WO2016047196A1 - Dispositif de séchage - Google Patents
Dispositif de séchage Download PDFInfo
- Publication number
- WO2016047196A1 WO2016047196A1 PCT/JP2015/064237 JP2015064237W WO2016047196A1 WO 2016047196 A1 WO2016047196 A1 WO 2016047196A1 JP 2015064237 W JP2015064237 W JP 2015064237W WO 2016047196 A1 WO2016047196 A1 WO 2016047196A1
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- WIPO (PCT)
- Prior art keywords
- heat exchange
- header pipe
- side header
- evaporator
- pipe
- Prior art date
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- D—TEXTILES; PAPER
- D06—TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
- D06F—LAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
- D06F58/00—Domestic laundry dryers
- D06F58/20—General details of domestic laundry dryers
- D06F58/24—Condensing arrangements
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- D—TEXTILES; PAPER
- D06—TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
- D06F—LAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
- D06F58/00—Domestic laundry dryers
- D06F58/20—General details of domestic laundry dryers
- D06F58/26—Heating arrangements, e.g. gas heating equipment
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- D—TEXTILES; PAPER
- D06—TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
- D06F—LAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
- D06F58/00—Domestic laundry dryers
- D06F58/02—Domestic laundry dryers having dryer drums rotating about a horizontal axis
Definitions
- the present invention relates to a dryer, and more particularly to a dryer for drying wet cloth such as laundry.
- washing and drying machine that has both a function as a dryer and a function as a washing machine.
- a compressor, a condenser as a heater, a pressure reducing device, an evaporator as a cooler, and a dehumidifying device formed by connecting the compressor in a ring shape with a refrigerant pipe Have.
- the washing tub, the cooler, the heater, and the washing tub are connected in an annular shape by an air passage having a blower, a duct, and a flexible hose.
- Patent Document 1 Japanese Patent Laid-Open No. 10-300271
- a pair of header pipes facing each other substantially vertically, a plurality of heat exchange pipes arranged in parallel with each other between these header pipes, and connecting between both header pipes, and these heat exchange pipes, And a plurality of plate-like fins arranged in parallel to each other in the orthogonal direction.
- the plurality of heat exchange tubes are arranged so as to connect a pair of header pipes facing each other substantially vertically. That is, they are arranged in a substantially horizontal direction.
- the heat exchange pipes are arranged horizontally to distribute the liquid refrigerant evenly to all the heat exchange pipes. ing.
- Patent Document 1 has the following problems.
- the function of the evaporator in the dehumidifying device of the washing dryer is for evaporating the liquid refrigerant in the heat exchange pipe, and for drying highly humid air blown from the washing tub through the flexible hose. It functions as a cooler that cools air and condenses water vapor in the drying air on the surface of the heat exchange tube, that is, condenses.
- an object of the present invention is to provide a dryer capable of enhancing the dehumidifying efficiency when removing humid drying air by condensation.
- the dryer of the present invention is: A compressor, a condenser as a heater, a pressure reducing device, an evaporator as a cooler, and a heat pump unit in which a refrigerant circuit formed by connecting the compressor in a ring shape with a refrigerant pipe is contained in a container;
- the drying tank, the heat pump unit, and the drying tank are connected in a ring shape through a blower, and the drying air in the drying tank is moved from the evaporator side to the condenser side in the heat pump unit.
- the evaporator is An inlet-side header pipe and an outlet-side header pipe that are arranged in a substantially horizontal direction and face each other; One end is connected to the inlet-side header pipe in a direction intersecting the horizontal plane, and the other end is connected to the outlet-side header pipe in a direction intersecting the horizontal plane, and arranged parallel to each other between the header pipes.
- the condenser is An inlet-side header pipe and an outlet-side header pipe that are arranged in a substantially vertical direction and face each other; One end is connected to the inlet-side header pipe, the other end is connected to the outlet-side header pipe, and a plurality of heat exchange tubes arranged parallel to each other between the header pipes, It includes a plurality of plate-like fins that are connected so as to intersect with each of the heat exchange tubes and are arranged between adjacent heat exchange tubes of the plurality of heat exchange tubes.
