Gas-liquid contactors, closed-circuit cooling towers, and liquid desiccant

The gas-liquid contactor design with inclined contact members and tubular tubes addresses inefficiencies in heat exchange and liquid residence time, improving cooling and dehumidification/humidification efficiency by enhancing heat transfer and reducing pump power.

JP7841338B2Active Publication Date: 2026-04-07KK TOYOTA CHUO KENKYUSHO
View PDF 10 Cites 0 Cited by

Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-05-02
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing gas-liquid contact devices face inefficiencies in heat exchange due to oblique honeycombs that cannot directly exchange heat with cylindrical heat transfer tubes, leading to reduced evaporation rates and increased pump losses, while flat fins result in short liquid desiccant residence time and insufficient heat exchange.

Method used

A gas-liquid contactor design with tubular heat transfer tubes and inclined, folded gas-liquid contact members that connect and transfer heat directly between tubes, enhancing heat exchange capacity and residence time, and using hydrophilic fibers for improved dispersibility.

Benefits of technology

The design improves heat exchange capacity, reduces pump power requirements, and enhances gas-liquid contact efficiency by promoting evaporation and extending residence time, allowing for efficient cooling and dehumidification/humidification processes.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007841338000001
    Figure 0007841338000001
  • Figure 0007841338000002
    Figure 0007841338000002
  • Figure 0007841338000003
    Figure 0007841338000003
Patent Text Reader

Abstract

To improve heat exchange capacity of a gas-liquid contactor.SOLUTION: A gas-liquid contactor includes: a first heat transfer pipe which has a tubular shape and forms a heat medium flow passage in an inside thereof so that a heat medium flows therethrough; a second heat transfer pipe which is arranged to be separated from the first heat transfer pipe in a vertical direction and a horizontal direction, has a tubular shape, and forms a heat medium flow passage in an inside thereof so that the heat medium flows therethrough; and a long first gas-liquid contact member. The first gas-liquid contact member is arranged to come into contact with an outer peripheral surface on a side opposite from an outer peripheral surface confronting the second heat transfer pipe of the first heat transfer pipe and to come into contact with an outer peripheral surface on a side opposite from an outer peripheral surface confronting the first heat transfer pipe of the second heat transfer pipe.SELECTED DRAWING: Figure 2
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0004] , , , , ,

[0006] , , , ,

[0005] , , , , , , , , ,

[0001] The present invention relates to a gas-liquid contactor, a closed cooling tower, and a liquid desiccant.

Background Art

[0002] There is known a gas-liquid contact device that sprays water from above a gas-liquid contact plate and sends air to the gas-liquid contact plate, and utilizes the heat of vaporization of water on the gas-liquid contact plate (see, for example, Patent Document 1). In the gas-liquid contact device described in Patent Document 1, water is sprayed and air is sent to an oblique honeycomb. The sprayed water flows on a sheet forming the oblique honeycomb.

[0003] Patent Document 2 describes a dehumidifying air conditioner using gas-liquid contact. In this device, heat transfer tubes through which a heat transfer fluid is conducted internally are arranged at intervals along the vertical direction, and a plurality of fins connect the spaced-apart heat transfer tubes. The plurality of fins have a flat plate shape parallel to the vertical direction and are arranged at intervals along the longitudinal axis of the heat transfer tubes.

Prior Art Documents

Patent Documents

[0004]

Patent Document 1

Patent Document 2

Summary of the Invention

Problems to be Solved by the Invention

[0005] Since the oblique honeycomb described in Patent Document 1 is separated from the cylindrical state through which the heat medium for heat exchange flows, it cannot directly perform heat exchange with the cylindrical state. Therefore, when water evaporates on the sheet of the oblique honeycomb, the temperature of the sheet drops, and the evaporation rate of the water on the sheet decreases. As a result, the improvement in efficiency by gas-liquid contact is limited.

[0006] In the apparatus described in Patent Document 2, although the fins are connected to the heat transfer tubes, heat exchange between the fins and the heat transfer tubes occurs only in the portion of the fins directly below the heat transfer tubes. As a result, heat exchange between the heat transfer tubes and the fins may not occur sufficiently, and the temperature change of the heat transfer medium passing through the heat transfer tubes may be suppressed. Furthermore, because the fins are flat and have surfaces parallel to the vertical direction, the liquid desiccant flows straight down vertically along the surface of the fins. As a result, the residence time of the liquid desiccant on the surface of the fins is short, and the reaction may not reach equilibrium. Consequently, the flow rate of the liquid desiccant supplied from above must be increased, leading to increased pump losses and sensible heat losses.

[0007] This invention was made to solve at least some of the problems described above, and aims to improve the heat exchange capacity of a gas-liquid contactor. [Means for solving the problem]

[0008] The present invention has been made to solve at least some of the above-mentioned problems and can be realized in the following forms. A gas-liquid contactor comprising: a first heat transfer tube having a tubular shape and forming a heat transfer medium channel through which a heat transfer medium flows; a second heat transfer tube having a tubular shape and forming a heat transfer medium channel through which a heat transfer medium flows, arranged at vertical and horizontal distances from the first heat transfer tube, respectively; and a long first gas-liquid contact member, wherein the first gas-liquid contact member is in contact with the outer surface of the first heat transfer tube opposite to the outer surface facing the second heat transfer tube, and is in contact with the outer surface of the second heat transfer tube opposite to the outer surface facing the first heat transfer tube, and is folded back and inclined along the outer surfaces of the first heat transfer tube and the second heat transfer tube. In addition, the present invention can also be realized in the following forms.

[0009] (1) According to one embodiment of the present invention, a gas-liquid contactor is provided. This gas-liquid contactor comprises a first heat transfer tube having a tubular shape and forming a heat transfer medium channel through which a heat transfer medium flows inside, a second heat transfer tube having a tubular shape and forming a heat transfer medium channel through which a heat transfer medium flows inside, and an elongated first gas-liquid contact member, wherein the first gas-liquid contact member has an outer circumferential surface of the first heat transfer tube facing the second heat transfer tube and It is in contact with the outer surface on the opposite side, and is positioned in contact with the outer surface of the second heat transfer tube that is opposite to the outer surface facing the first heat transfer tube.

