Absorber unit for absorption chiller, heat exchange unit, and absorption chiller

By setting a dropping device in the low-pressure side absorber of the absorption refrigerator and adjusting the arrangement of the heat exchange tubes, the problem of the absorbed liquid being blown away by the gas-phase refrigerant when it flows down is solved, and the heat exchange efficiency and refrigerator performance are improved.

JP7675375B2Active Publication Date: 2025-05-13PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO LTD
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Patent Information

Application Number
JP2021070480
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-04-19
Publication Date
2025-05-13
Estimated Expiration
2041-04-19

AI Technical Summary

Technical Problem

In the low-pressure side absorber of the absorption refrigerator, the absorbed liquid is easily blown away by the gas-phase refrigerant when it flows down, resulting in the heat exchange tube not being wet by the absorbed liquid, thereby reducing the heat exchange efficiency of the absorber.

Method used

By providing the first and second dropping devices in the first and second sets of heat exchange tubes of the absorber, the absorbed droplets are lowered onto the heat exchange tubes, and by adjusting the arrangement of adjacent heat exchange tubes, it is ensured that the shortest distance between adjacent pipes of the first set of heat exchange tubes is greater than the corresponding distance of the second set of heat exchange tubes, so as to reduce the flow rate of the gas-phase refrigerant, thereby preventing the absorbed liquid from being blown away.

Benefits of technology

It effectively prevents the absorbed liquid from being blown away by the gas-phase refrigerant when it flows down, ensuring that the heat exchange tube is wet by the absorbed liquid, thereby improving the heat exchange efficiency of the absorber and the overall performance of the refrigerator.

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Abstract

To provide an absorber unit for an absorption type refrigerator that is advantageous from a viewpoint of suppressing a state in which a heat transfer pipe does not get wet with an absorbent.SOLUTION: An absorber unit 1a is equipped with a first absorber 13a and a second absorber 13b. The first absorber 13a is equipped with a first heat transfer pipe group 11a, and a first dropping unit 12a. The second absorber 13b is equipped with a second heat transfer pipe group 11b, and a second dropping unit 12b. The first heat transfer group 11a has a first end portion 11m, and the second heat transfer pipe group 11b has a second end portion 11n. At the first end portion 11m and the second end portion 11n, the shortest distance D1 is larger than the shortest distance D2. The shortest distance D1 is the shortest distance in a gravity direction of outer surfaces of a specific pair of heat transfer pipes 10 adjacent to each other at the first end portion 11m. The shortest distance D2 is the shortest distance in a gravity direction of outer surfaces of a pair of heat transfer pipes 10 forming steps corresponding to the specific pair of heat transfer pipes 10 at the second end portion 11n.SELECTED DRAWING: Figure 1
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Description

[Technical field]

[0001] The present disclosure relates to an absorber unit for an absorption chiller, a heat exchange unit, and an absorption chiller. [Background technology]

[0002] Conventionally, absorption chillers are known. For example, Patent Document 1 describes an absorption heat pump device. This absorption heat pump device has an evaporator, an absorber, a condenser, a high-temperature regenerator, and a low-temperature regenerator. The evaporator and absorber are configured in a two-stage evaporation absorption structure in which the evaporator and absorber are each provided in two stages. The evaporator is divided into a first evaporator (high-stage evaporator) and a second evaporator (low-stage evaporator) by a partition.

[0003] The absorber is divided into a first absorber (high-stage absorber) and a second absorber (low-stage absorber) by a partition. A solution spraying device is provided at this partition to collect the solution that has flowed down the second absorber and spray it to the first absorber. The first evaporator and the first absorber are connected to each other via an eliminator so that refrigerant vapor flows through them, and the second evaporator and the second absorber are also connected to each other so that refrigerant vapor flows through an eliminator.

[0004] The concentrated solution concentrated in the high-temperature regenerator and the low-temperature regenerator is sprayed from a solution spraying device installed at the top of the second absorber, and absorbs the refrigerant vapor evaporated in the second evaporator while flowing down the second absorber. The hot water flowing in the absorber is heated by the heat of absorption. The solution that has absorbed the refrigerant vapor and become less concentrated is collected in a solution spraying device installed in the partition and sprayed into the first absorber. This sprayed solution absorbs the refrigerant vapor evaporated in the first evaporator while flowing down the first absorber, and heats the hot water flowing in the absorber with the heat of absorption. The dilute solution that has absorbed the refrigerant vapor and become even more diluted is temporarily stored at the bottom of the first absorber and then sent to the high-temperature regenerator and the low-temperature regenerator. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] JP 2012-202589 A Summary of the Invention [Problem to be solved by the invention]

[0006] The present disclosure provides an absorber unit for an absorption chiller, which is advantageous from the viewpoint of suppressing a state in which heat transfer tubes are not wetted with an absorbing liquid while including a plurality of absorbers. [Means for solving the problem]

[0007] The absorber unit for an absorption type refrigerator according to the present disclosure comprises: a first absorber including a first heat transfer tube group including a plurality of heat transfer tubes arranged in a plurality of rows and a plurality of columns, and a first dripper dripping an absorbing liquid toward the first heat transfer tube group, and a gas-phase refrigerant supplied to one end of the first heat transfer tube group in the row direction is absorbed in the absorbing liquid dripped by the first dripper; a second heat transfer tube group including a plurality of heat transfer tubes arranged in a plurality of rows and a plurality of stages; and a second dripper that drips an absorbing liquid toward the second heat transfer tube group, and a second absorber that absorbs a gas-phase refrigerant supplied to one end of the second heat transfer tube group in the row direction into the absorbing liquid dripped by the second dripper, The absorption liquid that has been dropped by the first dripper and flowed down through the first heat transfer tube group is supplied to the second absorber and then dripped by the second dripper, The absorption liquid that has been dropped by the second dropper and flowed down the second heat transfer tube group is discharged to the outside of the second absorber, the first heat transfer tube group has a first end portion including the heat transfer tubes forming the plurality of stages at one end in a row direction of the first heat transfer tube group, the second heat transfer tube group has a second end portion including the heat transfer tubes forming the plurality of stages at the one end in the row direction of the second heat transfer tube group, The shortest distance in the direction of gravity between the outer surfaces of a particular pair of adjacent heat transfer tubes at the first end is greater than the shortest distance in the direction of gravity between the outer surfaces of a pair of heat transfer tubes that form a step corresponding to the particular pair of heat transfer tubes at the second end. Effect of the Invention

