AIR-TO-WATER HEAT PUMP SYSTEM WITH DEFROSTING UNIT AND METHOD OF OPTIMIZING THE OPERATION OF THE AIR-TO-WATER HEAT PUMP
20240288208 ยท 2024-08-29
Inventors
Cpc classification
F25B2347/021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B49/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2600/2507
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2339/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B47/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25B47/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B41/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An air-to-water heat pump system is disclosed comprising a lower heat source unit and an upper heat source unit connected in a thermodynamic cycle, wherein the lower heat source unit is supplied with external air and the lower heat source has at least two alternating evaporators (1, 2) forming the lower heat source with a fan mounted axially in relation to the lower heat source unit in its upper part, provided with a defrosting unit in which it is possible to implement the defrosting and drying process of the evaporator heat exchange surface, as well as improve the energy efficiency of the heat pump system.
Claims
1. An air-to-water heat pump system comprising a lower heat source unit and an upper heat source unit connected in a thermodynamic cycle, wherein the lower heat source unit is supplied with external air and the lower heat source has at least two alternately working evaporators (1, 2) forming the lower heat source of the unit with a fan mounted axially in relation to the lower heat source unit in its upper part, provided with a defrosting unit characterized in that at least two alternating evaporators (1, 2) are connected to a set of valves comprising two pairs of motor-actuated three-way valves (3, 4) and (5, 6), for each evaporator (1) and (2) of the lower heat source unit provided with a shutter (11), wherein the evaporators (1, 2) are connected in series in a closed circuit with a condenser (9); wherein an outlet port of the first evaporator (1) connects via the through hole of the second three-way valve (4) with a suction side of a compressor (8), connected on a discharge side to the condenser (9), the outlet port of which connects via the bypass of the third three-way valve (5) with the inlet of the second evaporator (2), wherein the outlet of the second evaporator (2) is connected via the bypass of the fourth three-way valve (6) with an expansion valve (7) and via the through hole of the first three-way valve (3) it connects with the inlet of the first evaporator (1); wherein the outlet port of the second evaporator (2) connects via the bypass of the second three-way valve (4) with the suction side of the compressor (8), connected on the discharge side with the condenser (9), the outlet port of which connects via the through hole of the third three-way valve (5) with the inlet of the first evaporator (1), wherein the outlet of the first evaporator (1) is connected via the through hole of the fourth three-way valve (6) with the expansion valve (7) and via the bypass of the first three-way valve (3) it connects with the inlet of the second evaporator (2); wherein the shutter (11) is formed on the lower heat source unit to shield the frosted evaporator (1, 2) going into defrosting mode.
2. The heat pump system according to claim 1, characterized in that said set of valves is provided with actuators connected to a controller (12) for automatically changing the circuit direction of the refrigerant and changing the functions of the evaporators (1) and (2).
3. The heat pump system according to claim 1, characterized in that the shutter (11) is connected with the controller (12) for automatically directing the shutter to the position of shielding the evaporator being defrosted (1) or (2).
4. The heat pump system according to claim 1, characterized in that the shutter (11) is automatically directed to the position of shielding the evaporator being defrosted (1) or (2) in a rotary or reciprocating motion in a horizontal or vertical direction, or by closing single or multi-blade dampers.
5. The heat pump system according to claim 1, characterized in that the evaporators (1) and (2) forming the lower heat source are finned bent or segmented exchangers shaped as an open or closed polygon, including a regular or irregular polygon, or as a plane or as a circle, semicircle, or other irregular shape.
6. The heat pump system according to claim 1, characterized in that the shutter (11) is in the form of concentric semi-circles mounted on both sides of the evaporator (1, 2), coaxially with the fan (10) of the lower heat source.
7. The heat pump system according to claim 1, characterized in that the shutter (11) is in the form of a movable element shaped as a shield or damper, adapted to change position by sliding means, mounted to the frame structure (14) on both sides of the evaporator (1, 2), wherein the shutter (11) having a configuration corresponding to the shape of the evaporator (1, 2).
8. The heat pump system according to claim 1, characterized in that the shutter (11) consists of an inner and an outer part which are thermally insulated.
9. The heat pump system according to claim 1, characterized in that the shutter (11) parts are provided with a brush element (13) arranged along its height, preventing external air from infiltrating into the space between the evaporator being defrosted and the shutter, while maintaining free movement of the shutter (11).
10. The heat pump system according to claim 1, characterized in that the heat pump circuit heats the water or glycol solution in the upper heat source.
