Cooling system and cooling method

The heat exchanger's duct configuration addresses environmental concerns and operational challenges of CO2 sublimation by ensuring efficient heat transfer and preventing clogging, enabling low-temperature cooling in refrigeration systems.

JP7758571B2Active Publication Date: 2025-10-22CTS CREAM TEMPERATURE DISTEME GMBH
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Patent Information

Application Number
JP2021569027
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-05-20
Filing Date
2020-05-20
Publication Date
2025-10-22
Estimated Expiration
2040-05-20

AI Technical Summary

Technical Problem

Fluorinated refrigerants used for low-temperature cooling pose environmental concerns due to high global warming potential, and maintaining operating conditions for CO2 sublimation in refrigeration systems is challenging, with reduced heat transfer and potential clogging from solid refrigerant particles.

Method used

A heat exchanger design with a duct configuration featuring a first section with a smaller cross-sectional area to maintain refrigerant in a non-solid state and a second section with a larger area for sublimation, ensuring efficient heat transfer and preventing clogging.

Benefits of technology

The design allows for effective sublimation cooling below -50°C using CO2, maintaining system efficiency and preventing blockages, suitable for closed-loop refrigeration systems.

✦ Generated by Eureka AI based on patent content.

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Abstract

According to various embodiments, the heat exchanger (100) includes at least one duct (102) for conveying a refrigerant, the at least one duct (102) comprising a first section (102-1) and a second section (102-2). The first section (102-1) is located upstream of the second section (102-2) with respect to the direction of flow of the refrigerant in the at least one duct (102). The cross-sectional area of ​​the second section (102-2) is larger than that of the first section (102-1) to allow sublimation of the refrigerant in the second section (102-2).
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Description

[Technical Field]

[0001] Various embodiments relate to heat exchangers and cooling methods. Summary of the Invention [Problem to be solved by the invention]

[0002] Fluorinated refrigerants (e.g., R14, R23, etc.) can be used in refrigeration systems to achieve cooling temperatures below minus 50°C through refrigerant evaporation. These fluorinated refrigerants present environmental concerns, for example, due to their increased global warming potential (GWP). Carbon dioxide (CO2) sublimation is an environmentally friendly alternative for low-temperature cooling (e.g., below minus 20°C, below minus 35°C, below minus 50°C, etc.) because CO2 is a natural refrigerant, has a low GWP (e.g., the GWP of CO2 is negligible compared to fluorinated refrigerants for low-temperature applications), is nonflammable, and is nontoxic. However, maintaining the appropriate operating conditions (e.g., pressure, temperature, etc.) within a refrigeration system to sublimate CO2 and reach temperature levels close to those achieved by evaporating the fluorinated refrigerant is challenging because heat transfer during sublimation is lower than during evaporation. Furthermore, the sublimating solid refrigerant (e.g., solid refrigerant particles) can clog the refrigeration system. [Means for solving the problem]

[0003] Various embodiments relate to heat exchangers. The heat exchangers described herein can be used in refrigeration systems (e.g., cooling systems) to enable sublimation cooling processes, resulting in temperatures below minus 50°C.

[0004] According to various embodiments, a heat exchanger comprises at least one duct / channel for conveying a refrigerant, the at least one duct comprising a first section and a second section, the first section being located upstream of the second section with respect to the direction of flow of the refrigerant in the at least one duct, and the second section having a larger cross-sectional area than the first section to allow sublimation of the refrigerant within the second section.

[0005] In various aspects, the first section may serve to distribute and expand a refrigerant (e.g., a liquid refrigerant above the triple point). In various aspects, the duct may be configured such that heat transfer (from the refrigerant) does not (or can) occur in the first section. In various aspects, the duct may be configured such that heat transfer (only initially) occurs in the second section. A solid refrigerant (below the triple point) is disposed in the second section, allowing for heat transfer therein. By way of example, the duct may be configured such that the refrigerant is subjected to different pressures and conditions in the two sections.

[0006] According to various embodiments, a cooling method for cooling a fluid by sublimation of a refrigerant includes: supplying a refrigerant to a heat exchanger having at least one duct for transporting the refrigerant; directing the refrigerant into the at least one duct, wherein the at least one duct has a first section and a second section, the first section being located upstream of the second section with respect to a flow direction of the refrigerant in the at least one duct, and the second section having a cross-sectional area larger than that of the first section to allow sublimation of the refrigerant in the second section; and transferring heat between the refrigerant flowing into the second section and the fluid to be cooled, wherein the refrigerant flowing through the second section sublimes to cool the fluid to be cooled.

[0007] Exemplary embodiments of the invention are illustrated in the drawings and are described in detail below. [Brief explanation of the drawings]

[0008] [Figure 1] 1 is a schematic diagram of a heat exchanger according to various embodiments. FIG. [Figure 2A] 5A and 5B show schematic views of a portion of a duct of a heat exchanger according to different embodiments; [Figure 2B] 5A and 5B show schematic views of a portion of a duct of a heat exchanger according to different embodiments; [Figure 2C] 5A and 5B show schematic views of a portion of a duct of a heat exchanger according to different embodiments; [Figure 2D] 5A and 5B show schematic views of a portion of a duct of a heat exchanger according to different embodiments; [Figure 2E] 5A and 5B show schematic views of a portion of a duct of a heat exchanger according to different embodiments; [Figure 2F] 5A and 5B show schematic views of a portion of a duct of a heat exchanger according to different embodiments; [Figure 2G] 1 is a schematic diagram of a container and duct of a heat exchanger according to various embodiments. FIG. [Figure 3] 1 illustrates a schematic diagram of a cooling system including a heat exchanger according to various embodiments. [Figure 4] 1 illustrates a schematic diagram of a cooling system including a heat exchanger according to various embodiments. [Figure 5] 1 illustrates a schematic diagram of a cooling system including a heat exchanger according to various embodiments. [Figure 6] 1 illustrates a schematic diagram of a cooling system including a heat exchanger according to various embodiments. [Figure 7] 1 illustrates a schematic diagram of a cooling system including a heat exchanger according to various embodiments. DETAILED DESCRIPTION OF THE INVENTION

[0009] The following detailed description refers to the accompanying drawings, which form a part hereof and which show, by way of example, specific embodiments in which the present invention may be practiced. Directional terms such as "upper," "lower," "forward," "rearward," "front," and "rear" are used in connection with the orientation of the figures being described. Components of the embodiments may be oriented in many different directions. As such, the directional terms are for illustrative purposes only and are not intended to be limiting. It is understood that other embodiments may be utilized and structural or logical changes may be made without departing from the scope of protection of the present invention. It is understood that the features of the various exemplary embodiments described herein may be combined with each other unless otherwise specified. Therefore, the following detailed description should not be construed in a limiting sense, and the scope of protection of the present invention is defined by the appended claims.

[0010] In the context of this specification, the terms "connected," "adhered," and "coupled" are used to describe both direct and indirect connections, direct or indirect attachments, and direct or indirect couplings. In the figures, the same or similar elements are labeled with the same reference numerals where appropriate.

[0011] In the context of this specification, the term "at least one" is used for brevity, but this term can mean one, exactly one, a plurality (e.g., exactly two or more than two), a multiplicity (e.g., exactly three or more than three), etc. In this context, "plurality" does not necessarily refer to a plurality of identical elements, but rather to a plurality of essentially functionally identical elements.

[0012] In the context of this specification, the term "duct" is used to describe both a duct formed by a single pipe (e.g., a single mini-duct) and a duct formed by multiple pipes (e.g., multiple mini-ducts). For example, a duct may be formed by a single pipe. Multiple ducts may be formed by multiple individual pipes, for example, arranged parallel to one another. For example, a duct can be formed by forming multiple pipes (multiple mini-ducts) in a plate, such as a flat metal plate made of aluminum, by providing multiple openings along the length of the plate. For example, multiple plates may include multiple ducts. The multiple ducts may be arranged parallel to one another, each with multiple pipes (e.g., multiple mini-ducts) formed therein.

[0013] In the context of this specification, the term "miniduct" is used to describe a duct having a cross section ranging from several hundred micrometers to several millimeters. For example, the cross section of a miniduct can range in size (e.g., height, width, diameter, edge length, etc.) along a direction perpendicular to the direction of fluid flow through the duct from about 100 μm to about 20 mm (e.g., about 200 μm to about 15 mm, about 500 μm to about 10 mm, about 1 mm to about 5 mm, about 100 μm to about 1.5 mm). These ranges can refer, for example, to a section of a duct where heat transfer occurs between a fluid flowing through the duct (e.g., a refrigerant flowing through the duct) and another fluid (e.g., a fluid to be cooled). For example, a single miniduct may be formed by multiple pipes, each with a cross section in any of the above ranges.

[0014] The term "upstream" is used herein to indicate the relative location of one or more elements with respect to the direction of fluid (e.g., refrigerant) flow. For example, the term "upstream with respect to an element" may refer to a location upstream of the element (e.g., upstream of the element's inlet) through which fluid first flows before entering the element. For example, a first section may be located upstream with respect to a second section, with the fluid first flowing into the first section and then into the second section. The term "upstream" does not necessarily imply that the first and second sections are located directly adjacent to each other, and it is understood that other elements may be located between the first and second sections along the flow direction.

[0015] As used herein, the term "downstream" refers to the relative location of one or more elements with respect to the direction of fluid (e.g., refrigerant) flow. For example, the term "downstream with respect to an element" may refer to a location downstream of the element (e.g., downstream of the element's outlet) where the fluid first enters the element and then passes through the location. For example, a first section may be located downstream with respect to a second section, where the fluid first enters the second section and then enters the first section. The term "downstream" does not necessarily imply that the first and second sections are located directly adjacent to each other; it is understood that other elements may be located between the first and second sections along the direction of flow.

[0016] A conventional heat exchanger (e.g., a conventional evaporator) may have multiple parallel ducts (e.g., parallel mini-ducts) for conveying and evaporating a refrigerant. A conventional heat exchanger may also have multiple fins between the ducts, thereby increasing the surface area available for heat transfer. This heat transfer design (e.g., fins) increases the heat transfer area provided by the multiple ducts, resulting in efficient heat transfer between the fluid being cooled and the refrigerant (e.g., evaporating refrigerant) entering the ducts, allowing for a compact heat exchanger.

[0017] Absorbing heat by sublimation in a heat exchanger presents several challenges compared to evaporating the refrigerant: heat transfer is reduced, and the accumulation of solid refrigerant particles can cause blockages or plugging of the heat exchanger.

[0018] Refrigeration systems (e.g., refrigeration systems) can generally be described as open or closed circuits. In an open circuit, the refrigerant is not recirculated through the refrigeration system after heat exchange with the cooled fluid but is lost to the environment. That is, after evaporation or sublimation, the refrigerant becomes useless. In a closed circuit, on the other hand, the refrigerant remains in the system after heat exchange with the cooled fluid. This allows the refrigerant to be condensed and fed to a heat exchanger, and the process can be repeated. Cooling by sublimation of a refrigerant (e.g., CO2) is typically performed in an open circuit (e.g., by spraying the sublimating refrigerant onto the surface to be cooled). This requires the use of large quantities of refrigerant. Sublimation in closed circuits is avoided because sublimating solid refrigerant (e.g., solid refrigerant particles) can clog (e.g., damage) refrigeration system components (e.g., compressors). One possibility is to transport the solid refrigerant particles in a carrier fluid. However, such an embodiment requires additional energy to circulate the carrier fluid. Furthermore, the sublimated refrigerant must be separated from the carrier fluid and recompressed as part of the refrigeration cycle. Such separation requires high technical effort and generates pressure losses that can have a negative impact on cooling power and process efficiency.

[0019] Heat exchangers with multiple ducts (e.g., multiple mini-ducts) can be a suitable heat transfer method for sublimation. For example, the increased heat transfer surface of many ducts can compensate for the reduced heat transfer rate. Even if an individual duct is blocked, the duct remains for heat exchange, allowing the cooling system using the heat exchanger to continue operating.

[0020] However, in technical implementation, problems arise when distributing the refrigerant to the various ducts. In conventional cooling systems based on the evaporation of refrigerant, the evaporator has a distributor. This distributor consists of a kind of container into which ducts (e.g. mini-ducts) protrude. The evaporating refrigerant in a liquid and / or gaseous mass state is distributed to the various ducts. The sublimating refrigerant (e.g. CO2) may enter the container in a solid or gaseous state, and these solid particles can block the inlets of the ducts.

[0021] Therefore, there is a need for a solution that can efficiently and economically achieve cooling by sublimation in a closed circuit.

[0022] FIG. 1 illustrates a schematic diagram of a heat exchanger 100 according to various embodiments.

