This application claims the benefits of Taiwan application Serial No. 111143352, filed on Nov. 14, 2022, the disclosures of which are incorporated by references herein in its entirety.
The present disclosure relates in general to a fluid pipeline dynamic energy improvement technology, and more particularly to a pressure difference generating apparatus that can meet a need of increasing dynamic energy in the pipeline to resolve a problem of insufficient dynamic energy in the pipeline system by utilizing the pressure difference formed by varying the fluid ate.
Taking the semiconductor manufacturing industry as an example, a vacuum pump is used to evacuate a semiconductor vacuum chamber and discharge the gas through a pipeline. In order to achieve energy saving of the pump, a common technical means used in the art is nothing more than using another auxiliary pump to generate a low vacuum, more than one check valve in combination with a nozzle-type vacuum generator, or another auxiliary pump in combination with a gas controller, so as to achieve the effect of pressure difference and avoid back pressure. However, obvious disadvantages include at least the increase of extra power consumption and cost.
Accordingly, how to achieve a “pressure difference generating device” with energy-saving effect is an urgent problem to be solved by people in the art.
In one embodiment of this disclosure, a pressure difference generating apparatus includes:
Further scope of applicability of the present application will become more apparent from the detailed description given hereinafter. However, it should be understood that the detailed description and specific examples, while indicating exemplary embodiments of the disclosure, are given by way of illustration only, since various changes and modifications within the spirit and scope of the disclosure will become apparent to those skilled in the art from this detailed description.
The present disclosure will become more fully understood from the detailed description given herein below and the accompanying drawings which are given by way of illustration only, and thus are not limitative of the present disclosure and wherein:
In the following detailed description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the disclosed embodiments. It will be apparent, however, that one or more embodiments may be practiced without these specific details. In other instances, well-known structures and devices are schematically shown in order to simplify the drawing.
Referring to
The first pipe 10 is defined with an axis C. As shown, the first pipe 10, constructed in parallel to the axis C, has oppositely a first inlet 11 and a first outlet 12 connected spatially to each other.
Referring to
Further, in this embodiment, a neck portion 23 provided between the second inlet 21 and the second outlet 22. An inner diameter ID23 of the neck portion 23 is less than each of inner diameters ID21, ID22 of the second inlet 21 and the second outlet 22, respectively. A conical inlet runner 24 parallel to the axis C is formed between the second inlet 21 and the neck portion 23, and the conical inlet runner 24 is tapered from the second inlet 21 to the neck portion 23. In addition, a conical outlet runner 25 parallel to the axis C is formed between the second outlet 22 and the neck portion 23, and the conical outlet runner 25 is tapered from the second outlet 22 to the neck portion 23.
Referring to
The first section 31, axially parallel to the axis C, is disposed inside the first pipe 10. One axial end of the first section 31 (the upper end in the figure) is formed to be a third conical outlet portion 33.
The second section 32 penetrates across the first pipe 10, and an axial end thereof extends out of the first pipe 10 to be defined as a third inlet 34.
Referring to
The third outlet 35 parallel to the axis C is protruded into the conical inlet runner 24C via the second inlet 21 so as to position the third outlet portion 33 inside the conical inlet runner 24.
Referring to
In this embodiment, the inner diameter ID30 of the third pipe 30 is 2˜3 times of the inner diameter ID35 of the third outlet 35. For example, in the case that the inner diameter ID35 of the third outlet 35 is equal to 2 mm, then the inner diameter ID30 of the third pipe 30 can be ranged within 4˜6 mm.
A length L33 of a portion of the third outlet portion 33 in parallel to the axis C is 4˜5 times of the inner diameter ID35 of the third outlet 35. For example, in the case that the inner diameter ID35 of the third outlet 35 is equal to 2 mm, then the length L33 can be within 8˜10 mm.
An angle θ2 within 3˜4° is formed between an inner sidewall 251 of the conical outlet runner 25 and the axis C.
In a direction parallel to the axis C, a distance D1 between the third outlet 35 and the neck portion 23 is less than the inner diameter ID35 of the third outlet 35.
Referring to
Referring to
Referring to
Referring to
It shall be noted that the length L23 in
Referring to
The type of the first fluid F1 is not limited. For example, the first fluid F1 can be one of nitrogen, inert gases and air. In addition, the type of the second fluid F2 is not limited. For example, the second fluid F2 can be one of dry air, nitrogen and argon.
In this embodiment, the first fluid F1 and the second fluid F2 are set to have different flow rates. For example, the flow rate of the first fluid F1 can be greater than or equal to 0 m/s, and the flow rate of the second fluid F2 is generated by a compressed gas having a pressure greater than or equal to 2 Kg-f/cm2 (0.196 MPa). However, the first fluid F1 and the second fluid F2 are not related in flow rate. If and only if the pressure (negative pressure) generated by the second fluid F2 is less than the pressure of the first fluid F1, then the target goal in energy saving can be achieved.
Since the first fluid F1 and the second fluid F2 provide different flow rates, thus a negative pressure would be formed between the third outlet portion 33 and the conical inlet runner 24 so as to provide a ring-shaped vacuum zone. Thereupon, part of the first fluid F1 can take the second inlet 21 to enter the conical inlet runner 24, the neck portion 23 and then the conical outlet runner 25, and the second fluid F2 flows out of the second pipe 20 via the second outlet 22, and then mixes the rest of the first pipe F1 to together flow out of the first pipe 10 via the first outlet 12 thereof.
Referring to
Referring to
It shall be explained that, as shown in
To sum up, in the differential pressure generating device provided in this disclosure, the requirement of increasing the fluid dynamic energy in the pipeline is satisfied by the pressure difference formed by varying the flow rates. Thereupon, the problem of insufficient fluid dynamic energy in the pipeline system can be solved, the pipeline back pressure and the exhaust resistance (pressure) can be reduced, and then the goal in saving energy can be achieved.
With respect to the above description then, it is to be realized that the optimum dimensional relationships for the parts of the disclosure, to include variations in size, materials, shape, form, function and manner of operation, assembly and use, are deemed readily apparent and obvious to one skilled in the art, and all equivalent relationships to those illustrated in the drawings and described in the specification are intended to be encompassed by the present disclosure.
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Number | Date | Country | |
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20240159250 A1 | May 2024 | US |