11. A method of optimizing the operation of the air-to-water heat pump, which uses the alternating operation of at least two evaporators, characterized in that the defrosting process of the second evaporator (2) is carried out by directing the refrigerant from the first evaporator (1) via the through hole of the second three-way valve (4) to the compressor (8), then the refrigerant is directed to the condenser (9), then the liquefied refrigerant is directed via the bypass of the third three-way valve (5) to the second evaporator (2), then the subcooled refrigerant is directed via the bypass of the fourth three-way valve (6) to the expansion valve (7), then the expanded refrigerant is directed via the through hole of the first three-way valve (3) to the first evaporator (1), at the same time the shutter (11) is directed to the position of shielding the second evaporator (2); wherein the defrosting process of the first evaporator (1) is carried out by directing the refrigerant from the second evaporator (2) via the bypass of the second three-way valve (4) to the compressor (8), then the refrigerant is directed to the condenser (9), then the liquefied refrigerant is directed via the through hole of the third three-way valve (5) to the first evaporator (1), then the subcooled refrigerant is directed via the through hole of the fourth three-way valve (6) to the expansion valve (7), then the expanded refrigerant is directed via the bypass of the first three-way valve (3) to the second evaporator (2), at the same time the shutter (11) is directed to the position of shielding the first evaporator (1) to limit the heat exchange between the outside air and the shielded first evaporator (1); wherein the continuously operating fan (10) forces the external air to flow around the exposed evaporator (1) or (2); wherein the defrosting process of the evaporator (1) or (2) is carried out until the end of the exchanger defrosting cycle, wherein the controller (12), by switching the three-way valve operation mode, generates another change of the refrigerant circulation direction, thus changing the functions of the evaporators (1, 2) and changing the position of the shutter (11) to the position of shielding the evaporator being defrosted (1) or (2).
Description
[0022] The object of the invention is presented in an embodiment in the drawing, in which
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
EXAMPLE 1
[0030] The air-to-water heat pump system according to the invention comprises a lower heat source unit and un upper heat source unit connected in a thermodynamic cycle, wherein the lower heat source unit is supplied with external air and the lower heat source has at least two alternately working evaporators 1, 2 forming the lower heat source with the fan 10 mounted axially in relation to the lower heat source unit in its upper part, provided with a defrosting unit. The alternately operating evaporators 1, 2 are connected to a set of valves comprising two pairs of motor-actuated three-way valves 3, 4 and 5, 6 for each evaporator 1 and 2, respectively, of the lower heat source provided with a shutter 11. The evaporators 1, 2 are connected in series in a closed circuit with the condenser 9. The outlet port of the first active evaporator 1 connects via the through hole of the second three-way valve 4 with the suction side of the compressor 8, connected on the discharge side to the condenser 9, the outlet port of which connects via the bypass of the third three-way valve 5 with the inlet of the second evaporator being defrosted 2, wherein the outlet of the second evaporator being defrosted 2 is connected via the bypass of the fourth three-way valve 6 with the expansion valve 7 and via the through hole of the first three-way valve 3 it connects with the inlet of the first active evaporator 1. The outlet port of the second active evaporator 2 connects via the bypass of the second three-way valve 4 with the suction side of the compressor 8, connected on the discharge side with the condenser 9, the outlet port of which connects via the through hole of the third three-way valve 5 with the inlet of the first evaporator being defrosted 1, wherein the outlet from the first evaporator being defrosted 1 connected via the through hole of the fourth three-way valve 6 with the expansion valve 7 and via the bypass of the first three-way valve 3 it connects with the inlet of the second active evaporator 2. The shutter 11 is formed on the lower heat source unit to shield the frosted evaporator 1 or 2 going into defrosting mode. The set of valves is provided with actuators connected to the controller 12 for automatically changing the circuit direction of the refrigerant and change the functions of the evaporators 1 and 2. The shutter 11 is connected with the controller 12 for automatically directing the shutter to a position shielding the evaporator being defrosted 1 or 2. The evaporators 1 and 2 forming the lower heat source are finned bent or segmented exchangers. The shutter 11 consists of an inner and an outer part which are thermally insulated. The heat pump circuit heats the water or glycol solution in the upper heat source.
