CYCLONE FOR SEPARATION OF GAS-LIQUID MIXTURE, AND A REFRIGERANT ACCUMULATOR CONTAINING THIS CYCLONE

20200047098 ยท 2020-02-13

    Inventors

    Cpc classification

    International classification

    Abstract

    The present solution provides a cyclone for separation of gas-liquid mixtures, particularly suitable for a refrigerant accumulator or an accumulator with an internal heat exchanger in a vehicle air conditioning system using carbon dioxide as refrigerant, including an inlet of the gas-liquid mixture and a body of the cyclone with an inlet chamber, an outlet chamber, and at least one stationary vane in the form of a helix to ensure rotation of the mixture in the cyclone outlet chamber, where the gas-liquid mixture inlet is arranged substantially coaxially with the axis of the cyclone and opens directly into the inlet chamber of the cyclone body. The solution further provides a refrigerant accumulator and an accumulator with an integrated internal heat exchanger which includes the cyclone according to the invention.

    Claims

    1. A cyclone for separation of a gas-liquid mixture, particularly suitable for a refrigerant accumulator or an accumulator with an internal heat exchanger in a vehicle air conditioning system with carbon dioxide as a refrigerant, the cyclone comprising: an inlet for the gas-liquid mixture and a body of the cyclone with an inlet chamber, an outlet chamber; and at least one stationary vane in a shape of a helix for ensuring rotation of the gas-liquid mixture in the outlet chamber, wherein the inlet is arranged substantially coaxially with an axis of the cyclone and opens directly into the inlet chamber of the body of the cyclone.

    2. The cyclone according to claim 1, wherein an outlet from the at least one stationary vane is oriented substantially perpendicular to the axis of the cyclone and tangentially to a diameter of the inlet chamber of the cyclone, and wherein the at least one stationary vane is flat at an outlet end thereof.

    3. The cyclone according to claim 1, wherein the cyclone separates gaseous carbon dioxide from liquid carbon dioxide and/or liquid oil in the refrigerant accumulator or the accumulator with the internal heat exchanger in the vehicle air conditioning system.

    4. The cyclone according to claim 1, further comprising a lid on the refrigerant accumulator or the accumulator with the internal heat exchanger, wherein the cyclone is on a side of the inlet chamber coaxially connected to the lid of the refrigerant accumulator or the accumulator with the internal heat exchanger, and the inlet for the gas-liquid mixture passes through the lid substantially coaxially with the lid and the axis of the cyclone, and opens into the inlet chamber.

    5. A refrigerant accumulator that contains a vessel comprising: a lid; a bottom; and a shell, wherein the lid is coaxially connected to the cyclone according to claim 1, wherein an assembly of suction pipes passes between the lid and the bottom to pipe away a gaseous refrigerant component, wherein a deflector is placed behind the outlet chamber, wherein a means for enriching the gaseous refrigerant component with a pre-determined amount of oil is provided at the bottom of the vessel, and wherein the assembly of suction pipes further comprises: an outer suction pipe for piping away the gaseous refrigerant component from the cyclone and the deflector to the means for enriching the gaseous refrigerant component with the pre-determined amount of oil; and an inner pipe for piping away the gaseous refrigerant component from the means for enriching the gaseous refrigerant component with the pre-determined amount of oil through the lid out of the accumulator, wherein the inlet passes through the lid substantially coaxially with the lid and the axis of the cyclone, and opens into the inlet chamber.

    6. An accumulator with an internal heat exchanger that contains an outer vessel comprising: a lid; a bottom; a shell; and an inner vessel, wherein the lid is coaxially connected to the cyclone according to claim 1, wherein an assembly of suction pipes passes between the lid and the bottom to pipe away the gaseous refrigerant component, wherein a deflector is placed behind the outlet chamber in the inner vessel, wherein a means for enriching the gaseous refrigerant component with a pre-determined amount of oil is provided at a bottom of the inner vessel, and wherein a heat exchanger is arranged between an outer wall of the inner vessel and an inner wall of the outer vessel, and wherein the assembly of suction pipes for piping away the gaseous refrigerant component further comprises: an outer suction pipe for piping away the gaseous refrigerant component from the cyclone and the deflector to the means for enriching the gaseous refrigerant component with the pre-determined amount of oil; and an inner pipe for piping away the gaseous refrigerant component from the means for enriching the gaseous refrigerant component with the pre-determined amount of oil through the lid into the outer vessel of the accumulator, wherein the inlet passes through the lid substantially coaxially with the lid and the axis of the cyclone, and opens into the inlet chamber.

    Description

    DESCRIPTION OF THE DRAWINGS

    [0022] The above and other objects, features and advantages of the present invention will be apparent from the following detailed description of the preferred embodiments of the invention in conjunction with the accompanying drawings, in which:

    [0023] FIG. 1 shows a cyclone with an axial inlet and a lid of the accumulator vessel of Example 1.

    [0024] FIG. 2 shows a cyclone with an axial inlet in the accumulator of Example 2.

    [0025] FIG. 3 shows a cyclone with an axial inlet in the accumulator with an internal heat exchanger of Example 3.

    [0026] FIG. 4A shows the efficiency of the axial inlet cyclone of Example 1.

    [0027] FIG. 4B shows the efficiency of a radial inlet cyclone.