[0023] According to various embodiments, the heat exchanger 100 may include at least one duct 102 (e.g., at least one mini-duct) for carrying a refrigerant. The heat exchanger 100 may be configured such that the refrigerant entering the at least one duct 102 is in heat transfer relationship with a fluid to be cooled (e.g., air, water, salt water, etc.), and heat from the fluid to be cooled is absorbed by the refrigerant entering the at least one duct 102. According to various embodiments, the at least one duct 102 may also include multiple pipes (e.g., multiple mini-ducts, multiple mini-duct pipes, etc.) for carrying the refrigerant. These pipes may be arranged, for example, parallel to one another.

[0024] It is also understood that the heat exchanger 100 comprises a plurality of ducts 102 for conveying the refrigerant, and that these ducts 102 may be arranged, for example, parallel to one another.

[0025] According to various embodiments, the at least one duct 102 may be comprised of a first section 102-1 and a second section 102-2. The first section 102-1 may be located upstream of the second section 102-2 with respect to the direction of refrigerant flow within the at least one duct 102. That is, the at least one duct 102 may be configured such that the refrigerant first flows into the first section 102-1 and then into the second section 102-2. According to various embodiments, the second section 102-2 may be located directly adjacent to the first section 102-1.

[0026] According to various embodiments, the second section 102-2 may have a larger cross-sectional area than the first section 102-1 to allow the refrigerant to sublimate in the second section 102-2. For example, the heat exchanger 100 may be configured such that as the refrigerant enters the second section 102-2, the refrigerant and the fluid to be cooled are in a heat exchange relationship, and heat from the fluid to be cooled is absorbed by the refrigerant entering the second section 102-2. As an example, the heat exchanger 100 may be configured such that the refrigerant in the second section 102-2 sublimes due to heat transfer from the fluid to be cooled.

[0027] For sublimation to occur, the refrigerant must be at least partially in a solid aggregate state (e.g., a solid / gas aggregate state). Additionally, the refrigerant must be at a temperature and / or pressure level that allows for a direct phase change from the solid aggregate state to the gas aggregate state. That is, the refrigerant must be at a temperature and / or pressure level that defines a point on the refrigerant's phase diagram where sublimation of the refrigerant is possible.

[0028] When a fluid (e.g., a refrigerant) flows into a restriction or choke (a choke opening, such as a pipe section with a small cross-sectional area), the velocity of the fluid increases, resulting in a decrease in the fluid's pressure. Upstream of the choke, the fluid may be at a high pressure level (e.g., pressure levels in the range of about 10 bar to about 160 bar, about 70 bar to about 140 bar, or about 40 bar to about 70 bar). Within the choke, the fluid reaches a critical velocity (the speed of sound) (so-called choked flow), and the pressure within the choke drops to a lower pressure level (e.g., a pressure level in the range of about 10 bar to about 70 bar, e.g., about 10 bar to about 40 bar, or about 40 bar to about 70 bar). Downstream of the restriction, the fluid expands further, and the fluid pressure continues to decrease (e.g., a pressure level in the range of about 0 bar to about 5 bar).

[0029] The pressure ranges described here are examples, and these pressure ranges can be applied to, for example, CO2 as a refrigerant to be sublimated. It is understood that these pressure ranges can vary depending on the refrigerant to be sublimated and can be adjusted appropriately depending on the refrigerant used.

[0030] According to various embodiments, the cross-sectional area of ​​the first section 102-1 may be smaller than the cross-sectional area of ​​the second section 102-2 such that the first section 102-1 provides a choke point at the entrance of the at least one duct 102. That is, the first section 102-1 is a choke point at the entrance of the at least one duct 102.

[0031] According to various embodiments, the cross-sectional area of ​​the first section 102-1 may be sized such that the refrigerant is at a high pressure level upstream from the first section 102-1 (e.g., a pressure level in the range of about 10 bar to about 160 bar, e.g., about 70 bar to about 140 bar, about 40 bar to about 70 bar), the refrigerant reaches a critical velocity (speed of sound) within the first section 102-1, and the pressure of the refrigerant within the first section 102-1 is at a low pressure level (e.g., about 10 bar to 70 bar, e.g., about 10 bar to about 40 bar, about 40 bar to about 70 bar), and after the first section (i.e., downstream from the first section 102-1 and as it enters the second section 102-2), the refrigerant further expands and the pressure of the refrigerant further decreases, e.g., to a sublimation pressure level (e.g., about 0 bar to about 5 bar). That is, the cross-sectional area of ​​the first section 102-1 may be sized such that the pressure of the refrigerant entering the first section 102-1 is reduced.

[0032] According to various embodiments, the cross-sectional area of ​​the first section 102-1 can be sized so that the pressure of the refrigerant within the first section 102-1 (e.g., up to the outlet of the first section 102-1) is greater than the sublimation pressure of the refrigerant, preventing the refrigerant from sublimating within the first section 102-1. That is, the cross-sectional area of ​​the first section 102-1 can be dimensioned so that the pressure drop of the refrigerant entering the first section 102-1 is insufficient to prevent the refrigerant from sublimating within the first section 102-1. In this manner, the cross-sectional area of ​​the first section 102-1 can be dimensioned to prevent the refrigerant from sublimating within the first section 102-1. That is, the heat exchanger can be configured so that heat transfer does not occur between the refrigerant entering the first section and the fluid to be cooled (e.g., the first section can be dimensioned so that heat transfer does not occur between the refrigerant entering the first section and the fluid to be cooled).

[0033] Otherwise, undesirable effects may occur if the refrigerant exchanges heat with the fluid while flowing through the first section: for example, above the triple point of the refrigerant, the liquid refrigerant may evaporate (gaining heat at a higher temperature), or, for example, below the triple point of the refrigerant, additional components will be used to distribute the solid refrigerant to the first section (otherwise, blockages with solid refrigerant may occur upstream of the first section).

[0034] According to various embodiments, the cross-sectional area of ​​the first section 102-1 may be sized such that the pressure level of the refrigerant within the first section 102-1 is greater than the pressure level of the triple point of the refrigerant.

[0035] According to various embodiments, the cross-sectional area of ​​first section 102-1 can be sized to provide a pressure level that causes the refrigerant in first section 102-1 to be in a non-solid state of matter (e.g., liquid, gas, liquid / gas, supercritical, etc.). That is, the cross-sectional area of ​​first section 102-1 can be dimensioned to provide a pressure level that causes the refrigerant in first section 102-1 to be in a non-solid (liquid, gas, liquid / gas, supercritical, etc.) aggregate state.

[0036] According to various embodiments, the cross-sectional area of ​​the first section 102-1 can be sized such that the mass flow rate through the restriction (i.e., the first section 102-1) reaches a critical mass flow rate and the critical outlet pressure is greater than the triple point of the refrigerant. The critical mass flow rate depends on the inlet pressure and / or inlet temperature (e.g., the pressure and / or temperature at the inlet of the first section 102-1). In this manner, the refrigerant within the throttling point (i.e., within the first section 102-1) is in a non-solid mass state, thereby preventing blockage of the throttling point (e.g., blockage of the first section 102-1 and, therefore, blockage of at least one duct 102). Only after exiting the throttling point (i.e., upon entering the second section 102-2) does the refrigerant expand to sublimation pressure levels.

[0037] According to various embodiments, the cross-sectional area of ​​the first section 102-1 and the cross-sectional area of ​​the second section 102-2 may be sized such that the pressure of the refrigerant entering at least one duct 102 downstream from the first section 102-1 (i.e., the refrigerant entering the second section 102-2) is lower (e.g., 5 bar lower, 10 bar lower, 20 bar lower, 30 bar lower, 50 bar lower, etc.) than the pressure in the first section 102-1. For example, the cross-sectional area of ​​the first section 102-1 may be sized such that the pressure level of the refrigerant in the first section 102-1 is in the range of about 10 bar to about 70 bar (e.g., in the range of about 10 bar to about 40 bar, in the range of about 40 bar to about 70 bar, etc.). For example, the cross-sectional area of ​​second section 102-2 may be sized such that the pressure level of the refrigerant within second section 102-2 ranges from about 0 bar to about 5 bar (eg, atmospheric pressure level).

[0038] According to various embodiments, the cross-sectional areas of the first section 102-1 and the second section 102-2 can be sized to provide a pressure level downstream of the first section 102-1 (i.e., within the second section 102-2) for the refrigerant entering at least one duct 102 that allows the refrigerant to sublimate. For example, the cross-sectional areas of the first section 102-1 and the second section 102-2 can be sized to provide a pressure level suitable for the refrigerant to sublimate when it enters the second section 102-2 (e.g., a sublimation pressure level such as atmospheric pressure if the refrigerant includes CO).

[0039] By throttling the flow of the refrigerant as it enters the at least one duct 102, the refrigerant can be ensured to first reach the sublimation region in the at least one duct 102 (e.g., second section 102-2). That is, by throttling the flow of the refrigerant as it enters the at least one duct 102, the refrigerant in a non-sublimable (e.g., non-solid) aggregate state can be directed into the at least one duct 102, causing the refrigerant to change to a sublimable (e.g., at least partially solid) aggregate state only within the at least one duct 102.

[0040] According to various embodiments, the restriction can be sized such that the refrigerant is in a liquid or liquid / gas aggregate state upstream from the first section 102-1 and expands to an at least partially solid aggregate state (e.g., solid / gas) downstream from the first section 102-1 (i.e., within the second section 102-2). For example, the cross-sectional areas of the first section 102-1 and the second section 102-2 can be sized such that as the refrigerant flows from the first section 102-1 to the second section 102-2, a pressure drop occurs and the refrigerant transitions from a non-solid (e.g., liquid, gas, liquid / gas, supercritical, etc.) aggregate state to an at least partially solid (e.g., solid / gas) aggregate state. That is, the cross-sectional areas of the first section 102-1 and the second section 102-2 can be sized such that the pressure of the refrigerant drops within the second section 102-2 and the refrigerant reaches a sublimation region of the refrigerant's phase diagram.

[0041] According to various embodiments, the cross-sectional area of ​​the first section 102-1 may be, for example, approximately 0.0001 mm 2 Approximately 0.8 mm 2 (e.g., about 0.001 mm 2 Approximately 0.5 mm 2 Range: approx. 0.005mm 2 Approximately 0.25 mm 2 According to various embodiments, the cross-sectional area of ​​the second section 102-2 may be, for example, approximately 0.01 mm 2 Approximately 400 mm from2 (e.g., about 0.1 mm 2 Approximately 100 mm from 2 Range: about 0.5 mm 2 Approximately 50 mm from 2 Range: about 1 mm 2 Approximately 20 mm from 2 range).

[0042] This allows the heat exchanger 100 to function as a sublimator even when supplied with a non-solid refrigerant (e.g., liquid, gas, liquid / gas, supercritical, etc.). For example, by applying the duct design described herein to a conventional heat exchanger, the conventional heat exchanger can also be used to sublimate a refrigerant (e.g., CO2). Thus, the configuration described herein provides a relatively low-cost option for use as a sublimator that can be used in a closed refrigeration cycle.

[0043] Thus, the heat exchanger 100 can be configured to receive a refrigerant in a non-solid mass state, where the refrigerant is at least partially converted to a solid mass state, thereby allowing it to sublimate.

[0044] According to various embodiments, the refrigerant may include a natural refrigerant such as carbon dioxide (CO2). Alternatively, the refrigerant may include a hydrocarbon-based refrigerant such as HFC, HCFC, HFO, R170, R290, R600, etc. According to various embodiments, the refrigerant may include a mixture of different refrigerants. It is understood that the refrigerant may be selected based on the desired operation of the heat exchanger 100 (e.g., the temperature range to be achieved).

[0045] According to various embodiments, the heat exchanger 100 may include at least one heat transfer element 104 disposed in contact (e.g., direct physical contact) with the at least one duct 102. For example, the at least one heat transfer element 104 may be configured as one or more outward protrusions (e.g., one or more ribs, one or more fins, etc.) protruding from a surface of the at least one duct 102. It is understood that the heat exchanger 100 may include multiple heat transfer elements 104, which may be disposed in contact with the at least one duct 102 or between two adjacent ducts 102.

[0046] According to various embodiments, the at least one heat transfer element 104 can be configured to increase the surface area available for heat transfer between the fluid to be cooled and the refrigerant entering the at least one duct 102 (e.g., the second section 102-2 of the at least one duct 102), thereby improving the heat transfer rate and overall efficiency of the exchanger 100. For example, the heat exchanger 100 can be configured such that the fluid to be cooled flows through the at least one heat transfer element 104 (e.g., in a direction diagonal or perpendicular to the flow direction of the refrigerant in the at least one duct 102) to more efficiently reject heat to the refrigerant.

[0047] According to various embodiments, the heat exchanger 100 may include a first container 106 (e.g., a distribution container). The first container 106 may be configured to supply refrigerant to at least one duct 102. According to various embodiments, the first container 106 may be configured to distribute (e.g., evenly) the refrigerant to multiple pipes (e.g., multiple mini-ducts) of the at least one duct 102 or to multiple ducts 102.