[0010] In this configuration, the first heat transfer tube and the second heat transfer tube are positioned offset vertically and horizontally. The first gas-liquid contact member contacts the outer surface opposite to the surface where the first and second heat transfer tubes face each other, thus connecting the surface of the first heat transfer tube and the surface of the second heat transfer tube. As a result, the first gas-liquid contact member connects the first and second heat transfer tubes at an angle to the horizontal. When cooling water is supplied to the first gas-liquid contact member, the cooling water travels along the inclined first gas-liquid contact member and cools the first gas-liquid contact member by evaporating as it moves between the first and second heat transfer tubes. Because heat is directly transferred to the first and second heat transfer tubes via the first gas-liquid contact member, the heat transfer fluid flowing in the first heat transfer tube and the heat transfer fluid flowing in the second heat transfer tube are efficiently cooled by the evaporation of the cooling water, improving the heat exchange capacity of this configuration. Furthermore, because heat is directly transferred from the first gas-liquid contact member to the first and second heat transfer tubes, the temperature drop of the cooling water in the first gas-liquid contact member due to heat absorption by evaporation can be suppressed. As a result, the transition of the gas-liquid equilibrium of the cooling water due to temperature drop is suppressed, and the reactivity of the gas and liquid is improved. In addition, because the first gas-liquid contact member is inclined horizontally rather than parallel to the vertical, the residence time of the cooling water in the first gas-liquid contact member is increased. As a result, the gas-liquid contact efficiency is improved, the amount of cooling water used to spray on the first gas-liquid contact member can be reduced, and the pump power required to send the cooling water above the first gas-liquid contact member can be reduced. Since the evaporation of the cooling water can be promoted, the heat transfer medium can be cooled efficiently.

[0011] (2) In the gas-liquid contactor according to the above embodiment, the gas-liquid contactor further comprises a third heat transfer tube, which is spaced further apart horizontally from the first heat transfer tube than the second heat transfer tube, and which has a tubular shape and forms a heat transfer medium channel through which a heat transfer medium flows, and a long second gas-liquid contact member, wherein the second gas-liquid contact member is in contact with the outer surface of the third heat transfer tube that is opposite to the outer surface facing the first heat transfer tube, and is in contact with the outer surface of the second heat transfer tube that is opposite to the outer surface facing the third heat transfer tube. This configuration includes a second gas-liquid contact member in addition to the first gas-liquid contact member. The second gas-liquid contact member connects the surface of the third heat transfer tube and the surface of the second heat transfer tube because it is in contact with the outer surface of the third heat transfer tube opposite to the surface of the second heat transfer tube that the third and second heat transfer tubes face each other. The third heat transfer tube is positioned further apart horizontally from the first heat transfer tube than the second heat transfer tube. Therefore, the inclination between the first heat transfer tube and the second heat transfer tube, and the inclination between the third heat transfer tube and the second heat transfer tube, are inclined on opposite sides with respect to the vertical plane passing through the extension direction of the second heat transfer tube. As a result, in this gas-liquid contactor configuration, the gas-liquid contact rate can be further improved by forming a complex flow path for cooling water, etc., through the first gas-liquid contact member and the second gas-liquid contact member.

[0012] (3) In the gas-liquid contactor according to the above embodiment, a plurality of first gas-liquid contact members are arranged along the extension direction of the first heat transfer tube and the second heat transfer tube, a plurality of second gas-liquid contact members are arranged along the extension direction of the third heat transfer tube and the second heat transfer tube, and the first gas-liquid contact members and the second gas-liquid contact members may be arranged alternately along the extension direction. In this configuration, multiple first gas-liquid contact members and second gas-liquid contact members are arranged alternately along the extension direction of the first and second heat transfer tubes. As a result, the flow path for cooling water and the like is formed in a more complex manner, which can further improve the gas-liquid contact rate.

[0013] (4) In the gas-liquid contactor according to the above embodiment, the first gas-liquid contact member may be made of hydrophilic fibers. In this configuration, since the first gas-liquid contact member is made of hydrophilic fibers, the dispersibility of the cooling water is improved by capillary action.

[0014] (5) In the gas-liquid contactor according to the above embodiment, the first gas-liquid contact member is made of carbon fiber It may be formed. With this configuration, the first gas-liquid contact member is made of carbon fiber with high thermal conductivity, which further improves the heat exchange capacity between the first gas-liquid contact member and the first and second heat transfer tubes.

[0015] (6) According to another embodiment of the present invention, a closed-circuit cooling tower is provided. This closed-circuit cooling tower comprises a gas-liquid contactor as described above, a fan for blowing air toward the gas-liquid contactor or for discharging air from the gas-liquid contactor, a heat transfer medium flowing through the first heat transfer tube and the second heat transfer tube, a heat transfer medium flow path forming section that connects the first heat transfer tube and the second heat transfer tube and the object to be cooled by the closed-circuit cooling tower to form a heat transfer medium flow path through which the heat transfer medium flows, and a cooling water pump for transporting cooling water supplied to the first gas-liquid contact member to the vertically above the first gas-liquid contact member. In this configuration, cooling water is supplied to the first gas-liquid contact member by a cooling water pump, and the cooling water flowing through the first gas-liquid contact member is evaporated by the air blown by a fan. The heat absorbed by the evaporation of the cooling water cools the heat transfer medium flowing through the first and second heat transfer tubes connected to the first gas-liquid contact member. The cooled heat transfer medium flows through the heat transfer medium flow path formed by the heat transfer medium flow path forming section, cooling the object to be cooled. In this configuration, the heat exchange capacity of the gas-liquid contactor is high, so the object to be cooled can be cooled efficiently.

[0016] (7) According to another embodiment of the present invention, a liquid desiccant is supplied. This liquid desiccant is supplied to a dehumidifier having a gas-liquid contactor of the above embodiment, a regenerator having a gas-liquid contactor of the above embodiment, a liquid desiccant supplied to the first gas-liquid contact member of the dehumidifier and the first gas-liquid contact member of the regenerator, a circulation pump that circulates the liquid desiccant between the dehumidifier and the regenerator and transports it to the vertically above the first gas-liquid contact member of the dehumidifier and the first gas-liquid contact member of the regenerator, and a dehumidifier-side fan that blows air toward the gas-liquid contactor built into the dehumidifier or discharges air from the gas-liquid contactor. The regenerator comprises: a fan on the regenerator side that blows air toward or discharges air from the gas-liquid contactor built into the regenerator; a heat transfer medium that circulates between the first heat transfer tube and the second heat transfer tube of the dehumidifier and the first heat transfer tube and the second heat transfer tube of the regenerator; a heat pump that cools the heat transfer medium circulating between the first heat transfer tube and the second heat transfer tube of the dehumidifier and heats the heat transfer medium circulating between the first heat transfer tube and the second heat transfer tube of the regenerator; and a heat exchanger that performs heat exchange of the liquid humidity control agent between the dehumidifier and the regenerator. According to this configuration, a liquid desiccant is supplied to the first gas-liquid contact member incorporated in the dehumidifier and the regenerator by a circulation pump. The liquid desiccant passing through the first gas-liquid contact member in the dehumidifier is cooled by the heat medium flowing in the first heat transfer tube and the second heat transfer tube cooled by the heat pump, and is blown by the dehumidifier-side fan. As a result, the liquid desiccant in the dehumidifier adsorbs moisture in the air, and thus dehumidified air is supplied from the inside of the dehumidifier to the outside. On the other hand, the liquid desiccant passing through the first gas-liquid contact member in the regenerator is heated by the heat medium flowing in the first heat transfer tube and the second heat transfer tube heated by the heat pump, and is blown by the regenerator-side fan. As a result, the liquid desiccant in the regenerator desorbs moisture into the air, and thus humidified air is supplied from the inside of the regenerator to the outside. The liquid desiccant that has adsorbed the moisture discharged from the dehumidifier and the liquid desiccant that has desorbed the moisture discharged from the regenerator exchange heat with each other through a heat exchanger. As a result, the liquid desiccant sent from the dehumidifier side is heated by the regenerator to desorb moisture. On the other hand, the liquid desiccant sent from the regenerator side is cooled by the dehumidifier to adsorb moisture. In this configuration, by using a gas-liquid contactor with high heat exchange capacity, the transition of the gas-liquid equilibrium of the liquid desiccant passing through the first gas-liquid contact member of the dehumidifier and the regenerator is suppressed, so that dehumidification and humidification can be efficiently performed.

