INTERNAL HEAT EXCHANGER DOUBLE-TUBE STRUCTURE OF AIR CONDITIONING SYSTEM HAVING ALTERNATIVE REFRIGERANT APPLIED THERETO
20190100079 ยท 2019-04-04
Assignee
Inventors
- Bang-Soo LEE (Cheonan-si, Chungcheongnam-do, KR)
- Jeong-Ho HA (Uiwang-si, Gyeonggi-do, KR)
- Sang-Min LEE (Cheonan-si, Chungcheongnam-do, KR)
- Ki-Youl SONG (Pyeongtaek-si, Gyeonggi-do, KR)
Cpc classification
F28D7/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B40/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2210/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L53/75
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L53/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/106
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/426
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H2001/3291
PERFORMING OPERATIONS; TRANSPORTING
F16L9/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25B41/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention relates to an internal heat exchanger double-tube structure of an air conditioning system having an alternative refrigerant applied thereto for heat exchange between a low-temperature low-pressure refrigerant discharged from an evaporator and a high-temperature high-pressure refrigerant discharged from an condenser, the double-tube structure including: an inner pipe having a channel through which the low-temperature low-pressure refrigerant discharged from the evaporator flows; and an outer pipe surrounding the inner pipe and having a channel through which high-temperature high-pressure refrigerant flows, wherein the inner pipe has a spiral groove forming a channel on an outer side thereof, and the spiral groove is a recessed groove for generating a vortex that increase a channel volume where high-temperature high-pressure liquid flows inward and reduces a vortex of flowing fluid.
Claims
1. An internal heat exchanger double-tube structure of an air conditioning system having an alternative refrigerant applied thereto for heat exchange between a low-temperature low-pressure refrigerant discharged from an evaporator and a high-temperature high-pressure refrigerant discharged from a condenser, the double-tube structure comprising: an inner pipe having a channel through which the low-temperature low-pressure refrigerant discharged from the evaporator flows; and an outer pipe surrounding the inner pipe and having a channel through which high-temperature high-pressure refrigerant flows, wherein the inner pipe has a spiral groove forming a channel on an outer side thereof, and the spiral groove is a recessed groove for generating a vortex that increase a channel volume where high-temperature high-pressure liquid flows inward and reduces a vortex of flowing fluid.
2. The internal heat exchanger double-tube structure of an air conditioning system having an alternative refrigerant applied thereto of claim 1, wherein the spiral groove is formed to have a deep and wide volume ratio inside a recessed shape for generating a vortex such that a high-pressure side heat exchange area can be increased.
3. The internal heat exchanger double-tube structure of an air conditioning system having an alternative refrigerant applied thereto of claim 1, wherein the spiral groove has a recessed groove shape to be able to increase heat exchange performance between refrigerants according to channels of the inner pipe and the outer pipe, and is a groove structure having a volume ratio considering a groove depth, a groove gap (pitch), a groove shape, and a direction of a spiral.
4. The internal heat exchanger double-tube structure of an air conditioning system having an alternative refrigerant applied thereto of claim 1, wherein the spiral groove is formed such that a center portion is high and slopes inclined from the center portion to left and right edges are formed in an inside cross-section.
5. The internal heat exchanger double-tube structure of an air conditioning system having an alternative refrigerant applied thereto of claim 4, wherein any one of the slopes has a deeper groove shape.
6. The internal heat exchanger double-tube structure of an air conditioning system having an alternative refrigerant applied thereto of claim 1, wherein an inner cross-section of the spiral groove is formed in a wave shape that is high at a center portion and becomes lower to the left and right.
7. The internal heat exchanger double-tube structure of an air conditioning system having an alternative refrigerant applied thereto of claim 1, wherein the spiral groove is a vortex-shaped recessed groove having a wave shape inward to increase a channel volume where high-temperature high-pressure liquid flows and reduce a vortex of flowing liquid.
Description
DESCRIPTION OF DRAWINGS
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BEST MODE
[0060] Hereafter, a preferable embodiment of the present invention is described in detail with reference to the accompanying drawings.
[0061] The present invention is not limited to the following embodiment and may be achieved in various different ways, and the embodiment is provided to completely inform those skilled in the art of the scope of the present invention to completely describe the present invention.
[0062] Hereafter, a preferable embodiment of the present invention is described in detail with reference to the accompanying drawings. It should be noted that same components are denoted by the same reference numerals even if they are shown in different drawings. Further, in the following description, it is to be noted that, when the functions of conventional elements and the detailed description of elements related with the present invention may make the gist of the present invention unclear, a detailed description of those elements will be omitted
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[0064] Referring to
[0065] The inner pipe 110 has a channel 111 through which the low-temperature low-pressure refrigerant discharged from the evaporator 4 flows.
[0066] The outer pipe 120 has a channel 121 that surrounds the inner pipe 110 and through which a high-temperature high-pressure refrigerant discharged from the condenser 2 flows.