[0048] The configuration described herein allows the first container 106 to be used to easily supply or distribute a refrigerant (e.g., a sublimating refrigerant) because the refrigerant is / can be in a non-solid aggregate state (e.g., liquid, gas, liquid / gas, supercritical state, etc.) when it enters the first container 106. According to various embodiments, the first container 106 can be configured such that the refrigerant entering the first container 106 is in a non-solid aggregate state (e.g., liquid, gas, liquid / gas, supercritical state, etc.). In this way, a sublimating refrigerant can be supplied / distributed in a simple manner. Furthermore, the refrigerant can only at least partially change to a solid aggregate state when it enters at least one duct 102 (e.g., when it enters the second section 102-2).

[0049] According to various embodiments, the first container 106 can be configured to provide a refrigerant at a moderate or high pressure level within the first container 106 (e.g., a pressure level ranging from about 10 bar to about 160 bar, e.g., about 70 bar to about 140 bar, about 40 bar to about 70 bar, about 10 bar to about 40 bar, etc.). Thus, the first container 106 can be configured to provide a refrigerant that is fully liquefied, in a liquid / gas mixture, or in a supercritical state within the first container 106. According to various embodiments, the first container 106 can be configured to provide a refrigerant at a pressure level within the first container 106 that is (e.g., always) higher than the pressure level at the triple point of the refrigerant. Throttling at a low pressure level (e.g., a pressure level ranging from about 0 bar to about 5 bar) occurs in the second section 102-2 of the at least one duct 102.

[0050] According to various embodiments, the first container 106 may be configured as a separator (e.g., an intermediate pressure separator) for separating refrigerant in a liquid phase from refrigerant in a gas phase. In this embodiment, the first container 106 may be configured to supply liquid refrigerant to at least one duct 102 or distribute the liquid refrigerant to the ducts of the plurality of ducts 102 and to discharge gas refrigerant through an additional outlet (e.g., a gas outlet). As a result, the condition (e.g., pressure) of the refrigerant in the at least one duct 102 may be more accurately determined. Furthermore, the supply and distribution of the liquid refrigerant may be more easily accomplished.

[0051] According to various embodiments, the first container 106 may be adapted to be insulated from the fluid to be cooled. For example, the first container 106 may be coated (thermally coated) or have such a coating to insulate it from the fluid to be cooled flowing over or through the heat exchanger 100. As a result, subcooling of the refrigerant within the first container 106 may be prevented, and the refrigerant within the first container 106 may be prevented from converting to a sublimable aggregate state (e.g., an at least partially solid state).

[0052] According to various embodiments, the heat exchanger 100 may include a second container 108 (e.g., a collection container). The second container 108 may be configured to receive the refrigerant discharged from at least one duct 102. According to various embodiments, the second container 108 may be configured to collect solid refrigerant components (e.g., solid particles of the refrigerant). Solid refrigerant components are formed when the refrigerant becomes at least partially solid. These solid refrigerant components can sublimate within the second section 102-2 through heat transfer with the fluid being cooled. If some of these solid refrigerant components do not sublimate, they may cause problems in the refrigeration system. For example, they may damage the compressor. Thus, the second container 108 may be configured to collect the solid refrigerant components discharged from at least one duct 102. This prevents the refrigerant components from unnecessarily circulating within the refrigeration system.

[0053] According to various embodiments, the second container 108 can be configured as a solid separator (e.g., a cyclone separator). For example, the second container 108 can be configured to discharge gaseous refrigerant through a first outlet and collect solid refrigerant (e.g., solid refrigerant components, such as solid particles of the refrigerant). According to various embodiments, the second container 108 can include a second outlet for discharging accumulated solid refrigerant. In this manner, when the heat exchanger 100 is used in a refrigeration system, the second container 108 can provide and circulate only gaseous refrigerant through the refrigeration system.

[0054] 2A, 2B, 2C, 2D, 2E, and 2F each show a schematic cross section of a duct 102 of a heat exchanger 100 according to various embodiments.

[0055] The first section 102-1 and the second section 102-2 of the at least one duct 102 may have any size and / or shape that is effective to sublimate the refrigerant only in the second section 102-2. For example, the first section 102-1 and / or the second section 102-2 may have any cross-section, such as a circular cross-section, an elliptical cross-section, a square cross-section, a rectangular cross-section, a polygonal cross-section, or the like.

[0056] According to various embodiments, the cross-section of the first section 102-1 may have the same shape as the cross-section of the second section 102-2, or the cross-sections of the first section 102-1 and the second section 102-2 may have different shapes.

[0057] According to various embodiments, the first section 102-1 may have a cross-section that does not vary along the direction of refrigerant flow within the first section 102-1 (e.g., along the length 101 of the first section 102-1). However, the first section 102-1 may have a cross-section that varies along the direction of refrigerant flow within the first section 102-1 (e.g., along the length 101 of the first section 102-1). For example, the cross-section of the first section 102-1 may vary in shape and / or size.

[0058] According to various embodiments, the second section 102-2 may have a cross-section that does not vary along the direction of refrigerant flow within the second section 102-2 (e.g., along the length 101 of the second section 102-2). However, the second section 102-2 may have a cross-section that varies along the direction of refrigerant flow within the second section 102-2 (e.g., along the length 101 of the second section 102-2). For example, the shape and / or size of the cross-section of the second section 102-2 may vary.

[0059] According to various embodiments, the first section 102-1 and the second section 102-2 may be configured to have an abrupt (i.e., sudden) change in cross-sectional area at the boundary between the first section 102-1 and the second section 102-2, as shown in FIG. 2A.

[0060] However, as shown in FIG. 2B, the second section 102-2 may have a cross-sectional area that gradually expands from the boundary with the first section 102-1 to a desired cross-sectional area. For example, the second section 102-2 may have a tapered shape. In this embodiment, the cross-sectional area gradually changes in this manner.

[0061] Thus, the shapes and cross-sectional areas of the first section 102-1 and the second section 102-2 may be selected as appropriate depending, for example, on the refrigerant and / or other operating parameters of the cooling system in which the heat exchanger 100 is used.

[0062] According to various embodiments, the cross-section of the first section 102-1 may range from about 0.01 mm to about 0.5 mm (e.g., about 0.01 mm to about 0.2 mm, about 0.02 mm to about 0.1 mm, about 0.02 mm to about 0.05 mm) in size along a direction perpendicular to the flow direction of refrigerant in the at least one duct 102 (e.g., size along a direction perpendicular to direction 101). For example, the cross-section of the first section 102-1 may be less than 0.1 mm in size along a direction perpendicular to the flow direction of refrigerant in the at least one duct 102. For example, the cross-section of the first section 102-1 may be sized such that the refrigerant entering the first section 102-1 reaches a critical velocity (e.g., the speed of sound).

[0063] According to various embodiments, the first section 102-1 may be sized along a direction parallel to the direction of refrigerant flow in the at least one duct 102 (e.g., the length of the first section 102-1 along direction 101) such that the refrigerant in the first section 102-1 remains in a non-solid mass state. That is, the length of the first section 102-1 may be dimensioned such that the pressure drop of the refrigerant entering the first section 102-1 is insufficient to allow the refrigerant in the first section 102-1 to sublimate (e.g., not to a pressure level below the triple point of the refrigerant).

[0064] According to various embodiments, the cross-section of the second section 102-2 may have a size along a direction perpendicular to the flow direction of the refrigerant in at least one duct 102 (e.g., a height, width, diameter, edge length, etc. perpendicular to direction 101) ranging from about 0.1 mm to about 20 mm (e.g., a range of about 0.5 mm to about 10 mm, a range of about 1 mm to about 5 mm).

[0065] According to various embodiments, the second section 102-2 may have dimensions along a direction parallel to the flow direction of the refrigerant in at least one duct 102 (e.g., the length of the second section 102-2 along direction 101) that allow the refrigerant in the second section 102-2 to completely sublimate.

[0066] A wire of a desired size (e.g., a desired diameter) may be inserted into a conventional duct (e.g., a conventional mini-duct) to obtain a desired cross-sectional dimension and cross-section of the first section 102-1. The original section of duct is then clamped, and the wire is finally removed, resulting in a duct 102 having a reduced cross-sectional area of ​​the first section 102-1. The inserted wire may have a coating that burns off upon heating after clamping. This creates a gap between the duct 102 (e.g., the inner surface of the duct 102) and the wire, making it easier to remove the wire. It is understood that multiple wires may be used, for example, simultaneously, to modify multiple ducts (e.g., multiple mini-ducts) or multiple pipes of a single duct.

[0067] Alternatively, the duct can be clamped until the duct inlet is closed and holes can be drilled, for example with a drill or laser, into the duct, resulting in a duct 102 with a first section 102-1 having a reduced cross-sectional area. It is understood that multiple ducts (e.g., multiple mini-ducts) or multiple pipes of a single duct can be modified simultaneously, with holes drilled in each duct or pipe.

[0068] According to various embodiments, as shown in, for example, Figures 2C-2F, a constriction 210 (e.g., a sleeve, a perforated disk, a perforated plate, a cap, etc.) may be used to reduce the cross-sectional area of ​​the first section 102-1 or to provide a restriction at the entrance to at least one duct 102. The constriction 210 may be any suitable element that provides a choke point at the entrance to at least one duct 102.

[0069] The cross-section (eg, internal cross-section) of the constriction 210 may be any suitable cross-section, such as circular, oval, square, rectangular, polygonal, or the like.

[0070] According to various embodiments, the cross-sectional (e.g., internal cross-section) size (e.g., internal dimension) of constriction 210 may range from about 0.01 mm to about 0.5 mm (e.g., about 0.01 mm to about 0.2 mm, about 0.02 mm to about 0.1 mm, about 0.02 mm to about 0.05 mm) along a direction perpendicular to the direction of refrigerant flow within constriction 210 (e.g., height, width, diameter, edge length, etc., perpendicular to direction 101). For example, the cross-sectional dimension of constriction 210 may be less than 0.1 mm along a direction perpendicular to the direction of refrigerant flow within constriction 210. For example, the cross-section of constriction 210 may be sized such that refrigerant entering constriction 210 reaches a critical velocity (e.g., the speed of sound) within constriction 210 (and, e.g., within first section 102-1).

[0071] According to various embodiments, the cross-section (e.g., the interior cross-section) of the constriction 210 can be sized to prevent sublimation of the refrigerant within the constriction 210 (and, e.g., within the first section 102-1). For example, the cross-section of the constriction 210 can be sized to provide a pressure level within the constriction 210 that prevents the refrigerant from sublimating within the constriction 210. ... non-solid, aggregated state (e.g., a liquid, a gas, a liquid / gas, or a supercritical state) within the constriction 210. According to various embodiments, the cross-section of the constriction 210 can be sized to provide a pressure level of the refrigerant within the constriction 210 that is greater than the pressure level at the triple point of the refrigerant.

[0072] According to various embodiments, constriction 210 may be sized along a direction parallel to the direction of refrigerant flow through constriction 210 (e.g., the length of constriction 210 along direction 101) such that the refrigerant remains in a non-solid mass state within constriction 210. In other words, the length of constriction 210 may be sized such that the pressure drop of the refrigerant entering constriction 210 is insufficient to allow sublimation of the refrigerant within constriction 210 or to reach a pressure level less than three times the pressure of the refrigerant.

[0073] According to various embodiments, at least one duct 102 may include a constriction 210 within the first section 102-1. As shown in Figures 2C and 2D, the constriction 210 may be included within the first section 102-1 to reduce the cross-sectional area of ​​the first section 102-1. For example, the duct 102 may include a first section 102-1 with a reduced cross-sectional area by inserting the constriction 210 into the duct and then clamping the duct (e.g., at the inlet of the duct) to secure the constriction 210. The constriction may be located within each duct of multiple ducts or within each pipe (e.g., each mini-duct) of a single duct.

[0074] According to various embodiments, the constriction 210 may be positioned such that it is entirely within the at least one duct 102 (e.g., within the first section 102-1), as shown in, for example, Figure 2C. Alternatively, a portion of the constriction 210 may be positioned outside the at least one duct 102 (e.g., outside the first section 102-1), as shown in, for example, Figure 2D.

[0075] According to various embodiments, the constriction 210 may be disposed (e.g., soldered or otherwise attached) at the entrance of at least one duct 102, as shown in Figures 2E and 2F. In this embodiment, the length or thickness of the constriction 210 may range from about 1 micron to about 500 μm (e.g., from about 50 μm to about 200 μm).

[0076] For example, the constriction 210 may be a thin plate (e.g., sheet, disk) with one or more holes drilled therein, as shown in Figure 2E. Alternatively, the constriction 210 may be a cap with one or more holes drilled therein and placed at the entrance of at least one duct 102, as shown in Figure 2F.

