1. Field of the Invention
This invention relates to a dust separator, more particularly to a dust separator including a plurality of cones sidewisely interconnected to one another and formed with tangentially-extending tangent channel-forming notches.
2. Description of the Related Art
Referring to
Although dust separators with multiple cyclones have been developed for increasing dust separating efficiency, additional piping is required to connect the cyclones, which increases the manufacturing costs.
Therefore, an object of the present invention is to provide a dust separator that can overcome the aforesaid drawbacks associated with the prior art.
According to this invention, there is provided a dust separator that comprises: a shell having a cylindrical tank body and an air inlet channel, the air inlet channel extending in a tangential direction relative to the tank body; a partitioner mounted in the shell and cooperating with the shell to define a first cyclone chamber therebetween, the first cyclone chamber being in fluid communication with the air inlet channel, the partitioner having an upper cup part and a lower part that is disposed below the upper cup part, the upper cup part defining a top opening and a cup inner space and being formed with at least one cup-wall through-hole that is in fluid communication with the first cyclone chamber and the cup inner space, the lower part defining a dust collecting space that is isolated from the first cyclone chamber and the cup inner space; and a multi-cone unit supported on the upper cup part to cover the top opening of the upper cup part and including a plurality of cones that extend through the cup inner space into the dust collecting space. Each of the cones has an upper end portion that is formed with a tangent channel-forming notch having two opposite sides. The upper end portion has a circumferentially-extending segment and a tangentially-extending segment extending tangentially from the circumferentially-extending segment. The circumferentially-extending segment has an end section that defines an end face. The end face of the end section is disposed at one of the sides of the tangent channel-forming notch. The tangentially-extending segment has an inner face that confines the other of the sides of the tangent channel-forming notch. The tangentially-extending segment of each of the cones sidewisely joins the end section of the circumferentially-extending segment of an adjacent one of the cones. Each of the cones defines a lower opening in fluid communication with the dust collecting space, and a second cyclone chamber in fluid communication with the lower opening and the tangent channel-forming notch. An air flow introduced into the first cyclone chamber via the air inlet channel is caused to flow in a helical pattern to thereby result in a first separation of air from dust carried by the air flow. The air flow introduced from the first cyclone chamber into the second cyclone chamber via the tangent channel-forming notches of the cones is caused to flow in a helical pattern to result in a second separation of air from dust carried by the air flow.
Other features and advantages of the present invention will become apparent in the following detailed description of the preferred embodiments with reference to the accompanying drawings, of which:
Before the present invention is described in greater detail with reference to the accompanying preferred embodiments, it should be noted herein that like elements are denoted by the same reference numerals throughout the disclosure.
The shell 2 has a cylindrical tank body 21 and a top cover 22 disposed on a top open end of the tank body 21. A sealing ring 23 is disposed between and is in sealing contact with the top cover 22 and the top open end of the tank body 21. The tank body 21 has a surrounding wall 212 and a bottom dust-discharging tube 213 extending downwardly from a funnel-shaped lower end portion of the surrounding wall 212. The surrounding wall 212 has a top end portion that is formed with a top shoulder 2123. The shell 2 further has an inlet tube 205 extending tangentially from the top end portion of the surrounding wall 212 and defining an air inlet channel 2051 that extends in a tangential direction relative to the tank body 21, and a source-connecting tube 204 extending upwardly from the top cover 22.
The partitioner 3 is mounted in the shell 2, and cooperates with the shell 2 to define a first cyclone chamber 61 therebetween. The first cyclone chamber 61 is in fluid communication with the air inlet channel 2051 and the bottom dust-discharging tube 213 so that when an air flow is introduced through the air inlet channel 2051 into the first cyclone chamber 61, the air flow is caused to flow in a helical or vortex pattern within the first cyclone chamber 61, thereby resulting in separation of air from dust carried by the air flow. The partitioner 3 has an upper cup part 30, a cylindrical lower part 32 disposed below and extending downwardly from the upper cup part 30, a connector 35, and a dust-discharging check valve 36. The upper cup part 30 defines a top opening 305 and a cup inner space 314, and is formed with a plurality of cup-wall through-holes 315 in fluid communication with the first cyclone chamber 61 and the cup inner space 314. The cylindrical lower part 32 defines a dust collecting space 316 isolated from the first cyclone chamber 61 and the cup inner space 314, and has a bottom open end 322. The dust-discharging check valve 36 is coupled to the bottom open end 322 of the lower part 32 through the connector 35, and is disposed above and adjacent to the bottom dust-discharging tube 213. The dust collecting space 316 in the lower part 32 is in fluid communication with the first cyclone chamber 61 through the dust-discharging check valve 36. The dust-discharging check valve 36 prevents fluid flow from passing therethrough in a direction from the first cyclone chamber 61 toward the dust collecting space 316. The upper cup part 30 has a bottom wall 301 and a peripheral wall 302 extending upwardly from the bottom wall 301 and formed with a top flange 303 that is supported on the top shoulder 2123. The bottom wall 301 has an outer portion 3011 that is connected transversely to the peripheral wall 302, and an inner portion 3012 that extends from the outer portion 3011 into the cup inner space 314, that tapers upwardly, and that is formed with a plurality of holes 3013. The peripheral wall 302 of the upper cup part 30 has a cylindrical portion 3021 extending upwardly from the bottom wall 301, and a frustoconical portion 3022 extending upwardly and enlarging in diameter from the cylindrical portion 3021.