- the plate-like fins of at least one of the evaporator and the condenser are arranged in a zigzag manner between the adjacent heat exchange tubes and connected to the heat exchange tubes.
- the heat exchange tubes and the plate fins in at least one of the evaporator and the condenser are all formed of aluminum or an aluminum alloy.
- the inlet header pipe and the outlet header pipe arranged in parallel in a substantially horizontal direction are arranged in parallel with each other.
- the pipe is connected in a direction that intersects the horizontal plane. Therefore, the heat exchange pipe is arranged to extend from the inlet side header pipe and the outlet side header pipe in a direction intersecting the horizontal plane.
- the dew condensation adhering to the heat exchange pipe with good water separation can be easily removed by a synergistic effect with wind with strong wind power because it is windward than the condenser side, and dehumidification efficiency is improved. It can be increased.
- FIG. 3 It is a perspective view in the drum type washing dryer to which the dryer of this invention was applied. It is sectional drawing which shows the drying function of the drum type washing-drying machine shown in FIG. It is a figure which shows the evaporator which comprises the heat pump unit in FIG. It is a figure which shows the condenser which comprises the heat pump unit in FIG. It is a figure which shows the cross-sectional shape of the flat tube in FIG. 3 and FIG.
- FIG. 1 is a perspective view which shows the external appearance in the drum type washing-drying machine to which the dryer of this Embodiment was applied.
- FIG. 2 is a cross-sectional view schematically showing a schematic configuration relating to the drying function of the drum type washing and drying machine.
- the drum type washing and drying machine has an operation display unit 4 for inputting a driving operation selection instruction and displaying a driving state, a washing tub 2 and a rotating drum 3 (see FIG. 1) on the front of the outer box 1. 2), and a door 5 for opening and closing the opening.
- the washing tub 2 is an example of the drying tub.
- the drum-type washing / drying machine includes an outer box 1, a washing tub 2 disposed in the outer box 1, and a rotating drum 3 in which laundry such as clothes and a drying object 6 are accommodated. And a drive motor 7 that rotationally drives the rotary drum 3 around the central axis J.
- the rotating drum 3 is disposed in the washing tub 2 so as to be rotatable around the central axis J having an inclination angle that is upward on the front side with respect to the horizontal direction.
- the washing tub 2 and the rotating drum 3 have an opening on the door 5 side, and the user can put the laundry and the drying object 6 into and out of the rotating drum 3 by opening the door 5. And by closing the door 5, the washing tub 2 is kept watertight and airtight.
- the extending direction of the central axis J may be a horizontal direction.
- a filter storage portion 8 is disposed at the upper part on the back side of the outer box 1. And while connecting between the inlet 8a of the filter storage part 8 and the exhaust outlet 9 of the washing tub 2 via the 1st air circulation duct 10, the exhaust port 8b of the said filter storage part 8 and the heat pump unit 11 are connected. Are connected via the second air circulation duct 12.
- the heat pump unit 11 is disposed in the lower part on the back side of the outer box 1. And between the heat pump unit 11 and the inlet 13 of the washing tub 2 is connected by the air duct 14.
- a circulation fan 15 as an example of the blower device is disposed on the heat pump unit 11 side of the blower duct 14.
- Drying air circulation for blowing the air in the washing tub 2 into the washing tub 2 through the first air circulation duct 10, the filter housing portion 8, the second air circulation duct 12, the heat pump unit 11, and the blower duct 14. A path is formed.
- the rotating drum 3 is formed with a plurality of through holes (not shown) on the peripheral surface 3A that allow water and air to flow into the washing tub 2. Furthermore, a plurality of air introduction holes (not shown) communicating with the air inlet 13 of the washing tub 2 are formed on the bottom surface 3 ⁇ / b> B of the rotating drum 3. Thereby, the dried heated air supplied through the air duct 14 from the heat pump unit 11 can be introduced into the rotating drum 3 from the air inlet 13 of the washing tub 2 as indicated by an arrow Y in FIG. .