[0077] In this embodiment, the constriction 210 may form an additional section of the at least one duct 102. Thus, the constriction 210 may function as a first section 102-1 of the at least one duct 102, and the at least one duct 102 may function as a second section 102-2 of the at least one duct 102. In other words, the constriction 210 and the at least one duct 102 may be configured / dimensioned such that: upstream of the constriction 210, the refrigerant is at a high pressure level; within the constriction 210, the refrigerant reaches a critical velocity (speed of sound) and is at a lower pressure level; after the constriction 210, e.g., upon entry into the at least one duct 102, the refrigerant further expands and the pressure of the refrigerant further decreases, e.g., to a sublimation pressure level (e.g., a pressure level in the range of about 0 bar to about 5 bar). High pressure levels are, for example, in the range of about 10 bar to about 160 bar (e.g., about 70 bar to about 140 bar, about 40 bar to about 70 bar). Lower pressure levels are, for example, in the range of about 40 bar to about 70 bar (e.g., about 10 bar to about 70 bar, about 10 bar to about 40 bar, about 40 bar to about 70 bar).

[0078] According to various embodiments, the heat exchanger 100 comprises at least one duct 102 for carrying a refrigerant and at least one constriction 210 disposed upstream from the at least one duct 102. The cross-sectional area of ​​the at least one duct 102 may be larger than the cross-sectional area (e.g., internal cross-sectional area) of the at least one constriction 210 so that the refrigerant can sublimate within the at least one duct 102.

[0079] FIG. 2G is a schematic diagram of the container 106 and duct 102 of the heat exchanger 100 according to various embodiments.

[0080] For clarity, only the first container 106 and at least one duct 102 are shown in Figure 2G, with the understanding that other elements may be present in the heat exchanger 100 (e.g., a second container 106, at least one heat transfer element 104, etc.).

[0081] According to various embodiments, the at least one duct 102 may be inserted into the first container 106, for example by soldering. Care must be taken when connecting the at least one duct 102 to the first container 106 to ensure that the first section 102-1 is not deformed in the process, for example by thermal expansion, or is not sealed, for example by soldering.

[0082] To avoid unwanted modification (i.e., restriction) of the first section 102-1, the at least one duct 102 may protrude into the first container 106, for example, so that the first section 102-1 is sufficiently clear of a joint (such as a solder joint) between the at least one duct 102 and the first container 106. According to various embodiments, the at least one duct 102 may be inserted into the first container 106 to a depth tE such that unwanted modification of the first section 102-1 is avoided.

[0083] When the constriction 210 is used to reduce the cross-sectional area of ​​the first section 102-1 or to form an additional section of at least one duct 102, the constriction 210 may comprise a material that is not wetted by the solder used.

[0084] The following describes possible configurations of a cooling system incorporating the heat exchanger 100 described herein, with the understanding that these configurations are chosen as examples and that any other suitable configurations and components are possible.

[0085] FIG. 3 illustrates a schematic diagram of a cooling system 300 including a heat exchanger 100 according to various embodiments.

[0086] According to various embodiments, the heat exchanger 100 can be inserted into a cooling system 300 (e.g., a refrigeration system) so that the cooling system 300 can also be used for cooling processes by sublimation, i.e., at temperature levels below −50° C. The cooling system 300 can also be a conventional (e.g., cold vapor) cooling system in which the evaporator is replaced with the heat exchanger 100 described herein.

[0087] According to various embodiments, the cooling system 300 may include a compressor 312 (e.g., a reciprocating compressor, a screw compressor, a rotary compressor, a centrifugal compressor, a scroll compressor, etc.) disposed downstream from the heat exchanger 100. The cooling system 300 may be configured such that the refrigerant discharged from the heat exchanger 100 in a gaseous state after sublimation is supplied to the compressor 312. For example, the compressor 312 may be in (e.g., fluid) communication with the heat exchanger 100. The compressor 312 and the heat exchanger 100 may be connected or connectable to each other by a conduit, such as a suction conduit. According to various embodiments, the compressor 312 may be configured to draw the refrigerant from an outlet of the heat exchanger 100 (e.g., from a gas outlet of the second container 108).

[0088] According to various embodiments, the compressor 312 may be configured to compress the refrigerant such that, for example, the compressor 312 receives the refrigerant at a low pressure (e.g., at a pressure level in a range from about 0 bar to about 5 bar) and discharges the refrigerant at a high pressure (e.g., at a pressure level in a range from about 10 bar to about 160 bar, from about 70 bar to about 140 bar, or from about 40 bar to about 70 bar).

[0089] Additionally, the compressor 312 may be configured to circulate the refrigerant through the cooling system 300 .

[0090] According to various embodiments, the cooling system 300 may include a heat rejection heat exchanger 314 (e.g., a condenser, a gas cooler, etc.) disposed downstream from the compressor 312. According to various embodiments, the cooling system 300 may be configured such that the refrigerant compressed by the compressor 312 is supplied to the heat rejection heat exchanger 314. For example, the heat rejection heat exchanger 314 and the compressor 312 may be in (e.g., fluid) communication with each other. The heat rejection heat exchanger 314 and the compressor 312 may be connected or connectable to each other by a conduit, such as a gas line.

[0091] According to various embodiments, the heat rejection heat exchanger 314 may be located upstream of the heat exchanger 100. In this manner, the cooling system 300 may be configured such that the refrigerant discharged from the heat rejection heat exchanger 314 is supplied to the heat exchanger 100 (e.g., the first container 106). For example, the heat rejection heat exchanger 314 may be in (e.g., fluid) communication with the heat exchanger 100 (e.g., the first container 106). For example, the heat rejection heat exchanger 314 and the heat exchanger 100 may be connected or connectable to each other (e.g., by a conduit such as a fluid conduit).

[0092] According to various embodiments, the heat rejection heat exchanger 314 may be configured such that the refrigerant flows into the heat rejection heat exchanger 314, and as the refrigerant flows into the heat rejection heat exchanger 314, heat is released from the refrigerant and absorbed into (and in heat transfer relationship with) a secondary fluid (e.g., air, water, saltwater, etc.). In this manner, the refrigerant may be cooled. According to various embodiments, the refrigerant exiting the heat rejection heat exchanger 314 may be at a high pressure. For example, the pressure of the refrigerant may range from about 10 bar to about 160 bar (e.g., from about 70 bar to about 140 bar, from about 40 bar to about 70 bar).

[0093] Alternatively or additionally, the heat rejection heat exchanger 314 may be configured such that the refrigerant flows into the heat rejection heat exchanger 314, which is in a heat exchange relationship with a second refrigerant. For example, the heat rejection heat exchanger 314 may be in a heat exchange relationship with another heat exchanger (e.g., another refrigeration circuit), in which case heat is extracted from the refrigerant flowing into the heat rejection heat exchanger 314 and absorbed by the second refrigerant flowing into the other heat exchanger (e.g., another refrigeration circuit).

[0094] The pressure of the refrigerant in the first container 106 of the heat exchanger 100 and the pressure of the refrigerant at the inlet of the first section 102-1 of the at least one duct 102 affect the critical mass flow rate. The critical mass flow rate represents the maximum mass flow rate that can enter a restriction (e.g., the first section 102-1). For example, the critical mass flow rate increases with increasing inlet pressure (e.g., increasing the refrigerant pressure at the inlet of the first section 102-1). Increasing the mass flow rate can increase cooling power.

[0095] According to various embodiments, the cooling system 300 may further include an open-circuit control system or a closed-circuit control system. The open-circuit control system may be configured to control the components of the cooling system 300 in an open-circuit manner, and / or the closed-circuit control system 300 may be configured to control the operating conditions of the components of the cooling system 300 in a closed-circuit manner.

[0096] Controlling the pressure (e.g., high pressure) of the refrigerant exiting the heat rejection heat exchanger 314 (closed circuit control), and thus controlling the pressure of the refrigerant supplied to the heat exchanger 100, may have the effect of controlling the mass flow rate in the first container 106 and / or the first section 102-1. High pressure can increase the critical mass flow rate, thereby reducing the superheat of the refrigerant and / or increasing the cooling power. Controlling the high pressure can be done, for example, by controlling the temperature level of the heat rejection heat exchanger 314.

[0097] According to various embodiments, the open-circuit control system and / or the closed-circuit control system may be configured to open-circuit / close-circuit control the heat rejection heat exchanger 314 such that the pressure of the refrigerant discharged by the heat rejection heat exchanger 314 increases (or decreases) and the mass flow rate of the refrigerant in the first container 106 increases (or decreases). For example, the open-circuit control system and / or the closed-circuit control system may be configured to open-circuit / close-circuit control the heat rejection heat exchanger 314 such that the pressure of the refrigerant discharged from the heat rejection heat exchanger 314 increases (or decreases), the mass flow rate increases (or decreases), and / or the superheat of the refrigerant decreases (or increases).

[0098] The cooling system 300 may optionally include a valve 316 (e.g., a throttle valve, a capillary pipe, an expansion valve such as a thermostatic expansion valve, an electronic expansion valve, a manual expansion valve, etc.) The valve 316 may be located downstream of the heat rejection heat exchanger 314 and upstream of the heat exchanger 100 (e.g., between the heat rejection heat exchanger 314 and the heat exchanger 100).

[0099] Valve 316 can be used to provide open or closed circuit control of superheat and / or cooling power. However, two-phase (e.g., liquid and gas) or supercritical refrigerant enters first container 106. Entering first container 106 in liquid / gas condition can result in poorer distribution than entering first container 106 in pure liquid or supercritical condition.

[0100] According to various embodiments, cooling system 300 may be configured such that refrigerant discharged from heat rejection heat exchanger 314 is supplied to valve 316. For example, valve 316 may be in (e.g., fluid) communication with heat rejection heat exchanger 314. Valve 316 and heat rejection heat exchanger 314 may be connected or connectable to each other by a conduit, such as a gas conduit, a fluid conduit, or the like.

[0101] According to various embodiments, cooling system 300 may be configured such that refrigerant discharged from valve 316 is supplied to heat exchanger 100. For example, valve 316 and heat exchanger 100 may be in (e.g., fluid) communication with each other. Valve 316 and heat exchanger 100 may be connected / connectable to each other by a conduit, such as a gas conduit, a liquid conduit, or the like.

[0102] Valve 316 may be configured to reduce the pressure of the refrigerant as it enters valve 316, which may be used to regulate the pressure of the refrigerant supplied to heat exchanger 100. In this manner, valve 316 may be used to regulate, for example, the pressure of the refrigerant in first container 106 and the pressure of the refrigerant in first section 102-1. As a result, valve 316 may be used to adjust the mass flow rate and / or cooling power in heat exchanger 100.

[0103] According to various embodiments, an open-circuit control system or a closed-circuit control system may be configured to open-circuit / close-circuit control the valve 316 to increase (or decrease) the pressure of the refrigerant exiting the valve 316 and increase (or decrease) the mass flow rate of the refrigerant in the heat exchanger 100 (e.g., in the first container 106). In this embodiment, two expansion stages may be implemented. The first expansion stage is implemented by the valve 316. The second expansion stage is located in at least one duct 102 (e.g., after throttling in the first section 102-1).

[0104] According to various embodiments, the cooling system 300 may further include a shutoff valve (not shown), which may be located upstream (e.g., directly) from the heat exchanger 100. The shutoff valve may be configured such that when closed, no refrigerant flows into the shutoff valve, and when open, refrigerant flows into the shutoff valve.

[0105] According to various embodiments, the shutoff valve can be configured to remain closed from the time the cooling process is initiated until a minimum suction pressure is reached by the compressor 312 (e.g., by the refrigerant suction of the compressor 312). In this manner, the shutoff valve can open, or be configured to open, only after a minimum allowable suction pressure is reached.

[0106] According to various embodiments, the shutoff valve can be configured to close during operation when the maximum allowable suction pressure is exceeded. Thus, when the pressure level within the cooling system 300 is suitable for the desired operation of the heat exchanger 100 (e.g., suitable for sublimating the refrigerant within the second section 102-2 of at least one duct 102 of the heat exchanger 100), the shutoff valve can be used to allow or stop the flow of refrigerant to the heat exchanger 100 as appropriate. Additionally, the shutoff valve can be configured to remain closed during system shutdown to maintain the operating pressure level.

[0107] As described above, the second container 108 of the heat exchanger 100 may be, or may be configured to operate as, a solids separator. Alternatively or additionally, the cooling system 300 may include a solids separator (not shown), which may be located downstream from the heat exchanger 100. According to various embodiments, the solids separator may be configured to receive the refrigerant discharged from the heat exchanger 100, supply the gaseous refrigerant to the compressor 312, and recover the solid refrigerant (e.g., solid refrigerant components, such as solid particles of the refrigerant). In this manner, the compressor 312 may be protected from damage by the solid refrigerant.

[0108] According to various embodiments, the cooling system 300 may further include a particulate filter (not shown) configured to capture non-refrigerant particles. The particulate filter may be positioned in any suitable location within the cooling system 300 to block non-refrigerant particles circulating through the cooling system 300. This may prevent the non-refrigerant particles from clogging a restriction (e.g., the at least one duct 102 and / or the first section 102-1 of the at least one duct 102).