[0008] According to the evaporator unit for an absorption refrigerator of the present disclosure, the shortest distance in the direction of gravity between the outer surfaces of a specific pair of heat transfer tubes is relatively large, so that the flow rate of the gas-phase refrigerant passing between the outer surfaces of the specific pair of heat transfer tubes is unlikely to increase, and therefore, when the absorbing liquid flows down the first heat transfer tube group, the gas-phase refrigerant is unlikely to blow away the absorbing liquid, and it is possible to suppress a state in which the heat transfer tubes of the first heat transfer tube group are not wetted with the absorbing liquid. [Brief description of the drawings]

[0009] [Figure 1] FIG. 1 is a diagram showing a heat exchange unit according to a first embodiment. [Diagram 2] FIG. 1 shows an absorption chiller according to a second embodiment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0010] (Findings on which this disclosure is based) At the time when the inventors came up with the idea of ​​the present disclosure, an absorption chiller having a two-stage evaporation absorption structure in which an evaporator and an absorber are each provided in two stages was known. With such an absorption chiller, it is considered possible to reduce the amount of circulating absorption liquid because the difference between the concentration of the concentrated absorption liquid and the concentration of the absorption liquid reduced by absorbing the gas-phase refrigerant becomes large. As a result, it is considered that the efficiency of heat exchange in the absorber is likely to be high, and the absorption chiller is likely to exhibit a high COP.

[0011] On the other hand, in the technical field of absorption refrigeration machines, due to the size constraints of the shell that houses the heat exchanger such as the absorber, the arrangement of the heat transfer tubes of the low-pressure side absorber and the high-pressure side absorber has generally been designed in the same way. Under such circumstances, the inventors came up with the idea of ​​increasing the density of the heat output from the absorber and reducing the size of the absorber unit by utilizing the large difference between the concentration of the concentrated absorbing liquid and the concentration of the absorbing liquid that has been reduced by absorbing the gas-phase refrigerant. The inventors discovered that when trying to realize this idea, there is a problem in that when the absorbing liquid flows down the heat transfer tube group of the low-pressure side absorber, the absorbing liquid is blown away by the gas-phase refrigerant, and the heat transfer tube is likely to be not wetted with the absorbing liquid. If a state occurs in which the heat transfer tube in the absorber is not wetted with the absorbing liquid, the efficiency of heat exchange in the absorber is significantly reduced.

[0012] Consider an absorber unit configured such that a concentrated absorbing liquid is supplied to a low-pressure side absorber, and the absorbing liquid whose concentration has been reduced by absorbing the gas-phase refrigerant is discharged from a high-pressure side absorber. In this absorber unit, the logarithmic mean temperature difference (LMTD) in the low-pressure side absorber is greater than the LMTD in the high-pressure side absorber. Each LMTD is determined by the temperature of the absorbing liquid flowing down the heat transfer tube group and the temperature of the heat medium flowing inside the heat transfer tubes in the heat transfer tube group. If the logarithmic mean temperature difference (LMTD) in the low-pressure side absorber is greater than the LMTD in the high-pressure side absorber, the amount of gas-phase refrigerant absorbed by the absorbing liquid around the heat transfer tubes in the heat transfer tube group of the low-pressure side absorber tends to increase. Therefore, the mass flow rate of the gas-phase refrigerant around the heat transfer tubes in the low-pressure side absorber tends to increase. In addition, since the pressure in the low-pressure side absorber is lower than the pressure in the high-pressure side absorber, the density of the gas-phase refrigerant absorbed by the absorbing liquid in the low-pressure side absorber is lower than the density of the gas-phase refrigerant absorbed by the absorbing liquid in the high-pressure side absorber. For this reason, the volumetric flow rate of the gas phase refrigerant is likely to be large around a specific heat transfer tube in the low-pressure side absorber. As a result, the flow velocity of the gas phase refrigerant flowing through the heat transfer tube group of the low-pressure absorber becomes high, and the absorbing liquid is likely to be blown away by the gas phase refrigerant when it flows down the heat transfer tube group in the low-pressure side absorber, which may cause the above-mentioned problem. In order to solve this problem, the inventors have come to constitute the subject of the present disclosure.

[0013] Therefore, the present disclosure provides an absorber unit for an absorption chiller, which is advantageous from the viewpoint of suppressing a state in which the heat transfer tubes are not wetted with the absorbing liquid while including a plurality of absorbers.

[0014] Hereinafter, the embodiments will be described in detail with reference to the drawings. However, more detailed explanation than necessary may be omitted. For example, detailed explanation of already well-known matters or duplicate explanation of substantially the same configuration may be omitted. This is to avoid the following explanation from becoming more redundant than necessary and to facilitate understanding by those skilled in the art. Note that the accompanying drawings and the following description are provided to enable those skilled in the art to fully understand the present disclosure, and are not intended to limit the subject matter described in the claims.

[0015] (Embodiment 1) Hereinafter, the first embodiment will be described with reference to Fig. 1. In the attached drawing, the negative direction of the Z axis is the direction of gravity. The X axis, the Y axis, and the Z axis are perpendicular to each other.

[0016] [1-1. Configuration] As shown in FIG. 1, the absorber unit 1a for an absorption type refrigerator includes a first absorber 13a and a second absorber 13b. Each of the first absorber 13a and the second absorber 13b is, for example, a shell-and-tube heat exchanger. The first absorber 13a includes a first heat transfer tube group 11a and a first dripper 12a. The first heat transfer tube group 11a includes heat transfer tubes 10 arranged in a plurality of stages and rows. The first dripper 12a drips the absorbing liquid toward the first heat transfer tube group 11a. The first absorber 13a absorbs the gas-phase refrigerant supplied to one end of the row direction of the first heat transfer tube group 11a into the absorbing liquid dripped by the first dripper 12a. The second absorber 13b includes a second heat transfer tube group 11b and a second dripper 12b. The second heat transfer tube group 11b includes heat transfer tubes 10 arranged in a plurality of stages and rows. The second dripper 12b drips the absorbing liquid toward the second heat transfer tube group 11b. The second absorber 13b absorbs the gas phase refrigerant supplied to one end of the second heat transfer tube group 11b in the column direction into the absorbing liquid dripped by the second dripper 12b. The absorbing liquid dripped by the first dripper 12a and flowing down the first heat transfer tube group 11a is supplied to the second absorber 13b and then dripped by the second dripper 12b. The absorbing liquid dripped by the second dripper 12b and flowing down the second heat transfer tube group 11b is discharged to the outside of the second absorber 13b.

