Heating-medium heating unit and vehicle air conditioner using the same
10024575 ยท 2018-07-17
Assignee
Inventors
- Tomoyasu ADACHI (Tokyo, JP)
- Nobuya Nakagawa (Tokyo, JP)
- Shiro Matsubara (Tokyo, JP)
- Naoto Kunieda (Aichi, JP)
Cpc classification
F24H1/009
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H3/085
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H2250/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H9/1827
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H1/2221
PERFORMING OPERATIONS; TRANSPORTING
B60H2001/2265
PERFORMING OPERATIONS; TRANSPORTING
F24H1/121
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F24H9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H9/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H1/22
PERFORMING OPERATIONS; TRANSPORTING
F24H1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
In a heating-medium heating unit equipped with a first heating-medium circulation box and a second heating-medium circulation box which are in close contact with both surfaces of a PTC heater, in which heating-medium circulation passages are formed in the interior, and which are joined to each other in a liquidtight manner, wherein joining surfaces are sealed with liquid gaskets, the heating-medium circulation passages are provided with joining-surface cooling channels that cool the joining surface which is sealed with a liquid gasket and on which the heat from the PTC heater acts. The joining-surface cooling channels are provided at positions closer to the joining surface than to the PTC heater.
Claims
1. A heating-medium heating unit, comprising: a flat PTC heater; a first heating-medium circulation box having at least a first box component and a second box component; and a second heating-medium circulation box having at least a third box component and a fourth box component are stacked on one another; a plurality of first heating-medium circulation passages formed in an interior of the first heating-medium circulation box; and a plurality of second heating-medium circulation passages formed in an interior of the second heating-medium circulation box, wherein the first heating-medium circulation box is in contact with a first surface of the flat PTC heater, wherein the second heating-medium circulation box is in contact with a second surface of the flat PTC heater, wherein the first heating-medium circulation box is stacked on the second heating-medium circulation box, wherein a heating medium that circulates through the plurality of first heating-medium circulation passages and the plurality of second heating-medium circulation passages in the first heating-medium circulation box and the second heating-medium circulation box is heated by heat from the PTC heater, the heating-medium heating unit further comprising a liquid gasket for sealing at least one of a stacked portion of the first box component and the second box component, a stacked portion of the third box component and the fourth box component, and a stacked portion of the first heating-medium circulation box and the second heating-medium circulation box, wherein at least one of the plurality first heating-medium circulation passages or at least one of the plurality second heating-medium circulation passages is for cooling the at least one of the stacked portions, wherein the flat PTC heater and the first heating-medium circulation box and second heating-medium circulation box are formed in a rectangular shape, wherein, in a plan view of the first box component of the first heating-medium circulation box, at least one of the stacked portion of the first box component and the second box component and the stacked portion of the third box component and the fourth box component has a first part consisting of a pair of sides opposing to each other in parallel to a direction perpendicular to a longitudinal direction of the first heating-medium circulation box at the stacked portion and a second part consisting of a pair of sides opposing to each other in parallel to a longitudinal direction of the first heating-medium circulation box at the stacked portion, the second part crossing the sides of the first part on a same surface as the stacked portion provided with the first part, wherein, in a plan view of the first box component of the first heating-medium circulation box, one end in the longitudinal direction of the first part is provided with a hole having a substantially rectangular shape through which a harness passes for connecting a board for controlling the PTC heater, and a distance between the plurality of first heating-medium circulation passages and a side of the hole, the side being nearest to the plurality of first heating-medium circulation passages, is larger than the width of the second part, wherein the second part seals a space between the plurality of first heating-medium circulation passages and the outside.
2. The heating-medium heating unit according to claim 1, wherein the plurality of first heating-medium circulation passages for cooling the at least one of the stacked portions is provided at a position closer to the stacked portion sealed with the liquid gasket than to the flat PTC heater.
3. The heating-medium heating unit according to claim 1, wherein a contact surface of at least one of the first heating-medium circulation box and the second heating-medium circulation box, the contact surface-being in close contact with the flat PTC heater, and the stacked portion between the first heating-medium circulation box and the second heating-medium circulation box are formed as a continuous flat surface between the contact surface and the stacked portion.
4. The heating-medium heating unit according to claim 1, a wiring member of the flat PTC heater extends from an end of the flat PTC heater in the longitudinal direction.