[0109] According to various embodiments, the cooling system 300 may further include an internal heat exchanger (not shown) for transferring heat to the suction gas at the outlet of the heat exchanger 100. Heat may be extracted from the cooling process, for example, downstream of the heat rejection heat exchanger 314. This embodiment may improve process efficiency and cooling power.

[0110] FIG. 4 illustrates a schematic of a cooling system 300 including a heat exchanger 100 according to various embodiments.

[0111] As noted above, the first container 106 may be or may be configured as a separator (e.g., an intermediate pressure separator). In such an embodiment, the first container 106 may include a portion that is higher than the top duct 102. The higher portion of the first container 106 may be, for example, above at least one duct 102 or above the top duct 102 of the plurality of ducts 102. For example, the first container 106 may extend above the top duct 102.

[0112] According to various embodiments, the first container 106 may include a gas outlet located, for example, at a higher portion. The cooling system 300 may be configured such that the gaseous refrigerant discharged from the gas outlet of the first container 106 is supplied to the compressor 312. For example, the cooling system 300 may be arranged such that the gaseous refrigerant discharged from the gas outlet of the first container 106 is supplied to the compressor 312 together with the gaseous refrigerant discharged from the heat exchanger 100 (e.g., from the second container 108).

[0113] According to various embodiments, the cooling system 300 may optionally include an additional valve 418 (e.g., an expansion valve, such as a throttle valve, a capillary valve, a thermostatic expansion valve, an electronic expansion valve, a manual expansion valve, etc.). The additional valve 418 may be configured to reduce the pressure of the refrigerant as it enters the additional valve 418. The additional valve 418 may be located downstream from the gas outlet of the first container 106 (e.g., between the gas outlet of the first container 106 and the compressor 312). The additional valve 418 may be in communication (e.g., fluid communication) with the gas outlet of the first container 106. The additional valve 418 and the gas outlet of the first container 106 may be connected or connectable to each other by a conduit, such as a gas line.

[0114] In this manner, the additional valve 418 can be utilized to reduce the pressure of the gaseous refrigerant received from the gas outlet of the first container 106 to a pressure level that is the same as or close to the pressure level of the gaseous refrigerant being discharged from the heat exchanger 100 (e.g., from the second container 108). For example, the additional valve 418 can be configured to receive the refrigerant from the gas outlet of the first container 106 at a medium pressure level and reduce the pressure of the refrigerant to a low pressure level. The medium pressure level can be, for example, a pressure level in the range of about 10 bar to about 70 bar, such as, for example, about 10 bar to about 40 bar or about 40 bar to about 70 bar. The low pressure level can be, for example, a pressure level in the range of about 0 bar to about 5 bar. The resulting medium pressure gas can then be supplied to the suction gas of the compressor 312 via the additional valve 418.

[0115] Alternatively / in addition, the compressor 312 can be configured to supply gas refrigerant at an intermediate pressure level during the compression process (so-called intermediate injection). The intermediate pressure level corresponds to, for example, a pressure level in the range of about 10 bar to about 70 bar, such as, for example, a range of about 10 bar to about 40 bar, or a range of about 40 bar to about 70 bar. In this embodiment, the compressor 312 can be configured to receive the refrigerant (e.g., directly) from the gas outlet of the first container 106 without reducing the pressure of the refrigerant. For example, the compressor 312 can have a first input and a second input. In this case, the compressor 312 is configured to receive (i.e., draw) the refrigerant from the second container 108 through the first input and to receive the refrigerant from the gas outlet of the first container 106 through the second input. In this manner, the refrigerant received from the gas outlet of the first container 106 can be supplied during the compression process, for example, after the refrigerant received from the second container 108 has been compressed.

[0116] As described above, the second container 108 can be configured as a solid separator (e.g., a cyclone separator). According to various embodiments, the second container 108 of the heat exchanger 100 can include an extension that extends below the lowest duct 102 (e.g., below at least one duct 102, or below the lowest duct 102 of the ducts 102). For example, the second container 108 can extend below the lowest duct 102. According to various embodiments, the second container 108 can be configured to discharge gaseous refrigerant from the gas outlet and accumulate solid refrigerant (e.g., solid refrigerant components, such as solid particles of the refrigerant). For example, the second container 108 can be configured to accumulate solid refrigerant in the extension.

[0117] According to various embodiments, the cooling system 300 may be configured such that the gaseous refrigerant discharged from the second container 108 is supplied to the compressor 312. In this manner, the compressor 312 may be prevented from aspirating solid refrigerant.

[0118] Alternatively / in addition, the second container 108 may include a second outlet through which the solid refrigerant component (e.g., solid particles of refrigerant) is discharged and provided to the compressor 312. For example, the extension of the second container 108 and the compressor 312 may be in (e.g., fluid) communication with each other. In this embodiment, the second container 108 may be configured to provide the solid refrigerant component with a size that allows it to sublimate during transit to the compressor 312 without damaging the compressor 312. In this manner, refrigerant oil that has circulated within the circuit and is discharged from the compressor 312 and accumulated within the second container 108 (e.g., within the extension of the second container 108) can be returned to the compressor 312.

[0119] To control refrigerant superheat, superheat may be sensed at the bottom of the second container 108 (e.g., at the bottom of the solids separator), where superheat occurs only if no solid refrigerant components exit the at least one duct 102 (or ducts 102). If superheat is measured within the second container 108 or elsewhere downstream of the second container 108 (e.g., within or downstream of the solids separator), superheat may be detected even if solid refrigerant has exited the at least one duct 102 because the refrigerant is not in thermal equilibrium.

[0120] FIG. 5 is a schematic diagram of a cooling system 300 including a heat exchanger 100 according to various embodiments.

[0121] According to various embodiments, the refrigeration system 300 may include a second compressor 520 (e.g., a reciprocating compressor, a screw compressor, a rotary compressor, a centrifugal compressor, a scroll compressor, etc.) to provide two-stage compression of the refrigerant. For example, the second compressor 520 may be located downstream from the first compressor 312.

[0122] In such an embodiment, the reject heat exchanger 314 may be at ambient temperature, resulting in a high pressure ratio and compression end temperature. A second compressor 520 may be used to achieve this high pressure ratio.

[0123] In this embodiment, the additional valve 418 may be omitted, and the gaseous refrigerant discharged from the first container 106 (e.g., from the gas outlet of the first container 106) may be supplied (e.g., directly) to the second compressor 520. The two-stage compression can prevent the pressure of the gaseous refrigerant discharged from the first container 106 (e.g., the pressure from the gas outlet of the first container 106) from dropping to a low pressure level, thereby making the process (e.g., the compression process) more efficient.

[0124] According to various embodiments, the cooling system 300 may be configured such that the gas refrigerant discharged from the first container 106 (e.g., through a gas outlet of the first container 106) is supplied to the second compressor 520 along with the compressed refrigerant discharged from the compressor 312. For example, the gas outlet of the first container 106 and the second compressor 520 may be in communication with each other. For example, the gas outlet of the first container 106 and the second compressor 520 may be or become connected to each other (e.g., by a conduit such as a gas line). According to various embodiments, the second compressor 520 may be configured to draw refrigerant from the first container 106 (e.g., through the gas outlet of the first container 106).

[0125] According to various embodiments, the open-circuit control system or the closed-circuit control system may be configured to open-circuit / close-circuit control the second compressor 520 (e.g., the speed of the second compressor 520). For example, an increase in the speed of the second compressor 520 may result in a decrease in the pressure (e.g., the average pressure) in the first container 106. In other words, the open-circuit control system or the closed-circuit control system may be configured to open-circuit / close-circuit control the second compressor 520 (e.g., the speed of the second compressor 520) so that the pressure of the refrigerant in the first container 106 increases (or decreases). In this manner, the second compressor 520 may be open-circuit / close-circuit controlled to control the superheat of the refrigerant.

[0126] FIG. 6 shows a schematic diagram of a cooling system 300 including a heat exchanger 100 according to various embodiments.

[0127] According to various embodiments, the cooling system 300 may include a separator 622 (e.g., an intermediate pressure separator), which may be located upstream from the heat exchanger 100. The separator 622 may be configured to separate the gas refrigerant from the liquid refrigerant.

[0128] According to various embodiments, the cooling system 300 may be configured to supply the liquid refrigerant from the separator 622 to the heat exchanger 100. For example, the separator 622 may include a gas outlet and a liquid outlet. The liquid outlet may be connected or may be adapted to be connected to the heat exchanger 100 (e.g., to the first container 106). Thus, the first container 106 may be supplied with only liquid or supercritical refrigerant. By using the separator 622 and the associated liquid / supercritical inlet of the first container 106, the refrigerant may be supplied or distributed in a more efficient manner.

[0129] According to various embodiments, the refrigeration system 300 may be configured such that the gaseous refrigerant discharged from the separator 622 is supplied to the compressor 312 .

[0130] According to various embodiments, the refrigeration system 300 may include another valve 624 (e.g., an expansion valve, such as a throttle valve, a capillary pipe, a thermostatic expansion valve, an electronic expansion valve, a manual expansion valve, etc.). The other valve 624 may be configured to reduce the pressure of the refrigerant as it flows into the other valve 624. The other valve 624 may be located downstream from the gas outlet of the separator 622 and upstream from the compressor 312. The other valve 624 may be in (e.g., fluid communication with) the gas outlet of the separator 622. For example, the other valve 624 and the gas outlet of the separator 622 may be connected or may be configured to be connected (e.g., by a conduit such as a gas line).

[0131] In this manner, the other valve 624 can be used to reduce the pressure of the refrigerant discharged from the gas outlet of the separator 622 to a pressure level that is the same as or close to the pressure level of the gaseous refrigerant discharged from the heat exchanger 100 (e.g., from the second container 108). For example, the other valve 624 can be configured to receive refrigerant from the gas outlet of the separator 622 at a medium pressure level and reduce the pressure of the refrigerant to a low pressure level. The medium pressure level can be, for example, a pressure level in the range of about 10 bar to about 70 bar, such as, for example, about 10 bar to about 40 bar, or about 40 bar to about 70 bar. The low pressure level can be, for example, a pressure level in the range of about 0 bar to about 5 bar. The resulting medium pressure gas can be supplied to the suction gas of the compressor 312 via the other valve 624.

[0132] It is understood that refrigeration system 300 may include other components. For example, temperature and / or pressure sensors may be included to sense the temperature and / or pressure of the refrigerant at various points in the refrigeration circuit. The sensed temperature and / or pressure may be used as feedback parameters for open-circuit or closed-circuit control of operating parameters of elements of refrigeration system 300 (e.g., operating parameters of valve 316, other valves 624, compressor 312, etc.).

[0133] According to various embodiments, the open-circuit control system or the closed-circuit control system may be configured to open-circuit / close-circuit control valve 316 and / or other valves 624 based on the sensed temperature and / or pressure. According to various embodiments, the open-circuit control system and / or the closed-circuit control system may be configured to open-circuit / close-circuit control compressor 312 (e.g., the speed of compressor 312) or second compressor 520 (e.g., the speed of second compressor 520) based on the sensed temperature and / or the sensed pressure.

[0134] For example, valve 316 may be open-circuit controlled or closed-circuit controlled for subcritical operation according to a predetermined subcooling. When the resulting inlet pressure reaches a maximum predetermined subcritical high pressure, valve 316 is preferably closed-circuit controlled according to the maximum predetermined subcritical high pressure.

[0135] The other valve 624 may provide closed-loop control of the pressure (e.g., average pressure) within the separator 622. Higher pressure (e.g., average pressure) increases the critical mass flow rate, resulting in higher cooling capacity and less superheat. For example, the open-loop or closed-loop control system may be configured to open-loop / close-loop control the other valve 624 to increase (or decrease) the pressure of the refrigerant within the separator 622 and increase (or decrease) the pressure of the refrigerant exiting the other valve 624. For example, the open-loop or closed-loop control system may be configured to open-loop / close-loop control the other valve 624 to increase (or decrease) the mass flow rate of the refrigerant in the separator 622 and increase (or decrease) the pressure of the refrigerant exiting the other valve 624.

[0136] The maximum pressure (e.g., maximum average pressure) is limited by the target high pressure upstream of valve 316. The minimum pressure (e.g., minimum average pressure) is limited by the dependent minimum critical pressure, which must exceed three times the pressure of the refrigerant. Within this pressure range, other valves 624 may also be open-circuit or closed-circuit controlled depending on the cooling power and superheat. For example, during transcritical operation, other valves 624 may be used to maintain the pressure (e.g., intermediate pressure) at a subcritical pressure level.