    DETAILED DESCRIPTION OF THE INVENTION

    [0028] The description and drawings serve to enable one skilled in the art to make and use the invention, and are not intended to limit the scope of the invention in any manner. In respect of the methods disclosed, the order of the steps presented is exemplary in nature, and thus, is not necessary or critical.

    EXAMPLES

    Example 1

    [0029] FIG. 1 shows a cyclone with an axial inlet and a lid 110 of the accumulator for separating the liquid and gaseous components from the inlet mixture of the liquid and gaseous components. The cyclone comprises a cyclone body 1 with one stationary vane 22 in the form of a helix for causing the rotational movement of the inlet mixture, a cylindrical inlet chamber 2, and an outlet chamber 3 which widens gradually from the outlet of the vane 22.

    [0030] The cyclone is fitted on the lid 110 of the accumulator of heat exchange medium, and the inlet bore 4 in the lid 110 opens axially to the inlet chamber 2 substantially in the direction of the cyclone axis. The vane 22 in the form of a helix changes the direction of mixture flow so that the outlet at the end of the vane 22 transfers the mixture tangentially to the outlet chamber 3, in which part the mixture is already rotating and the separation of the liquid particles from the gas begins.

    [0031] Cyclone is usually made of plastic by injection moulding, or by other method using different material.

    Example 2

    [0032] FIG. 2 shows a refrigerant accumulator that contains a vessel comprising a lid 110, a bottom 8, and a shell 5, wherein the lid 110 is coaxially connected to the cyclone of the present invention. In the lid, there is an inlet bore 4 passing through the lid substantially coaxially with the axis of the lid 110 and cyclone. The inlet bore 4 brings the mixture of liquid and gas through the axial inlet 44 to the inlet chamber 2 of the cyclone. An assembly of suction pipes 71, 72 passes between the lid 110 and the bottom 8 of the vessel to pipe away the gaseous refrigerant component. A deflector 6 is situated behind the cyclone outlet chamber 3, wherein the means for enriching the gaseous refrigerant with a pre-determined amount of oil are situated at the bottom 8 of the vessel (such means are disclosed, for example, in US 2015/0345844). The assembly of suction pipes 71, 72 to pipe away the gaseous refrigerant component comprises an outer suction pipe 71 for piping away the gaseous refrigerant component from the cyclone and deflector 6 to the means for enriching the gaseous refrigerant with oil and an inner pipe 72 for piping away the gaseous refrigerant component from the means for enriching the gaseous refrigerant with oil through the lid 110 out of the accumulator. In the vessel of the accumulator, the liquid refrigerant component and the oil accumulate.

    [0033] In the accumulator, the outlet of the liquid phase from the cyclone opens into the vessel of the accumulator for collecting the liquid phase, wherein the liquid phase separation takes place due to the rotation imparted by the cyclone vane 22 on the outer edge of the deflector 6 integrated with the assembly of suction pipes 71, 72, where the gaseous phase is piped away by the outer suction pipe 71 to be enriched with a defined amount of oil at the bottom of the vessel and then by the inner suction pipe 72 through the lid 110 of the vessel further to the air conditioning circuit.

    Example 3

    [0034] FIG. 3 shows an accumulator with integrated internal heat exchanger that contains an outer vessel comprising a lid 110, a bottom 8, and a shell 55, and an inner vessel 54, wherein the lid 110 is coaxially connected to the cyclone of the present invention. The gas-liquid mixture passes through the lid 110 through a bore 4 substantially coaxially with the axis of the lid 110 and cyclone and axially enters the inlet chamber of the cyclone body 1; between the vessel lid 110 and bottom 8, an assembly of suction pipes 71, 72 passes to pipe away the gaseous refrigerant component; a deflector 6 is located behind the cyclone outlet chamber in the inner vessel 54. In the bottom of the inner vessel 54 there are means for enriching the gaseous refrigerant with a pre-determined amount of oil. A heat exchanger in the form of a helically guided tube 9 is provided between the outer wall of the inner vessel 54 and the inner wall of the shell 55 of the outer vessel through which the refrigerant passes from the warmer area of the air conditioning circuit. The suction pipe assembly for piping away the gaseous refrigerant component comprises an outer suction pipe 71 for piping away the gaseous refrigerant component from the cyclone and deflector 6 to the means for enriching the gaseous refrigerant with oil and an inner pipe 72 for piping away the gaseous refrigerant component from means for enriching the gaseous refrigerant with oil through the lid 110 into the accumulator outer vessel, where heat exchange may occur between the refrigerant medium and the second heat exchange medium, and then through an outlet 81 in the bottom 8 of the vessel. In the inner vessel 54, the liquid refrigerant component and the oil accumulate.

    [0035] In the accumulator with an internal heat exchanger, the outlet of the liquid phase from the cyclone opens into the inner vessel 54 (canister) performing the function of the accumulator for collecting the liquid phase, where the liquid phase separation takes place on the outer edge of the deflector 6 and the gaseous phase is piped away by the assembly of suction pipes 71, 72; wherein the gaseous phase is delivered by the outer suction pipe 71 to be enriched with a defined amount of oil at the bottom of the vessel 54 and then by the inner suction pipe 72 through the lid 110 of the vessel into an internal heat exchanger 9 located in the outer vessel it is piped away through the gas filter and the bottom 8 of the vessel further into the air conditioning circuit.

    [0036] FIG. 4 shows that the cyclone efficiency remains comparable to that of the radial inlet cyclone.