This non-provisional application claims priority under 35 U.S.C. ยง 119(a) on Patent Application No(s). 109133914 filed in Taiwan, R.O.C. on Sep. 29, 2020, the entire contents of which are hereby incorporated by reference.
The present disclosure relates to stirring devices, and in particular to a nozzle flow stirring pipe for use with chemical barrels.
In industrial fields, such as semiconductor manufacturing and photoelectronic manufacturing, chemical solutions (including grinding solutions) are stored in chemical solution barrels. If the chemical solutions stored in the chemical solution barrels contain particles, are of high volume, or are predisposed to sedimentation, the chemical solutions must be continuously stirred to avoid sedimentation. In this regard, prior art involves mounting stirring devices on the chemical solution barrels and stirring the chemical solutions with external power, albeit ineffectively.
An objective of the present disclosure is to provide a nozzle flow stirring pipe with a view to addressing various issues confronting conventional stirring devices.
To achieve at least the above objective, the present disclosure provides a nozzle flow stirring pipe, comprising: a pipe body being cylindrical and comprising an inner pipe member and an outer pipe member, the inner pipe member having a liquid-extracting channel, the outer pipe member fitting around the inner pipe member, wherein a reflow channel is defined between an inner wall of the outer pipe member and an outer wall of the inner pipe member; and a nozzle disposed at an end of the pipe body and having a plurality of liquid-ejecting pores in communication with an end of the reflow channel, wherein the inner pipe member is penetratingly disposed at the nozzle.
Therefore, the nozzle flow stirring pipe and the external pump are connected to form a circulation stirring system. The inner pipe member and the outer pipe member are integrated into the pipe body to reduce the required space and enhance the ease of mounting the nozzle flow stirring pipe in the barrel and connecting the external pump to the nozzle flow stirring pipe. Owing to the nozzle and the liquid-ejecting pores, the effectiveness of stirring the liquid in the barrel is enhanced.
To facilitate understanding of the object, characteristics and effects of this present disclosure, embodiments together with the attached drawings for the detailed description of the present disclosure are provided.
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The nozzle 2 is disposed at one end of the pipe body 1. The inner pipe member 11 is penetratingly disposed at the nozzle 2 and exposed from below. The nozzle 2 has a plurality of liquid-ejecting pores 23, 24. The liquid-ejecting pores 23, 24 are in communication with one end of the reflow channel R2.
One end of the pipe body 1 is positioned distal to the nozzle 2 and connected to an external pump M. The external pump M generates a negative-pressure suction force under which the liquid at the bottom of the barrel T is drawn into a bottom liquid-extracting hole 111 disposed at the bottom of the inner pipe member 11 (the bottom of the inner pipe member 11 is connected to the end of the nozzle 2). The liquid thus drawn is delivered upward to the external pump M via the liquid-extracting channel R1 and then reflows to the nozzle flow stirring pipe 100 via the reflow channel R2. After that, the liquid is compressed within the liquid-ejecting pores 23, 24 and ejected under a liquid reflow pressure (which equals the sum of a pressure exerted by the external pump M and an inertia pressure), thereby distributing the liquid in the barrel T. Therefore, the nozzle flow stirring pipe 100 and the external pump M are connected, thereby forming a circulation stirring system. The inner pipe member 11 and the outer pipe member 12 are integrated into the pipe body 1 to reduce the required space and enhance the ease of mounting the nozzle flow stirring pipe 100 in the barrel T and connecting the external pump M to the nozzle flow stirring pipe 100. Owing to the nozzle 2 and the liquid-ejecting pores 23, 24, the effectiveness of stirring the liquid in the barrel T is further enhanced.
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Furthermore, in this embodiment, a thread 34 is disposed on a circumferential surface of an upper segment extending axially along the pump connector 3 (i.e., the upper part of the pump connector 3) and adapted to mesh with the external pump M. A thread 35 is disposed on a circumferential surface of a lower segment extending axially along the pump connector 3 (i.e., the lower part of the pump connector 3) and adapted to mesh with a cover Ti of a container (for example, the barrel T), but the abovementioned is not restrictive of how the pump connector 3 is connected to the external pump M and the barrel T according to the present disclosure. According to the present disclosure, the way the pump connector 3 is connected to the external pump M and the barrel T is adjustable in accordance with the structures of the external pump M and the barrel T.
Furthermore, in this embodiment, after the pump connector 3 has been fixed to the cover Ti by means of meshing or fastening, the pump connector 3 has a seal portion 36 which is tightly fitted to a flat surface of the cover Ti to prevent the liquid from leaking and render the liquid free from external pollution. At this point in time, the lower segment of the pump connector 3 is positioned in the barrel T, whereas the upper segment of the pump connector 3 lies outside the barrel T.
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Furthermore, in the second embodiment, the outer sidewall 222 has a plurality of rotational nozzle flow holes 27 which penetrate the outer sidewall 222 in a tangential direction of the inner sidewall 221 and thus are in communication with the annular channel R3 and the external space (in the barrel T). After being ejected in the tangential direction, the liquid inertially drives the outer sidewall 222 to rotate in the tangential direction. Therefore, the outer sidewall 222 rotates in the absence of any applied driving force, thereby enhancing the effectiveness of stirring.
While the present disclosure has been described by means of specific embodiments, numerous modifications and variations could be made thereto by those skilled in the art without departing from the scope and spirit of the present disclosure set forth in the claims.
Number | Date | Country | Kind |
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109133914 | Sep 2020 | TW | national |