1. Field of Invention
The present invention relates to a tool and, more particularly, to a chuck for connecting a bit to a handle of a tool.
2. Related Prior Art
As disclosed in Taiwanese Patent M391448, a conventional chuck 60 includes a cylinder 61, two springs 62 and 65, two pushers 63 and 66 and two detents 64. The cylinder 61 includes three tunnels 611, 613 and 614 in communication with one another. The cylinder 61 is connected to a handle of a tool. The diameters of the tunnels 611 and 613 are constant. The diameter of the first tunnel 611 is smaller than that of the second tunnel 613. The third tunnel 614 is in the shape of a conical frustum so that its diameter gets larger as it extends from the second tunnel 613. The first spring 62 is placed in the second tunnel 613. The first pusher 63 which is in the form of a ring includes a first portion placed in the second tunnel 613 and a second portion placed in the third tunnel 614. The first spring 62 is compressed between a shoulder formed between the tunnels 611 and 613 and the first pusher 63. Each of the detents 64 is placed in a respective one of two apertures 632 defined in the second portion of the first pusher 63. The second spring 65 is placed around the cylinder 61. The second pusher 66 which is also in the form of a ring is placed around the second spring 65. The second spring 65 is compressed between a C-clip connected to an external side of the cylinder 61 and a C-ring attached to an internal side of the second pusher 66. With the springs 62 and 65 in operation against each other, each of detents 64 includes an internal portion normally placed in a tunnel 631defined in the first ring 63 and an external portion placed in the third tunnel 614 defined in the cylinder 61. To connect a bit to the handle, the second pusher 66 is pushed away from the handle against the second spring 65, thus allowing the first spring 62 to push the first portion of the first pusher 63 out of the second tunnel 613 of the cylinder 61 and the second portion of the first pusher 63 out of the third tunnel 614 of the cylinder 61. Hence, the internal portion of each of the detents 64 is movable out of the tunnel 631 of the first pusher 63 and a portion of the bit is allowed into the first pusher 63 and the cylinder 61. Then, the second pusher 66 is released so that the internal portion of each of the detents 64 is moved into the tunnel 631 of the first pusher 63 and abutted against the bit so that the portion of the bit is retained in the first pusher 63 and the cylinder 61. However, the second pusher 66 might be pushed excessively far away from the handle, thus allowing the detents 64 to be moved out of the apertures 632 of the first pusher 63 and caught between a portion of the cylinder 61 and a portion of the second pusher 66. Hence, the returning of the second pusher 66 is hindered, and so is the connection of the bit to the handle.
The present invention is therefore intended to obviate or at least alleviate the problems encountered in prior art.
It is the primary objective of the present invention to provide a reliable chuck.
To achieve the foregoing objectives, the chuck includes a shaft, a ring, a ball and an elastic helical ferrule. The shaft includes a cavity defined therein and an aperture in communication with the cavity. The aperture includes a large open end and a small open end. The ring includes a tunnel for receiving the shaft. The ball includes a first portion for insertion in the tunnel via the large open end of the aperture and a second portion for insertion in the cavity via the small open end of the aperture. The elastic helical ferrule includes sections for contact with the ball and sections in contact with the shaft. Other objectives, advantages and features of the present invention will be apparent from the following description referring to the attached drawings.
The present invention will be described via detailed illustration of four embodiments referring to the drawings wherein:
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The shaft 21 includes a stepped end 22 and a recessed end 28. The stepped end 22 of the shaft 21 includes a thick section and a thin section.
By molding for example, the cap 29 is formed around the recessed end 28 of the shaft 21 so that the recessed end 28 of the shaft 21 is firmly placed in the cap 29.
The shaft 21 includes a cavity 24 axially defined therein. The cavity 24 includes a circular section and a hexagonal section. The thin section of the stepped end 22 of the shaft 21 includes an aperture 25 in communication with the hexagonal section of the cavity 24. The aperture 25 includes a large open end 26 and a small open end 27 in communication with the hexagonal section of the cavity 24.
The diameter of the ball 30 is larger than that of the small open end 27 of the aperture 25 but shorter than that of the large open end 26 of the aperture 25. Thus, the ball 30 can be placed in the aperture 25 via the large open end 26 but cannot be placed entirely in the hexagonal section of the cavity 24 from the aperture 25 via the small open end 27.