[0137] The superheat can be controlled by varying the volumetric flow rate of the compressor 312. For example, increasing the flow rate of the compressor 312 decreases the sublimation pressure and increases the superheat. The cooling power increases only slightly with the additional amount of superheat. The maximum sublimation pressure and the minimum allowable intake pressure impose limitations. That is, the open-circuit control system and / or the closed-circuit control system may be configured to open-circuit / close-circuit control the compressor 312 (e.g., the speed of the compressor 312) so that the pressure of the refrigerant (e.g., the pressure of the refrigerant in the heat exchanger 100) can be increased and / or decreased. In this manner, the superheat of the refrigerant can also be adjusted by open-circuit or closed-circuit control of the compressor 312 (e.g., the speed of the compressor 312).

[0138] In one embodiment, the open-circuit or closed-circuit control system may open-circuit / close-circuit control the other valve 624 such that the pressure (e.g., intermediate pressure) in the separator 622 rises to a supercritical pressure less than or equal to the high pressure (e.g., a pressure level in the range of about 10 bar to about 160 bar, e.g., about 70 bar to about 140 bar, about 40 bar to about 70 bar), and the supercritical refrigerant is provided to the heat exchanger 100 (e.g., to a throttle point in the first section 102-1) and expanded in the second section 102-2 of at least one duct 102 of the heat exchanger 100. In this way, by expanding the intermediate pressure range to include the supercritical pressure range, the critical mass flow rate in the restriction (e.g., the first section 102-1) can be increased, thereby expanding the range of power control.

[0139] As mentioned above, the cooling system 300 may include an internal heat exchanger. According to various embodiments, the internal heat exchanger may be located downstream from the liquid outlet of the separator 622 to allow for subcooling of the liquid refrigerant. As a result, less or no foaming occurs within the first container 106 due to external heat input, allowing for more consistent refrigerant supply and distribution.

[0140] FIG. 7 is a schematic diagram of a cooling system 300 including a heat exchanger 100 according to various embodiments.

[0141] In this embodiment, the cooling system 300 may include a second compressor 520 and a separator 622 configured as described above.

[0142] In this embodiment, the other valve 624 may be omitted, and the gaseous refrigerant discharged from the separator 622 (e.g., from the gas outlet of the separator 622) may be supplied to the second compressor 520. The two-stage compression can prevent the pressure of the gaseous refrigerant discharged from the separator 622 (e.g., from the gas outlet of the separator 622) from dropping to a low pressure level.

[0143] According to various embodiments, the cooling system 300 may be configured such that the gaseous refrigerant discharged from the separator 622 (e.g., from a gas outlet of the separator 622) is supplied to the second compressor 520, for example, together with the compressed refrigerant discharged from the compressor 312.

[0144] According to various embodiments, the open-circuit control system or the closed-circuit control system may be configured to open-circuit / close-circuit control the second compressor 520 (e.g., the speed of the second compressor 520). For example, increasing the speed of the second compressor 520 may decrease the pressure (e.g., the average pressure) in the separator 622. That is, the open-circuit control system or the closed-circuit control system may be configured to open-circuit / close-circuit control the second compressor 520 (e.g., control the speed of the second compressor 520) to increase (and / or decrease) the pressure of the refrigerant in the separator 622. Thus, the open-circuit control or the closed-circuit control of the second compressor 520 may also be used to adjust the superheat of the refrigerant.

[0145] However, the cooling system 300 may additionally include another valve 624 to provide another means of controlling the pressure within the separator 622 .

[0146] According to various embodiments, the cooling system 300 may include another heat exchanger (not shown). The another heat exchanger may be located downstream of the compressor 312, for example, between the gas outlet of the separator 622 and the outlet of the compressor 312. For example, the another heat exchanger may be located upstream of the second compressor 520. In this embodiment, the cooling system 300 may be configured so that the compressed refrigerant discharged from the compressor 312 is cooled by another heat exchanger. Such cooling may increase the mass flow rate of the refrigerant entering the second compressor 520, thereby increasing the efficiency of the compression process.

[0147] According to various embodiments, a cooling method for cooling a fluid by sublimation of a refrigerant may include providing a refrigerant to a heat exchanger 100. The heat exchanger 100 may be configured as described above and may include at least one duct 102 for conveying the refrigerant. The refrigerant supplied to the heat exchanger 100 may be in a non-solid (e.g., liquid, gas, liquid / gas, supercritical) aggregate state.

[0148] According to various embodiments, a cooling method may include directing a refrigerant into at least one duct 102 of a heat exchanger 100. The at least one duct 102 may include a first section 102-1 and a second section 102-2. The first section 102-1 is located upstream of the second section 102-2 with respect to a flow direction of the refrigerant in the at least one duct 102. The second section 102-2 has a cross-sectional area larger than that of the first section 102-1 to allow the refrigerant to sublimate within the second section 102-2.

[0149] According to various embodiments, the cooling method may comprise directing a refrigerant into a first section 102-1 of at least one duct 102 of the heat exchanger 100, wherein the cross-sectional area of ​​the first section 102-1 may be dimensioned such that the refrigerant does not sublime within the first section 102-1.

[0150] For example, the cross-sectional area of ​​first section 102-1 may be sized such that the refrigerant within first section 102-1 is in a non-solid (eg, liquid, gas, liquid / gas, supercritical state, etc.) mass state.

[0151] According to various embodiments, the cooling method may include directing a refrigerant into the second section 102-2 of the at least one duct 102 of the heat exchanger 100.

[0152] For example, the cross-sectional area of ​​second section 102-2 may be sized such that the refrigerant expands within second section 102-2 in at least a partial solid (eg, solid / gas) mass state.

[0153] According to various embodiments, the cooling method may include providing heat transfer between the refrigerant flowing into the second section 102-2 and the fluid to be cooled, such that the refrigerant flowing into the second section 102-2 sublimes and the fluid to be cooled.

[0154] Further advantageous embodiments of the cooling method will become apparent from the description of the heat exchanger 100 and the cooling system 300, and vice versa.

[0155] The heat exchanger 100, cooling system 300 and cooling methods described herein may be applied to applications requiring deep cooling (eg, at temperature levels below -50°C).

[0156] One possible application could be to simulate climatic conditions, for example to test equipment and components at extremely low temperatures, as well as in medical applications where such low temperatures are required.

[0157] Various examples related to the above description and illustration will be described below. The heat exchanger of Example 1 may include at least one duct for transporting a refrigerant. The at least one duct includes a first section and a second section. The first section is located upstream of the second section in a flow direction of the refrigerant in the at least one duct. The second section has a cross-sectional area larger than that of the first section so that the refrigerant can sublimate in the second section.

[0158] In Example 2, the heat exchanger of Example 1 may further optionally include at least one duct made up of multiple tubes (eg, multiple mini-ducts, multiple mini-duct tubes, etc.).

[0159] In Example 3, the heat exchanger of Examples 1 or 2 may further optionally be configured such that the refrigerant flowing into the at least one duct is in heat exchange relationship with the fluid to be cooled.

[0160] In Example 4, the heat exchanger of any one of Examples 1 to 3 may be further optionally configured such that the refrigerant entering the second section is in heat exchange relationship with the fluid to be cooled.

[0161] In Example 5, the heat exchanger of any of Examples 1 to 4 can further optionally be configured such that the second section is disposed immediately adjacent to the first section.

[0162] In Example 6, the heat exchanger of any one of Examples 1 to 5 can further optionally be configured such that the first section provides a restriction at an inlet of the at least one duct.

[0163] In Example 7, the heat exchanger of any one of Examples 1 to 6 may further optionally be configured such that the cross-sectional area of ​​the first section is dimensioned to create a pressure drop in the refrigerant flowing into the first section.

[0164] For example, the cross-sectional area of ​​the first section may be sized such that the refrigerant is at a high pressure level before the first section (e.g., a pressure level in the range of about 10 bar to about 160 bar, e.g., about 70 bar to about 140 bar, about 40 bar to about 70 bar), the refrigerant reaches a critical velocity (speed of sound) within the first section, causing the pressure of the refrigerant in the first section to be at a low pressure level (e.g., about 10 bar to 70 bar, e.g., about 10 bar to about 40 bar, about 40 bar to about 70 bar), and after the first section (e.g., upon entering the second section), the refrigerant further expands and the pressure of the refrigerant further decreases (e.g., a pressure level in the range of about 0 bar to about 5 bar, e.g., sublimation pressure level).

[0165] In Example 8, the heat exchanger of any one of Examples 1 to 7 can further optionally be configured such that the cross-sectional area of ​​the first section is sized to prevent sublimation of the refrigerant in the first section.

[0166] In Example 9, the heat exchanger of any of Examples 1 to 8 can further optionally be configured such that the cross-sectional area of ​​the first section is dimensioned such that the refrigerant in the first section is / can be in a non-solid (e.g., liquid, gas, liquid / gas, supercritical, etc.) aggregate state.

[0167] In Example 10, the heat exchanger of any of Examples 1 to 9 can further optionally be configured such that the cross-sectional area of ​​the first section is dimensioned such that the refrigerant is at a pressure level within the first section (e.g., up to an outlet of the first section) that is greater than the pressure level of the triple point of the refrigerant.

[0168] In Example 11, the heat exchanger of any one of Examples 1 to 10 can further optionally be configured such that the cross-sectional area of ​​the first section is dimensioned such that the mass flow rate through the first section (dependent on the pressure at the inlet of the first section) reaches a critical mass flow rate.

[0169] In Example 12, the heat exchanger described in any of Examples 1 to 11 can be further optionally configured such that the cross-sectional area of ​​the first section and the cross-sectional area of ​​the second section are dimensioned to provide a pressure level (e.g., atmospheric pressure level) at which the refrigerant flowing into at least one duct can sublimate downstream from the first section (e.g., in the second section).

[0170] In Example 13, the heat exchanger of any of Examples 1 to 12 can further optionally be configured such that the cross-sectional area of ​​the first section and the cross-sectional area of ​​the second section are sized such that the refrigerant expands in the second section and becomes at least partially in a solid (e.g., solid / gas) state.

[0171] In Example 14, the heat exchanger of any of Examples 1 to 13, further optionally, further comprising: a first section having a cross-sectional area of, for example, about 0.0001 mm 2 Approximately 0.8 mm 2 In the range of, for example, about 0.001 mm 2from about 0.5 mm 2 range, or for example, about 0.005 mm 2 Approximately 0.25 mm 2 It can be configured to take a range of

[0172] In Example 15, the heat exchanger of any of Examples 1 to 14, further optionally comprising: a second section having a cross-sectional area of ​​about 0.01 mm 2 Approximately 400 mm from 2 For example, the distance may be configured to be in the range of about 0.1 mm. 2 Approximately 100 mm from 2 Range: about 0.5 mm 2 Approximately 50 mm from 2 Range: about 1 mm 2 Approximately 20 mm from 2 Range.

[0173] In Example 16, the heat exchanger of any one of Examples 1 to 15 can be further optionally configured such that the cross-sectional area of ​​the first section and the cross-sectional area of ​​the second section are dimensioned such that the refrigerant is at a pressure level in the second section ranging from about 0 bar to about 5 bar.

[0174] In Example 17, the heat exchanger of any one of Examples 1 to 16 can further optionally be one in which the refrigerant comprises carbon dioxide.

[0175] In Example 18, the heat exchanger of any one of Examples 1 to 17 may further optionally be configured such that the refrigerant comprises a hydrocarbon-based refrigerant.

[0176] For example, the refrigerant may include HFC and / or HCFC and / or HFO and / or R170 and / or R290 and / or R600, etc.

[0177] In Example 19, the heat exchanger of any one of Examples 1 to 18 may further optionally be a refrigerant that is a mixture of different refrigerants.

[0178] In Example 20, the heat exchanger of any one of Examples 1 to 19 may further optionally include a first container (e.g., a distribution container) configured to supply refrigerant to the at least one duct.

[0179] For example, the first container may be configured to distribute (eg, evenly) refrigerant to multiple pipes (eg, multiple mini-ducts) of at least one duct.

[0180] In Example 21, the heat exchanger according to Example 20 may further optionally configure the first container such that the refrigerant flowing into the first container is at a pressure level higher than the pressure level of the triple point of the refrigerant.

[0181] In Example 22, the heat exchanger of Example 20 or 21 may further optionally configure the first container such that the refrigerant in the first container is at a medium or high pressure level (e.g., a pressure level in the range of about 10 bar to about 160 bar, e.g., a pressure level in the range of about 70 bar to about 140 bar, a pressure level in the range of about 40 bar to about 70 bar, a pressure level in the range of about 10 bar to about 40 bar).

[0182] In Example 23, the heat exchanger of any one of Examples 20 to 22 may optionally configure the first container such that the refrigerant entering the first container is in a non-solid (e.g., liquid, gas, liquid / gas, supercritical state, etc.) aggregate state.

[0183] In Example 24, the heat exchanger of any one of Examples 20 to 23 can further optionally include the first container being configured as a separator (e.g., an intermediate pressure separator).

[0184] For example, the first container may be configured to supply liquid refrigerant to the at least one duct and to discharge gaseous refrigerant through the gas outlet.