- the heated air that has taken moisture from the drying object 6 such as clothes accommodated in the rotating drum 3 becomes moisture absorption air.
- This hygroscopic air enters the washing tub 2 through the through hole of the peripheral surface 3A of the rotating drum 3 as indicated by an arrow Z in FIG. 2, and passes through the first air circulation duct 10 from the exhaust port 9 of the washing tub 2. Then, the air is exhausted toward the filter housing portion 8 and is introduced from the filter housing portion 8 into the heat pump unit 11 through the second air circulation duct 12.
- the heat pump unit 11 is configured by housing a refrigerant circuit configured by connecting an evaporator 16, a compressor 17, a condenser 18, and an expansion valve 19 as the pressure reducing device with a refrigerant pipe 20 in a container. ing.
- the refrigerant compressed by the compressor 17 flows in the order of the condenser 18, the expansion valve 19 and the evaporator 16, and after the moisture absorption air from the second air circulation duct 12 is cooled and dried by the evaporator 16, the condenser is obtained.
- 18 is heated and sent to the air duct 14.
- a temperature sensor 21 or the like is attached to the refrigerant pipe 20 on the discharge side of the compressor 17.
- the controller 22 configured by a control computer or the like can control the capacity of the compressor 17 in accordance with the refrigerant temperature measured by the temperature sensor 21.
- the control of the expansion valve 19 is performed by the control unit 22 as necessary.
- control unit 22 executes a series of operations from washing to drying, or executes only a drying operation. Furthermore, the control part 22 functions also as an operation state output control part which performs output control of the operation state of this drum type washing-drying machine which will be described in detail later.
- the rotary drum 3 is rotated by the drive motor 7 at a rotation speed corresponding to the drying operation to stir the drying object 6 such as clothes, and the heat pump unit 11 and the circulation fan 15 are driven to perform drying. Air circulation is started.
- the refrigerant in the heat pump unit 11, the refrigerant is compressed by the compressor 17 shown in FIG. 2, and this refrigerant passes through the refrigerant pipe 20 from the compressor 17, the condenser 18, the expansion valve 19, the evaporator 16, and the compressor 17.
- coolant is thermally radiated by the condenser 18 to the air which contacts the fin 18B provided in the heat exchange pipe
- the heated air becomes moisture-absorbed air deprived of moisture from the dry object 6 such as clothes agitated in the rotary drum 3 and is discharged from the exhaust port 9 of the washing tub 2 to the first air circulation duct 10. Is done.
- the hygroscopic air blown to the first air circulation duct 10 enters the space in the heat pump unit 11 through the filter housing portion 8 and the second air circulation duct 12, and is heated when passing through the fins 16B of the evaporator 16. Is deprived and dehumidified.
- the refrigerant that has been depressurized by the expansion valve 19 to a low pressure flows through the heat exchange pipe 16A.
- the condensed water generated by dehumidification by the evaporator 16 is dropped into a water storage unit (not shown), and the dehumidified and dried air enters the condenser 18 and is heated again.
- the water stored in the water storage part is discharged into the washing tub 2 when the drain pump is operated at regular intervals, and drained to the outside through the drain pipe by opening the drain valve. Is done.
- the structure of the drying function of the heat pump system that heats and dehumidifies the drying air by the heat pump unit 11 collects the heat absorbed by the evaporator 16 with the refrigerant and radiates the heat again from the condenser 18, so that it is input to the compressor 17.
- the amount of heat more than energy can be given to the drying object 6 such as clothes, and it is possible to reduce the drying time and save energy.
- the air introduced into the first air circulation duct 10 from the rotary drum 3 includes dust, lint, and the like of clothing, and therefore, the first air circulation duct 10 and the second air circulation.
- a filter storage portion 8 that captures dust and lint is provided between the duct 12.
- the filter housing 8 can prevent dust and lint from entering the heat pump unit 11 through the second air circulation duct 12.