[0017] Note that the present invention can be realized in various modes. For example, it can be realized in the form of a gas-liquid contactor, a closed type cooling tower, a liquid desiccant, and a system including these devices.

Brief Description of the Drawings

[0018] [Figure 1] It is a schematic block diagram of a closed cooling tower including a gas-liquid contactor as an embodiment of the present invention. [Figure 2] It is an explanatory diagram of a gas-liquid contactor. [Figure 3] It is an explanatory diagram of a gas-liquid contactor. [Figure 4] It is an explanatory diagram of the cooling of the heat medium by a gas-liquid contactor. [Figure 5]It is a schematic cross-sectional view of a part of the gas-liquid contactor of the comparative example. [Figure 6] It is the verification condition of the heat exchange ability of the gas-liquid contactor between the present embodiment and the comparative example. [Figure 7] It is a schematic block diagram of a liquid decanter equipped with a gas-liquid contactor.

Mode for Carrying Out the Invention

[0019] <Embodiment> FIG. 1 is a schematic block diagram of a closed cooling tower 100 including a gas-liquid contactor 10 as an embodiment of the present invention. In the closed cooling tower 100 shown in FIG. 1, the heat medium 40 whose temperature has been increased by the heat source OB to be cooled is cooled by utilizing the latent heat of evaporation of the cooling water sprayed onto the gas-liquid contactor 10. In the gas-liquid contactor 10 of the present embodiment, a long gas-liquid contact member 11 having hydrophilicity is connected to a plurality of heat transfer tubes 12 having a tubular shape arranged separately in the vertical and horizontal directions, inclined with respect to the horizontal direction. Therefore, since the cooling water flows downward to the lower heat transfer tube 12 along the inclined gas-liquid contact member 11, the residence time of the cooling water on the gas-liquid contact member 11 becomes longer, and the gas-liquid contact rate is improved. Further, since the gas-liquid contact member 11 has hydrophilicity, the dispersibility of the cooling water is improved.

[0020] As shown in FIG. 1, the closed cooling tower 100 includes two gas-liquid contactors 10, a casing 60 incorporating the gas-liquid contactor 10, a fan 20 that sends air into the casing 60, a pump (cooling water pump) 50 that transports the cooling water 72 sprayed onto the gas-liquid contactor 10 upward in the vertical direction, a pipe 70, a heat medium 40 that circulates between the gas-liquid contactor 10 and the heat source (cooling target) OB, and a heat medium flow path forming section 30.

[0021] The fan 20 is positioned above the center of the casing 60 in the horizontal direction. The fan 20 draws outside air into the casing 60. Inside the casing 60, two gas-liquid contactors 10 are positioned spaced apart horizontally. The two gas-liquid contactors 10 are positioned symmetrically within the casing 60 with respect to the vertical direction passing through the fan 20 in the horizontal direction. The casing 60 has two vents 61 that connect the inside and outside of the casing 60. The two vents 61 are formed on the sides of the casing 60 at positions that are symmetrical with respect to the vertical direction passing through the fan 20, and at positions corresponding to the extension of the direction from the center of the fan 20 in the horizontal direction to the gas-liquid contactors 10. Therefore, the outside air drawn into the casing 60 by the fan 20 is directed towards the gas-liquid contactors 10 and flows out of the casing 60 through the vents 61.

[0022] The piping 70 forms a water channel 71 through which cooling water 72 circulates within the sealed cooling tower 100. Multiple sprinkler ports 73 are formed in the portion of the piping 70 located above the two gas-liquid contactors 10. Therefore, the cooling water 72 transported by the pump 50 to above the gas-liquid contactors 10 is sprinkled onto the gas-liquid contactors 10. The cooling water 72 that has passed through the gas-liquid contactors 10 and moved downwards is collected and transported again to above the gas-liquid contactors 10 by the pump 50. A portion of the cooling water 72 is released into the outside air by evaporation in the gas-liquid contactors 10. Therefore, in this embodiment, the cooling water 72 is supplied from outside the sealed cooling tower 100 as needed.

[0023] The heat medium flow path forming section 30 forms a heat medium flow path 31 through which the heat medium 40 flows between the heat source OB and the heat transfer tubes 12 of the gas-liquid contactor 10. The two gas-liquid contactors 10 have the same shape and structure. As shown in Figure 1, the gas-liquid contactor 10 comprises a plurality of heat transfer tubes 12 spaced apart in the horizontal and vertical directions, and a plurality of gas-liquid contact members 11 connecting the heat transfer tubes 12. The plurality of heat transfer tubes 12 are arranged in the same orientation such that the heat medium flow paths 12F formed inside the tubes, through which the heat medium 40 flows, face the same direction (Figure 1: Y-axis direction).

[0024] Figures 2 and 3 are explanatory diagrams of the gas-liquid contactor 10. Figure 2 shows a schematic perspective view of the gas-liquid contactor 10 to which cooling water 72 is sprayed. As shown in Figure 2, in the gas-liquid contactor 10 of this embodiment, a total of 35 heat transfer tubes 12 are arranged at equal intervals, in 5 rows along the horizontal direction and 7 rows along the vertical direction. Each heat transfer tube 12 is a straight pipe that extends along the direction of extension of the heat transfer tube 12 (Y-axis direction) which is perpendicular to the horizontal direction (X-axis direction) arranged in 5 rows and the vertical direction (Z-axis direction) arranged in 7 rows. The air sent to the gas-liquid contactor 10 by the fan 20 flows along the same flow direction DR as the positive X-axis direction. Although not shown, each heat transfer medium flow path 12F is connected to a heat transfer medium flow path 31 formed by the heat transfer medium flow path forming section 30. Furthermore, the orthogonal coordinate system CS shown in Figure 2, which consists of the X-axis, Y-axis, and Z-axis, corresponds to the orthogonal coordinate system CS shown in Figure 3 and subsequent figures.

