The present invention relates to a multi-blade type woodworking bit and, more particularly, to a multi-blade type woodworking bit for rapidly discharging wood dust to assure an easy, smooth hole drilling operation and safety.
Conventional woodworking bits generally include a driving section on a rear end thereof and a working section on a front end thereof. The driving section is coupled to an electric or pneumatic tool. The working section is flat and includes a pointed guiding end at a front end thereof. A blade portion is provided behind the guiding end and is wider than the guiding end. A front end of the blade portion includes two sides each having a pointed end. During a cutting process, the guiding end of the working section rotationally cuts a workpiece to assure a stable path for the woodworking hole drilling operation. Then, the blade portion of the working section rotationally cuts a hole with a desired diameter in the workpiece.
However, the flat design of the guiding end and the blade portion of the above woodworking bit cannot provide smooth and easy discharge of the wood dust, such that the wood dust accumulates around the woodworking bit and in the hole of the workpiece during the cutting procedure, adversely affecting the smoothness of the hole drilling operation. Furthermore, the high temperature resulting from high speed cutting of the workpiece causes friction and burning of the wood dust accumulated in the hole of the workpiece, deteriorating and damaging the woodworking bit and the workpiece and leading to unsafe operation.
An objective of the present invention is to provide a multi-blade type woodworking bit for rapidly discharging wood dust to assure an easy, smooth hole drilling operation and safety.
A multi-blade type woodworking bit according to the present invention includes a driving section and a working section. The driving section is adapted to couple with an external tool. The working section is located in front of the driving section. The working section includes a first cutting section and a second cutting section behind the first cutting section. The first cutting section is conic and has a front pointed end. The first cutting section further includes an outer periphery having at least two first dust discharge grooves spaced from each other in an angular direction. The second cutting section includes a shank portion axially connected to a rear end of the first cutting section. At least two blades extend radially from an outer periphery of the shank portion and are spaced from each other in the angular direction. Each of the at least two blades includes a front cutting end. A rear end of each of the at least two first dust discharge grooves is located between a pair of blades adjacent to each other. A second dust discharge groove is formed between each pair of blades adjacent to each other and has a width lager than a width of each of the at least two first dust discharge grooves. The second cutting section generates rearward guiding air currents when the multi-blade type woodworking bit rotates.
Each of the at least two first dust discharge grooves can have a spiral curvature corresponding to a spiral curvature of one of the at least two blades.
Each of the at least two second dust discharge grooves of the second cutting section can include a ridge extending axially along a central portion thereof. Each ridge includes a front end connected to the rear end of one of the at least two first dust discharge grooves. Two guiding grooves for flow division are formed between two sides of each ridge and a pair of blades adjacent to each other.
In an example, the first cutting section includes four first dust discharge grooves spaced from each other by 90°, and the second cutting section includes four blades spaced from each other by 90°. The rear end of each of the four first dust discharge grooves is located at a middle between a pair of blades adjacent to each other.
Since the first and second cutting sections include first and second dust discharge grooves for continuous discharge of wood dust, the wood dust generated during the hole drilling operation will not accumulate in the hole to provide better smoothness in the hole drilling operation while avoiding friction between the wood dust that may lead to high temperature and potential smoking or burning, providing enhanced safety effect.
The present invention will become clearer in light of the following detailed description of illustrative embodiments of this invention described in connection with the drawings.
With reference to
In this embodiment, the second cutting section 14 includes a shank portion 141 axially connected to a rear end of the first cutting section 13. Four blades 142 extend radially from an outer periphery of the shank portion 141 and are spaced from each other by 90°. Each blade 142 includes a front cutting end 143. A rear end of each first dust discharge groove 132 is located at a middle between a pair of blades 142 adjacent to each other. A second dust discharge groove 144 is formed between each pair of blades 142 adjacent to each other and has a width lager than a width of each first dust discharge groove 132.
Each blade 142 has a spiral curvature. Each first dust discharge groove 132 has a spiral curvature corresponding to the spiral curvature of one of the blades 142. Each second dust discharge groove 144 of the second cutting section 14 includes a ridge 145 extending axially along a central portion thereof. Each ridge 145 includes a front end connected to the rear end of one of the first dust discharge grooves 132. Two guiding grooves 146 for flow division are formed between two sides of each ridge 145 and a pair of blades 142 adjacent to each other.
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Although specific embodiments have been illustrated and described, numerous modifications and variations are still possible without departing from the scope of the invention. The scope of the invention is limited by the accompanying claims.