[0067] The inner pipe 110 has a spiral groove 112 to form a channel on the outer side and the spiral groove 112 is a recessed groove for generating a vortex in the longitudinal direction.
[0068] That is, the spiral groove 112 is a recessed groove having a vortex shape such as , thereby being increasing the channel volume of a place where high-temperature high-pressure liquid flows and applying a vortex to the flowing liquid. Accordingly, a vortex is generated in a refrigerant flowing through the channel by the recessed groove for generating a vortex.
[0069] Referring to
[0070] Further, referring to
[0071] That is, the largest heat exchange occurs at the space in which a high-temperature high-pressure fluid flows, so the larger the channel volume (area), the better it is. Accordingly, it is preferable to increase the volume to the fundamental spiral groove and to give a spiral recessed groove such that flow can spirally flow. Accordingly, a high-temperature high-pressure refrigerant can maximally exchange heat with low-temperature low-pressure gas for predetermined time and under predetermined pressure throughout a predetermined length, thereby being able to increase heat exchange efficiency.
[0072] In other words, as a recessed groove for generating a vortex according to the spiral groove 112 of the inner pipe 110, it is preferable to give a volume ratio to make the inside of the spiral groove deeper such that a high-pressure side heat exchange area can be increased.
[0073] Accordingly, it is preferable for the spiral groove 112 to have a recessed groove structure for generating a vortex having a volume ratio considering a groove depth, a groove gap (pitch), a groove shape, and the direction of a spiral so that heat exchange performance between refrigerant according to the channels of the inner pipe 110 and the outer pipe 120 can be improved.
[0074] Referring to
[0075] Further, any one of the slopes 112b and 112c is formed in a deeper groove shape, so vertex effect of the refrigerant flowing through the channel can be maximized.
[0076] Hereafter, the operation effect according to the internal heat exchanger double-tube 100 of an air conditioning system having an alternative refrigerant applied thereto according to the present invention is described with reference to the configuration described above.
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[0078] First, a high-temperature high-pressure liquid-state refrigerant discharge from the condenser 2 flows into the outer pipe 120 through an inlet pipe 101. The refrigerant flowing in the outer pipe 120 flows through several spiral channels 121 between the outer pipe 120 and the inner pipe 110 and then moves to the expansion valve 3 through an outlet pipe 102.
[0079] Further, a low-temperature low-pressure gas-state refrigerant discharged from the evaporator 4 passes through a channel 111 in the inner pipe 110, in which the refrigerant that has passed through the inner pipe 110 and the refrigerant that has passed through the outer pipe 120 exchange heat with each other.
[0080] Thereafter, the refrigerant that has passed through the inner pipe 110 flows into the compressor 1.
[0081] According to the internal heat exchanger double tube 100, the amount of heat transfer between the low-temperature low-pressure gas-state refrigerant flowing through the inner pipe 110 and the high-temperature high-pressure liquid-state refrigerant flowing through the outer pipe 120 has a large influence on the performance of the internal heat exchanger double tube 100.
[0082] That is, as for the outer pipe 120, a refrigerant spirally flows through a spiral channel 121, but as for the inner pipe 110, a refrigerant flows straight through a channel 112, in which heat exchange can occur.
[0083] The spiral groove according to the present invention is a recessed groove having a vortex shape maximizing volume efficiency, so high-temperature heat can be reduced as quickly and much as possible through heat circulation between low temperature and high temperature.
[0084] The result according to an experiment program of the double tube according to the present invention is described hereafter.
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[0088] In other words, in an air conditioning system necessarily requiring an alternative refrigerant to improve the performance, the system performance is reduced because the alternative refrigerant is lower in latent heat of evaporation than the existing refrigerant, but an internal heat exchanger generating heat exchange between low pressure and high pressure can offset the reduction of performance. It may be a very important factor that can improve heat exchange performance between a refrigerant flowing through an outer pipe and a refrigerant flowing through the inner pipe in a spiral groove structure of a double tube for increasing heat exchange performance.
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[0090] Referring to
[0091] Data closest to a base sample value is required to obtain high pressure and thermal equilibrium is less than 1% and should not exceed reference 1%, but 0% is best data.
[0092] As a result, three conditions of thermal efficiency average, high pressure, and thermal equilibrium are data that have largest influence on thermal efficiency and it can be seen that the third sample of the present invention that is the most suitable for the three conditions has best thermal efficiency in all terms.
[0093] As described above, according to the present invention, it is possible to increase the performance of an internal heat exchanger by increasing heat exchange efficiency by about 0.8% in the internal heat exchanger having reference 505W, a double-tube length of 600 mm, a heat exchange length of 480 mm by the recessed groove for generating a vortex according to the spiral groove of a double tube.
[0094] Although the present invention was described above with reference to preferable embodiments, the present invention is not limited to the embodiments and may be changed and modified in various ways by those skilled in the art without departing from an equivalent range of the spirit of the present invention and claims to be described below.