ROTARY HEAT PUMP
20230279824 ยท 2023-09-07
Assignee
Inventors
Cpc classification
F01C21/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02G1/055
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02G1/0445
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02G1/055
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02G1/044
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
There is provided a rotary heat pump capable of realizing further miniaturization, compared with a current status. As means of solution, a rotary heat pump includes: a rotary drive section including: a rotary shaft; a stationary gear; a rotor that has a rotor gear engaged with the stationary gear and that makes an eccentric rotation; a rotary housing along a peritrochoid curve defined by the eccentric rotation of the rotor; and a first side housing and a second side housing that cover one end side and the other end side of the rotary housing and that fix the stationary gear; a heat exchange fin provided in each of a compression region that is demarcated by the rotor and the rotary housing and that has a smallest planar area and an expansion region that has the largest planar area; and a heat insulation portion formed in a boundary portion between the compression region and the expansion region.
Claims
1. A rotary heat pump, comprising: a rotary drive section including: a rotary shaft; a stationary gear into which the rotary shaft is inserted; a rotor that has a rotor gear formed to have larger diameter dimensions than outside diameter dimensions of the stationary gear and engaged with the stationary gear, and that makes an eccentric rotation as the rotary shaft rotates; a rotary housing formed to be capable of demarcating a radially outward region of the rotor along a peritrochoid curve defined by the eccentric rotation of the rotor; a first side housing that has an insertion hole for inserting the rotary shaft, that covers one end side of the rotary housing, and that fixes the stationary gear; and a second side housing that covers an other end side of the rotary housing; a heat exchange fin provided on an outer surface of the rotary housing in each of a compression region where a region demarcated by an outer circumferential surface of the rotor and an inner circumferential surface of the rotary housing has a smallest planar area and an expansion region where the region has the largest planar area; and a heat insulation portion provided in a required range portion including a boundary between the compression region and the expansion region in a circumferential direction.
2. A rotary heat pump, comprising: a rotary drive section including: a rotary shaft; a stationary gear into which the rotary shaft is inserted; a rotor that has a rotor gear formed to have larger diameter dimensions than outside diameter dimensions of the stationary gear and engaged with the stationary gear, and that makes an eccentric rotation as the rotary shaft rotates; a rotary housing formed to be capable of demarcating a radially outward region of the rotor along a peritrochoid curve defined by the eccentric rotation of the rotor; a first side housing that has an insertion hole for inserting the rotary shaft, that covers one end side of the rotary housing, and that fixes the stationary gear; and a second side housing that covers an other end side of the rotary housing; a heat exchange fin provided on an outer surface of the rotary housing in a compression region where a region demarcated by an outer circumferential surface of the rotor and an inner circumferential surface of the rotary housing has a smallest planar area and an expansion region where the region has the largest planar area; and a bypass path that communicates a plurality of the expansion regions with one another.
3. The rotary heat pump according to claim 2, wherein the bypass path is coupled with a bypass hole formed in at least one of the first side housing and the second side housing in the expansion region.
4. The rotary heat pump according to claim 1, wherein the rotor and the rotary housing are a Wankel rotor and a Wankel rotary housing.
5-6. (canceled)
7. The rotary heat pump according to claim 2, wherein the rotor and the rotary housing are a Wankel rotor and a Wankel rotary housing.
8. The rotary heat pump according to claim 3, wherein the rotor and the rotary housing are a Wankel rotor and a Wankel rotary housing.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
DESCRIPTION OF EMBODIMENTS
[0023] A rotary heat pump 100 according to the present invention will be described hereinafter with reference to the drawings.
First Embodiment
[0024]
[0025] A first end portion of the rotary shaft 10 is rotatably supported in an internal space of the rotary drive section 60, while a second end portion thereof projects outside of the rotary drive section 60 from an insertion hole (not illustrated) of the first side housing 40. The second end portion of the rotary shaft 10 is coupled with an output shaft of a prime mover provided outside of the rotary drive section 60 (note that neither the prime mover nor the output shaft is illustrated) by a well-known scheme. Furthermore, the stationary gear 15 which is inserted from an outer surface side of the first side housing 40 and through which the rotary shaft 10 is inserted is fixedly screwed into the insertion hole of the first side housing 40. As such a rotary shaft 10, an eccentric shaft is suitably used as in the case of a rotary engine.
