POWER TOOL AND MAIN SHAFT THEREOF
20190275656 ยท 2019-09-12
Inventors
Cpc classification
B25D17/265
PERFORMING OPERATIONS; TRANSPORTING
B25B21/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A main shaft of a power tool is sequentially divided into an impact section, a penetrative section and an output section, wherein the impact section is formed with an impact portion and has a curved recess defined therein, and the penetrative section is adapted to extend through a front portion of the power tool. The main shaft has a linear tunnel defined therein and extending therethrough. The linear tunnel has two opposite ends respectively defined as an inlet and an outlet, wherein the inlet is situated in the output section and the outlet is adapted to correspond to an impact block of an impact device of the power tool. An axis of the linear tunnel is formed an included angle with an axis of the main shaft.
Claims
1. A main shaft of a power tool is adapted to be mounted into an impact device of a power tool, wherein the impact device includes a rotary seat having a passage laterally defined therein and a through hole longitudinally defined therein, and wherein the through hole communicates with the passage and at least one impact block is mounted into the passage, the main shaft sequentially divided into an impact section, a penetrative section and an output section, the impact section formed with at least one impact portion and having at least one curved recess defined therein, wherein the quantities of the at least one impact portion and the at least one curved recess are respectively relative to that of the at least one impact block, and the at least one impact portion corresponding to the at least one impact block, the output section and the penetrative section adapted to sequentially extend through a front end of the power tool for outputting power, a linear tunnel defined in the main shaft, the linear tunnel having two opposite ends respectively defined as an inlet and an outlet, wherein the inlet is situated in the output section, and the outlet is situated in the impact section and corresponds to the impact block, an axis of the linear tunnel and an axis of the main shaft forming an included angle.
2. The main shaft as claimed in claim 1, wherein a tapered face is formed on an abutment between the output section and the penetrative section, and the inlet is defined in the tapered face.
3. The main shaft as claimed in claim 2, wherein a diameter of the inlet is gradually and outwardly reduced such that the inlet has a cone-shaped cross-section.
4. The main shaft as claimed in claim 1, wherein the penetrative section is a cylinder for easily rotated relative to the power tool and the output section is polygonal for mounting a marketed socket, and wherein the contour of the penetrative section is a circumcircle of that of the output section.
5. The main shaft as claimed in claim 2, wherein the penetrative section is a cylinder for easily rotated relative to the power tool and the output section is polygonal for mounting a marketed socket, and wherein the contour of the penetrative section is a circumcircle of that of the output section.
6. The main shaft as claimed in claim 3, wherein the penetrative section is a cylinder for easily rotated relative to the power tool and the output section is polygonal for mounting a marketed socket, and wherein the contour of the penetrative section is a circumcircle of that of the output section.
7. The main shaft as claimed in claim 4, wherein the inlet is defined in a ridge line of the output section because the output section is polygonal.
8. The main shaft as claimed in claim 5, wherein the inlet is defined in a ridge line of the output section because the output section is polygonal.
9. The main shaft as claimed in claim 6, wherein the inlet is defined in a ridge line of the output section because the output section is polygonal.
10. A power tool comprising a casing divided into a handheld portion and a receiving portion, a motor received in the receiving portion and adapted to be connected to a power source, an impact device mounted into a front section of the receiving portion, wherein the impact device is connected to the motor and driven by the motor, a main shaft rotatably mounted in the impact device for outputting power, wherein: the impact device includes a rotary seat having a passage laterally defined therein and a through hole longitudinally defined therein, wherein the through hole communicates with the passage and at least one impact block is mounted into the passage; and the main shaft of a power tool is adapted to be mounted into an impact device of a power tool, the main shaft sequentially divided into an impact section, a penetrative section and an output section, the impact section formed with at least one impact portion and having at least one curved recess defined therein, wherein the quantities of the at least one impact portion and the at least one curved recess are respectively relative to that of the at least one impact block, and the at least one impact portion corresponding to the at least one impact block, the output section and the penetrative section adapted to sequentially extend through a front end of the power tool for outputting power, a linear tunnel defined in the main shaft, the linear tunnel having two opposite ends respectively defined as an inlet and an outlet, wherein the inlet is situated in the output section, and the outlet is situated in the impact section and corresponds to the impact block, an axis of the linear tunnel and an axis of the main shaft forming an included angle.
11. The main shaft as claimed in claim 10, wherein a tapered face is formed on an abutment between the output section and the penetrative section, and the inlet is defined in the tapered face.
12. The main shaft as claimed in claim 11, wherein a diameter of the inlet is gradually and outwardly reduced such that the inlet has a cone-shaped cross-section.
13. The main shaft as claimed in claim 10, wherein the penetrative section is a cylinder for easily rotated relative to the power tool and the output section is polygonal for mounting a marketed socket, and wherein the contour of the penetrative section is a circumcircle of that of the output section.
14. The main shaft as claimed in claim 11, wherein the penetrative section is a cylinder for easily rotated relative to the power tool and the output section is polygonal for mounting a marketed socket, and wherein the contour of the penetrative section is a circumcircle of that of the output section.
15. The main shaft as claimed in claim 12, wherein the penetrative section is a cylinder for easily rotated relative to the power tool and the output section is polygonal for mounting a marketed socket, and wherein the contour of the penetrative section is a circumcircle of that of the output section.
16. The main shaft as claimed in claim 13, wherein the inlet is defined in a ridge line of the output section because the output section is polygonal.
17. The main shaft as claimed in claim 14, wherein the inlet is defined in a ridge line of the output section because the output section is polygonal.
18. The main shaft as claimed in claim 15, wherein the inlet is defined in a ridge line of the output section because the output section is polygonal.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
DETAILED DESCRIPTION OF THE INVENTION
[0020] Referring to the drawings and initially to
[0021] Further with reference to
[0022] With reference to
[0023] Further with reference to
[0024] The tapered face 304, between the output section 303 and the penetrative section 302, is provided for enhancing the structures of the output section 303 and the penetrative section 302 and preventing a working drill from being broken due to the included angle formed by the axes of the linear tunnel 33 and the main shaft 30. In addition, for preventing the main shaft 30 from being overly weakened, the diameter of the linear tunnel 33 is less than 3.0 mm. Furthermore, the tapered face 304 is previously defined a cone-shape dimple and a bottom of the cone-shaped dimple is co-axially drilled for defining the linear tunnel 33, wherein a maximum diameter of the cone-shaped dimple is greater than a diameter of the linear tunnel 33 such that the inlet 331 has a cone-shaped cross-section. In this manner, the linear tunnel 33 can be precisely processed for ensuring the value of the included angle formed by the axes of the linear tunnel 33 and the main shaft 30 and the consumption of the drill is reduced.
[0025] In addition, the cone-shaped inlet 331 provides a guiding effect to the nozzle 41 of the lubricant injector 40 during injecting lubricant into the space defined between the impact block 22 and the curved recess 32 for reducing the leaking rate. Furthermore, the cone-shaped inlet 331 is provided to nozzles 41 with different diameter for widely used.
[0026] Although the invention has been explained in relation to its preferred embodiment, it is to be understood that many other possible modifications and variations can be made without departing from the spirit and scope of the invention as hereinafter claimed.