EJECTOR AND REFRIGERATION SYSTEM HAVING THE SAME
20240393022 ยท 2024-11-28
Inventors
Cpc classification
F25B2341/0012
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An ejector comprises: a housing having a first chamber and a second chamber, the first chamber having a first inlet for introducing high-pressure fluid and a second inlet for introducing low-pressure fluid, and the second chamber is sequentially provided with a reducing section, a mixing section, and an expanding section along the direction of fluid movement; a nozzle installed in the first chamber of the housing and is only capable of moving along the axis direction of the first chamber of the housing; a magnetic rotating mechanism, comprising an outer ring and an inner ring, the inner ring is rotatably connected to the second end of the nozzle.
Claims
1. An ejector, comprising: a housing having a first chamber and a second chamber, wherein the first chamber is provided with a first inlet for introducing high-pressure fluid and a second inlet for introducing low-pressure fluid, and the second chamber is sequentially provided with a reducing section, a mixing section, and an expanding section along a direction of fluid movement; a nozzle installed in the first chamber of the housing and is only capable of moving along an axis direction of the first chamber of the housing, wherein the nozzle has a first end and a second end, the first end of the nozzle extends into the reducing section of the second chamber, the nozzle has a hollow structure for maintaining fluid communication with the first inlet, and the second inlet is located outside an outlet of the first end of the nozzle; a magnetic rotating mechanism, comprising an outer ring and an inner ring concentrically arranged on an inner side of the outer ring, where the outer ring and the inner ring are installed at the housing in a rotatable manner around an axis of the first chamber of the housing, wherein the inner ring is rotatably connected to the second end of the nozzle, an outer surface of the inner ring and an inner surface of the outer ring are respectively provided with magnets with opposite magnetic properties and the same quantity, and an extending portion for sealing is provided between the inner ring and the outer ring, where the extending portion is fixedly connected to the housing; and a guiding mechanism arranged between the housing and the nozzle to prevent the nozzle from rotating around the axis of the first chamber of the housing; wherein, when the outer ring of the magnetic rotating mechanism rotates, a magnetic field between the inner ring and the outer ring changes, and the inner ring rotates under action of magnetic force, thereby driving the nozzle to move along the axis direction of the first chamber of the housing.
2. The ejector according to claim 1, wherein the guiding mechanism comprises: a sliding groove arranged on a sidewall of the first chamber and extending along the axis direction of the first chamber; a sliding body capable of moving along the sliding groove; and a recess arranged on an outer sidewall of the nozzle to partially accommodate the sliding body, wherein a shape of the recess matches a shape of a portion of the sliding body extending into the recess.
3. The ejector according to claim 2, wherein the sliding body is a ball, the recess has a hemispherical concave surface that matches the ball, and the sliding groove has a semi-circular cross-section; or the sliding body is a square block, the recess is a square groove that matches the block, and the sliding groove has a square cross-section; or the sliding body is a cylinder, the recess is a cylindrical groove that matches the cylinder, and the sliding groove has a semi-circular cross-section.
4. The ejector according to claim 1, wherein the inner surface of the outer ring is provided with first magnets and second magnets that are alternately connected in sequence, where magnetic property of the first magnets is opposite to that of the second magnets, and quantity of the first magnets and that of the second magnets are the same, which are at least two, respectively; and the outer surface of the inner ring is provided with third magnets and fourth magnets that are alternately connected in sequence, where magnetic property of the third magnets is opposite to that of the fourth magnets, and quantity of the third magnets and that of the fourth magnet are the same, which are at least two, respectively.
5. The ejector according to claim 4, wherein the first magnets and the second magnets are fixed on the inner surface of the outer ring by bonding, riveting, or threaded connection, and the third magnets and the fourth magnets are fixed on the outer surface of the inner ring by bonding, riveting, or threaded connection.
6. The ejector according to claim 4, wherein the first magnet and the second magnet have the same size and shape, and the third magnet and the fourth magnet have the same size and shape.
7. The ejector according to claim 1, wherein the housing comprises a body and an end cover, the extending portion is detachably fixed to a body of the housing or is integrally formed with the body of the housing, and the extending portion is detachably fixed to the end cover of the housing.
8. The ejector according to claim 1, wherein the extending portion is provided with a sealant.
9. The ejector according to claim 1, wherein first retaining rings are respectively provided on both sides of the outer ring, where the first retaining ring comprises: a first annular body arranged between the outer ring and the housing; and a plurality of first balls fixed on the first annular body in a rotatable manner; and second retaining rings are respectively provided on both sides of the inner ring, where the second retaining ring comprises: a second annular body arranged between the inner ring and the housing; and a plurality of second balls fixed on the second annular body in a rotatable manner.
10. The ejector according to claim 1, wherein the outer ring and the inner ring are made of aluminum alloy or magnesium alloy; and/or the housing is made of copper; and/or the nozzle is made of stainless steel.
11. The ejector according to claim 1, wherein the outer surface of the outer ring is provided with a gear, and the outer ring is maintained in transmission connection with an external motor through the gear.
12. The ejector according to claim 1, wherein the nozzle is provided with four openings for introducing high-pressure fluid, where the four openings are uniformly distributed around a circumference of the nozzle.
13. The ejector according to claim 1, wherein the hollow structure of the nozzle has a reducing section and an expanding section near the first end.
14. The ejector according to claim 1, wherein the inner ring is in threaded connection with the second end of the nozzle.
15. A refrigeration system, wherein the refrigeration system is configured with an ejector according to claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0032] The technical solution of the present invention will be described in further detail below in conjunction with the accompanying drawings and embodiments. However, it should be noted that these drawings are only designed for explanatory purposes and are intended to conceptually illustrate the structure described herein, without the need to be drawn proportionally.