[0031] A method of optimizing the operation of an air-to-water heat pump, which uses the alternating operation of at least two evaporators and the defrosting process of the second evaporator 2 is carried out by directing the refrigerant from the first active evaporator 1 via the through hole of the second three-way valve 4 to the compressor 8, then the refrigerant is directed to the condenser 9, then the liquefied refrigerant is directed via the bypass of the third three-way valve 5 to the second evaporator being defrosted 2, then the subcooled refrigerant is directed via the bypass of the fourth three-way valve 6 to the expansion valve 7, then the expanded refrigerant is directed via the through hole of the first three-way valve 3 to the first active evaporator, at the same time the rotary shutter 11 is directed to the position of shielding the second evaporator being defrosted 2. The defrosting process of the first evaporator 1 is carried out by directing the refrigerant from the second active evaporator 2 via the bypass of the second three-way valve 4 to the compressor 8, then the refrigerant is directed to the condenser 9, then the liquefied refrigerant is directed via the through hole of the third three-way valve 5 to the first evaporator being defrosted 1, then the subcooled refrigerant is directed via the through hole of the fourth three-way valve 6 to the expansion valve 7, then the expanded refrigerant is directed via the bypass of the first three-way valve 3 to the second active evaporator 2, at the same time the rotary shutter 11 is directed to the position of shielding the first evaporator being defrosted 1 to limit the heat exchange between the outside air and the shielded first evaporator being defrosted 1. The continuously operating fan 10 forces the external air flow around the exposed active evaporator 1 or 2. The defrosting process of evaporator 1 or 2 is carried out until the end of exchanger defrosting cycle, wherein the controller 12, by switching the three-way valves operation mode, generates another change of the refrigerant circulation direction, thus changing the functions of the evaporators 1, 2 and changing the position of the shutter 11 to the position of shielding the evaporator being defrosted 1 or 2.
EXAMPLE 2
[0032] The heat pump system and the method of optimizing the operation of the air-to-water heat pump as in Example 1, except that:
[0033] The alternately working evaporators 1, 2 are shaped as semi-circles forming a lower heat source of a cylindrical unit shape with a fan 10 mounted axially in relation to the lower heat source unit in its upper part. The shutter 11 is in the form of concentric semi-circles mounted on both sides of the evaporator, coaxially with the fan 10 of the lower heat source unit. The parts of shutter 11 are provided with a brush element 13 arranged along its height, preventing external air from infiltrating into the space between the evaporator being defrosted and the shutter, while maintaining the free movement of the shutter 11. The shutter 11 is automatically directed to the position of shielding the evaporator being defrosted 1 or 2 in a rotary motion (
EXAMPLE 3
[0034] The heat pump system and the method of optimizing the operation of the air-to-water heat pump as in Example 1, except that:
[0035] The alternately working evaporators 1, 2 are shaped as closed polygons forming a lower heat source of a cuboidal unit shape with a fan 10 mounted axially in relation to the lower heat source assembly in its upper part. The evaporator 1 is located at the top of the lower heat source assembly and evaporator 2 is located at its bottom. The shutter 11 is in the form of a movable element in the form of a shield, adapted to change position via sliding means, mounted to a frame structure 14 on both sides of the evaporator 1, 2, wherein the shutter 11 has a shape corresponding to the shape of the evaporator 1, 2. The automatic orientation of the shutter 11 at position of shielding the defrosted evaporator 1 or 2 takes place in a reciprocating movement in the vertical direction (
EXAMPLE 4
[0036] The heat pump system and the method of optimizing the operation of the air-to-water heat pump as in Example 1, except that:
[0037] The heat pump circuit uses the natural refrigerant propane R290, wherein it was assumed that evaporator 2 is being defrosted and evaporator 1 is active. The compressor 8 compress the refrigerant (process 1-2 in
[0038] The curve of the temperature change of the liquid refrigerant in the defrosting process of the evaporator 2, according to
[0039]
[0040]
[0041] An analysis of the technical parameters of the exemplary variant 4 shows that the air-to-water heat pump system according to the invention with a defrosting unit enables an energy-efficient implementation of the defrosting process. The shutter according to the invention enhances the defrosting effect, reducing the amount of energy and time required to complete the process. The use of the shutter according to the invention allows for an absolute drying of the exchanger being defrosted due to the maintenance of a higher temperature of the exchanger surface, and thus ensures a longer time of its operation in active mode.
THE LIST OF REFERENCES
[0042] 1 first evaporator [0043] 2 second evaporator [0044] 3 first three-way valve [0045] 4 second three-way valve [0046] 5 third three-way valve [0047] 6 fourth three-way valve [0048] 7 expansion valve [0049] 8 compressor [0050] 9 condenser [0051] 10 fan [0052] 11 shutter [0053] 12 controller [0054] 13 brush element [0055] 14 frame structure