5. The heating-medium heating unit according to claim 4, wherein PTC devices that constitute the flat PTC heater are disposed in a plurality of rows along the channel direction of the heating-medium circulation passages, the PTC devices have different widths, and ON/OFF states of the PTC devices can be individually controlled.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENT
(10) An embodiment of the present invention will be described hereinbelow using
(11)
(12) The casing 3 accommodates, in sequence from the upstream side to the downstream side of the air channel 2, a blower 4 that takes in outside air or vehicle interior air, increases the pressure thereof, and blows it downstream; a cooler 5 that cools the air blown by the blower 4; a radiator 6 that heats the air cooled by passing through the cooler 5; and an air mix damper 7 that adjusts the ratio of the amount of air passing through the radiator 6 to the amount of flowing air bypassing the radiator 6 to control the temperature of the air mixed downstream thereof.
(13) The downstream side of the casing 3 is connected to a plurality of vents (not shown) through which the temperature-controlled air is blown out into the vehicle interior via a blowing-mode switching damper and a duct (not shown). The cooler 5 constitutes a refrigerant circuit together with a compressor, a condenser, and an expansion valve (not shown) and cools air passing therethrough by evaporating a refrigerant that is adiabatically expanded at the expansion valve.
(14) The radiator 6 constitutes a heating-medium circulating circuit 11 together with a tank 8, a pump 9, an engine (not shown), and a heating-medium heating unit 10 according to the present invention. Engine coolant of a hybrid vehicle is used as a heating medium flowing through the heating-medium circulating circuit 11. The heating-medium circulating circuit 11 heats the air passing through the radiator 6 in the casing 3 by heating the engine coolant with the heating-medium heating unit 10 when the temperature of the engine coolant, serving as the heating medium, does not significantly increase, such as during hybrid driving, and by circulating the heated engine coolant through the heating-medium circulating circuit 11 with the pump 9.
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(16) The heating-medium heating unit 10 is equipped with a first heating-medium circulation box A configured like a casing such that a plurality of box components 20, 21, and 30 are stacked one on another; a second heating-medium circulation box B which is configured like a casing such that a plurality of box components 50 and 51 are similarly stacked one on another and which is joined to the lower surface of the first heating-medium circulation box A in a liquidtight manner; and a PTC heater 40 sandwiched between the first and second heating-medium circulation boxes A and B.
(17) The first heating-medium circulation box A is formed such that the rectangular board-accommodating box 20, to the upper surface of which the cap 21 is joined, and the upper heating-medium circulation box 30 having the same rectangular shape as the board-accommodating box 20 are joined together in a liquidtight manner. The second heating-medium circulation box B is formed of the lower heating-medium circulation box 50 having the same rectangular shape as the upper heating-medium circulation box 30 and the cap 51, which is joined to the lower surface of the lower heating-medium circulation box 50 in a liquidtight manner. The first heating-medium circulation box A, the second heating-medium circulation box B, and the other box components 20, 21, 30, 50, and 51 are tightened together with a plurality of bolts 58 to form a single unit, as shown in
(18) The PTC heater 40 has a rectangular, flat shape smaller than those of the upper heating-medium circulation box 30 and the lower heating-medium circulation box 50, the upper surface of the PTC heater 40 is in close contact with a flat radiating surface 38 formed at the lower surface of the upper heating-medium circulation box 30, and the lower surface of the PTC heater 40 is in close contact with a flat radiating surface 56 formed on the upper surface of the lower heating-medium circulation box 50, as will be described later in detail.
(19) The board-accommodating box 20 is a rectangular half casing which is formed of a thermally conducting material, such as an aluminum alloy, whose upper surface is tightly sealed by the cap 21, and whose interior serves as a board-accommodating space S, in which a control board 22 (see
(20) The control board 22 is fixedly disposed on supporting portions 24 projecting from the bottom surface of the board-accommodating box 20 by being fastened with screws 25a at the four corners. The heat generating components, such as the FETs 23, are disposed on the lower surface side of the control board 22 and are fastened and fixed with screws 25b to the upper surface of a cooling portion 26 provided on the bottom surface of the board-accommodating box 20 that is in contact therewith via an insulating layer (not shown) therebetween. The heat generating components, such as the FETs 23, and the cooling portion 26 are disposed in the vicinity of the inlet of heating-medium circulation passages (circulation paths 33), described later, provided in the upper heating-medium circulation box 30, to enhance the cooling effect on the heat generating components.