The multi-cone unit 4 is supported on the upper cup part 30 to cover the top opening 305 of the upper cup part 30, and includes a plurality of cones 40, a connecting flange 41, and an upper cover 42. The cones 40 are equiangularly disposed and are sidewisely interconnected to one another so as to define a central space 43 thereamong. The connecting flange 41 extends radially and outwardly from an upper end portion 45 of the cones 40, is formed with a plurality of engaging holes 414, and is seated on the top flange 303 of the peripheral wall 302 of the upper cup part 30. The connecting flange 41 and the cones 40 are formed into a single piece using moldable plastic. Each of the cones 40 extends downwardly from the connecting flange 41 through the cup inner space 314 and a respective one of the holes 3013 in the inner portion 3012 of the bottom wall 301 of the upper cup part 30 and into the dust collecting space 316. The central space 43 confined by the cones 40 is in fluid communication with the cup inner space 314.
The upper end portion 45 of each of the cones 40 is formed with a tangent channel-forming notch 46 having two opposite sides 461, 462, and has a circumferentially-extending segment 45a and a tangentially-extending segment 45b extending tangentially from the circumferentially-extending segment 45a. The circumferentially-extending segment 45a has an end section 451 that defines an end face 4511. The end face 4511 of the end section 451 of each circumferentially-extending segment 45a is disposed at one of the sides 461 of a corresponding tangent channel-forming notch 46. The tangentially-extending segment 45b of each cone 40 has an inner face 452 that faces toward the end face 4511 of the end section 451 of the circumferentially-extending segment 45a of a corresponding cone 40 and that confines the other of the sides 462 of the corresponding tangent channel-forming notch 46. The tangentially-extending segment 45b of each of the cones 40 sidewisely joins the end section 451 of the circumferentially-extending segment 45a of an adjacent one of the cones 40. Each of the cones 40 defines an upper opening 401, a lower opening 402 in fluid communication with the dust collecting space 316, and a second cyclone chamber 403 in fluid communication with the upper and lower openings 401, 402 and the tangent channel-forming notch 46. The tangent channel-forming notch 46 in each of the cones 40 extends in a tangential direction relative to the corresponding cone 40 so that when an air flow is introduced through each tangent channel-forming notch 46 into the corresponding second cyclone chamber 403, the air flow is caused to flow in a helical or vortex pattern within each second cyclone chamber 403, thereby resulting in separation of air from dust carried by the air flow.
In this embodiment, the tangent channel-forming notch 46 in each of the cones 40 joins the central space 43 confined by the cones 40. The tangentially-extending segment 45b of the upper end portion 45 of each of the cones 40 further has an end face 453 that sidewisely joins and cooperates with the end face 4511 of the end section 451 of the circumferentially-extending segment 45a of an adjacent one of the cones 40 to confine the one of the sides 461 of the tangent channel-forming notch 46 in the upper end portion 45 of the adjacent one of the cones 40.
The multi-cone unit 4 further includes an upper cover 42 disposed on the cones 40 to cover the upper openings 401 of the cones 40. A sealing pad 49 is disposed between and is in sealing contact with the upper end portions 45 of the cones 40 and the upper cover 42. The upper cover 42 is formed with a plurality of engaging studs 422 fitted respectively into the engaging holes 414 of the connecting flange 41, and a plurality of air holes 421 in fluid communication with the source-connecting tube 204 and in fluid communication with the second cyclone chambers 403 in the cones 40, respectively.
The inlet tube 205 is adapted to be connected to a pipeline (not shown). The source-connecting tube 204 is adapted to be connected to an air pressure source (not shown), such as a fan blower, which can be operated in a suctioning mode or a blowing mode. In operation, when the fan blower is operated in the suctioning mode, an air flow carrying dust is drawn into the first cyclone chamber 61 through the pipeline to undergo a first separation of dust from air, then flows through the central space 43 and the tangent channel-forming notches 46 into the second cyclone chambers 403 of the cones 40 to undergo a second separation of dust from air, and finally flows through the air holes 421 of the upper cover 42 and the source-connecting tube 204 into the atmosphere.
In this embodiment, the pipeline 200 includes a first connecting conduit 240 interconnecting the source-connecting tube 204 of the shell 2 of one of the dust separators 100 and the inlet tube 205 of the shell 2 of the other one of the dust separators 100, and a second connecting conduit 220 interconnecting the air pressure source 230 and the source-connecting tube 204 of the shell 2 of the other one of the dust separators 100.
In this embodiment, the pipeline 200 includes a first connecting conduit 221 interconnecting the source-connecting tube 204 of the shell 2 of one of the dust separators 100 and the flow control unit 250, a second connecting conduit 222 interconnecting the source-connecting tube 204 of the shell 2 of the other one of the dust separators 100 and the flow control unit 250, and a third connecting conduit 220 interconnecting the flow control unit 250 and the air pressure source 230. The flow control unit 250 is operative to control and direct fluid flow between the air pressure source 230 and each of the dust separators 100.
With the inclusion of the multi-cone unit 4 in the dust separator 100 of this invention, the aforesaid drawbacks associated with the prior art can be alleviated.
While the present invention has been described in connection with what are considered the most practical and preferred embodiments, it is understood that this invention is not limited to the disclosed embodiments but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation and equivalent arrangements.