A GUARD FOR A ROTATABLE WHEEL OF A POWER TOOL
20240123571 ยท 2024-04-18
Inventors
Cpc classification
B25F5/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
B24B55/05
PERFORMING OPERATIONS; TRANSPORTING
B25F5/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A guard for a rotatable wheel of a power tool is disclosed. The guard comprises a shroud which is configured to partially enclose the wheel and a port disposed at a circumferential position on the shroud, via which debris generated by the wheel during use can exit the shroud. The shroud comprises a radii of curvature which increases between a first angular position and a second angular position, relative to a rotational axis of the wheel, in a direction comprising a rotational direction of the wheel.
Claims
1. A guard for a rotatable wheel of a power tool, the guard comprising: a shroud which is configured to partially enclose the wheel; a port disposed at a circumferential position on the shroud, via which debris generated by the wheel during use can exit the shroud; wherein the shroud comprises a radii of curvature which increases between a first angular position and a second angular position, relative to a rotational axis of the wheel, in a direction comprising a rotational direction of the wheel.
2. The guard according to claim 1, wherein the port is orientated along a direction which comprises a rotational center of the wheel.
3. The guard according to claim 1, wherein the radii of curvature progressively increases between the first and second angular position.
4. The guard according to claim 1, wherein the radii of curvature is substantially constant through a first angular range and progressively increases through a second angular range toward the second angular position.
5. The guard according to claim 1, wherein the first and second angular positions are disposed at either side of the port, such that the radii of curvature comprises a discontinuous change at the port.
6. The guard according to claim 1, wherein the shroud comprises a first shroud portion and a second shroud portion.
7. The guard according to claim 6, wherein the first and second shroud portions comprise, in use of the tool, an upper shroud portion and a lower shroud portion, respectively.
8. The guard according to claim 6, wherein the first shroud portion and second shroud portion are detachably couplable together along a circumferential position thereof.
9. The guard according to claim 1, further comprising a window formed therein, via which the wheel can extend out from the shroud, being disposed substantially diametrically opposite the port.
10. The guard according to claim 9, wherein the first and second shroud portions comprise, in use of the tool, an upper shroud portion and a lower shroud portion, respectively, wherein the window extends between the upper and lower portion of the shroud.
11. The guard according to claim 10, wherein the window is inclined relative to the lower portion of the shroud, in a direction which is away from the port.
12. The guard according to claim 11, wherein the window is inclined at an angle of substantially 20?.
13. The guard according to claim 1, further comprising one or more apertures formed on the shroud, through which air may pass into the shroud during use of the tool.
14. The guard according to claim 13, comprising three apertures angularly separated around the shroud.
15. The guard according to claim 13, wherein the one or more apertures are disposed rotationally closer to the first angular position than the second angular position, and an angular separation between the apertures and the port is less than 180?.
16. The guard according to claim 15, wherein the angular separation is in the range of 90?-180?.
17. The guard according to claim 1, further comprising a bracket disposed upon the shroud for detachably coupling the guard to connecting a power tool.
18. A power tool comprising a guard according to claim 1.
19. An extracting assembly for extracting debris and pollutants generated by a rotating wheel of a power tool, the assembly comprising a guard according to claim 1 and a vacuum generating arrangement fluidly couplable with the port for extracting debris and pollutants from within the guard.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The invention may be performed in various ways and embodiments thereof will now be described, by way of example only, reference being made to the accompanying drawings, in which:
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
DETAILED DESCRIPTION
[0027] Referring to
[0028] The guard 100 may be formed of a metal or a rigid plastics material and comprises a shroud 120 which arranged to partially enclose the wheel W. Referring to
[0029] The first and second wall 121b, 122b of the upper and lower shroud portions 121, 122 cooperatively form the side wall 125 of the shroud 120. However, owing to the disk shape and minor segment shape of the upper and lower walls 121a, 122a respectively, the first and second side walls 121b, 122b are arranged to abut through a limited angular range around the shroud 120. In an embodiment, this angular range comprises approximately 200?.
[0030] The first side wall 121b extends at a constant depth from the upper wall 121a throughout this angular range, however, the second side wall 122b extends at a constant height above the lower wall 122a through an angular range which is less than 200?. In this respect, the second side wall extends beyond the arcuate periphery of the minor segment to form an overhang 122c which extends rotationally beyond the chord 122d of the segment. Furthermore, the depth of the first side wall 121b around the upper wall reduces from a point of abutment at one rotational side of the second side wall 122b, to a minimum depth 127, and then increases again to the point of abutment with the other rotational side of the second side wall 122b.
[0031] The varying depth of the first side wall 121b, and the overhang portion 122c of the second side wall 122b cooperatively define a window 130 within the shroud 120 through which the wheel W can extend to contact a workpiece (not shown). The window 130 is inclined relative to the lower wall 122a through an angle of approximately 20?-30? with this inclination being typical of the preferred angular orientation of a grinding wheel W relative to a surface of a workpiece.
[0032] The guard 100 further comprises a port 140 formed therein via which debris and pollutants which become entrained with an airflow created by the rotating wheel W, can exit the shroud 120. The port 140 is disposed in the side wall 125 of the shroud 120 and comprises a circular cross-sectional opening 141, 142, half of which is formed in the upper shroud portion 121 and half of which is formed in the lower shroud portion 122. The port 140 extends substantially transverse to a radius of the shroud and is directed along a direction which comprises a rotational center of the rotatable wheel W. In an embodiment, the port 140 may further comprise a cylindrical duct 143 formed integrally with the shroud 120 for permitting a fluid coupling of the shroud with a fluid exhaust system (not shown).
[0033] Referring to
[0034] The shroud 120 further comprises a plurality of apertures 126 formed on the upper wall 121a for permitting air to pass into the shroud 120 during the rotation of the wheel W. In the illustrated embodiment, the shroud 120 comprises three apertures 126a-c and these are rotationally separated from each other. However, the apertures 126a-c are located rotationally closer to the first angular position P1 than the second angular position P2 and in an embodiment, the apertures 126a-c are angularly separated from the first angular position P1 by substantially 90?-180?.
[0035] Referring to
[0036] As the wheel W rotates, air is drawn into the shroud 120 via the window 130 and also via the apertures 126a-c formed on the upper wall 121a of the shroud 120. This is because as the wheel rotates the air pressure within the shroud 120 reduces compared with the air pressure outside of the shroud 120 owing to the rotational flow of air around the shroud 120. Any debris and/or pollutants generated by the contact of the rotating wheel W with the workpiece (not shown) will become entrained with the airflow within the shroud 120. However, as the air and debris moves around the shroud 120, the debris will become forced radially outwardly within the shroud 120 due to the centrifugal force exerted thereupon. When the debris encounters the second angular position P2, it strikes the barrier within the shroud created by the discontinuous change in radii of the shroud 120, which effectively causes the debris to collect near the port 140. Moreover, as the air flow moves toward second angular position P2, the air flow speed will reduce owing to the increased space within the shroud 120 proximate the second angular position P2 compared with the first angular position P1. This reduced airflow speed coupled with the deposition of debris proximate the port 140 is found to facilitate the removal of debris from the shroud 120 via the port 140. To further encourage this removal, an exhaust system may be fluidly coupled to port 140 to actively extract the debris and any pollutants entrained within the air flow. Referring to
[0037] It will be appreciated that the invention may be varied according to requirements, including but not limited to physical dimensions or construction materials, having as its objective the provision of a guard for a rotatable wheel of a power tool which improves the efficiency of extraction of particulate matter during grinding.