[0017] The first heat transfer tube group 11a has a first end 11m. The first end 11m includes heat transfer tubes 10 that form multiple stages at one end in the row direction of the first heat transfer tube group 11a. The second heat transfer tube group 11b has a second end 11n. The second end 11n includes heat transfer tubes 10 that form multiple stages at one end in the row direction of the second heat transfer tube group 11b. As shown in FIG. 1, at the first end 11m and the second end 11n, the shortest distance D1 is greater than the shortest distance D2. The shortest distance D1 is the shortest distance in the direction of gravity between the outer surfaces of a specific pair of heat transfer tubes 10 adjacent to each other at the first end 11m. The shortest distance D2 is the shortest distance in the direction of gravity between the outer surfaces of a pair of heat transfer tubes 10 that form a stage corresponding to the specific pair of heat transfer tubes 10 at the second end 11n. The corresponding stages refer to stages that are equal in number from the top stage.

[0018] As long as the shortest distance D1 is greater than the shortest distance D2, the ratio of the shortest distance D1 to the shortest distance D2 is not limited to a specific value, and the ratio may be, for example, 1.5 to 2.5, or may be 1.5 to 2.0.

[0019] The arrangement of the first absorber 13a and the second absorber 13b in the absorber unit 1a is not limited to a specific embodiment. For example, as shown in Fig. 1, the first absorber 13a is arranged in the upper stage of the absorber unit 1a with respect to the direction of gravity, and the second absorber 13b is arranged in the lower stage of the absorber unit 1a.

[0020] The position of the specific pair of heat transfer tubes 10 having the shortest distance D1 at the first end 11m is not limited to a specific position as long as the specific pair of heat transfer tubes 10 are adjacent to each other at the first end 11m. As shown in FIG. 1, for example, the specific pair of heat transfer tubes 10 having the shortest distance D1 includes a heat transfer tube 10 arranged above the center of the stage number reference of the first end 11m. For example, when the number of stages of the first end 11m is 2n or 2n+1, at least one of the specific pair of heat transfer tubes 10 having the shortest distance D1 includes any one of the heat transfer tubes 10 from the top stage to the nth stage of the first end 11m. n is an integer of 1 or more.

[0021] As shown in FIG. 1, a particular pair of heat transfer tubes 10 having the shortest distance D1 includes, for example, the uppermost heat transfer tube 10 at the first end 11m.

[0022] As long as the shortest distance D1 is greater than the shortest distance D2, the shortest distance between the outer surfaces of the adjacent heat transfer tubes 10 at each of the first end 11m and the second end 11n in the direction of gravity is not limited to a specific value. As shown in FIG. 1, for example, the plurality of heat transfer tubes 10 are arranged at equal intervals in the direction of gravity at the first end 11m. In addition, the plurality of heat transfer tubes are arranged at equal intervals in the direction of gravity at the second end 11n. The shortest distance between the outer surfaces of the adjacent heat transfer tubes 10 at the first end 11m in the direction of gravity is greater than the shortest distance between the outer surfaces of the adjacent heat transfer tubes 10 at the second end 11m in the direction of gravity. The plurality of heat transfer tubes 10 may be arranged at different intervals in the direction of gravity at the first end 11m, and the plurality of heat transfer tubes 10 may be arranged at different intervals in the direction of gravity at the second end 11n. In this specification, the interval between the heat transfer tubes 10 means the shortest distance between the outer surfaces of the heat transfer tubes 10 in the direction of gravity.

[0023] As long as the shortest distance D1 is greater than the shortest distance D2, the shortest distance in the direction of gravity between the outer surfaces of adjacent heat transfer tubes 10 in each of the first heat transfer tube group 11a and the second heat transfer tube group 11b is not limited to a specific value. As shown in Fig. 1, for example, the first heat transfer tube group 11a has a plurality of heat transfer tubes 10 arranged at equal intervals in the direction of gravity. In addition, the second heat transfer tube group 11b has a plurality of heat transfer tubes 10 arranged at equal intervals in the direction of gravity. The shortest distance in the direction of gravity between the outer surfaces of adjacent heat transfer tubes 10 in the same row of the first heat transfer tube group 11a is greater than the shortest distance in the direction of gravity between the outer surfaces of adjacent heat transfer tubes 10 in the same row of the second heat transfer tube group.

[0024] In the first heat transfer tube group 11a and the second heat transfer tube group 11b, the heat transfer tubes 10 are arranged, for example, parallel to each other and form a plurality of stages in the gravity direction. In the first heat transfer tube group 11a and the second heat transfer tube group 11b, the heat transfer tubes 10 are arranged, for example, to form a square lattice, a rectangular lattice, or a parallelogram lattice in a plane (ZY plane) perpendicular to the longitudinal direction of the heat transfer tubes 10. The heat transfer tubes 10 are, for example, tubes made of copper or stainless steel. A groove may be formed on the inner or outer surface of the heat transfer tube 10. The dimensions and shapes of the heat transfer tubes 10 in each of the first heat transfer tube group 11a and the second heat transfer tube group 11b may be the same. Each of the first heat transfer tube group 11a and the second heat transfer tube group 11b may include a plurality of types of heat transfer tubes 10 having different dimensions or shapes.

[0025] Each of the first dropper 12a and the second dropper 12b is not limited to a specific configuration as long as it can drop the absorbing liquid. Each of the first dropper 12a and the second dropper 12b can be produced, for example, by welding parts obtained by pressing a stainless steel thin plate.

[0026] As shown in Fig. 1, for example, a heat exchange unit 5a including an absorber unit 1a and an evaporator unit 2 can be provided. The evaporator unit 2 includes a first evaporator 23a and a second evaporator 23b. The first evaporator 23a generates a gas-phase refrigerant to be supplied to the first absorber 13a. The second evaporator 23b generates a gas-phase refrigerant to be supplied to the second absorber 13b.

[0027] The first evaporator 23a generates a gas-phase refrigerant by heat exchange between the liquid-phase refrigerant and the heat medium. In addition, the second evaporator 23b generates a gas-phase refrigerant by heat exchange between the liquid-phase refrigerant and the heat medium. The temperature of the heat medium supplied to the second evaporator 23b is higher than the temperature of the heat medium discharged from the first evaporator 23a during the steady operation of the heat exchange unit 5a.