(21) Wire insertion holes 27 are formed at one end face of the board-accommodating box 20 (see
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(23) Thus, an engine-coolant circulation passage through which the engine coolant flowing into the inlet header 31 is distributed to the large number of circulation paths 33 so as to flow simultaneously in parallel in the circulation paths 33 toward the outlet header 32 is formed between the board-accommodating box 20 and the upper heating-medium circulation box 30. The engine coolant flowing in the circulation paths 33 does not flow directly into the outlet header 32 but flows into a circulation opening 35 (see
(24) The inlet header 31 is provided with an engine-coolant inflow portion 34, and the outlet header 32 is provided with the circulation opening 35 connecting to the lower heating-medium circulation box 50, a circulation opening 36 through which the engine coolant flowing from the lower heating-medium circulation box 50 is made to flow outwards, as will be described later, and an engine-coolant outflow portion 37 communicating with the outside via the circulation opening 36. The inflow portion 34 and the outflow portion 37 are provided with respective union members 34a and 37a (see
(25) Furthermore, the lower surface of the upper heating-medium circulation box 30 is provided with a wide depressed portion (see
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(27) The lower surface of the lower heating-medium circulation box 50 is provided with parallel grooved circulation paths 54 that extend from the communication opening 52 toward the other end and that make a U-turn at the other end to return to the communication opening 53 and that are separated by a large number of fins 54a (see
(28) Thus, a heating-medium circulation passage through which the engine coolant flowing into the communication opening 52 is distributed from the communication opening 52 to the large number of circulation paths 54, circulates in the individual circulation paths 54 simultaneously in parallel, and makes a U-turn at the other end to reach the communication opening 53 is formed between the lower heating-medium circulation box 50 and the cap 51.
(29) The communication opening 52 of the lower heating-medium circulation box 50 communicates with the circulation opening 35 provided in the outlet header 32 of the upper heating-medium circulation box 30 so that the engine coolant flowing in the circulation paths 33 of the upper heating-medium circulation box 30 flows therein. The communication opening 53 of the lower heating-medium circulation box 50 communicates with the circulation opening 36 provided in the outlet header 32 of the upper heating-medium circulation box 30 to constitute a passage through which the engine coolant flowing in the lower heating-medium circulation box 50 is made to flow outwards from the circulation opening 36 via the outflow portion 37.
(30) The upper surface of the lower heating-medium circulation box 50 serves as the radiating surface 56 (see
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(32) As shown in an enlarged cross-sectional view in
(33) The electrode plates 42 are for supplying electric power to the PTC devices 41a, 41b, and 41c, are rectangular thin plates similar to the PTC devices 41a, 41b, and 41c, and have electrical conductivity and thermal conductivity. The noncompressive insulating layers 43 are rectangular thin plates, are each constituted by an insulating material, such as a polyamide film, and have thermal conductivity. The noncompressive insulating layers 43 are 0.1 mm or less in thickness. This is for the purpose of minimizing the thermal resistance between the PTC devices 41a, 41b, and 41c and the electrode plates 42 and between the upper heating-medium circulation box 30 (radiating surface 56) and the lower heating-medium circulation box 50 (radiating surface 38) provided at the outside thereof and for providing sufficient electrical insulation.
(34) Furthermore, the compressive heat conducting layers 44 are rectangular sheet members having compressibility, which are constituted by insulating sheets, such as silicone sheets and have thermal conductivity. The compressive heat conducting layers 44 are, if constituted by silicone sheets, set to be about 0.4 mm to 2.0 mm in thickness to reduce the thermal resistance between the PTC device 41 serving as a heat-generating element and the upper heating-medium circulation box 30 (radiating surface 38) and the lower heating-medium circulation box 50 (radiating surface 56). The thickness of at least 0.4 mm or more ensures a compressing function, allowing the upper heating-medium circulation box 30 and the lower heating-medium circulation box 50 to be reliably brought into close contact with the PTC heater 40 by using the compressibility when the PTC heater 40 is mounted between the upper heating-medium circulation box 30 and the lower heating-medium circulation box 50, and allowing the mounting dimensional tolerance to be absorbed.
(35) Thus, as shown in
(36) The PTC heater 40 has wiring members 40b at one end thereof, and the wiring members 40bare bent upwards at right angles to the planar direction of the PTC heater 40 and are inserted into the wire insertion holes 39 of the upper heating-medium circulation box 30 and the wire routing holes 28 of the board-accommodating box 20. The wiring members 40b are guided to the control board 22, so that the cable-like wiring members 40a (see
(37) The heating-medium circulating circuit 11 is connected to the inflow portion 34 of the upper heating-medium circulation box 30. Low-temperature engine coolant pumped from the pump 9 flows through the inflow portion 34 into the inlet header 31 and is distributed to the individual circulation paths 33 (see
(38) The engine coolant diverges at the communication opening 52 into the individual circulation paths 54, flows as indicated by an imaginary line F in
(39) Since the PTC devices 41a, 41b, and 41c that constitute the PTC heater 40 are configured such that the ON/OFF states can be individually controlled by the control circuits incorporated in the control board 22, the individual PTC devices 41a, 41b, and 41c are independently turned ON and OFF by the control board 22 according to the difference between the actual temperature of the engine coolant flowing into the heating-medium heating unit 10 and a necessary temperature (target temperature), and thus the heating capability is controlled. This allows the engine coolant to flow out while being heated and increased to a predetermined temperature.