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DETAILED DESCRIPTION OF EMBODIMENT(S) OF THE INVENTION
[0048] The content of the present invention and the differences between the present invention and the prior art can be understood by referring to the accompanying drawings and the text. The technical solution of the present invention will be described in further detail below through the accompanying drawings and by enumerating some optional embodiments of the present invention. The same or similar reference numerals in the drawings represent the same or similar components.
[0049] It should be noted that any technical features or solutions in the embodiments are one or several of multiple optional technical features or technical solutions. For brevity, it is neither possible to exhaustively enumerate herein all alternative technical features and technical solutions of the present invention, nor is it possible to emphasize that the implementation mode of each technical feature is one of the optional multiple implementation modes. Therefore, those skilled in the art should be aware that any technical means provided by the present invention can be substituted, or any two or more technical means or technical features provided by the present invention can be combined with each other to obtain a new technical solution.
[0050] Any technical feature or technical solution within the embodiments does not limit the scope of protection of the present invention. The scope of protection of the present invention should include any alternative technical solutions that those skilled in the art can think of without creative labor, as well as any new technical solutions obtained by those skilled in the art by combining any two or more technical means or technical features provided by the present invention.
[0051] Those skilled in the art are aware that the ejector uses the Venturi effect to increase the pressure energy of the fluid at the inlet of the ejector by virtue of the dynamic fluid supplied to the dynamic inlet of the ejector. As a result, the ejector can be arranged in the refrigeration system to cause the refrigerant to do work. For example, the ejector is configured to use high-pressure refrigerant from the condenser to inject low-pressure refrigerant from the evaporator and mix them into a medium pressure gas-liquid two-phase refrigerant.
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[0053] As can be clearly seen from
[0054] When the outer ring 310 of the magnetic rotating mechanism 300 rotates when driven by an external motor, the magnetic field between the outer ring 310 and the inner ring 320 changes, so the inner ring 320 rotates together with the outer ring 310 under the magnetic force of the magnet. Driven by the inner ring 320, the nozzle 200 generates relative motion simultaneously, and is capable of only moving forward and backward along the axis direction of the first chamber 111 under the action of the guiding mechanism 400. During this period, the distance L from the first end 210 of the nozzle 200 to the inlet of the mixing section 112b of the second chamber 112 changes to cover operating conditions under various pressures. Specifically, when the compressor operates under high-pressure conditions, the L value should be large to ensure that the high-pressure fluid and low-pressure fluid can be fully mixed. Whereas, when the compressor operates under low-pressure conditions, the L value should be small to ensure subsequent pressure rise. In short, the distance L from the first end 210 of the nozzle 200 to the inlet of the mixing section 112b of the second chamber 112 can be adjusted with changes in pressure. This can improve the operational efficiency of the ejector, further reduce the power consumption of the compressor, and thus improve the operational efficiency of the entire refrigeration system.
[0055] Referring to
[0056] The specific structure of the magnetic rotating mechanism 300 is described in detail below in conjunction with
[0057] In the aforementioned magnetic rotating mechanism 300, first retaining rings 330 are respectively provided on both sides of the outer ring 310 to prevent the outer ring 310 from moving axially, and to constrain the outer ring 310 radially, so that the outer ring 310 can only rotate around its axis. As shown in
[0058] As an example, the outer ring 310 and the inner ring 320 can be made of aluminum alloy or magnesium alloy. In addition, the housing 100 can be made of non-magnetic materials such as copper. In addition, the nozzle 200 can be made of stainless steel to prevent cavitation from occurring.
[0059] Referring again to
[0060] In the embodiment shown in
[0061] In summary, the ejector of the present invention has a simple structure, low cost, and high reliability. By adjusting the position of the nozzle, the distance between the end outlet of the nozzle and the mixing chamber changes, thereby achieving optimal position adjustment under different operating conditions and ensuring system stability.
[0062] In addition, the present invention also provides a refrigeration system configured with the aforementioned ejector. The refrigeration system comprises a cooling tower, a chiller unit, a pumping device, etc., connected by pipelines, wherein the chiller unit is composed of components such as a compressor, a condenser, a throttling device, and an evaporator. As mentioned earlier, the aforementioned ejector can meet the needs of the compressor under various pressure conditions, further reducing the power consumption of the compressor and thereby improving the operational efficiency of the entire refrigeration system. Therefore, it is highly recommended to apply the aforementioned ejector to various refrigeration systems.
[0063] If terms such as first and second are used herein to limit components, those skilled in the art should be aware that the use of first and second is only for the convenience of describing and distinguishing components. Unless otherwise stated, the above terms do not have any special meanings.
[0064] In addition, as to the terms used to indicate positional relationships or shapes in any of the technical solutions disclosed in the present invention, unless otherwise stated, the implications thereof include states or shapes that are approximate, similar, or close to them. Any component provided by the present invention can be either assembled from multiple individual components or manufactured as a separate component using an integration process.
[0065] If terms such as center, longitudinal, transverse, front, back, left, right, vertical, horizontal, top, bottom, inside, outside, etc. are used in the depiction of the present invention, the orientations or positional relationships indicated by the above terms are based on the orientations or positional relationships shown in the drawings. These terms are used merely for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device, mechanism, component or element referred to must have a specific orientation, be constructed and operated in a specific orientation, so they cannot be understood as forming limitations on the scope of protection of the present invention.
[0066] Last, it should be noted that the above embodiments are only used to illustrate the technical solution of the present invention but not to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art, however, should understand that the specific embodiments of the present invention can still be modified or some technical features can be equivalently substituted. Without departing from the spirit of the technical solution of the present invention, all of these modified embodiments or technical features used for equivalent substitution should fall within the scope of the claimed technical solution of the present invention.