[0028] The arrangement of the first evaporator 23a and the second evaporator 23b in the evaporator unit 2 is not limited to a specific embodiment. For example, as shown in Fig. 1, the first evaporator 23a is arranged in an upper stage of the evaporator unit 2, and the second evaporator 23b is arranged in a lower stage of the evaporator unit 2, based on the direction of gravity.

[0029] The heat exchange unit 5a is filled with a refrigerant and an absorbing liquid. The refrigerant is, for example, a fluorocarbon refrigerant such as hydrofluorocarbon (HFC) or a natural refrigerant such as water and ammonia. The absorbing liquid is, for example, a lithium bromide aqueous solution or an ionic fluid.

[0030] 1, the heat exchange unit 5a includes, for example, a shell 30. The shell 30 has heat insulating properties and pressure resistance. A liquid-phase refrigerant and an absorption liquid are stored inside the shell 30. In addition, the gas-phase refrigerant inside the shell 30 is isolated from outside air such as air at atmospheric pressure.

[0031] Each of the first evaporator 23a and the second evaporator 23b is, for example, a shell-and-tube heat exchanger. For example, when a refrigerant such as water whose saturated vapor pressure at room temperature (20°C±15°C) is negative is used, the water level head of the liquid-phase refrigerant is likely to have a large effect on the evaporation pressure in a liquid-filled shell-and-tube heat exchanger. For this reason, when a refrigerant such as water is used, it is advantageous that each of the first evaporator 23a and the second evaporator 23b is a spray or sprinkle shell-and-tube heat exchanger.

[0032] As shown in FIG. 1, the first evaporator 23a includes, for example, a third heat transfer tube group 21a and a third dripper 22a. The second evaporator 23b includes, for example, a fourth heat transfer tube group 21b and a fourth dripper 22b. Each of the third heat transfer tube group 21a and the fourth heat transfer tube group 21b includes heat transfer tubes 20 arranged in multiple stages and multiple rows. In each of the third heat transfer tube group 21a and the fourth heat transfer tube group 21b, the heat transfer tubes 20 are arranged, for example, parallel to each other and form multiple stages in the gravity direction. In each of the third heat transfer tube group 21a and the fourth heat transfer tube group 21b, the heat transfer tubes 20 are arranged, for example, to form a square lattice, a rectangular lattice, or a parallelogram lattice in a plane (ZY plane) perpendicular to the longitudinal direction of the heat transfer tubes 20. The heat transfer tubes 20 are, for example, copper or stainless steel tubes. The heat transfer tube 20 may have grooves formed on its inner or outer surface.

[0033] The third dripper 22a drips the liquid-phase refrigerant toward the third heat transfer tube group 21a. The fourth dripper 22b drips the liquid-phase refrigerant toward the fourth heat transfer tube group 21b. Each of the third dripper 22a and the fourth dripper 22b is not limited to a specific configuration as long as it can drip the absorption liquid. Each of the third dripper 22a and the fourth dripper 22b can be manufactured, for example, by welding parts obtained by pressing a stainless steel thin plate.

[0034] 1, the heat exchange unit 5a further includes a first supply path 16, a discharge path 17, and a pump 18. The first supply path 16 is a path for supplying the absorbing liquid to the absorber unit 1a. The first supply path 16 is formed of, for example, a pipe having thermal insulation and pressure resistance.

[0035] The discharge path 17 is a path for discharging the absorbing liquid from the absorber unit 1a. The discharge path 17 is formed of, for example, a pipe having thermal insulation properties and pressure resistance.

[0036] The pump 18 is disposed, for example, in the discharge passage 17. The pump 18 is, for example, a velocity-type canned pump. When the pump 18 is operated, the absorbing liquid stored in the absorber unit 1a is pumped and passes through the discharge passage 17.

[0037] 1, the heat exchange unit 5a further includes a second supply path 26, a circulation path 27, and a pump 28. The second supply path 26 is a path that supplies a liquid-phase refrigerant to the inside of the evaporator unit 2. The second supply path 26 is connected to, for example, the second evaporator 23b. The second supply path 26 is formed of, for example, a pipe having thermal insulation and pressure resistance.

[0038] The circulation path 27 is connected to, for example, the second evaporator 23b. The circulation path 27 is formed of, for example, a pipe having thermal insulation and pressure resistance.

[0039] The pump 28 pumps the liquid-phase refrigerant stored in the second evaporator 23b and passes it through the circulation path 27. The pump 28 is, for example, a velocity-type canned pump. As shown in Fig. 1, the pump 28 is, for example, disposed in the circulation path 27. By operation of the pump 28, the liquid-phase refrigerant stored in the second evaporator 23b passes through the circulation path 27 and is guided to the third dripper 22a of the first evaporator 23a.

[0040] As shown in FIG. 1, the heat exchange unit 5a further includes, for example, a first eliminator 31, a second eliminator 32, a first vapor passage 33, and a second vapor passage 34. The first vapor passage 33 is a passage that guides the gas-phase refrigerant generated in the first evaporator 23a to the first absorber 13a. The first vapor passage 33 connects the inside of the first evaporator 23a to the inside of the first absorber 13a. The second vapor passage 34 is a passage that guides the gas-phase refrigerant generated in the second evaporator 23b to the second absorber 13b. The second vapor passage 34 connects the inside of the second evaporator 23b to the inside of the second absorber 13b. The first vapor passage 33 and the second vapor passage 34 are formed of a metal material such as steel so as to have heat insulation and pressure resistance.

[0041] Each of the first eliminator 31 and the second eliminator 32 is a gas-liquid separator, and suppresses droplets of the liquid-phase refrigerant in the evaporator unit 2 from being dragged by the flow of the gas-phase refrigerant and carried to the absorber unit 1a. The first eliminator 31 is disposed in the first vapor flow path 33. The second eliminator 32 is disposed in the second vapor flow path 34. Each of the first eliminator 31 and the second eliminator 32 can be produced, for example, by welding parts obtained by pressing a stainless steel thin plate.

[0042] [1-2. Operation] The operation and function of the heat exchange unit 5a configured as above will be described below with reference to FIG.