[0025] One gas-liquid contact member 11 in this embodiment is formed of multiple carbon fibers, which are hydrophilic fibers, and has a sheet-like shape. As shown in Figure 2, the gas-liquid contact member 11 comprises 12 first gas-liquid contact members 111 and 12 second gas-liquid contact members 112. The first gas-liquid contact members 111 and the second gas-liquid contact members 112 are arranged alternately along the extension direction of the heat transfer tube 12. Specifically, starting from the negative Y-axis side, three first gas-liquid contact members 111 and three second gas-liquid contact members 112 are arranged alternately in layers. The three first gas-liquid contact members 111 form layers 2, 4, and 6, and the three second gas-liquid contact members 112 form layers 1, 3, and 5.

[0026] Each of the three first gas-liquid contact members 111 and the three second gas-liquid contact members 112, which are connected to the same heat transfer tube 12 and form three layers, has the same shape. The remaining nine first gas-liquid contact members 111 and the nine second gas-liquid contact members 112 have the same shape, although they are connected to different heat transfer tubes 12. Therefore, we will describe one first gas-liquid contact member 111 and one second gas-liquid contact member 112, and omit the descriptions of the other first gas-liquid contact members 111 and second gas-liquid contact members 112.

[0027] Figure 3 shows a schematic front view of the gas-liquid contactor 10. For illustrative purposes, each of the 35 heat transfer tubes 12 is numbered 1211-1215, 1221-1225, 1231-1235, 1241-1245, 1251-1255, 1261-1265, and 1271-1275, as shown in Figure 3.

[0028] As shown in Figure 3, the first gas-liquid contact member 111 connected to the heat transfer tube 1212 connects the heat transfer tubes 1212, 1221, 1232, 1241, 1252, 1261, and 1271 in order from vertically above. The first gas-liquid contact member 111 is in contact with the outer circumferential surface SF1 of the heat transfer tube 1221, which is opposite to the outer circumferential surface SF2 on the positive X-axis side facing the heat transfer tube 1232. The first gas-liquid contact member 111 is also in contact with the outer circumferential surface SF4 of the heat transfer tube 1232, which is opposite to the outer circumferential surface SF3 on the negative X-axis side facing the heat transfer tube 1221. Note that the outer circumferential surface SF1 of the heat transfer tube 1221 is shown by a thick solid line. Also, the outer circumferential surface SF3 of the heat transfer tube 1232 is shown by a thick solid line. The heat transfer tubes 1221 and 1232 are spaced apart in the vertical and horizontal directions, respectively. Therefore, the heat transfer tubes 1221 and 1232 are connected by the first gas-liquid contact member 111 at an angle θ in the horizontal direction. The first gas-liquid contact member 111 has a similar structure for each of the heat transfer tubes 1232, 1241, 1252, and 1261, and is folded back and inclined along its outer surface. Note that the heat transfer tube 1221 corresponds to the first heat transfer tube, and the heat transfer tube 1232 corresponds to the second heat transfer tube.

[0029] As shown in Figure 3, the second gas-liquid contact member 112 connected to the heat transfer tube 1212 connects the heat transfer tubes 1212, 1223, 1232, 1243, 1252, 1263, and 1272 in order from vertically above. The second gas-liquid contact member 112 is in contact with the outer circumferential surface SF6 of the heat transfer tube 1223, which is opposite to the outer circumferential surface SF5 on the negative X-axis side facing the heat transfer tube 1232. The second gas-liquid contact member 112 is also in contact with the outer circumferential surface SF4 of the heat transfer tube 1232, which is opposite to the outer circumferential surface on the positive X-axis side facing the heat transfer tube 1223. Note that the outer circumferential surface SF6 of the heat transfer tube 1223 is shown with a thick solid line. Similarly, the outer circumferential surface SF4 of the heat transfer tube 1232 is shown with a thick solid line. Outer surface SF3 and outer surface SF4 overlap in part on the negative Z-axis side. Heat transfer tubes 1223 and 1232 are spaced apart in the vertical and horizontal directions, respectively. Therefore, heat transfer tubes 1221 and 1232 are connected by the first gas-liquid contact member 111 at an angle θ in the horizontal direction. The second gas-liquid contact member 112 has a similar structure for each heat transfer tube 1232, 1243, 1252, and 1263, and is folded back and inclined along the outer surface. Furthermore, heat transfer tube 1223 is spaced further horizontally from heat transfer tube 1221, to which the first gas-liquid contact member 111 is connected, than heat transfer tube 1232. Therefore, the inclination angle that the second gas-liquid contact member 112 makes with the heat transfer tube 1232 is formed on the opposite side of the inclination angle that the first gas-liquid contact member 111 makes with the same heat transfer tube 1232, with reference to the vertical plane FL passing through the extension axis OL of the heat transfer tube 1232. In other words, the second gas-liquid contact member 112 is inclined with respect to the heat transfer tube 1232 by being folded back on the opposite side from the first gas-liquid contact member 111. Note that the heat transfer tube 1223 corresponds to the third heat transfer tube.

[0030] Figure 4 is an explanatory diagram of the cooling of the heat transfer medium 40 by the gas-liquid contactor 10. Figure 4 shows an image of the evaporation of cooling water 72 flowing through the gas-liquid contact member 11. For explanatory purposes, the gas-liquid contact member 11 shown in Figure 4 is shown with a different inclination angle than the gas-liquid contact member 11 shown in Figure 3. As shown in Figure 4, the cooling water 72 evaporates as it flows through the gas-liquid contact member 11, which is formed from bundles of multiple carbon fibers, and is blown by the fan 20. The heat of vaporization due to evaporation is transferred to the heat transfer tube 12 by heat conduction through the gas-liquid contact member 11, and the heat transfer medium 40 passing through the heat transfer tube 12 is cooled.

[0031] Figure 5 is a schematic cross-sectional view of a portion of the comparative example gas-liquid contactor 10x. In the comparative example gas-liquid contactor 10x, the gas-liquid contact member 11x is different from that of the gas-liquid contactor 10 of this embodiment. In the comparative example, the gas-liquid contact member 11x connects the heat transfer tubes 12 which are arranged vertically and is inclined at 90° with respect to the horizontal direction. The number of layers along the extension direction of the heat transfer tubes 12 in the comparative example (Figure 2) is 6 layers, the same as in the embodiment.