- FIG. 3 shows an evaporator 16 constituting the heat pump unit 11.
- FIG. 3 (a) is a front view
- FIG. 3 (b) is a side view.
- the evaporator 16 has a two-fold structure. That is, the inlet-side header pipe 25 and the outlet-side header pipe 26 having a circular cross section are adjacently arranged in parallel.
- the inlet side header pipe 25 and the outlet side header pipe 26 are connected by a plurality of heat exchange tubes 27, 27,...
- Each of the heat exchange pipes 27 has a cross-sectional shape as shown in FIG. 5 and is bent in an inverted U shape to be connected to the inlet side header pipe 25 and the outlet side header pipe. 26 and a second flat tube portion 29 connected to 26.
- the first flat tube portion 28 is connected so as to be substantially orthogonal to the inlet-side header pipe 25.
- the second flat tube portion 29 is connected so as to be substantially orthogonal to the outlet-side header pipe 26.
- the first flat tube portion 28 and the second flat tube portion 29 are arranged in parallel.
- the heat exchange pipes 27 connected to the inlet-side header pipe 25 and the outlet-side header pipe 26 at a substantially right angle are the first flat pipe portions 28 and the second flat pipe portions 28 in the two adjacent heat exchange pipes 27.
- the flat tube portions 29 are connected to each other by plate-like fins 32 as the fins 16B made of a thin metal plate.
- the first flat tube portion 28 and the second flat tube portion 29 of the heat exchange tube 27 located on the outermost side are the first flat tube portion 28 and
- the holding plates 33 and 34 arranged in parallel to the outside of the second flat tube portion 29 are connected by plate-like fins 32.
- Both ends of the inlet-side header pipe 25 are closed, and a refrigerant introduction pipe 36 for introducing liquid refrigerant is connected to the lid portion 35 of the inlet-side header pipe 25.
- both ends of the outlet side header pipe 26 are closed, and a refrigerant outlet pipe 38 for leading out the gas refrigerant is connected to the lid portion 37 of the outlet side header pipe 26.
- the low-pressure liquid refrigerant introduced into the horizontally disposed inlet-side header pipe 25 via the refrigerant introduction pipe 36 is connected at a substantially right angle and extends in the vertical direction. Separately flows into the first flat tube portion 28 of the tube 27.
- the first flat tube portion 28 evaporates by heat exchange with heat in the air absorbed via the plate-like fins 32, and becomes a gas-liquid mixed refrigerant and flows into the second flat tube portion 29.
- the gas refrigerant collected from each heat exchange pipe 27 is led out to the compressor 17 from the refrigerant lead-out pipe 38.
- the first and second flat tube portions 28 and 29 are arranged in a substantially vertical direction. Therefore, the condensed water droplets adhering to the surface are the surfaces of the first and second flat tube portions 28 and 29 extending in a substantially vertical direction due to a decrease in interfacial tension due to a change in the upper contact angle and the lower contact angle. It is easy to fall along and has good water separation (drainage).
- the flat tube which is the heat exchange tube in the evaporator 16 has a two-fold structure including the first flat tube portion 28 and the second flat tube portion 29.
- the opportunity for humid dry air to contact the evaporator 16 can be increased, and the ability to dehumidify by condensation can be increased.
- a planar structure may be better depending on the size and air volume of the condenser 18 in order to move efficiently.
- the evaporator 16 in the heat pump unit 11 that exhibits the drying function of the drum-type washing and drying machine, includes the inlet-side header pipe 25 and the outlet-side header pipe 26 that are horizontally aligned, Are formed in an inverted U shape and connected in a substantially vertical direction by a plurality of heat exchange tubes 27, 27,... Arranged in parallel. Accordingly, each of the heat exchange tubes 27 is configured, and the first flat tube portion 28 connected substantially orthogonally to the inlet header pipe 25 and the second flat tube connected substantially orthogonally to the outlet header pipe 26.