[0043] When the heat exchange unit 5a is left for a specific period such as overnight, the temperature inside the heat exchange unit 5a is almost uniform at room temperature, and the pressure inside the heat exchange unit 5a is also uniform. For example, when the room temperature is 25°C, the inside of the heat exchange unit 5a is also uniform at 25°C. When the heat exchange unit 5a is in use, a heat medium such as water that has absorbed heat from the outside of the heat exchange unit 5a flows inside the heat transfer tubes 20 of the third heat transfer tube group 21a and the fourth heat transfer tube group 21b. This heat medium flows into the fourth heat transfer tube group 21b at, for example, 12°C, passes through the fourth heat transfer tube group 21b, and then flows into the third heat transfer tube group 21a. Meanwhile, a heat medium such as water that has dissipated heat to the outside of the heat exchange unit 5a flows inside the heat transfer tubes 10 of the first heat transfer tube group 11a and the second heat transfer tube group 11b in the absorber unit 1a. This heat medium flows into the second heat transfer tube group 11b at, for example, 32°C.

[0044] When the heat exchange unit 5a is started to be used, first, the liquid-phase refrigerant stored in the second evaporator 23b is sucked into the pump 28, and the liquid-phase refrigerant passes through the circulation path 16 and is supplied to the third dripper 22a. As a result, the liquid-phase refrigerant is dripped from the third dripper 22a toward the third heat transfer tube group 21a. The liquid-phase refrigerant dripped toward the third heat transfer tube group 21a forms a liquid film on the outer surface of the heat transfer tube 20 and flows down. During the period when the liquid-phase refrigerant flows down the outer surface of the heat transfer tube 20, the liquid-phase refrigerant absorbs heat from the heat medium such as water flowing through the heat transfer tube 20 and evaporates, generating a gas-phase refrigerant. The liquid-phase refrigerant that has not been completely evaporated is supplied to the fourth dripper 22b. The liquid-phase refrigerant supplied to the fourth dripper 22b is dripped from the fourth dripper 22b toward the fourth heat transfer tube group 21b. The liquid-phase refrigerant dropped toward the fourth heat transfer tube group 21b flows down while forming a liquid film on the outer surface of the heat transfer tube 20. While the liquid-phase refrigerant flows down the outer surface of the heat transfer tube 20, the liquid-phase refrigerant absorbs heat from the heat medium, such as water, flowing through the heat transfer tube 20 and evaporates, generating gas-phase refrigerant. The liquid-phase refrigerant that has not been completely evaporated is stored in the lower part of the shell 30.

[0045] Next, the absorbing liquid is supplied to the absorber unit 1a through the first supply passage 16. The temperature and solute concentration of the absorbing liquid supplied to the absorber unit 1a are, for example, about 50°C and 63 mass%, respectively. The absorbing liquid supplied to the absorber unit 1a is stored in the first dripper 12a and dripped toward the first heat transfer tube group 11a. The dripped absorbing liquid absorbs the gas phase refrigerant generated in the first evaporator 23a while flowing down the outer surface of the heat transfer tube 10 in the first heat transfer tube group 11a. As a result, the absorbing liquid with a reduced solute concentration is stored in the second dripper 12b. The temperature and solute concentration of the absorbing liquid stored in the second dripper 12b are, for example, about 44°C and 59 mass%, respectively. The absorbing liquid stored in the second dripper 12b is dripped toward the second heat transfer tube group 11b. The dropped absorption liquid absorbs the gas-phase refrigerant generated in the second evaporator 23b while flowing down the outer surfaces of the heat transfer tubes in the second heat transfer tube group 11b. As a result, the absorption liquid with a further reduced solute concentration is stored in the lower part of the shell 30. The absorption liquid stored in the lower part of the shell 30 is discharged to the outside of the absorber unit 1a through the discharge path 17 by the operation of the pump 18. The temperature and solute concentration of the discharged absorption liquid are, for example, about 37°C and 55 mass%, respectively.

[0046] When the absorbing liquid flows down the outer surface of the heat transfer tube of the first heat transfer tube group 11a or the second heat transfer tube group 11b, the gas phase refrigerant generated in the first evaporator 23a or the second evaporator 23b is absorbed into the absorbing liquid. The absorption of the gas phase refrigerant by the absorbing liquid increases the temperature of the absorbing liquid, but at the same time, the absorbing liquid is cooled by the heat medium flowing inside the heat transfer tube 10 of the first heat transfer tube group 11a or the second heat transfer tube group 11b. Therefore, the absorption of the gas phase refrigerant by the supercooled absorbing liquid occurs continuously, and the pressure inside the heat exchange unit 5a decreases. As a result, the liquid phase refrigerant flowing down the outer surface of the heat transfer tube 20 of the third heat transfer tube group 21a and the fourth heat transfer tube group 21b evaporates. The evaporation of the liquid phase refrigerant decreases the temperature of the liquid phase refrigerant, but at the same time, the liquid phase refrigerant is heated by the heat medium flowing inside the heat transfer tube 20 of the third heat transfer tube group 21a and the fourth heat transfer tube group 21b. As a result, evaporation of the liquid phase refrigerant occurs continuously, the pressure inside the heat exchange unit 5a is maintained within a predetermined range, and the state inside the heat exchange unit 5a becomes a steady state.

[0047] In the steady state, the temperature of the heat medium in the fourth heat transfer tube group 21b drops from 12°C to approximately 9.75°C. In addition, the temperature of the heat medium in the third heat transfer tube group 21a drops from approximately 9.75°C to approximately 7°C. As a result, in the steady state, the temperature of the liquid phase refrigerant stored in the second evaporator 23b is approximately 7.6°C, and the pressure of the gas phase refrigerant in the second evaporator 23b is approximately 1044 Pa, which is the saturated vapor pressure of the liquid phase refrigerant at approximately 7.6°C. Therefore, the density of the gas phase refrigerant in the second evaporator 23b is 0.00806 kg / m 3 On the other hand, in a steady state, the temperature of the liquid-phase refrigerant stored in the first evaporator 23a is about 6.1° C., and the pressure of the gas-phase refrigerant in the first evaporator 23a is about 942 Pa, which is the saturated vapor pressure of the liquid-phase refrigerant at about 6.1° C. For this reason, the density of the gas-phase refrigerant in the first evaporator 23a is 0.00731 kg / m 3 That's about it.