[0032] The heat exchange capacity of the gas-liquid contactor 10 of this embodiment and the gas-liquid contactor 10x of the comparative example was verified by simulation. Figure 6 shows the verification conditions for the heat exchange capacity of the gas-liquid contactor 10 of this embodiment and the comparative example. The ambient temperature shown in Figure 6 is the temperature outside the casing 60 (Figure 1). Humidity is the humidity of the air outside the casing 60. The dripping cooling water temperature is the temperature of the cooling water 72 sprayed onto the gas-liquid contactors 10 and 10x. The heat transfer medium temperature inside the heat transfer tubes is the temperature of the heat transfer medium 40 flowing inside each heat transfer tube 12. The wind speed is the speed of the wind sent into the casing 60 by the fan 20 (Figure 1). As a result of the verification, the heat exchange capacity of the gas-liquid contactor 10 of this embodiment was approximately 1.5 times that of the gas-liquid contactor 10x of the comparative example. In this embodiment, the temperature of the central part of the gas-liquid contact member 11 along the inclination direction. The temperature was lowest at the part in contact with the surface of the heat transfer tube 12, and the temperature was highest at that point.

[0033] As described above, the gas-liquid contactor 10 of this embodiment is equipped with a long first gas-liquid contact member 111. As shown in Figure 3, the first gas-liquid contact member 111 is in contact with the outer circumferential surface SF1 of the heat transfer tube 1221, which is opposite to the outer circumferential surface SF2 on the positive X-axis side facing the heat transfer tube 1232. The first gas-liquid contact member 111 is also in contact with the outer circumferential surface SF4 of the heat transfer tube 1232, which is opposite to the outer circumferential surface SF3 on the negative X-axis side facing the heat transfer tube 1221. The heat transfer tubes 1221 and 1232 are spaced apart in the vertical and horizontal directions, respectively. Therefore, the heat transfer tubes 1221 and 1232 are positioned offset from each other in the vertical and horizontal directions. The first gas-liquid contact member 111 is in contact with the outer surfaces SF1 and SF4 opposite to the outer surfaces SF2 and SF3 on which the heat transfer tubes 1221 and 1232 face each other, thus connecting the surface of the heat transfer tube 1221 and the surface of the heat transfer tube 1232. As a result, the first gas-liquid contact member 111 is inclined with respect to the horizontal direction to connect the heat transfer tubes 1221 and 1232. When cooling water 72 is sprayed onto the first gas-liquid contact member 111, the cooling water 72 travels along the inclined first gas-liquid contact member 111 and cools the first gas-liquid contact member 111 by evaporating as it moves between the heat transfer tubes 1221 and 1232. Heat is directly transferred to the heat transfer tubes 1221 and 1223 via the first gas-liquid contact member 111. Therefore, the heat transfer medium 40 flowing through the heat transfer tubes 1221 and 1232 is efficiently cooled by the evaporation of the cooling water 72, improving the heat exchange capacity of the gas-liquid contactor 10. In addition, because heat is directly transferred from the first gas-liquid contact member 111 to the heat transfer tubes 1221 and 1232, the temperature drop of the cooling water 72 in the first gas-liquid contact member 111 due to heat absorption by evaporation can be suppressed. As a result, the transition of gas-liquid equilibrium in the cooling water 72 due to temperature drop is suppressed, and the reactivity of the gas and liquid is improved. Furthermore, because the first gas-liquid contact member 111 is inclined horizontally rather than parallel to the vertical, the residence time of the cooling water 72 in the first gas-liquid contact member 111 is increased. As a result, the gas-liquid contact efficiency is improved, the amount of cooling water 72 used to spray onto the first gas-liquid contact member 111 can be reduced, and the power of the pump 50 for sending the cooling water 72 vertically upward to the first gas-liquid contact member 111 can be reduced.This promotes the evaporation of the cooling water 72, allowing for efficient cooling of the heat transfer medium 40.

[0034] Furthermore, as shown in Figure 3, the second gas-liquid contact member 112 of this embodiment is in contact with the outer peripheral surface SF6 of the heat transfer tube 1223, which is opposite to the outer peripheral surface SF5 on the negative X-axis side facing the heat transfer tube 1232. The second gas-liquid contact member 112 is also in contact with the outer peripheral surface SF3 of the heat transfer tube 1232, which is opposite to the outer peripheral surface SF4 on the positive X-axis side facing the heat transfer tube 1223. The heat transfer tubes 1223 and 1232 are spaced apart in the vertical and horizontal directions, respectively. The heat transfer tube 1223 is also spaced further apart horizontally from the heat transfer tube 1221 to which the first gas-liquid contact member 111 is connected than from the heat transfer tube 1232. The gas-liquid contactor 10 of this embodiment includes the second gas-liquid contact member 112 in addition to the first gas-liquid contact member 111. The second gas-liquid contact member 112 is in contact with the outer surfaces SF3 and SF6 on the opposite side of the outer surfaces SF4 and SF5 where the heat transfer tubes 1223 and 1232 face each other, thus connecting the surface of the heat transfer tube 1223 and the surface of the heat transfer tube 1232. The heat transfer tube 1223 is positioned further horizontally apart from the heat transfer tube 1221 and the heat transfer tube 1232. Therefore, the inclination between the heat transfer tube 1221 and the heat transfer tube 1232, and the inclination between the heat transfer tube 1223 and the heat transfer tube 1232, are inclined on opposite sides with respect to the vertical plane FL passing through the extension axis OL of the heat transfer tube 1232. As a result, in the gas-liquid contactor 10 of this embodiment, the gas-liquid contact rate can be further improved by forming a complex flow path for the cooling water 72 through the first gas-liquid contact member 111 and the second gas-liquid contact member 112.

[0035] Furthermore, the gas-liquid contact member 11 of this embodiment comprises 12 first gas-liquid contact members 111 and 12 second gas-liquid contact members 112. The first gas-liquid contact members 111 and the second gas-liquid contact members 112 are arranged alternately along the extension direction of the heat transfer tube 12. In this embodiment, Multiple first gas-liquid contact members 111 and second gas-liquid contact members 112 are arranged alternately along the extension direction of the heat transfer tubes 1221 and 1232. As a result, the flow path through which the cooling water 72 is transmitted is formed in a more complex manner, which can further improve the gas-liquid contact rate.

[0036] Furthermore, the gas-liquid contact member 11 in this embodiment is formed of multiple carbon fibers, which are hydrophilic fibers, and has a sheet-like shape. That is, because the gas-liquid contact member 11 is formed of hydrophilic fibers, the dispersibility of the cooling water 72 is improved by capillary action. In addition, because the gas-liquid contact member 11 is formed of carbon fibers with high thermal conductivity, the heat exchange capacity between the gas-liquid contact member 11 and each heat transfer tube 12 is further improved.

