The present invention relates to a shaft bearing used to bear a drive shaft of a brush cutter or the like.
As brush cutters used when mowing work is conducted, there are used a large number of brush cutters having a structure in which a blade rotating in one direction is provided at the front end of a rod, and the blade is rotated by a drive unit provided at the back end of the rod. In a conventional brush cutter, a drive shaft for rotating a blade is disposed in a pipe of a rod, and the drive shaft is rotatably held in the pipe by use of a plurality of bushes (slide bearings) (see Patent Literatures 1 and 2).
In the case of a brush cutter using an engine, rotational resistance of a drive shaft resulting from a brush does not become a great problem. However, in the case of a rechargeable brush cutter using a battery, there is a problem of shortening of the duration time of the battery due to rotational resistance of a drive shaft resulting from the use of a bush.
[Patent Literature 1] Japanese Unexamined Patent Application Publication No. 2016-36341
[Patent Literature 2] Japanese Unexamined Patent Application Publication No. 2015-8636
In order to solve the conventional problems, the present invention is intended to provide a shaft bearing capable of reducing rotational resistance of a drive shaft by use of a bearing instead of a bush (slide bearing).
A shaft bearing according to the present invention is a shaft bearing including a bearing, a cylindrical holder, and an elastic ring, wherein the holder is formed by combining two members divided parallel to an axial direction, and is assembled in a state where an outer peripheral part of the bearing is stored in an inner groove formed on an inner peripheral surface of the holder in a peripheral direction, and the elastic ring is stored in an outer groove formed on an outer peripheral surface of the holder in the peripheral direction.
A plurality of outer grooves of the holder are formed on the outer peripheral surface of the holder, and the elastic ring is inserted in at least one of the outer grooves.
An O-ring is used as the elastic ring.
The divided members of the holder are provided, on the surfaces thereof facing each other, with a depression and a projection, and the projection of one of the members is inserted into the depression of the other member when the holder is assembled.
The holder is made of resin, rubber, or metal.
The shaft bearing is used to bear a drive shaft of a brush cutter.
A shaft bearing according to the present invention is a shaft bearing including a bearing, a cylindrical holder, and an elastic ring, wherein the holder is formed by combining two members divided parallel to an axial direction, and is assembled in a state where an outer peripheral part of the bearing is stored in an inner groove formed on an inner peripheral surface of the holder in a peripheral direction, and the elastic ring is stored in an outer groove formed on an outer peripheral surface of the holder in the peripheral direction. This enables reduction of rotational resistance, and further brings about advantageous effects of little off-center of a shaft and satisfactory workability of assembly.
A plurality of outer grooves are formed on the outer peripheral surface of the holder, and the elastic ring can be inserted in at least one of the outer grooves. Therefore, a press-fitting load of the shaft bearing can be adjusted by changing the number of elastic rings.
The divided members of the holder are provided, on the surfaces thereof facing each other, with a depression and a projection, and the projection of one of the members is inserted into the depression of the other member when the holder is assembled. This facilitates positioning when the holder is assembled, and allows the holder to be assembled with ease and with satisfactory accuracy.
The shaft bearing is used to bear a drive shaft of a brush cutter. Thereby, rotational resistance of the drive shaft can be reduced more than heretofore. Particularly, in the case of a rechargeable brush cutter using a battery, the duration time of the battery can be longer.
A shaft bearing 1 according to the present invention is described below in detail by use of the drawings.
The bearing 2 is a ball bearing, and a conventional ball bearing can be selected and then used to suit to a shaft borne by the shaft bearing 1. The holder 3 has a cylindrical shape, and is configured by combining a first member 31 and a second member 32 which are two members divided parallel to an axial direction. The first member 31 and the second member 32 have the same shape, and are the same members.
The first member 31 has one inner groove 33 formed on an inner peripheral surface in a peripheral direction, and three outer grooves 35 formed on an outer peripheral surface in the peripheral direction. The second member 32 also has one inner groove 34 formed on an inner peripheral surface in a peripheral direction, and three outer grooves 36 formed on an outer peripheral surface in the peripheral direction. When the first member 31 and the second member 32 are combined, the inner groove 33 and the inner groove 34 are connected and thus form one annular inner groove in which hold the bearing 2 can be held, whereas the outer grooves 35 and the outer grooves 36 are connected and thus form three annular outer grooves in which the O-rings 4 can be stored.
The numbers of the outer grooves 35 and the outer grooves 36 are not limited to three, and can be suitably changed depending on the purpose, size, and others of the shaft bearing 1. Moreover, the outer grooves 35 and the outer grooves 36 having different depth and width can be arranged in parallel. It is also possible to provide more than one inner groove 33 and more than one inner groove 34, and a plurality of bearings 2 can be held, or one bearing 2 can be held by being selected from a plurality of inner grooves.
The first member 31 has two depressions and two projections provided on the surface facing the second member 32 (not illustrated), and the second member 32 has two depressions 37 and two projections 38 provided on the surface facing the first member 31. As illustrated in
When the first member 31 and the second member 32 are combined, a gap is provided between the end of the first member 31 and the end of the second member 32, as illustrated in
The holder 3 can be formed by resin, rubber, or metal (e.g., aluminum), and can have the inner peripheral surface thinned as illustrated in
The O-rings 4 have a size which can be stored in the three annular outer grooves on the outer peripheral surface of the holder 3. By inserting the O-rings 4 in at least one of the three annular outer grooves on the outer peripheral surface of the holder 3, the bearing 2 can be held in the holder 3, and the holder 3 can be kept in a cylindrical shape. Although the present embodiment is described by using the O-ring as an elastic ring, an elastic ring is not limited to an O-ring, and has only to be able to fix the holder 3. For example, a ring-shaped rubber band or the like can be used. Further, the sectional shape of the annular outer grooves of the holder 3 can also be suitably changed to suit to the sectional shape of the elastic ring.
Next, an assembly method of the shaft bearing 1 according to the present invention is described. From the state in
In this instance, the projections 38 of the second member 32 are inserted into the depressions of the first member 31, and the projections of the first member 31 are inserted into the depressions of the second member 32. Thereby, the first member 31 and the second member 32 can be combined without misalignment. Additionally, an outer peripheral part of the bearing 2 is stored in the inner groove 33 of the first member 31 and the inner groove 34 of the second member 32. Thereby, the bearing 2 is fixedly held onto the inner peripheral surface of the holder 3, as illustrated in
After the first member 31 and the second member 32 are combined, the O-rings 4 are respectively inserted into the three annular outer grooves on the outer peripheral surface of the holder 3. The first member 31 and the second member 32 are fixed to each other by the O-rings 4, and the assembly of the shaft bearing 1 is completed, as illustrated in
As illustrated in
By using the bearing 2, the shaft bearing 1 can reduce rotational resistance more than when a conventional bush (slide bearing) is used. Moreover, the shaft bearing 1 can be reduced in weight by using the lightweight holder 3. Further, the shaft bearing 1 can bring about high advantageous effects of little off-center of a shaft, satisfactory workability of assembly, and a small required amount of oil (grease) during assembly.
The shaft bearing 1 can adapt to various shafts by changing the bearing 2 to suit to a shaft to be borne. For example, as illustrated in
Furthermore, as illustrated in
Number | Date | Country | Kind |
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2019-152817 | Aug 2019 | JP | national |