- the pipe part 29 is arranged in a substantially vertical direction.
- the condensed water adhering to the surfaces of the first and second flat tube portions 28 and 29 extending in the substantially vertical direction easily falls along the surfaces of the first and second flat tube portions 28 and 29, and the first It is possible to improve water separation (drainage) in the first and second flat tube portions 28 and 29.
- the condensed water adhering to the first and second flat tube portions 28 and 29 with good water separation can be easily combined with the wind having stronger wind than the condenser 18 side. It can be removed and the dehumidification efficiency can be increased.
- the first flat tube portion 28 is connected substantially orthogonally to the inlet-side header pipe 25 arranged in the horizontal direction, while the second flat tube portion 29 is arranged in the horizontal direction.
- the first and second flat tube portions 28 and 29 are arranged in a substantially vertical direction by being connected to the outlet header pipe 26 substantially orthogonally.
- the present invention is not limited to the above “substantially orthogonal”, and the first and second flat tube portions 28 and 29 are connected to both header pipes 25 and 26 arranged in the horizontal direction. Just do it. That is, the 1st, 2nd flat tube parts 28 and 29 should just be arrange
- the evaporator 16 is configured in a two-fold structure, but it may be a planar structure.
- the inlet side header pipe 25 and the outlet side header pipe 26 may be spaced apart from each other in the horizontal direction, and both ends of the flat tube formed in a straight line may be connected.
- This embodiment relates to producing a synergistic effect with the evaporator 16 by specifying the configuration of the condenser 18 in addition to the configuration of the evaporator 16 in the first embodiment. .
- FIG. 4 shows the condenser 18 constituting the heat pump unit 11.
- 4 (a) is a front view
- FIG. 4 (b) is a side view
- FIG. 4 (c) is a top view.
- the condenser 18 has the same structure as that of the evaporator 16 described above except that it has a three-fold structure and that each heat exchange tube extends in the horizontal direction. Have.
- each heat exchange tube 43 is bent in two opposite directions, and is formed in an S-shape in which two U-shapes are connected in opposite directions.
- Each of the heat exchange tubes 43 has a cross-sectional shape as shown in FIG. 5, and a first flat tube portion 44 connected to the inlet side header pipe 41 and a third flat tube connected to the outlet side header pipe 42. And a second flat tube portion 45 connected to the first flat tube portion 44 and the third flat tube portion 46.
- the first flat tube portion 44 is connected so as to be substantially orthogonal to the inlet-side header pipe 41.
- the third flat tube portion 46 is connected so as to be substantially orthogonal to the outlet-side header pipe 42.
- the first flat tube portion 44, the second flat tube portion 45, and the third flat tube portion 46 are arranged in parallel.
- the heat exchange pipes 43 connected to the inlet side header pipe 41 and the outlet side header pipe 42 at a substantially right angle are the first flat pipe portions 44 in the two adjacent heat exchange pipes 43,
- the two flat tube portions 45 and the third flat tube portions 46 are connected to each other by the plate-like fins 51 as the fins 18B made of a thin metal plate.
- the first flat tube portion 44, the second flat tube portion 45, and the third flat tube portion 46 of the heat exchange tube 43 located on the outermost side are The first flat tube portion 44, the second flat tube portion 45, and the third flat tube portion 46 are connected to the holding plates 52, 53, 54 arranged in parallel to the outside by the plate-like fins 51.
- the inlet side header pipe 41 is connected to a refrigerant introduction pipe 55 for introducing a high-pressure gas refrigerant.
- the outlet side header pipe 42 is connected to a refrigerant outlet pipe 56 for leading out the liquid refrigerant.
- the high-pressure gas refrigerant introduced into the inlet-side header pipe 41 arranged in the vertical direction is connected to a substantially right angle and extends in the horizontal direction in the first flatness of each heat exchange pipe 43. Separately and flow into the pipe portion 44. And in each 1st flat tube part 44, it condenses by heat exchange with the heat
- the cooling air introduced into the space around the condenser 18 from the space around the evaporator 16 in the heat pump unit 11 by the rotation of the circulation fan 15 is caused by the plate-like fins 51 and the first to third flat tube portions 44. Heated by the heat released when passing through.