[0026] At least a required thickness range of an outer surface of the rotor 20 in the present embodiment is formed into an outer shape of a so-called Reuleaux triangle (Wankel rotor) by a heat insulating material, and a fitting hole 22 of the rotor 20 is fitted into a rotary journal 12 formed in the rotary shaft 10 so that the rotor 20 is fixed in a state of being rotatable together with the rotary shaft 10. In a plan view of the rotor 20, a rotor gear 24 that has larger diameter dimensions than outside diameter dimensions of the stationary gear 15 and the fitting hole 22, that is formed on the same axis as the fitting hole 22, and that is engaged with the stationary gear 15 is formed in a central portion of the rotor 20. The stationary gear 15 and the rotor gear 24 fixed to the first side housing 40 are engaged with each other only in a required range in the circumferential direction. Therefore, when the rotary shaft 10 rotates, the rotor 20 makes a motion of an eccentric rotation around the rotary shaft 10 (stationary gear 15).
[0027] The rotary housing 30 is formed into a cocoon-shaped cylindrical body (Wankel rotary housing) that can planarly demarcate a radially outward region of the rotor 20 along a peritrochoid curve defined by the eccentric rotation of the rotor 20. One opening surface of the rotary housing 30 is covered with the first side housing 40 in which the insertion hole (not illustrated) for inserting the stationary gear 15 into an interior of the rotary housing 30 (rotary drive section 60) is formed. The rotary shaft 10 is inserted into the stationary gear 15, and the rotary shaft 10, the stationary gear 15, and the first side housing 40 are sealed by a well-known scheme.
[0028] Moreover, the second side housing 50 is mounted to the other opening surface of the rotary housing 30 in a state of being sealed with the rotary housing 30. Basic configurations of such a rotary drive section 60 can be designed similar to configurations of a so-called rotary engine from which intake/exhaust sections and an ignition sections are excluded. In the present embodiment, it is preferable that spaces surrounded by the rotor 20, the rotary housing 30, the first side housing 40, and the second side housing 50 are sealed with seal members (not illustrated) provided appropriately. Each of the spaces is filled with helium that is an example of a refrigerant.
[0029] Furthermore, the heat exchange fins 70 are provided in a plurality of circumferential locations each over a required range on an outer surface of the rotary housing 30. In the circumferential direction of the rotary housing 30, a shape and a planar area of a region demarcated by an inner circumferential surface of the rotary housing 30 and an outer circumferential surface of the rotor 20 vary with the eccentric rotation of the rotor 20. In the present embodiment, when the rotary shaft 10 is set as a rotation center, two compression regions 32 where a demarcated region has a smallest planar area and two expansion regions 34 where the demarcated region has a largest planar area are formed, and the compression areas 32 and the expansion region 34 are alternately disposed at intervals of 90 degrees in the circumferential direction of the rotary housing 30 with a planar central portion of the rotary housing 30 assumed as a rotation center.
[0030] Out of the heat exchange fins 70, the fins provided upright on the outer wall surface of the rotary drive section 60 at positions corresponding to the compression regions 32 that are high-temperature regions are heat dissipation fins 72 and the fins provided upright on the outer wall surface of the rotary drive section 60 at positions corresponding to the expansion regions 34 that are low-temperature regions are heat absorption fins 74.
[0031] When the rotary drive section 60 in the present embodiment is driven to rotate by the prime mover, helium that is the refrigerant and that is filled in the internal space of the rotary drive section 60 is sequentially fed to the compression regions 32 and the expansion regions 34 that appear alternately in the circumferential direction of the rotary housing 30 to switch over between a high-temperature state and a low-temperature state. Furthermore, in the present embodiment, required range portions including at least boundaries between the compression regions 32 and the expansion regions 34 in the circumferential direction of the rotary housing 30, the first side housing 40, and the second side housing 50 are formed from the heat insulating material, and the heat insulating material portions serve as the heat insulation portions 80. Disposing such heat insulation portions 80 in boundary portions between the compression regions 32 and the expansion regions 34 enables even the single-rotor type rotary drive section 60 to exchange heat with outside air to be subjected to heat exchange in the heat dissipation fins 72 and the heat absorption fins 74. It is noted that the first side housing 40 and the second side housing 50 according to the present embodiment are entirely formed from the heat insulating material.