[0048] In the steady state, the temperature of the heat medium flowing inside the heat transfer tubes 10 of the second heat transfer tube group 11b rises from 32°C to 34.25°C. In addition, the temperature of the heat medium flowing inside the heat transfer tubes 10 of the first heat transfer tube group 11a rises from 34.25°C to 36.5°C. In the steady state, the temperature of the absorbing liquid stored in the first dripper 12a and dripped toward the first heat transfer tube group 11a is 50°C. On the other hand, in the steady state, the temperature of the absorbing liquid stored in the second dripper 12b after being cooled by the heat medium flowing inside the heat transfer tubes 10 of the first heat transfer tube group 11a and dripped toward the second heat transfer tube group 11b is 44°C. After being dripped toward the second heat transfer tube group 11b, the absorbing liquid is cooled by the heat medium flowing inside the heat transfer tubes 10 of the first heat transfer tube group 11a and dripped toward the second heat transfer tube group 11b. two The temperature of the absorption liquid cooled by the heat medium flowing inside the heat transfer tubes 10 of the heat transfer tube group 11b and stored in the lower part of the shell 30 is 37° C. Therefore, the LMTD for the heat exchange between the absorption liquid and the heat medium in the second absorber 13b is about 7.1 K. On the other hand, the LMTD for the heat exchange between the absorption liquid and the heat medium in the first absorber 13a is about 11.5 K.

[0049] The amount of heat dissipated to the heat medium flowing inside the heat transfer tube 10 of the first heat transfer tube group 11a or the second heat transfer tube group 11b, Q AQ A =q m ΔH=K A LMTD, where q m is the mass flow rate [kg / s] of the gas-phase refrigerant generated in the evaporator and absorbed in the absorber, and ΔH is the enthalpy change of the gas-phase refrigerant and the absorption liquid in the first absorber 13a or the second absorber 13b. In addition, K is the heat transfer coefficient [W / (m 2 ·K)], A is the outer surface area [m 2 ].

[0050] The enthalpy change ΔH of the gas phase refrigerant and the absorption liquid in the first absorber 13a or the second absorber 13b is expressed as follows: ΔH=H R +{H s1 ·W2 / (W1-W2)}-H s2 ·W1 / (W1-W2), where H R is the enthalpy of the gas phase refrigerant [kJ], and H s1 is the enthalpy [kJ] of the high-concentration absorbing liquid before it is diluted by absorbing the gas phase refrigerant. H s2 is the enthalpy [kJ] of the low-concentration absorbing liquid after dilution by absorption of the gas-phase refrigerant. W1 is the mass concentration [%] of the solute in the high-concentration absorbing liquid, and W2 is the mass concentration [%] of the low-concentration absorbing liquid.

[0051] The mass flow rate q of the gas phase refrigerant generated in the evaporator and absorbed in the first absorber 13a or the second absorber 13b m q m =q v ρ=u N R It can be expressed as s L ρ, where q v is the volumetric flow rate of the gas phase refrigerant [m 3 / s], and ρ is the density of the gas phase refrigerant [kg / m 3 ], and u is the speed [m / s] at which the gas phase refrigerant passes between the heat transfer tubes 10. In addition, N Ris the number of stages of the heat transfer tubes 10 in the first heat transfer tube group 11a or the second heat transfer tube group 11b, L is the length [m] of the heat transfer tube 10, and s is the shortest distance [m] in the gravity direction between the outer surfaces of a pair of heat transfer tubes 10 adjacent to each other in the gravity direction. 2 ], for example, A=π d L N R N C Here, d is the outer diameter [m] of the heat transfer tube 10, and N C is the number of rows of the heat transfer tubes 10.

[0052] From these equations, u = K LMTD π d N C In this relational expression, π is a constant, and in the first heat transfer tube group 11a and the second heat transfer tube group 11b, the heat transfer coefficient K [W / (m 2 ·K)] and the outer diameter d [m] of the heat transfer tubes 10 are assumed to be equal. In addition, it is assumed that the number of rows of the heat transfer tubes 10 in the first heat transfer tube group 11a and the second heat transfer tube group 11b are assumed to be equal. From the viewpoint of shell size constraints, it is assumed that the number of rows of heat transfer tubes in the heat transfer tube groups of the low-pressure side absorber and the high-pressure side absorber in the two-stage evaporation and absorption structure are designed to be equal. It can be assumed that the enthalpy change amount ΔH in the first absorber 13a and the second absorber 13b in the steady state is approximately the same. In this case, the flow velocity u of the gas phase refrigerant between the heat transfer tubes 10 in the first heat transfer tube group 11a L and the flow velocity u of the gas phase refrigerant between the heat transfer tubes 10 in the second heat transfer tube group 11b. H u L / u H =(LMTD L ρ H ·s H ) / (LMTD H ρ L ·s L In this relation, the subscript L indicates a value related to the first absorber 13a, and the subscript H indicates a value related to the second absorber 13b. In the steady state, if the shortest distance s L is the shortest distance s HWhen the flow velocity of the gas-phase refrigerant between the heat transfer tubes 10 in the first heat transfer tube group 11a is equal to L is the flow velocity u of the gas phase refrigerant between the heat transfer tubes 10 in the second heat transfer tube group 11b. H It is about 1.78 times.

[0053] [1-3. Effects, etc.] As described above, in this embodiment, the absorber unit 1a for an absorption type refrigerator includes the first absorber 13a and the second absorber 13b. The first absorber 13a includes the first heat transfer tube group 11a and the first dripper 12a. The first heat transfer tube group 11a includes heat transfer tubes 10 arranged in a plurality of stages and a plurality of rows. The first dripper 12a drips the absorbing liquid toward the first heat transfer tube group 11a. The first absorber 13a absorbs the gas phase refrigerant supplied to one end of the row direction of the first heat transfer tube group 11a into the absorbing liquid dripped by the first dripper 12a. The second absorber 13b includes the second heat transfer tube group 11b and the second dripper 12b. The second heat transfer tube group 11b includes heat transfer tubes 10 arranged in a plurality of stages and a plurality of rows. The second dripper 12b drips the absorbing liquid toward the second heat transfer tube group 11b. The second absorber 13b absorbs the gas-phase refrigerant supplied to one end of the second heat transfer tube group 11b in the column direction into the absorbing liquid dripped by the second dripper 12b. The absorbing liquid dripped by the first dripper 12a and flowing down the first heat transfer tube group 11a is supplied to the second absorber 13b and then dripped by the second dripper 12b. The absorbing liquid dripped by the second dripper 12b and flowing down the second heat transfer tube group 11b is discharged to the outside of the second absorber 13b.