- the first flat tube portion 44 and the first flat tube portion 44 are disposed on the downstream side of the evaporator 16 in which the first flat tube portion 28 and the second flat tube portion 29 are arranged in a substantially vertical direction.
- positioned in the substantially horizontal direction is installed.
- the direction of the heat exchange tubes (first to third flat tube portions 44 to 46) of the condenser 18 is set to the direction of the heat exchange tubes (first and second flat tube portions 28 and 29) of the evaporator 16.
- the direction is approximately orthogonal to the direction. Therefore, the first to third flat tube portions 44 to 46 and the plate of the condenser 18 located in the downwind of the wind passing between the first and second flat tube portions 28 and 29 of the evaporator 16 located on the windward side. It is possible to make contact with the fins 51 and increase the chances of contact between the first to third flat tube portions 44 to 46 and the plate fins 51 and the wind. As a result, the heat exchange performance of the condenser 18 can be improved.
- the first flat tube portion 44 is connected substantially perpendicularly to the inlet side header pipe 41 arranged in the vertical direction (vertical direction), while the third flat tube portion 46 is The first to third flat tube portions 44 to 46 are arranged in a substantially horizontal direction by connecting substantially perpendicularly to the outlet side header pipe 42 arranged in the vertical direction (vertical direction).
- the present invention is not limited to the above “substantially orthogonal”, and the first to third flat tube portions 44 to 46 intersect both the header pipes 41 and 42 arranged in the vertical direction (vertical direction). As long as they are connected. That is, the first to third flat tube portions 44 to 46 need only be arranged in a direction intersecting the vertical direction (vertical direction).
- the condenser 18 is configured in a three-fold structure, but it may be a two-fold structure or a planar structure. What is necessary is just to set suitably from the balance of the required area as the condenser 18 calculated
- This embodiment relates to the shape of the plate-like fins 32 of the evaporator 16 in the first embodiment and the plate-like fins 51 of the condenser 18 in the second embodiment.
- the fins 32 are formed by bending a thin metal plate into a zigzag shape. Therefore, the dew condensation water adhering to the plate-like fins 32 is easy to fall along the surface of the plate-like fins 32 that are not horizontally arranged but obliquely arranged in a zigzag shape, so that water separation (drainage) can be improved. Moreover, by making it zigzag shape, the area which hits a wind can be enlarged and heat exchange efficiency can be improved.
- the plate-like fins 51 connecting the portions 46 are formed by bending a thin metal plate into a zigzag shape. Therefore, by making the plate-like fins 51 into a zigzag shape, the area exposed to wind can be increased, and the heat exchange efficiency can be increased.
- Embodiment is related with the material of the evaporator 16 in the said 1st Embodiment, and the condenser 18 in the said 2nd Embodiment.
- the plate-like fins 32 of the evaporator 16 and the first and second flat tube portions 28 and 29, and the plate-like fins 51 of the condenser 18 and the first to third flat tube portions 44 to 44 are used.
- 46 are made of aluminum or an aluminum alloy. Therefore, compared with the conventional case where the heat exchange pipe is formed of a copper pipe, the heat exchange performance is excellent, and the drying time and power consumption can be reduced.
- the evaporator 16 and the condenser 18 can be reduced in size and weight, and the heat pump unit 11 can be reduced in size and weight. Therefore, the convenience regarding productivity and serviceability can be improved. Furthermore, the design margin regarding the installation location of the heat pump unit 11 can be improved.
- the cross-sectional shape of the flat tube portions 28, 29, 44, 45, and 46 in each of the above embodiments may be any of the cross-sectional shapes in FIG. 5 (a) and FIG. 5 (b). Absent.
- the cross-sectional shape of FIG. 5 (a) is adopted, the flow rate of the refrigerant can be increased, whereas when the cross-sectional shape of the flat multi-hole tube shown in FIG. 5 (b) is adopted, the heat exchange property of the refrigerant is improved. Can do.