[0032] By employing the form of the rotary heat pump 100 according to the present embodiment, a fully gas phase Carnot cycle heat pump structure can be provided. While the rotor 20 according to the present embodiment rotates once in an internal space of the rotary housing 30, each of heat dissipation and heat absorption can be performed twice. These operations can ensure efficient heat exchange while ensuring small-sized, lightweight configurations and low noise. In addition, by accelerating the rotation of the output shaft of the prime mover to increase a revolving speed of the rotor 20, rapid heating and rapid cooling can be conveniently ensured.
Second Embodiment
[0033]
[0034] The rotary heat pump 100 according to the present embodiment is characterized by further having a bypass path 90 that communicates the two expansion regions 34 with each other, compared with the configurations described in the first embodiment. Furthermore, the rotary heat pump 100 differs from the rotary heat pump 100 according to the first embodiment in that each of a series of heat dissipation fins 72 and a series of heat absorption fin 74 are provided upright in one location and that the heat insulation portions 80 are provided only in two locations.
[0035] The bypass path 90 according to the present embodiment is coupled to bypass holes 34A penetrating the rotary housing 30 in the expansion regions 34, respectively. By communicating the two expansion regions 34 with each other in this way, it is possible to greatly increase a volume of each expansion region 34 continuous with the compression region 32 and promote a fall in temperature due to expansion of helium. While the two expansion regions 34 are brought into communication in the present embodiment, the heat absorption fins 74 are provided upright only on the outer wall surface of the rotary housing 30 corresponding to the expansion region 34 provided right after the compression region 32. Furthermore, the expansion region 34 (expansion region 34 located right before the compression region 32 that is the high-temperature region) communicated with the above expansion region 34 by the bypass path 90 may be entirely formed in the heat insulation portion 80. Moreover, as illustrated in
[0036] Moreover, helium is not substantially compressed in the compression region 32 at a position put between the expansion regions 34 that are brought into communication by the bypass path 90 in the rotary heat pump 100 according to the present embodiment, so that this part is not provided with the heat dissipation fins 72 or the heat insulation portion 80. As described above, in the rotary heat pump 100 according to the present embodiment, the number of the heat dissipation fins 72, the heat absorption fins 74, and the heat insulation portions 80 to be provided can be reduced, so that it is conveniently possible to contribute to further miniaturization, weight reduction, and manufacturing cost reduction of the rotary heat pump 100.
[0037] As described above, the rotary heat pump 100 according to the present invention has been described on the basis of the embodiments; however, the present invention is not limited to the above embodiments. For example, the form in which the rotary heat pump 100 according to the embodiments described above employs the Wankel rotary drive section 60 has been described; however, the present invention is not limited to this structure and a structure of a well-known rotary drive section 60 can be applied as appropriate. When many expansion regions 34 are present in the structure of the rotary drive section 60, a plurality of, i.e., three or more expansion regions 34 may be communicated with one another by the bypass path 90. It is thereby possible to provide expansion areas formed from the plurality of expansion regions 34 in a plurality of locations in the circumferential direction of the rotary drive section 60.
[0038] Furthermore, as illustrated in
[0039] Similarly, while the form in which the bypass path heat sink 92 is provided on the bypass path 90 and in which heat exchange (heat absorption) can be also performed in the bypass path 90 is described in the second embodiment, the present invention is not limited to this form. The bypass path 90 can be formed from a heat insulating material or a form in which the bypass path heat sink 92 is not provided can be employed.
[0040] Moreover, the form in which helium with high heat conductivity is filled into the rotary drive section 60 as the refrigerant is described in the present embodiments; however, the refrigerant with such properties is not limited to helium and a well-known refrigerant such as hydrogen or carbon dioxide can be used as appropriate.
[0041] Furthermore, as illustrated in
[0042] Moreover, as illustrated in
[0043] Furthermore, a form in which the rotary heat pumps 100 described above are disposed in series in an axial direction of the rotary shaft 10 can be employed. This results in an increase in an occupied volume of the rotary heat pumps 100; however, if a long and thin space can be allocated, it is possible to provide the rotary heat pump 100 with a higher performance and the air conditioner 200 and the automobile 300 each equipped with this rotary heat pump 100.
[0044] Moreover, forms in which the modification described in the specification or other well-known configurations are combined with the configurations in the present embodiments described so above can be employed.