The present invention relates to a brake mechanism that controls a flexible brake band to compress and induce braking force against the rotation of a shaft.
A conventional brake mechanism for a power tool having an output shaft, such as an electric saw, includes a brake board and a clutch device that is controlled by the brake board. By controlling the clutch device, the output shaft can be engaged with or released from the power transmitting mechanism. When braking, the output shaft is released from the power transmitting mechanism so that no power is provided to the output shaft. However, the output shaft has an inertial force and keeps on rotating after the brake mechanism is activated. The rotation of the output may hurt people and/or properties even if the power transmitting mechanism is disengaged from the output shaft. Besides, the clutch device involves a complicated structure and assembling is quite time consuming.
Therefore, it is desired to have a brake mechanism that resolves one or more drawbacks of the conventional brake mechanisms.
In accordance with an aspect of the present invention, there is provided a brake mechanism of a tool. The brake mechanism comprises a trigger device and a brake device. The brake device includes a brake board, a first connection device and a flexible band. The brake board has a connection rod extending through the casing and connected to the first connection device. The flexible band wraps the output shaft and has one end fixed to the casing and the other end connected to the first connection device such that the flexible band is pulled to change friction with the output shaft by operating the brake board.
The present invention will become more obvious from the following description when taken in connection with the accompanying drawings, which show, for purposes of illustration only, a preferred embodiment in accordance with the present invention.
Referring to the drawings and in particular
The brake device 3 includes a brake board 31, a first connection device 32, a second connection device 33, a first flexible band 34, and a second flexible band 35. The brake board 31 has a connection rod 31a that extends through the casing 1 and is connected to an end of the first connection device 32. The first connection device 32 is a link mechanism and includes a first link 32a connected to the connection rod 31a of the brake board 31 and pivotably connected to a second link 32b. A sliding member 32c is connected to the second link 32b and movably retained in a groove 32d. A spring 32e is received in the groove 32d and biasing the sliding member 32c at an initial position. The first flexible band 34 wraps around the output shaft 15 and has one end fixed to the casing 1 and the other end connected to the sliding member 32c of the first connection device 32. Therefore, as shown in
Further referring to
It is noted that the sliding member 32c or the block 33c can be omitted if the first spring 32e or the second spring 33e can operate the first connection device 32 or the second connection device 33. Furthermore, if the first spring 32e or the second spring 33e is able to complete the brake function, one spring 32e or 33e can be omitted.
While we have shown and described the embodiment in accordance with the present invention, it should be clear to those skilled in the art that further embodiments may be made without departing from the scope of the present invention.