[0185] In Example 25, the heat exchanger of any of Examples 1 to 24 may further optionally include a second container (e.g., a recovery container) configured to receive the refrigerant discharged from the at least one duct.

[0186] In Example 26, the heat exchanger of Example 25 may optionally include a second container configured as a solids separator (e.g., a cyclone separator).

[0187] For example, the second container may be configured to discharge gaseous refrigerant from the first outlet and accumulate solid refrigerant (eg, solid refrigerant components such as solid particles of refrigerant).

[0188] In Example 27, the heat exchanger of any one of Examples 1 to 26 further optionally comprises the first section having a circular or elliptical cross section.

[0189] In Example 28, the heat exchanger of any one of Examples 1 to 26 further optionally has a cross section of the first section that is square, rectangular, or polygonal.

[0190] In Example 29, the heat exchanger of any one of Examples 1 to 28 may further optionally have a cross-section of the first section that has a size (e.g., height, width, diameter, edge length, etc.) along a direction perpendicular to the flow direction of the refrigerant in the at least one duct in a range from about 0.01 mm to about 0.5 mm (e.g., a range from about 0.01 mm to about 0.2 mm, a range from about 0.02 mm to about 0.1 mm, a range from about 0.02 mm to about 0.05 mm).

[0191] For example, the cross-sectional size of the first section may be less than 0.1 mm.

[0192] In Example 30, the heat exchanger of any of Examples 1 to 29 further optionally comprises a cross section of the second section that is circular or elliptical.

[0193] In Example 31, the heat exchanger of any one of Examples 1 to 29 further optionally comprises a cross section of the second section that is square, rectangular, or polygonal.

[0194] In Example 32, the heat exchanger of any one of Examples 1 to 31 may further optionally have a cross-section of the second section that has a size (e.g., height, width, diameter, edge length, etc.) along a direction perpendicular to the flow direction of the refrigerant in the at least one duct in a range from about 0.1 mm to about 20 mm (e.g., a range from about 0.5 mm to about 10 mm, a range from about 1 mm to about 5 mm).

[0195] In Example 33, the heat exchanger of any of Examples 1 to 32 may further optionally provide (i.e., reduce) a cross-sectional area of ​​the first section by compressing at least one duct.

[0196] In Example 34, the heat exchanger of any one of Examples 1 to 33 may optionally further include at least one duct having a constriction (e.g., a sleeve, a perforated disk, a perforated plate, a cap, etc.) in the first section to reduce the cross-sectional area of ​​the first section.

[0197] In Example 35, the heat exchanger of any of Examples 1 to 33 may optionally further comprise a constriction disposed (e.g., attached by soldering or the like) at an inlet of at least one duct.

[0198] For example, the constriction may act as a first section of at least one duct and the at least one duct may act as a second section of at least one duct.

[0199] Example 36 is a heat exchanger comprising at least one duct for conveying a refrigerant and at least one constriction located upstream of the at least one duct, wherein the cross-sectional area of ​​the at least one duct is larger than the cross-sectional area (e.g., internal cross-sectional area) of the at least one constriction so as to enable sublimation of the refrigerant within the at least one duct.

[0200] In Example 37, the heat exchanger of Example 36 may further optionally include at least one constriction disposed (eg, attached by soldering or the like) at the inlet of the at least one duct.

[0201] Example 38 is a cooling system including the heat exchanger of any one of Examples 1 to 37.

[0202] The cooling system may optionally include an open circuit control system or a closed circuit control system, which may be configured for open circuit control of the cooling system components, or a closed circuit control system, which may be configured for closed circuit control of the operating conditions of the cooling system components.

[0203] The cooling system may optionally include a compressor located downstream from the heat exchanger.

[0204] The cooling system may optionally include a heat rejection heat exchanger. For example, the heat rejection heat exchanger may be located downstream from the compressor. For example, the heat rejection heat exchanger may be located upstream from the heat exchanger (e.g., from the first container of the heat exchanger).

[0205] In Example 39, the refrigeration system of Example 38 may further optionally be configured with an open-circuit control system or a closed-circuit control system to open-circuit / close-circuit control the compressor (e.g., compressor speed), e.g., to increase or decrease the pressure of the refrigerant in the heat exchanger.

[0206] In Example 40, the cooling system of Examples 38 or 39 may be further optionally configured such that an open-circuit control system or a closed-circuit control system controls the heat rejection exchanger to increase or decrease the pressure of the refrigerant discharged from the heat rejection exchanger, thereby increasing or decreasing the mass flow rate of the refrigerant in the first container.

[0207] In Example 41, the cooling system of any one of Examples 38 to 40 may be further optionally configured such that an open circuit control system or a closed circuit control system controls the heat rejection heat exchanger in an open circuit / closed circuit manner, thereby increasing or decreasing the pressure of the refrigerant discharged from the heat rejection heat exchanger to decrease or increase the superheat of the refrigerant.

[0208] In Example 42, the refrigeration system of any of Examples 38 to 41 may further optionally include a valve (e.g., an expansion valve, such as a throttle valve, a capillary pipe, a thermostatic expansion valve, an electronic expansion valve, or a manual expansion valve). The valve may be configured to reduce the pressure of the refrigerant as it flows into the valve.

[0209] For example, the valve may be located downstream from the heat rejection heat exchanger and upstream from the heat exchanger (eg, between the heat rejection heat exchanger and the heat exchanger).

[0210] In Example 43, the cooling system of Example 42 may further optionally be configured such that an open circuit control system or a closed circuit control system controls the valve in an open circuit / closed circuit manner, thereby increasing or decreasing the pressure of the refrigerant discharged from the valve and increasing or decreasing the mass flow rate of the refrigerant in the heat exchanger (e.g., the first container).

[0211] In Example 44, the cooling system of any one of Examples 38 to 43 may further optionally be configured such that the first container of the heat exchanger is configured as a separator (e.g., an intermediate pressure separator) and the gaseous refrigerant discharged from the first container is supplied to the compressor.

[0212] In Example 45, the refrigeration system of Example 44 may further optionally include an additional valve (e.g., an expansion valve, such as a throttle valve, a capillary pipe, a thermostatic expansion valve, an electronic expansion valve, or a manual expansion valve). The additional valve may be configured to reduce the pressure of the refrigerant as it flows into the additional valve.

[0213] For example, the additional valve may be located downstream from the gas outlet of the first container (eg, between the gas outlet of the first container and the compressor).

[0214] In Example 46, the refrigeration system of any of Examples 38 to 45 can further optionally include configuring the second container of the heat exchanger as a solids separator. For example, superheat of the refrigerant can be detected at a bottom of the second container.

[0215] In Example 47, the refrigeration system of any of Examples 38 to 46 may further optionally include a second compressor (e.g., a reciprocating compressor, a screw compressor, a rotary compressor, a centrifugal compressor, a scroll compressor, etc.). The second compressor may be located downstream from the compressor, for example.

[0216] For example, the cooling system may be configured such that gaseous refrigerant discharged from the first container (e.g., from a gas outlet of the first container) is supplied to the second compressor together with compressed refrigerant discharged from the compressor.

[0217] In Example 48, the refrigeration system of Example 47 may further optionally be configured with an open-circuit control system or a closed-circuit control system that open-circuit / closed-circuit controls the second compressor (e.g., controls the speed of the additional compressor) to increase or decrease the pressure of the refrigerant in the first container.

[0218] In Example 49, the refrigeration system of any of Examples 38 to 48 may further optionally include a separator (e.g., an intermediate-pressure separator). The separator may be configured to separate the gas refrigerant from the liquid refrigerant. The separator may be located upstream of the heat exchanger. For example, the refrigeration system may be configured such that the gas refrigerant discharged from the separator is supplied to the compressor and / or the second compressor.

[0219] In example 50, the refrigeration system of example 49 may further optionally include another valve (e.g., an expansion valve, such as a throttle valve, a capillary pipe, a thermostatic expansion valve, an electronic expansion valve, or a manual expansion valve). The other valve may be configured to reduce the pressure of the refrigerant as it flows into the other valve. The other valve may be located downstream from the gas outlet of the separator.

[0220] In Example 51, the refrigeration system of Example 50 may further optionally be configured such that an open circuit control system or a closed circuit control system open circuit / closed circuit controls another valve, increasing or decreasing the pressure of the refrigerant discharged from the other valve, thereby increasing or decreasing the pressure of the refrigerant in the separator.

[0221] In example 52, the refrigeration system of example 50 or 51 may be further optionally configured such that the open circuit control system or the closed circuit control system open circuit / closed circuit controls another valve, thereby increasing or decreasing the pressure of the refrigerant discharged from the other valve and increasing or decreasing the mass flow rate of the refrigerant in the separator.

[0222] In Example 53, the cooling system of any of Examples 50 to 52 may further optionally be configured such that the open circuit control system or closed circuit control system controls another valve in an open circuit / closed circuit manner to raise the pressure (e.g., intermediate pressure) in the separator to a supercritical pressure that is less than or equal to the high pressure (e.g., a pressure level in the range of about 10 bar to about 160 bar, such as in the range of about 70 bar to about 140 bar, and such as in the range of about 40 bar to about 70 bar).

[0223] In Example 54, the refrigeration system of Example 47 or 48 and the refrigeration system described in any of Examples 49 to 53 may further optionally be configured such that an open-circuit control system or a closed-circuit control system open-circuit / closed-circuit controls the second compressor (e.g., controls the speed of the second compressor) to increase or decrease the pressure of the refrigerant in the separator.

[0224] Example 55 is a cooling method for cooling a fluid using sublimation of a refrigerant, comprising: supplying a refrigerant to a heat exchanger having at least one duct for transporting the refrigerant; transporting the refrigerant into the at least one duct, the at least one duct having a first section and a second section, the first section being located upstream from the second section with respect to the direction of flow of the refrigerant in the at least one duct, and the cross-sectional area of ​​the second section being larger than the cross-sectional area of ​​the first section to enable sublimation of the refrigerant in the second section; transferring heat between the refrigerant flowing into the second section and the fluid to be cooled, wherein the refrigerant flowing into the second section is sublimated to cool the fluid to be cooled.

[0225] In Example 56, the cooling method of Example 55 may further optionally include providing the refrigerant provided to the heat exchanger in a non-solid (e.g., liquid, gas, liquid / gas, supercritical, etc.) aggregate state.

[0226] In example 57, the cooling method of example 55 or 56 may further optionally include directing the refrigerant into a first section of at least one duct of the heat exchanger, wherein the cross-sectional area of ​​the first section may be sized to prevent sublimation of the refrigerant in the first section.

[0227] In Example 58, the cooling method of any one of Examples 55 to 57 can further optionally include directing the refrigerant to a second section of the at least one duct of the heat exchanger.

[0228] In Example 59, the cooling method of any one of Examples 55 to 58, optionally, wherein at least one duct comprises multiple pipes (e.g., multiple mini-ducts, multiple mini-duct pipes).

[0229] In Example 60, the cooling method described in any one of Examples 55 to 59 may further optionally be configured such that the heat exchanger is configured such that the refrigerant flowing into at least one duct is in a heat exchange relationship with the fluid to be cooled.

[0230] In Example 61, the cooling method described in any one of Examples 55 to 60 may further optionally be configured such that the heat exchanger is configured such that the refrigerant flowing into the second section is in a heat exchange relationship with the fluid to be cooled.

[0231] In Example 62, the cooling method of any one of Examples 55 to 61 can further optionally include a second section disposed immediately adjacent to the first section.

[0232] In Example 63, the cooling method of any one of Examples 55 to 62 may further optionally be configured such that the first section provides a restriction at an inlet of the at least one duct.

[0233] In Example 64, the cooling method of any one of Examples 55 to 63 may further optionally include dimensioning the cross-sectional area of ​​the first section to reduce the pressure of the refrigerant entering the first section.

[0234] For example, the cross-sectional area of ​​the first section may be sized so that the refrigerant is at high pressure before the first section (e.g., a pressure level in the range of about 10 bar to about 160 bar, e.g., about 70 bar to about 140 bar, about 40 bar to about 70 bar), where the refrigerant reaches a critical velocity (speed of sound) and the pressure of the refrigerant in the first section drops to a lower pressure level (e.g., a pressure level in the range of about 10 bar to about 70 bar, e.g., about 10 bar to about 40 bar, about 40 bar to about 70 bar), and after the first section (e.g., upon entering the second section), the refrigerant expands further and the pressure of the refrigerant drops further (e.g., a pressure level in the range of about 0 bar to about 5 bar, e.g., to a sublimation pressure level).

[0235] In Example 65, the cooling method described in any one of Examples 55 to 64 may further optionally include dimensioning the cross-sectional area of ​​the first section to prevent sublimation of the refrigerant in the first section.