[0037] The sealed cooling tower 100 of this embodiment includes two gas-liquid contactors 10, a fan 20 that blows air into the casing 60, a pump 50 that transports cooling water 72 sprayed onto the gas-liquid contactors 10 vertically upward, a heat transfer medium 40 that circulates between the gas-liquid contactors 10 and the heat source OB, and a heat transfer medium flow path forming section 30. Therefore, the pump 50 supplies cooling water 72 to the gas-liquid contactors 11, and the cooling water 72 flowing through the gas-liquid contactors 11 evaporates due to the air blown by the fan 20. The heat absorption from the evaporation of the cooling water 72 cools the heat transfer medium 40 flowing through the heat transfer tubes 12 connected to the gas-liquid contactors 11. The cooled heat transfer medium 40 flows through the heat transfer medium flow path 31 and cools the heat source OB. In the sealed cooling tower 100 of this embodiment, the heat exchange capacity of the gas-liquid contactors 10 is high, so the heat source OB can be cooled efficiently.

[0038] <Second Embodiment> Figure 7 is a schematic block diagram of a liquid desiccant 500 equipped with a gas-liquid contactor 10. The liquid desiccant 500 shown in Figure 7 uses a liquid humidity control agent 110 that adsorbs water vapor when cooled and desorbs water vapor when heated, to perform dehumidification by a dehumidifier 200 and humidification by a regenerator 300.

[0039] As shown in Figure 7, the liquid desiccant 500 includes a dehumidifier 200 with a gas-liquid contactor 10, a regenerator 300 with a gas-liquid contactor 10, a liquid humidity control agent 110 supplied to the gas-liquid contactor 10, circulation pumps 51 and 52 for circulating the liquid humidity control agent 110, a heat transfer medium 40, a heat pump 120 for heating and cooling the heat transfer medium 40, a heat exchanger 130 for heat exchange of the liquid humidity control agent 110 between the dehumidifier 200 and the regenerator 300, a dehumidifier-side heat exchanger 140, and a regenerator-side heat exchanger 150.

[0040] The dehumidifier 200 and regenerator 300 each include the same gas-liquid contactor 10 as in the above embodiment, a casing 60 that houses the gas-liquid contactor 10, and a fan 20 that blows air into the casing 60. Instead of the cooling water 72 in the above embodiment, a liquid dehumidifying agent 110 is sprayed onto the gas-liquid contactor 10. In Figure 7, the circulation of the liquid dehumidifying agent 110 is shown by a solid line. On the dehumidifier 200 side, the liquid dehumidifying agent 110 cooled by the heat exchanger 130 and the dehumidifier-side heat exchanger 140 (for example, 20°C) circulates. On the regenerator 300 side, the liquid dehumidifying agent 110 heated by the heat exchanger 130 and the regenerator-side heat exchanger 150 (for example, 40°C) circulates. In Figure 7, the difference in temperature is shown by the thickness of the solid line representing the liquid dehumidifying agent 110. The fan 20 built into the dehumidifier 200 corresponds to the dehumidifier-side fan. The fan 20 built into the playback unit 300 corresponds to the playback unit's fan.

[0041] The circulation pump 51 circulates the liquid dehumidifier 110 discharged from the gas-liquid contactor 10 of the dehumidifier 200 to the regenerator 300, transporting it vertically upward to the gas-liquid contactor 10 of the regenerator 300. Meanwhile, the circulation pump 52 circulates the liquid dehumidifier 110 discharged from the gas-liquid contactor 10 of the regenerator 300 to the dehumidifier 200, transporting it vertically upward to the gas-liquid contactor 10 of the dehumidifier 200. The low-temperature liquid dehumidifier 110 sent from the circulation pump 51 and the liquid dehumidifier 110 sent from the circulation pump 52 undergo heat exchange by the heat exchanger 130.

[0042] The heat pump 120 cools the heat transfer medium 40 circulating on the dehumidifier 200 side and heats the heat transfer medium circulating on the regenerator 300 side. In Figure 7, the flow of the heat transfer medium 40 is shown by a dashed line. The dehumidifier-side heat exchanger 140 cools the liquid humidity control agent 110, which has been cooled by heat exchange in the heat exchanger 130, by exchanging heat with the heat transfer medium 40 cooled by the heat pump 120. The liquid humidity control agent 110, cooled by heat exchange in the dehumidifier-side heat exchanger 140, is sprayed onto the gas-liquid contactor 10 of the dehumidifier 200.

[0043] The regenerator-side heat exchanger 150 heats the liquid humidity control agent 110, which has been heated by heat exchange in the heat exchanger 130, by exchanging heat with the heat transfer medium 40, which has been heated by the heat pump 120. The liquid humidity control agent 110, heated by heat exchange in the regenerator-side heat exchanger 150, is sprayed onto the gas-liquid contactor 10 of the regenerator 300.

[0044] In the liquid desiccant 500 of the second embodiment, the liquid desiccant 110 comes into contact with the air drawn into the casing 60 by the fan 20 at the gas-liquid contact member 11 of the gas-liquid contactor 10. The liquid desiccant 110 in the dehumidifier 200 generates heat due to adsorption heat by adsorbing with water vapor in the air. The liquid desiccant 110, whose temperature has risen, is cooled by the heat transfer medium 40 passing through the heat transfer tube 12. On the other hand, the liquid desiccant 110 in the regenerator 300 is cooled due to desorption heat by adsorbing with water vapor in the air. The liquid desiccant 110, whose temperature has decreased, is heated by the heat transfer medium 40 passing through the heat transfer tube 12.

[0045] As described above, the liquid desiccant 500 of the second embodiment includes a dehumidifier 200 with a gas-liquid contactor 10, a regenerator 300 with a gas-liquid contactor 10, a liquid dehumidifying agent 110 supplied to the gas-liquid contactor 10, circulation pumps 51 and 52 for circulating the liquid dehumidifying agent 110, a heat transfer medium 40, a heat pump 120 for heating and cooling the heat transfer medium 40, and a heat exchanger 130 for heat exchange of the liquid dehumidifying agent 110 between the dehumidifier 200 and the regenerator 300. In the second embodiment, the liquid dehumidifying agent 110 is sprayed onto the gas-liquid contact members 11 built into the dehumidifier 200 and the regenerator 300 by the circulation pumps 51 and 52. The liquid dehumidifier 110 that travels along the gas-liquid contact member 11 in the dehumidifier 200 is cooled by the heat transfer medium 40 flowing through the heat transfer tube 12, which is cooled by the heat pump 120, and is also blown by the fan 20 on the dehumidifier 200 side. As a result, the liquid dehumidifier 110 in the dehumidifier 200 adsorbs moisture from the air sent into the casing 60, and dehumidified air is supplied from inside the dehumidifier 200 to the outside. On the other hand, the liquid dehumidifier 110 that travels along the gas-liquid contact member 11 in the regenerator 300 is heated by the heat transfer medium 40 flowing through the heat transfer tube 12, which is heated by the heat pump 120, and is also blown by the fan 20 on the regenerator 300 side. As a result, the liquid dehumidifier 110 in the regenerator 300 desorbs moisture from the air sent into the casing 60, and humidified air is supplied from inside the regenerator 300 to the outside. The liquid desiccant 110 that has adsorbed moisture discharged from the dehumidifier 200 and the liquid desiccant 110 that has desorbed moisture discharged from the regenerator 300 exchange heat via the heat exchanger 130. As a result, the liquid desiccant 110 sent from the dehumidifier 200 is heated by the regenerator 300 and has moisture desorbed. On the other hand, the liquid desiccant 110 sent from the regenerator 300 is cooled by the dehumidifier 200 and adsorbs moisture. In the liquid desiccant 500 of this embodiment, by using a gas-liquid contactor 10 with high heat exchange capacity, the transition of gas-liquid equilibrium of the liquid desiccant 110 transmitted through the gas-liquid contact member 11 of the dehumidifier 200 and the regenerator 300 is suppressed, thereby enabling efficient dehumidification and humidification.