The elastic helical ferrule 40 includes several sections each extending for 360°. The elastic helical ferrule 40 is placed around the thin section of the stepped end 22 of the shaft 21 after the ball 30 is placed in the aperture 25. The ball 30 includes a first portion in contact with the elastic helical ferrule 40 and a second portion placed in the hexagonal section of the cavity 24 via the small open end 27 of the aperture 25.
The ring 31 includes a stepped tunnel 23 axially defined therein. The stepped tunnel 23 includes a large section and a small section regarding the diameter. The thick section of the stepped end 22 of the shaft 21 is fit in the large section of the stepped tunnel 23 of the ring 31 while the thin section of the stepped end 22 of the shaft 21 is inserted in the small section of the stepped tunnel 23. The elastic helical ferrule 40 is placed in the large section of the stepped tunnel 23.
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Secondly, two balls 30 are used instead of one. Accordingly, the shaft 51 includes two apertures 25 each for receiving a respective ball 30.
Thirdly, a spring 35 and a ring 54 are used additionally. The ring 54 includes a thin section 57 and a thick section 58. A conical frustum-shaped face is formed on an internal side of the thin section 57 of the ring 54. The ring 54 is provided around and movable along the shaft 51. The thin section 57 of the ring 54 is placed in the large section of the stepped tunnel 23 of the ring 31.
The spring 35 is placed around the shaft 51 and in the thick section 58 of the ring 54. A C-clip 37 is fit around the shaft 51. A C-ring 36 is placed against the C-clip 37. The spring 35 is compressed between the C-ring 36 and an internal shoulder of the ring 54 formed between the sections 57 and 58.
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Secondly, the ring 54 is directed oppositely. The ring 54 is formed with a first external shoulder between the sections 57 and 58 and a second external shoulder 66 on the thick section 58. The spring 35 is compressed between the C-ring 36 and the first external shoulder of the ring 54.
Thirdly, a shaft 61 is used instead of the shaft 51. The shaft 61 is like the shaft 51 except including two apertures 64 defined in a thin hollow section 63 formed between a thick hollow section 62 and the recessed hexagonal end 59.
Fourthly, there are used two balls 65 each ball 65 is placed in a respective aperture 64 and formed with a first portion for contact with the internal shoulder of the ring 54 and a second portion in contact with the pusher 75.
Fifthly, a ring 70 is provided around the ring 54. The ring 70 includes an internal flange formed at an end.
Sixthly, a spring 67 is placed around the ring 54 and in the ring 70. The spring 67 is compressed between the C-ring 36 and the internal flange of the ring 70.
The first portion of each ball 65 is in contact with the internal shoulder of the ring 54 while the second portion of the same is in contact with the first reduced section 77 of the pusher 75. Thus, the balls 65 prevent the ring 54 from pressing the elastic helical ferrule 40. Hence, the first portion of each ball 30 is movable out of the respective aperture 25 against the elastic helical ferrule 40 while the second portion of each ball 30 is movable out of the hexagonal section of the cavity 24.
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Secondly, there is used a handle 83. The handle 83 includes a stepped cavity 84 defined therein. The handle 83 includes two internal shoulders formed on the wall of the stepped cavity 84. The spring 35 is compressed between the first internal shoulder of the handle 83 and the first external shoulder of the ring 54.
Thirdly, a shaft 81 is used instead of the shaft 61. The shaft 81 is like the shaft 61 except including a ribbed end 82 stead of the recessed hexagonal end 59. The ribbed end 82 of the shaft 81 is fit in the stepped cavity 84 of the handle 83.
Fourthly, a ring 85 is used instead of the ring 31. The ring 85 is placed around and movable along the shaft 81. Accordingly, the C-clip 37 is placed in another position for contact with an annular flange formed at a first end of the ring 85. The spring 67 is compressed between the second internal shoulder of the handle 83 and a second end of the ring 85.
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The present invention has been described via the detailed illustration of the embodiments. Those skilled in the art can derive variation ns from the embodiments without departing from the scope of the present invention. Therefore, the embodiments shall not limit the scope of the present invention defined in the claims.