[0236] In Example 66, the cooling method described in any of Examples 55 to 65 may further optionally include dimensioning the cross-sectional area of ​​the first section such that the refrigerant in the first section is or can be in a non-solid (e.g., liquid, gas, liquid / gas, supercritical, etc.) aggregate state.

[0237] In Example 67, the cooling method described in any one of Examples 55 to 66 may further optionally include dimensioning the cross-sectional area of ​​the first section so that the pressure level of the refrigerant within the first section (e.g., until it exits the first section) is greater than the pressure level of the triple point of the refrigerant.

[0238] In Example 68, the cooling method of any one of Examples 55 to 67 may further optionally include dimensioning the cross-sectional area of ​​the first section so that the mass flow rate through the first section (dependent on the pressure at the inlet of the first section) reaches a critical mass flow rate.

[0239] In Example 69, the cooling method of any of Examples 55 to 68 may further optionally include setting the dimensions of the cross-sectional area of ​​the first section and the cross-sectional area of ​​the second section so that the refrigerant flowing into at least one duct is at a pressure level (e.g., atmospheric pressure level) that allows it to sublimate downstream from the first section (e.g., within the second section).

[0240] In Example 70, the cooling method of any one of Examples 55 to 69 may further optionally include dimensioning the cross-sectional area of ​​the first section and the cross-sectional area of ​​the second section such that the refrigerant expands in the second section and becomes at least partially in a solid (e.g., solid / gas) mass state.

[0241] In Example 71, the cooling method of any of Examples 55 to 70, further optionally, comprising: 2 Approximately 0.8 mm 2 may be in the range of (for example, about 0.001 mm 2 from about 0.5 mm 2 Range: approx. 0.005mm 2 Approximately 0.25 mm 2 range).

[0242] In Example 72, the cooling method of any of Examples 55 to 71, further optionally comprising: 2 Approximately 400 mm from 2 may be in the range of (for example, 0.1 mm 2 Approximately 100 mm from 2 Range: about 0.5 mm 2 Approximately 50 mm from 2 Range: about 1 mm2 Approximately 20 mm from 2 range).

[0243] In Example 73, the cooling method described in any of Examples 55 to 72 may further optionally include setting the dimensions of the cross-sectional area of ​​the first section and the cross-sectional area of ​​the second section so that the refrigerant is at a pressure level in the range of about 0 bar to about 5 bar in the second section.

[0244] In Example 74, the cooling method of any one of Examples 55 to 73, further optionally, the refrigerant comprises carbon dioxide.

[0245] In Example 75, the cooling method of any one of Examples 55 to 74, further optionally, the refrigerant comprises a hydrocarbon-based refrigerant.

[0246] For example, the refrigerant may include HFC and / or HCFC and / or HFO and / or R170 and / or R290 and / or R600, etc.

[0247] In Example 76, the cooling method of any one of Examples 55 to 75, optionally wherein the refrigerant comprises a mixture of multiple refrigerants that are different from one another.

[0248] In Example 77, the cooling method of any of Examples 55 to 76 may further optionally include a first container (e.g., a distribution container) configured to supply refrigerant to at least one duct.

[0249] For example, the first container may be configured to distribute (e.g., evenly) the refrigerant to multiple pipes (e.g., multiple mini-ducts) of the at least one duct when the at least one duct is made up of multiple pipes.

[0250] In Example 78, in the cooling method of Example 77, the first container may further optionally be configured so that the refrigerant flowing into the first container is at a pressure level higher than the pressure level of the triple point of the refrigerant.

[0251] In Example 79, in the cooling method of Example 77 or 78, the first container may further optionally be configured to provide the refrigerant at a medium or high pressure level within the first container (e.g., a pressure level within a range of about 10 bar to about 160 bar, such as a range of about 70 bar to about 140 bar, a range of about 40 bar to about 70 bar, a range of about 10 bar to about 40 bar, etc.).

[0252] In Example 80, the cooling method described in any of Examples 77 to 79 may further optionally be configured such that the first container is configured such that the refrigerant flowing into the first container is in a non-solid (liquid, gas, liquid / gas, supercritical state, etc.) aggregate state.

[0253] In Example 81, the cooling method of any one of Examples 77 to 80 can further optionally include configuring the first container as a separator (e.g., an intermediate pressure separator).

[0254] For example, the first container may be configured to supply liquid refrigerant to the at least one duct and to discharge gaseous refrigerant through the gas outlet.

[0255] In Example 82, the cooling method of any of Examples 55 to 81 may further optionally include a second container (e.g., a collection container) configured to receive the refrigerant discharged from the at least one duct.

[0256] In Example 83, the cooling method of Example 82 can further optionally include configuring the second container as a solids separator (e.g., a cyclone separator).

[0257] For example, the second container may be configured to discharge gaseous refrigerant from the first outlet and accumulate solid refrigerant (eg, solid refrigerant components such as solid particles of refrigerant).

[0258] In Example 84, the cooling method of any one of Examples 55 to 83, further optionally, the first section can have a circular or elliptical cross section.

[0259] In Example 85, the cooling method of any one of Examples 55 to 83, further optionally, the first section can have a square, rectangular, or polygonal cross section.

[0260] In Example 86, in the cooling method described in any one of Examples 55 to 85, the cross-section of the first section may further optionally be in the range of about 0.01 mm to about 0.5 mm (e.g., in the range of about 0.01 mm to about 0.2 mm, about 0.02 mm to about 0.1 mm, about 0.02 mm to about 0.05 mm) in size (e.g., height, width, diameter, edge length, etc.) along a direction perpendicular to the flow direction of the refrigerant in at least one duct.

[0261] For example, the cross-sectional size of the first section may be less than 0.1 mm.

[0262] In Example 87, the cooling method of any one of Examples 55 to 86, further optionally, the second section can have a circular or elliptical cross section.

[0263] In Example 88, the cooling method of any one of Examples 55 to 86, further optionally, the second section has a square, rectangular, or polygonal cross section.

[0264] In Example 89, in the cooling method described in any one of Examples 55 to 88, the cross-sectional area of ​​the second section may further optionally be in the range of about 0.1 mm to about 20 mm (e.g., about 0.5 mm to about 10 mm, about 1 mm to about 5 mm) in terms of size (e.g., height, width, diameter, edge length, etc.) along a direction perpendicular to the flow direction of the refrigerant in at least one duct.

[0265] In Example 90, the cooling method of any of Examples 55 to 89 can further optionally include compressing at least one duct to provide (i.e., reduce) a cross-sectional area of ​​the first section.

[0266] In Example 91, in the cooling method of any one of Examples 55 to 90, at least one duct may further optionally include a constriction (e.g., a sleeve, perforated disk, perforated plate, cap, etc.) disposed within the first section such that the cross-sectional area of ​​the first section is reduced.

[0267] In Example 92, the cooling method of any one of Examples 55 to 90 may further optionally include placing a constriction at the inlet of at least one duct (e.g., by bonding, such as by soldering).

[0268] For example, the constriction may act as a first section of at least one duct and the at least one duct may act as a second section of at least one duct.

Claims

1. A sublimating refrigerant; a heat exchanger (100) having a plurality of ducts (102) for conveying the refrigerant; and a cooling system (300) comprising: Each duct (102) of the plurality of ducts (102) comprises a first section (102-1) and a second section (102-2); The heat exchanger (100) is configured such that the refrigerant flowing into the plurality of ducts (102) is in a heat transfer relationship with a fluid to be cooled, In each duct (102), the first section (102-1) is arranged upstream of the second section (102-2) in the flow direction of the refrigerant in the duct (102), The cross-sectional area of ​​the second section (102-2) is larger than the cross-sectional area of ​​the first section (102-1), The cooling system (300) is configured such that the heat exchanger (100) receives the refrigerant in a non-solid state; The cross-sectional area of ​​the first section (102-1) and the cross-sectional area of ​​the second section (102-2) are the refrigerant in the first section (102-1) is at a pressure level higher than the triple point of the refrigerant, so that the refrigerant remains in the non-solid state in the first section (102-1), and the non-solid state of the refrigerant prevents sublimation of the refrigerant in the first section (102-1); a pressure drop in the refrigerant during the transition from the first section (102-1) to the second section (102-2) causing the refrigerant to transition to a pressure level below the triple point of the refrigerant in the second section (102-2) and transition to an at least partially solid state in the second section (102-2), the partially solid state refrigerant allowing sublimation of the refrigerant in the second section (102-2) via heat transfer with the fluid to be cooled; The cooling system (300) is so dimensioned.

2. The cooling system (300) is configured such that the heat exchanger (100) receives the refrigerant in a liquid or supercritical state; 2. The cooling system of claim 1, wherein a cross-sectional area of ​​the first section and a cross-sectional area of ​​the second section are dimensioned such that the refrigerant remains in the liquid state or the supercritical state in the first section and transitions to the at least partially solid state in the second section due to the pressure drop of the refrigerant during transition from the first section to the second section.

3. a compressor (312) disposed downstream of the heat exchanger (100) and receiving the refrigerant discharged from the heat exchanger (100) after sublimation; The refrigeration system (300) of claim 1 or 2, wherein the compressor (312) is configured to compress the refrigerant for circulation within the refrigeration system (300).

4. 4. The cooling system of claim 3, further comprising a second heat exchanger for cooling the refrigerant, the second heat exchanger being disposed downstream of the compressor and upstream of the heat exchanger.

5. a valve (316) located downstream of the second heat exchanger (314) and upstream of the heat exchanger (100); The cooling system (300) of claim 4, wherein the valve (316) is configured to regulate the pressure of the refrigerant supplied to the heat exchanger (100).

6. The cooling system (300) of any one of claims 1 to 5, wherein the refrigerant comprises carbon dioxide.

7. The cross-sectional area of ​​the first section (102-1) is about 0.0001 mm 2 to about 0.8 mm 2 The cooling system (300) of any one of claims 1 to 6, wherein the cooling system (300) is in the range of

8. The cross-sectional area of ​​the second section (102-2) is about 0.01 mm 2 Approximately 400 mm from 2 The cooling system (300) of any one of claims 1 to 7, wherein the cooling system (300) is in the range of

9. A cooling system (300) as described in any one of claims 1 to 8, wherein each duct (102) has a narrowed portion (210), and the narrowed portion (210) is positioned within the first section (102-1) so as to narrow the cross-sectional area of ​​the first section (102-1).

10. a separator (106, 622) for separating the refrigerant in a liquid phase from the refrigerant in a gas phase; the cooling system (300) is configured to supply the refrigerant in the liquid phase to the at least one duct (102) of the heat exchanger (100); 10. The cooling system (300) of claim 3, wherein the cooling system (300) is configured to supply the refrigerant in the gas phase from the separator (106, 622) to the compressor (312), and to supply the refrigerant in the gas phase after the sublimation in the heat exchanger (100) from the heat exchanger (100) to the compressor (312).

11. 1. A cooling method for cooling a fluid by sublimation of a refrigerant, comprising: supplying a sublimating refrigerant in a non-solid state to a heat exchanger (100) having a plurality of ducts (102) for conveying said refrigerant, said refrigerant entering said plurality of ducts (102) being in heat transfer relationship with a fluid to be cooled; directing the refrigerant into the plurality of ducts (102); Each duct (102) of the plurality of ducts (102) comprises a first section (102-1) and a second section (102-2); In each duct (102), the first section (102-1) is arranged upstream of the second section (102-2) in the flow direction of the refrigerant in the at least one duct (102); The cross-sectional area of ​​the second section (102-2) is larger than the cross-sectional area of ​​the first section (102-1), The cross-sectional area of ​​the first section (102-1) and the cross-sectional area of ​​the second section (102-2) are the refrigerant in the first section (102-1) is at a pressure level higher than the triple point of the refrigerant, so that the refrigerant remains in the non-solid state in the first section (102-1), and the non-solid state of the refrigerant prevents sublimation of the refrigerant in the first section (102-1); a pressure drop in the refrigerant during the transition from the first section (102-1) to the second section (102-2) causing the refrigerant to transition to a pressure level below the triple point of the refrigerant in the second section (102-2) and transition to an at least partially solid state in the second section (102-2), the partially solid state refrigerant allowing sublimation of the refrigerant in the second section (102-2) via heat transfer with the fluid to be cooled; The process is as follows: A process of transferring heat between the refrigerant flowing into the second section (102-2) and the fluid to be cooled, wherein the refrigerant flowing through the second section (102-2) sublimes and the fluid to be cooled is cooled.

12. The step of supplying the refrigerant in the non-solid state to the heat exchanger (100) includes the step of supplying the refrigerant in the liquid state or the supercritical state to the heat exchanger (100), 12. The cooling method of claim 11, wherein a cross-sectional area of ​​the first section (102-1) and a cross-sectional area of ​​the second section (102-2) are dimensioned such that the refrigerant remains in the liquid state or the supercritical state in the first section (102-1) and transitions to the at least partially solid state in the second section (102-2) due to the pressure drop of the refrigerant during transition from the first section (102-1) to the second section (102-2).

Citation Information

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