[0054] The first heat transfer tube group 11a has a first end 11m. The first end 11m includes heat transfer tubes 10 that form multiple stages at one end in the row direction of the first heat transfer tube group 11a. The second heat transfer tube group 11b has a second end 11n. The second end 11n includes heat transfer tubes 10 that form multiple stages at one end in the row direction of the second heat transfer tube group 11b. At the first end 11m and the second end 11n, the shortest distance D1 is greater than the shortest distance D2. The shortest distance D1 is the shortest distance in the direction of gravity between the outer surfaces of a specific pair of heat transfer tubes 10 adjacent to each other at the first end 11m. The shortest distance D2 is the shortest distance in the direction of gravity between the outer surfaces of a pair of heat transfer tubes 10 that form a stage corresponding to the specific pair of heat transfer tubes 10 at the second end 11n.

[0055] As a result, the flow rate of the gas-phase refrigerant between the specific pair of adjacent heat transfer tubes 10 at the first end 11m is unlikely to be high. For example, the shortest distance D1 is adjusted to 1.78 times the shortest distance D2. In this case, the flow rate of the gas-phase refrigerant between the specific pair of heat transfer tubes 10 having the shortest distance D1 can be made substantially the same as the flow rate of the gas-phase refrigerant between the pair of heat transfer tubes 10 forming a step corresponding to the specific pair of heat transfer tubes 10 at the second end 11n. Therefore, it is easy to suppress a state in which the absorption liquid is blown away by the gas-phase refrigerant between the specific pair of heat transfer tubes 10 having the shortest distance D1, and the heat transfer tubes 10 are not wetted with the absorption liquid. The gas-phase refrigerant first passes between the heat transfer tubes 10 at the first end 11m in the first heat transfer tube group 11a. Therefore, it is effective from the viewpoint of suppressing a state in which the heat transfer tubes 10 are not wetted with the absorption liquid, that the shortest distance D1 between the specific pair of heat transfer tubes 10 at the first end 11m is greater than the shortest distance D2.

[0056] As in this embodiment, the first absorber 13a may face the first eliminator 31. In addition, the first end 11m may be the row closest to the first eliminator 31 in the first heat transfer tube group 11a. The gas-phase refrigerant passes through the first eliminator 31 and is guided to the first absorber 13a. The presence of a specific pair of heat transfer tubes 10 having the shortest distance D1 at the first end 11m, which is the row closest to the first eliminator 31 in the first heat transfer tube group 11a, is effective from the viewpoint of suppressing a state in which the heat transfer tubes 10 are not wetted with the absorbing liquid.

[0057] As in the present embodiment, the specific pair of heat transfer tubes 10 having the shortest distance D1 may include a heat transfer tube 10 arranged above the center of the row number reference of the first end 11m. This makes it possible to prevent the heat transfer tube 10 arranged above the center of the row number reference of the first end 11m from being wetted with the absorbing liquid, and therefore the heat transfer tube 10 below the heat transfer tube 10 from being wetted with the absorbing liquid. This is because, in the first heat transfer tube group 11a, the absorbing liquid flows down from the upper heat transfer tube 10 to the lower heat transfer tube 10.

[0058] As in the present embodiment, the specific pair of heat transfer tubes 10 having the shortest distance D1 may include the uppermost heat transfer tube 10 at the first end 11m. This makes it difficult for the uppermost heat transfer tube 10 at the first end 11m to become unwet with the absorbing liquid, and also makes it possible to suppress the heat transfer tubes 10 below that heat transfer tube 10 from becoming unwet with the absorbing liquid.

[0059] As in the present embodiment, the heat transfer tubes 10 may be arranged at equal intervals in the gravity direction at the first end 11m, and the heat transfer tubes 10 may be arranged at equal intervals in the gravity direction at the second end 11n. In addition, the shortest distance in the gravity direction between the outer surfaces of the adjacent heat transfer tubes 10 at the first end 11m may be greater than the shortest distance in the gravity direction between the outer surfaces of the adjacent heat transfer tubes 10 at the second end 11m. This makes it difficult for the flow rate of the gas-phase refrigerant between the adjacent heat transfer tubes 10 to become high over the entire first end 11m, and makes it easier to suppress a state in which the heat transfer tubes 10 are not wetted with the absorption liquid.

[0060] As in the present embodiment, the first heat transfer tube group 11a may have a plurality of heat transfer tubes 10 arranged at equal intervals in the direction of gravity, and the second heat transfer tube group 11b may have a plurality of heat transfer tubes 10 arranged at equal intervals in the direction of gravity. In addition, the shortest distance in the direction of gravity between the outer surfaces of adjacent heat transfer tubes 10 in the same row of the first heat transfer tube group 11a may be greater than the shortest distance in the direction of gravity between the outer surfaces of adjacent heat transfer tubes 10 in the same row of the second heat transfer tube group 11b.

[0061] As in this embodiment, a heat exchange unit 5a including an absorber unit 1a, a first evaporator 23a, and a second evaporator 23b may be provided. In this case, the first evaporator 23a may generate a gas-phase refrigerant to be supplied to the first absorber 13a. In addition, the second evaporator 23b may generate a gas-phase refrigerant to be supplied to the second absorber 13b. This makes it easier for an absorption chiller including the heat exchange unit 5a to achieve a high COP.

[0062] As in this embodiment, the first evaporator 23a may generate a gas phase refrigerant by heat exchange between the liquid phase refrigerant and the heat medium, and the second evaporator 23b may generate a gas phase refrigerant by heat exchange between the liquid phase refrigerant and the heat medium. In addition, the temperature of the heat medium supplied to the second evaporator 23b may be higher than the temperature of the heat medium discharged from the first evaporator 23a. In this case, the density of the gas phase refrigerant supplied to the first absorber 13a is likely to be lower than the density of the gas phase refrigerant supplied to the second absorber 13b. However, since the shortest distance D1 is greater than the shortest distance D2, it is likely to prevent the heat transfer tube 10 in the first heat transfer tube group 11a from becoming unwet with the absorbing liquid.

[0063] (Embodiment 2) The second embodiment will be described below with reference to FIG.

[0064] [2-1. Configuration] As shown in Fig. 2, the absorption chiller 100 includes, for example, a heat exchange unit 5a. The absorption chiller 100 further includes, for example, a regenerator 80 and a condenser 90. The absorption chiller 100 is, for example, a single-effect cycle absorption chiller. The absorption chiller 100 may be a double-effect cycle or a triple-effect cycle absorption chiller. When a gas burner is used as a heat source for the regenerator 80, the absorption chiller 100 may be a gas chiller.