- the present invention is described by taking a drum-type washing / drying machine having a function of a dryer as an example.
- the present invention is not limited to the drum-type washing / drying machine, and a single drying machine may be used.
- the dryer of this invention is: A refrigerant circuit formed by connecting a compressor 17, a condenser 18 as a heater, a decompressor 19 including an expansion valve, an evaporator 16 as a cooler, and the compressor 17 in a ring shape with a refrigerant pipe 20 is placed in a container.
- the drying tank 2, the heat pump unit 11, and the drying tank 2 are connected in a ring shape via a blower 15, and the drying air in the drying tank 2 is passed through the heat pump unit 11 from the evaporator 16 side.
- the evaporator 16 is An inlet-side header pipe 25 and an outlet-side header pipe 26 which are arranged in a substantially horizontal direction and are opposed to each other; One end is connected to the inlet-side header pipe 25 in a direction intersecting the horizontal plane, and the other end is connected to the outlet-side header pipe 26 in a direction intersecting the horizontal plane, and between the header pipes 25 and 26.
- a plurality of heat exchange tubes 27 arranged in parallel to each other; It includes a plurality of plate-like fins 32 that are connected so as to intersect with each of the heat exchange tubes 27 and arranged between the heat exchange tubes 27 adjacent to each other among the plurality of heat exchange tubes 27. It is characterized by that.
- the evaporator 16 is configured such that the inlet-side header pipe 25 and the outlet-side header pipe 26, which are arranged in parallel in a substantially horizontal direction, are arranged in a horizontal plane with a plurality of heat exchange tubes 27 arranged in parallel to each other. Connected in the intersecting direction. Therefore, the heat exchange pipe 27 is arranged to extend from the inlet side header pipe 25 and the outlet side header pipe 26 in a direction intersecting the horizontal plane.
- the dew condensation water adhering to the heat exchange pipe 27 with good water separation can be easily removed by a synergistic effect with wind with strong wind power because it is windward than the condenser 18 side. Efficiency can be increased.
- the condenser 18 is An inlet-side header pipe 41 and an outlet-side header pipe 42 that are arranged in a substantially vertical direction and face each other; A plurality of heat exchange tubes having one end connected to the inlet-side header pipe 41 and the other end connected to the outlet-side header pipe 42 and arranged parallel to each other between the header pipes 41, 42. 43, It includes a plurality of plate-like fins 51 that are connected so as to intersect with each of the heat exchange tubes 43 and are arranged between the heat exchange tubes 43 adjacent to each other among the plurality of heat exchange tubes 43. .
- the condenser 18 includes a plurality of heat exchanges in which the inlet-side header pipe 41 and the outlet-side header pipe 42 arranged in parallel in a substantially vertical direction (vertical direction) are arranged in parallel to each other. They are connected by a pipe 43. Therefore, the heat exchange pipe 43 is arranged in a direction crossing the vertical direction.
- the direction of the heat exchange pipe 43 of the condenser 18 intersects the direction of the heat exchange pipe 27 of the evaporator 16. Therefore, the wind that has passed between the heat exchange tubes 27 of the evaporator 16 located on the windward side can hit the heat exchange tubes 43 and the plate-like fins 51 of the condenser 18 located on the leeward side, Opportunities for contact between the heat exchange tubes 43 of the condenser 18 and the plate fins 51 and the wind can be increased. As a result, the heat exchange performance of the condenser 18 can be improved.
- the plate-like fins 32 of at least one of the evaporator 16 and the condenser 18 are arranged in a zigzag manner between the adjacent heat exchange tubes and are connected to the heat exchange tubes.
- the condensed water adhering to the plate-like fins 32 bent in a zigzag shape in the evaporator 16 falls along the surface of the plate-like fins 32 arranged obliquely rather than horizontally. It is easy to do and can improve water separation (drainage). Moreover, by making it zigzag shape, the area which hits a wind can be enlarged and heat exchange efficiency can be improved.