[0046] <Modification of the above embodiment> The present invention is not limited to the embodiments described above, and can be implemented in various forms without departing from its spirit, for example, the following modifications are also possible.

[0047] The configuration and shape of the gas-liquid contactor 10 in the above embodiment are examples and are modifiable. The number, shape, and arrangement of the heat transfer tubes 12 that function as the first and second heat transfer tubes are modifiable. The number of rows arranged along the horizontal direction, the number of stages arranged along the vertical direction, and the number of layers arranged along the extension direction of the heat transfer tubes 12 shown in Figure 2 are modifiable. The shapes of the heat transfer tubes 12 may differ, and the shapes of the heat transfer medium flow paths 12F through which the heat transfer medium 40 in the heat transfer tubes 12 pass may differ. Multiple heat transfer tubes 12 do not necessarily have to be arranged at equal intervals in the vertical or horizontal direction. For example, multiple heat transfer tubes 12 may be arranged in a straight line at a predetermined angle with respect to the horizontal direction. Adjacent heat transfer tubes 12 do not have to be positioned along the vertical direction. The extension direction of each heat transfer tube 12 does not necessarily have to be parallel, and may be in a torsional relationship. The extension direction of the heat transfer tube 12 does not need to be straight, and it can be deformed within a range that allows the gas-liquid contact member 11 to be connected to its surface.

[0048] The number, shape, and arrangement of the gas-liquid contact members 11 are also deformable. The gas-liquid contact members 11 may consist only of a plurality of first gas-liquid contact members 111 of the same shape. The first gas-liquid contact members 111 and the second gas-liquid contact members 112 do not have to be arranged alternately along the extension direction of the heat transfer tube 12. The number of first gas-liquid contact members 111 and the second gas-liquid contact members 112 do not have to be the same, and their elongated widths along the extension direction may differ. The gas-liquid contact members 11 may include a third gas-liquid contact member that is different from both the first gas-liquid contact members 111 and the second gas-liquid contact members 112. The material of the first gas-liquid contact members 111 and the material of the second gas-liquid contact members 112 may be different. The gas-liquid contact members 11 may be made of a material that does not have hydrophilicity, and do not have to be made of a fibrous material.

[0049] The arrangement of the gas-liquid contactor 10, which is built into the sealed cooling tower 100 and the liquid desiccant 500, is flexible. For example, the gas-liquid contactor 10 may be positioned vertically below the fan 20 shown in Figure 1. The direction of the airflow that the fan 20 sends to the gas-liquid contactor 10 is also flexible. The fan 20 does not have to send air to the gas-liquid contactor 10 in the flow direction DR along the horizontal direction, as shown in Figure 2; for example, it may blow air in the direction of extension of the heat transfer tube 12 (Y-axis direction). The fan 20 may also discharge air from the gas-liquid contactor 10. Specifically, the fan 20 creates an airflow that discharges the air inside the casing 60 to the outside. As a result, air flows towards the gas-liquid contactor 10. The liquid humidity control agent 110 used in the liquid desiccant 500 can be made of a well-known material such as lithium chloride.

[0050] The embodiments of this specification have been described above based on the embodiments and modifications described above. The embodiments described above are for the purpose of facilitating understanding of this specification and do not limit it. This specification may be modified and improved without departing from its spirit and the scope of the claims, and equivalents thereof are included in this specification. Furthermore, any technical features that are not described as essential in this specification may be deleted as appropriate.

[0051] The present invention can also be realized in the following forms. [Application Example 1] A gas-liquid contactor, A first heat transfer tube having a tubular shape and forming a heat transfer medium channel through which a heat transfer medium flows, A second heat transfer tube is arranged at vertical and horizontal distances from the first heat transfer tube, and has a tubular shape, forming a heat transfer medium channel through which a heat transfer medium flows. A long, rectangular first gas-liquid contact member, Equipped with, A gas-liquid contactor in which the first gas-liquid contact member is in contact with the outer surface of the first heat transfer tube that is opposite to the outer surface facing the second heat transfer tube, and is also in contact with the outer surface of the second heat transfer tube that is opposite to the outer surface facing the first heat transfer tube. [Application Example 2] The gas-liquid contactor described in Application Example 1, further, A third heat transfer tube is positioned horizontally further apart from the first heat transfer tube than the second heat transfer tube, and has a tubular shape, forming a heat transfer medium channel through which a heat transfer medium flows. A long, rectangular second gas-liquid contact member, Equipped with, A gas-liquid contactor in which the second gas-liquid contact member is in contact with the outer surface of the third heat transfer tube that is opposite to the outer surface facing the first heat transfer tube, and is also in contact with the outer surface of the second heat transfer tube that is opposite to the outer surface facing the third heat transfer tube. [Application Example 3] A gas-liquid contactor as described in Application Example 1 or Application Example 2, Multiple first gas-liquid contact members are arranged along the extension direction of the first and second heat transfer tubes. Multiple second gas-liquid contact members are arranged along the extension direction of the third heat transfer tube and the second heat transfer tube. A gas-liquid contactor in which the first gas-liquid contact member and the second gas-liquid contact member are arranged alternately along the stretching direction. [Application Example 4] A gas-liquid contactor described in any one of Application Examples 1 to 3, The first gas-liquid contact member is formed of hydrophilic fibers, in a gas-liquid contactor. [Application Example 5] A gas-liquid contactor according to any one of Application Examples 1 to 4, The first gas-liquid contact member is a gas-liquid contactor made of carbon fiber. [Application Example 6] A closed-circuit cooling tower, A gas-liquid contactor described in any one of Application Examples 1 to 5, A fan that blows air toward the gas-liquid contactor or discharges air from the gas-liquid contactor, A heat transfer medium flowing through the first heat transfer tube and the second heat transfer tube, A heat transfer medium channel forming section connects the first heat transfer tube and the second heat transfer tube to the object to be cooled by the closed cooling tower, thereby forming a heat transfer medium channel through which the heat transfer medium flows, A closed-type cooling tower comprising: a cooling water pump for transporting cooling water supplied to the first gas-liquid contact member to the vertically above the first gas-liquid contact member. [Application Example 7] It is a liquid desiccant, A dehumidifier incorporating a gas-liquid contactor as described in any one of the application examples 1 to 6, A regenerator incorporating a gas-liquid contactor as described in any one of the application examples 1 to 6, A liquid dehumidifier supplied to the first gas-liquid contact member of the dehumidifier and the first gas-liquid contact member of the regenerator, A circulation pump circulates the liquid humidity control agent between the dehumidifier and the regenerator, transporting it to the vertically above the first gas-liquid contact member of the dehumidifier and the first gas-liquid contact member of the regenerator. A dehumidifier-side fan that blows air toward the gas-liquid contactor built into the dehumidifier, or discharges air from the gas-liquid contactor, A fan on the regenerator side that blows air toward the gas-liquid contactor built into the regenerator, or discharges air from the gas-liquid contactor, A heat transfer medium circulating between the first heat transfer tube and the second heat transfer tube of the dehumidifier and the first heat transfer tube and the second heat transfer tube of the regenerator, A heat pump that cools the heat transfer medium circulating in the first heat transfer tube and the second heat transfer tube of the dehumidifier, and heats the heat transfer medium circulating in the first heat transfer tube and the second heat transfer tube of the regenerator, A heat exchanger that performs heat exchange of the liquid humidity control agent between the dehumidifier and the regenerator, A liquid desiccant equipped with [a specific feature]. [Explanation of Symbols]