[0065] [2-2. Operation] The operation and function of the absorption chiller 100 configured as above will be described below. The absorbing liquid stored in the absorber unit 1a is guided to the regenerator 80 through the discharge passage 17. The solute concentration of the absorbing liquid is increased by heating in the regenerator 80. The absorbing liquid with the increased solute concentration is guided to the absorber unit 1a through the first supply passage 16. Meanwhile, a gaseous phase refrigerant is generated by heating the absorbing liquid in the regenerator 80. This gaseous phase refrigerant is guided to the condenser 90, where it is cooled and condensed to generate a liquid phase refrigerant. The liquid phase refrigerant is, for example, depressurized and then guided to the evaporator unit 2 through the second supply passage 26.

[0066] [2-3. Effects] As described above, in this embodiment, the absorption chiller 100 includes the heat exchange unit 5a. This makes it possible to prevent the heat transfer tube 10 from becoming unwetted with the absorbing liquid in the absorber unit 1a of the heat exchange unit 5a, and the heat exchange performance in the absorber unit 1a is likely to be kept high. This makes it easy for the absorption chiller 100 to exhibit high energy saving properties, and the coefficient of performance (COP) of the absorption chiller 100 is likely to be high.

[0067] As described above, the first and second embodiments have been described as examples of the technology disclosed in the present application. However, the technology in the present disclosure is not limited to these, and can be applied to embodiments in which modifications, substitutions, additions, omissions, etc. are made. [Industrial Applicability]

[0068] The present disclosure is applicable to absorption chillers adapted for use in central air conditioners for buildings and chillers for process cooling, and the like. [Explanation of symbols]

[0069] 1a Absorption unit for absorption chiller 5a Heat exchange unit 10 Heat transfer tube 11a First heat exchanger tube group 11b Second heat exchanger tube group 11m first end 11n Second end 12a First dropper 12b Second dropper 13a First absorber 13b Second absorber 23a First evaporator 23b Second evaporator D1 Shortest distance D2 Shortest distance 100 Absorption chiller

Claims

1. a first absorber including a first heat transfer tube group including a plurality of heat transfer tubes arranged in a plurality of rows and a plurality of columns, and a first dripper dripping an absorbing liquid toward the first heat transfer tube group, and a gas-phase refrigerant supplied to one end of the first heat transfer tube group in the row direction is absorbed in the absorbing liquid dripped by the first dripper; a second heat transfer tube group including a plurality of heat transfer tubes arranged in a plurality of rows and a plurality of stages; and a second dripper that drips an absorbing liquid toward the second heat transfer tube group, and a second absorber that absorbs a gas-phase refrigerant supplied to one end of the second heat transfer tube group in the row direction into the absorbing liquid dripped by the second dripper, the density of the gas phase refrigerant absorbed by the absorption liquid in the first absorber is lower than the density of the gas phase refrigerant absorbed by the absorption liquid in the second absorber, The absorption liquid that has been dropped by the first dripper and flowed down through the first heat transfer tube group is supplied to the second absorber and then dripped by the second dripper, The absorption liquid that has been dropped by the second dropper and flowed down the second heat transfer tube group is discharged to the outside of the second absorber, the first heat transfer tube group has a first end portion including the heat transfer tubes forming the plurality of stages at one end in a row direction of the first heat transfer tube group, the second heat transfer tube group has a second end portion including the heat transfer tubes forming the plurality of stages at the one end in the row direction of the second heat transfer tube group, In a central portion of the first heat transfer tube group and the second heat transfer tube group, the plurality of heat transfer tubes are arranged to form a square lattice or a rectangular lattice in a plane perpendicular to a longitudinal direction of the heat transfer tubes, and one side of the square lattice or the rectangular lattice extends in a gravity direction, a shortest distance in the direction of gravity between outer surfaces of a specific pair of adjacent heat transfer tubes at the first end portion is greater than a shortest distance in the direction of gravity between outer surfaces of a pair of heat transfer tubes forming a step corresponding to the specific pair of heat transfer tubes at the second end portion; Absorber unit for absorption chiller.

2. 2 . The absorber unit for an absorption chiller according to claim 1 , wherein the specific pair of heat transfer tubes includes the heat transfer tube disposed above a center of a stage number reference of the first end portion.

3. The specific pair of heat transfer tubes includes the uppermost heat transfer tube at the first end.

3. The absorber unit for an absorption type refrigerator according to claim 1 or 2.

4. At the first end portion, the heat transfer tubes are arranged at equal intervals in a gravity direction, At the second end portion, the heat transfer tubes are arranged at equal intervals in a gravity direction, The shortest distance between the outer surfaces of the heat transfer tubes adjacent to each other at the first end portion in the gravity direction is greater than the shortest distance between the outer surfaces of the heat transfer tubes adjacent to each other at the second end portion in the gravity direction. The absorber unit for an absorption type refrigerator according to any one of claims 1 to 3.

5. the plurality of heat transfer tubes in the first heat transfer tube group are disposed at equal intervals in a gravity direction, the plurality of heat transfer tubes in the second heat transfer tube group are disposed at equal intervals in the gravity direction, the shortest distance in the direction of gravity between outer surfaces of the heat transfer tubes adjacent to each other in the same row of the first heat transfer tube group is greater than the shortest distance in the direction of gravity between outer surfaces of the heat transfer tubes adjacent to each other in the same row of the second heat transfer tube group. The absorber unit for an absorption type refrigerator according to any one of claims 1 to 4.

6. An absorber unit according to any one of claims 1 to 5; a first evaporator for generating the vapor-phase refrigerant to be supplied to the first absorber; A second evaporator for generating the gas phase refrigerant to be supplied to the second absorber. Heat exchange unit.

7. The first evaporator generates the gas phase refrigerant by heat exchange between a liquid phase refrigerant and a heat medium, The second evaporator generates the gas phase refrigerant by heat exchange between the liquid phase refrigerant and the heat medium, The temperature of the heat medium supplied to the second evaporator is higher than the temperature of the heat medium discharged from the first evaporator. A heat exchange unit according to claim 6.

8. An absorption chiller comprising the heat exchange unit according to claim 6 or 7.

Citation Information

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