(40) Next, the relevant part of the present invention will be described. As shown in
(41) Furthermore, the circulation paths 33 that serve as the heating-medium circulation passages of the first heating-medium circulation box A and the circulation paths 54 that serve as the heating-medium circulation passages of the second heating-medium circulation box B are provided with joining-surface cooling channels C1 and C2, respectively. These joining-surface cooling channels C1 and C2 are provided to particularly cool, of the joining surfaces M1 to M4 sealed by the liquid gaskets 60, the vicinity of the joining surface Ml, on which a considerable amount of the heat from the PTC heater 40 acts, thereby preventing the liquid gasket 60 applied to the joining surface M1 from being degraded due to the heat.
(42) The joining-surface cooling channel C1 constitutes, of the plurality of circulation paths 33, one or two circulation paths close to the joining surface M1, and the joining-surface cooling channel C2 constitutes, of the plurality of circulation paths 54, one or two circulation paths close to the joining surface M1. These joining-surface cooling channels C1 and C2 are provided at positions closer to the joining surface M1 than to the edge of the PTC heater 40. Therefore, the heat from the PTC heater 40 is subjected to heat exchange by the engine coolant that flows through the joining-surface cooling channels C1 and C2 before being transmitted to the joining surface M1, which makes the heat difficult to be transmitted to the joining surface M1. Accordingly, this allows the liquid gasket 60 that seals the joining surface M1 to be protected from the heat, thus enhancing the durability, which prevents the heating medium from leaking through the joining surface M1.
(43) Of the joining surfaces M1 to M4, the joining surface M3 between the lower surface of the board-accommodating box 20 and the upper surface of the upper heating-medium circulation box 30, through which the wiring members 40b of the PTC heater 40 pass, includes an outside sealing section M3a that seals a space between the heating-medium circulation passages (circulation paths 33) and the outside and a board sealing section M3b that seals a space between the heating-medium circulation passages (circulation paths 33) and the wire routing holes 28, which are portions communicating with the board-accommodating space S, as shown in
(44) As shown in
(45) As shown in
(46) The heating-medium heating unit 10 according to this embodiment is configured as described above. This heating-medium heating unit 10 provides the following advantages.
(47) First, since the joining surfaces M1 to M4 between the box components 20, 21, 30, 50, and 51 that constitute the first heating-medium circulation box A and the second heating-medium circulation box B are configured to be sealed with the liquid gaskets 60, the O-rings that are conventionally interposed between the joining surfaces M1 to M4 can be eliminated. This can reduce the number of components and the number of man-hours for assembling the heating-medium heating unit 10, and moreover, can eliminate fitting grooves that are conventionally carved in the individual joining surfaces M1 to M4 to fit the O-rings therein, thereby reducing the number of man-hours for machining the box components 20, 21, 30, 50, and 51, thus allowing the manufacturing cost of the heating-medium circulation box 10 to be remarkably reduced.
(48) Since the joining-surface cooling channels C1 and C2 are provided in the heating-medium circulation passages (circulation paths 33 and 54) of the first heating-medium circulation box A and the second heating-medium circulation box B, of the four joining surfaces M1 to M4 sealed with the liquid gaskets 60, the joining surface M1 on which a considerable amount of the heat from the PTC heater 40 acts can be cooled favorably. This can therefore prevent the liquid gasket 60 applied to the joining surface M1 from being degraded due to heat, and realizes a sealing technique only with the liquid gasket 60 without using an O-ring, thus significantly contributing to a reduction in the manufacturing cost of the heating-medium heating unit 10.
(49) Furthermore, since these joining-surface cooling channels C1 and C2 are provided at positions closer to the joining surface M1 than to the edge of the PTC heater 40, the liquid gasket 60 applied to the joining surface M1 can be more reliably protected from the heat from the PTC heater 40. For the joining surfaces M3 and M4, since the positions of the circulation paths 33 and 54 are closer to the joining surfaces M3 and M4 than to the PTC heater 40, it is difficult for the joining surfaces M3 and M4 to be affected by the heat from the PTC heater 40.