[0052] 10,10x…Gas-liquid contactor 11,11x…Gas-liquid contact member 12… Heat transfer tubes 12F… Heat transfer fluid channel 20...fan 30... Heat fluid channel forming section 31… Heat transfer fluid channel 40… Heat transfer fluid 50... Pump (cooling water pump) 51, 52… Circulation pumps 60…Casing 61...Ventilation opening 70... Piping 71…Waterway 72…Cooling water 73... Sprinkler nozzle 100...Closed cooling tower 110... Liquid humidity control agent 111...First gas-liquid contact member 112...Second gas-liquid contact member 120... Heat pump 130...Heat exchanger 140...Dehumidifier side heat exchanger 150…Regenerator side heat exchanger 200...Dehumidifier 300…Regenerator 500... Liquid desiccant 1211~1215, 1221~1225, 1231~1235, 1241~1245, 1251~1255, 1261~1265, 1271~1275… Heat transfer tubes CS… Cartesian coordinate system DR…Direction FL…Vertical surface OB... Heat source (object to be cooled) OL... Extension axis of a heat transfer tube SF1~SF6... Outer surface of heat transfer tubes

Claims

1. A gas-liquid contactor, A first heat transfer tube having a tubular shape and forming a heat transfer fluid channel through which a heat transfer fluid flows, A second heat transfer tube is arranged at vertical and horizontal distances from the first heat transfer tube, and has a tubular shape, forming a heat transfer medium channel through which a heat transfer medium flows. A long, rectangular first gas-liquid contact member, Equipped with, A gas-liquid contactor wherein the first gas-liquid contact member is positioned to contact the outer surface of the first heat transfer tube opposite to the outer surface facing the second heat transfer tube, and to contact the outer surface of the second heat transfer tube opposite to the outer surface facing the first heat transfer tube, and is folded back and inclined along the outer surfaces of the first heat transfer tube and the second heat transfer tube.

2. A gas-liquid contactor according to claim 1, further, A third heat transfer tube is positioned horizontally further apart from the first heat transfer tube than the second heat transfer tube, and has a tubular shape, forming a heat transfer medium channel through which a heat transfer medium flows. A long, rectangular second gas-liquid contact member, Equipped with, A gas-liquid contactor in which the second gas-liquid contact member is in contact with the outer surface of the third heat transfer tube that is opposite to the outer surface facing the first heat transfer tube, and is also in contact with the outer surface of the second heat transfer tube that is opposite to the outer surface facing the third heat transfer tube.

3. A gas-liquid contactor according to claim 2, Multiple first gas-liquid contact members are arranged along the extension direction of the first and second heat transfer tubes. Multiple second gas-liquid contact members are arranged along the extension direction of the third heat transfer tube and the second heat transfer tube. A gas-liquid contactor in which the first gas-liquid contact member and the second gas-liquid contact member are arranged alternately along the stretching direction.

4. A gas-liquid contactor according to any one of claims 1 to 3, The first gas-liquid contact member is formed of hydrophilic fibers, in a gas-liquid contactor.

5. A gas-liquid contactor according to claim 4, The first gas-liquid contact member is a gas-liquid contactor made of carbon fiber.

6. A closed-circuit cooling tower, A gas-liquid contactor according to any one of claims 1 to 3, A fan that blows air toward the gas-liquid contactor or discharges air from the gas-liquid contactor, A heat transfer medium flowing through the first heat transfer tube and the second heat transfer tube, A heat transfer medium channel forming section connects the first heat transfer tube and the second heat transfer tube to the object to be cooled by the closed cooling tower, thereby forming a heat transfer medium channel through which the heat transfer medium flows, A closed-type cooling tower comprising: a cooling water pump for transporting cooling water supplied to the first gas-liquid contact member to the vertically above the first gas-liquid contact member.

7. It is a liquid desiccant, A dehumidifier incorporating a gas-liquid contactor as described in any one of claims 1 to 3, A regenerator incorporating a gas-liquid contactor as described in any one of claims 1 to 3, A liquid dehumidifier supplied to the first gas-liquid contact member of the dehumidifier and the first gas-liquid contact member of the regenerator, The liquid humidity control agent is circulated between the dehumidifier and the regenerator, and is directed vertically upward between the first gas-liquid contact member of the dehumidifier and the first gas-liquid contact member of the regenerator. A circulating pump that transports and A dehumidifier-side fan that blows air toward the gas-liquid contactor built into the dehumidifier, or discharges air from the gas-liquid contactor, A fan on the regenerator side that blows air toward the gas-liquid contactor built into the regenerator, or discharges air from the gas-liquid contactor, A heat transfer medium circulating between the first heat transfer tube and the second heat transfer tube of the dehumidifier and the first heat transfer tube and the second heat transfer tube of the regenerator, A heat pump that cools the heat transfer medium circulating in the first heat transfer tube and the second heat transfer tube of the dehumidifier, and heats the heat transfer medium circulating in the first heat transfer tube and the second heat transfer tube of the regenerator, A heat exchanger that performs heat exchange of the liquid humidity control agent between the dehumidifier and the regenerator, A liquid desiccant equipped with [a specific feature].

Citation Information

Patent Citations

  • A gas intake system

    EP1923651A1

  • Thermal recording material

    JP1985046294A

  • Wet sealed heater

    JP1993180584A

  • Gas-liquid contact apparatus

    JP2003326102A

  • Gas-liquid contacting mechanism in apparatus for performing mass transfer or the like

    JP2010082617A