- the heat exchange tubes and the plate fins in at least one of the evaporator 16 and the condenser 18 are all made of aluminum or an aluminum alloy.
- the heat exchange tubes 27 and 43 are formed of aluminum or an aluminum alloy, the heat exchange performance is excellent as compared with the case where the heat exchange tubes 27 and 43 are formed of copper pipes as in the past, and the drying time is shortened and consumed. Electric power can be reduced.
- the evaporator 16 and the condenser 18 can be reduced in size and weight, and the heat pump unit 11 can be reduced in size and weight. Therefore, the convenience regarding productivity and serviceability can be improved. Furthermore, the design margin regarding the installation location of the heat pump unit 11 can be improved.
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Abstract
L'invention concerne un dispositif de séchage pourvu : d'une unité de pompe à chaleur ayant un circuit de réfrigérant reçu à l'intérieur d'un récipient ; et d'un passage de circulation d'air de séchage permettant le raccordement dans une boucle d'un réservoir de séchage, de l'unité de pompe à chaleur, et du réservoir de séchage à travers un dispositif de soufflage. Un évaporateur (16) dans le circuit de fluide frigorigène comprend : un tuyau collecteur côté entrée (25) et un tuyau collecteur côté sortie (26), qui sont agencés sensiblement horizontalement ; une pluralité de tuyaux d'échange de chaleur (28, 29) dont chacun présente une extrémité raccordée au tuyau collecteur côté entrée (25) dans une direction croisant un plan horizontal et dont l'autre extrémité est raccordée au tuyau collecteur côté sortie (26) dans une direction croisant le plan horizontal, et qui sont agencés parallèlement les uns aux autres entre les tuyaux collecteurs (25, 26) ; et une pluralité d'ailettes de type plaque (32) qui sont reliées aux tuyaux d'échange de chaleur (28, 29) de manière à croiser les tuyaux d'échange de chaleur (28, 29) et qui sont chacune disposées entre les tuyaux d'échange de chaleur (28, 29) adjacents.
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JP2014195508A JP2016064057A (ja) | 2014-09-25 | 2014-09-25 | 乾燥機 |
JP2014-195508 | 2014-09-25 |
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WO2016047196A1 true WO2016047196A1 (fr) | 2016-03-31 |
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JP6850132B2 (ja) * | 2017-01-05 | 2021-03-31 | 東芝ライフスタイル株式会社 | 衣類乾燥機 |
CN113047017B (zh) * | 2021-03-26 | 2022-12-27 | 深圳市锐钜科技有限公司 | 一种多功能烘干模块及应用该模块的洗衣机或干衣机 |
Citations (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPH0640676U (ja) * | 1992-10-30 | 1994-05-31 | 昭和アルミニウム株式会社 | 熱交換器 |
JPH07146089A (ja) * | 1993-11-24 | 1995-06-06 | Showa Alum Corp | 熱交換器 |
JPH08145580A (ja) * | 1994-11-17 | 1996-06-07 | Showa Alum Corp | 熱交換器 |
JP2014054375A (ja) * | 2012-09-12 | 2014-03-27 | Sharp Corp | 衣類乾燥装置 |
-
2014
- 2014-09-25 JP JP2014195508A patent/JP2016064057A/ja active Pending
-
2015
- 2015-05-18 WO PCT/JP2015/064237 patent/WO2016047196A1/fr active Application Filing
Patent Citations (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPH0640676U (ja) * | 1992-10-30 | 1994-05-31 | 昭和アルミニウム株式会社 | 熱交換器 |
JPH07146089A (ja) * | 1993-11-24 | 1995-06-06 | Showa Alum Corp | 熱交換器 |
JPH08145580A (ja) * | 1994-11-17 | 1996-06-07 | Showa Alum Corp | 熱交換器 |
JP2014054375A (ja) * | 2012-09-12 | 2014-03-27 | Sharp Corp | 衣類乾燥装置 |
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