(50) The shapes of the joining-surface cooling channels C1 and C2 are not limited to those of this embodiment; they may be other shapes. For example, in this embodiment, although the depths and widths of the joining-surface cooling channels C1 and C2 are equal to or smaller than those of the adjacent circulation paths 33 and 54, the depths and widths may be larger than those of the circulation paths 33 and 54 so that much more engine coolant will flow through a portion closer to the joining surface M1, thereby further enhancing the cooling performance of the joining surface M1.
(51) Furthermore, in this heating-medium heating unit 10, of the joining surfaces M1 to M4, the joining surface M3 through which the wiring members 40b of the PTC heater 40 pass is configured such that the width W2 of the board sealing section M3b is set to be larger than the width W1 of the outside sealing section M3a; therefore, while the O-ring on the joining surface M3 is eliminated so that the manufacturing cost can be reduced, coolant leakage to the board-accommodating space S in which the control board 22 is accommodated can be reliably prevented, and hence the reliability of the heating-medium heating unit 10 can be enhanced.
(52) Furthermore, in this heating-medium heating unit 10, since the radiating surface 56 of the lower heating-medium circulation box 50 that constitutes the second heating-medium circulation box B and the joining surface M1 to the first heating-medium circulation box A are formed as a continuous flat surface without a level-difference, the upper surface of the lower heating-medium circulation box 50 can be made completely flat, thereby remarkably facilitating processing of the lower heating-medium circulation box 50, thus reducing the manufacturing cost of the heating-medium circulation box 10.
(53) Furthermore, in this heating-medium heating unit 10, since the PTC heater 40, the first heating-medium circulation box A, and the second heating-medium circulation box B are formed in a rectangular shape, and the wiring members 40b of the PTC heater 40 are extended together from the end of the PTC heater 40 in the longitudinal direction, the wiring members of the PTC heater 40 are not interposed between the long side of the PTC heater 40 and the long side of the heating-medium circulation box 10 as in the related art. Therefore, the outer peripheral dimensions of the heating-medium circulation box 10 can be brought close to the planar outside dimensions of the PTC heater 40, and the width dimension of the heating-medium circulation box 10 can be reduced, and thus the manufacturing cost can be reduced.
(54) Furthermore, in this heating-medium heating unit 10, since the PTC devices 41a, 41b, and 41c that constitute the PTC heater 40 are disposed in a plurality of rows along the channel direction of the heating-medium circulation passages (circulation paths 33 and 54), the plurality of PTC devices 41a, 41b, and 41c have different widths, and the ON/OFF states of the PTC devices 41a, 41b, and 41c can be individually controlled, the wiring members 40b can be easily provided together at one end of the PTC devices 41a, 41b, and 41c in the longitudinal direction, the quantity of heat from the PTC heater 40 can be controlled with a simple configuration, and thus a reduction in the manufacturing cost due to the size reduction of the heating-medium heating unit 10 and enhanced reliability can be achieved.
(55) Furthermore, since the vehicle air conditioner 1 according to the present invention is provided with the blower 4 that circulates outside air or vehicle interior air, the cooler 5 provided downstream of the blower 4, and the radiator 6 provided downstream of the cooler 5 and is configured to circulate engine coolant heated by the heating-medium heating unit 10 according to the present invention through the radiator 6, the reliability of the heating-medium heating unit 10 can be enhanced, and furthermore, the reliability of the entire vehicle air conditioner 1 can be enhanced while achieving miniaturization of the heating-medium heating unit 10 and a reduction in the manufacturing cost.
(56) Although this embodiment has been described as applied to an example in which the heating-medium heating unit is used in a vehicle air conditioner, the heating-medium heating unit according to the present invention may be applied to air conditioners that are not designed for vehicles, heaters, refrigerators and so on.
REFERENCE SIGNS LIST
(57) 1 vehicle air conditioner 4 blower 5 cooler 6 radiator 10 heating-medium heating unit 20 board-accommodating box serving as box component 21 cap serving as box component 22 control board for controlling PTC heater 28 wire insertion hole serving as portion communicating with board-accommodating space 30 upper heating-medium circulation box serving as box component 33 circulation path serving as heating-medium circulation passage 38 radiating surface 40 PTC heater 40b wiring member of PTC heater 41a, 41b, 41c PTC device 50 lower heating-medium circulation box serving as box component 51 cap serving as box component 54 circulation path serving as heating-medium circulation passage 56 radiating surface A first heating-medium circulation box B second heating-medium circulation box C1, C2 joining-surface cooling channel M1 to M4 joining surface M3a outside sealing section M3b board sealing section S board-accommodating space W1 width of outside sealing section W2 width of board sealing section