole 28 of the output gear 26, the lubricant oil is prevented from leaking to the friction member 24. In addition, the output gear 26 is supported by both the hub 23 and the output axle 13, avoiding an offset between an axis of the output gear 26 and the output axle 13, which may result in disengagement of the output gear 26 and the flywheel of the engine. Furthermore, the output gear 26 supported by both the hub 23 of the driving member 21 and the output axle 13 can rotate smoothly.
Preferably, the female screw threads are defined along all the length of the inner surface of the hub 23, so as to ensure a coaxiality of the hub 23 of the driving member 21 and the output axle 13, and accordingly a coaxiality of the output gear 26 and the output axle 13 is ensured.
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In this embodiment, the driving member 21, the friction member 24 and the output gear 26 are independent components, and the driving portion 22 of the driving member 21, the friction member 24 and the output gear 26 have a substantially same maximal overall diameter. Alternatively, the driving portion of the driving member 21 may be received in the friction member 24. Further, the friction member 24 may be integrally formed with one of the driving member 21 and the output gear 26, for example, by insert molding.
Although the invention is described with reference to one or more preferred embodiments, it should be appreciated by those skilled in the art that various modifications are possible. Therefore, the scope of the invention is to be determined by reference to the claims that follow.
In the description and claims of the present application, each of the verbs “comprise”, “include”, “contain” and “have”, and variations thereof, are used in an inclusive sense, to specify the presence of the stated item but not to exclude the presence of additional items.
Number | Date | Country | Kind |
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201010250323.8 | Aug 2010 | CN | national |