Centrifugal clutch mechanisms
Centrifugal clutch mechanisms, and transmissions and lawnmowers having centrifugal clutch mechanisms are provided. A centrifugal clutch mechanism includes a clutch bell comprising an annular wall and a circular ring extending away from the annular wall to define an internal cavity, wherein the circular ring comprises an inward facing surface defining a drive surface. The centrifugal clutch mechanism also includes a plurality of centrifugal weights disposed in the internal cavity and an inward biasing element engaged with the centrifugal weights. The inward biasing element biases the centrifugal weights towards a disengaged position in which the centrifugal weights do not interface with drive surface, and upon application of a sufficient centrifugal force, the centrifugal weights are configured to transition to an engaged position in which the centrifugal weights interface with the drive surface.
1 . A transmission comprising:
a first stage gear;
a second stage gear; and
a centrifugal clutch mechanism that transfers energy from the first stage gear to the second stage gear, the centrifugal clutch mechanism comprising
one or more centrifugal weights slidingly engaged with the first stage gear, the one or more centrifugal weights being linearly slidable along a radial direction perpendicular to a center axis of the centrifugal clutch mechanism,
wherein rotation of the first stage gear causes the one or more centrifugal weights to transition along the radial direction from a disengaged position in which the one or more centrifugal weights are rotatably disengaged from the second stage gear to an engaged position in which the one or more centrifugal weights are rotatably engaged with the second stage gear to transfer rotational energy from the first stage gear to the second stage gear, and
wherein at least one of the one or more centrifugal weights comprises an axial projection extending towards the first stage gear.
2 . The transmission of claim 1 , further comprising a drive surface extending annularly about the one or more centrifugal weights and defining an internal cavity within which the one or more centrifugal weights are disposed, wherein the drive surface comprises one or more protrusions projecting inwards into the internal cavity.
3 . The transmission of claim 2 , wherein the one or more protrusions each comprise a tapered ramp.
4 . The transmission of claim 2 , wherein at least one of the one or more centrifugal weights comprises a radial projection extending towards the drive surface, and wherein the radial projection engages the one or more protrusions when the one or more centrifugal weights are in the engaged position.
5 . The transmission of claim 2 , wherein the one or more centrifugal weights comprises a plurality of centrifugal weights symmetrically distributed in the internal cavity.
6 . The transmission of claim 1 , wherein the first stage gear comprises a guide slot that receives the axial projection of the one or more centrifugal weights.
7 . The transmission of claim 1 , further comprising an inward biasing element configured to provide a biasing force on the one or more centrifugal weights to return them to the disengaged position.
8 . The transmission of claim 7 , wherein the one or more centrifugal weights comprise an annular groove, and wherein the inward biasing element comprises a garter spring disposed in the annular groove.
9 . A centrifugal clutch in selective mechanical communication between a first gear assembly and a second gear assembly to transfer energy from the first gear assembly to the second gear assembly, the centrifugal clutch comprising:
a plurality of centrifugal weights linearly slidable along a radial direction perpendicular to a center axis of the centrifugal clutch; and
an inward biasing element engaged with the centrifugal weights,
wherein one or more centrifugal weights of the plurality of centrifugal weights comprise an annular groove,
wherein the inward biasing element comprises a garter spring disposed in the annular groove,
wherein the inward biasing element biases the centrifugal weights towards a disengaged position in which the centrifugal weights are rotatably disengaged from the second gear assembly, and
wherein, upon application of a sufficient centrifugal force, the centrifugal weights are configured to transition along the radial direction to an engaged position in which the centrifugal weights are rotatably engaged with the second gear assembly.
10 . The centrifugal clutch of claim 9 , further comprising a drive surface extending annularly about the plurality of centrifugal weights and defining an internal cavity within which the plurality of centrifugal weights is disposed, wherein the drive surface comprises one or more protrusions projecting inwards into the internal cavity.
11 . The centrifugal clutch of claim 9 , wherein at least one centrifugal weight of the centrifugal weights comprises an axial projection extending towards the first gear assembly.
12 . A walk-behind power tool comprising:
a motor;
a first stage gear operably coupled to the motor;
a second stage gear;
a plurality of wheels operably coupled to the second stage gear via an axle;
a centrifugal clutch mechanism that transfers energy from the first stage gear to the second stage gear, the centrifugal clutch mechanism comprising
one or more centrifugal weights slidingly engaged with the first stage gear, the one or more centrifugal weights being linearly slidable along a radial direction perpendicular to a center axis of the centrifugal clutch mechanism; and
a differential transmission operably coupled to at least one wheel, the differential transmission being disposed between the at least one wheel of the plurality of wheels and the second stage gear,
wherein rotation of the first stage gear by the motor causes the one or more centrifugal weights to transition along the radial direction from a disengaged position in which the one or more centrifugal weights are rotatably disengaged from the second stage gear to an engaged position in which the one or more centrifugal weights are rotatably engaged with the second stage gear to transfer rotational energy from the first stage gear to the second stage gear.
13 . The walk-behind power tool of claim 12 , further comprising a drive surface extending annularly about the one or more centrifugal weights and defining an internal cavity within which the one or more centrifugal weights are disposed, wherein the drive surface comprises one or more protrusions projecting inwards into the internal cavity, wherein at least one of the one or more centrifugal weights comprises a radial projection extending towards the drive surface, and wherein the radial projection engages the one or more protrusions when the one or more centrifugal weights are in the engaged position.
14 . The walk-behind power tool of claim 12 , wherein at least one of the one or more centrifugal weights comprises an axial projection extending towards the first stage gear, and wherein the first stage gear comprises a guide slot that receives the axial projection of the one or more centrifugal weights.
15 . The walk-behind power tool of claim 12 , further comprising a drive surface extending annularly about the one or more centrifugal weights and defining an internal cavity within which the one or more centrifugal weights are disposed, wherein the one or more centrifugal weights comprises a plurality of centrifugal weights symmetrically distributed in the internal cavity.
16 . The walk-behind power tool of claim 12 , further comprising an inward biasing element configured to provide a biasing force on the one or more centrifugal weights to return them to the disengaged position.
17 . The walk-behind power tool of claim 16 , wherein the one or more centrifugal weights comprise an annular groove, and wherein the inward biasing element comprises a garter spring disposed in the annular groove.