Additional objects and advantages of the present invention will be more readily apparent from the following detailed description of preferred embodiments when taken together with the accompanying drawings. In which:
A first embodiment of the present invention will be now described with reference to
The fan shroud 3 includes two shroud ring portions 31 each of which has a cylindrical shape (ring shape), and a shroud plate portion 32 connected to rear side portions of the shroud ring portions 31 so as to form a smooth air passage from a rear side of the radiator (not shown) to the shroud ring portions 31. Furthermore, in this embodiment, the shroud ring portions 31 and the shroud plate portion 32 are integrally formed.
The shroud ring portion 31 is formed to have a Venturi type passage in which the contrarotating blower 1 can be freely rotated while a necessary space can be kept between tip ends of blades 11c, 12c of the blower 1 and an inner peripheral surface of the shroud ring portion 31. The blowers 1 are supported by rotation shafts 11a, 12a of the gear boxes 5. In this embodiment, the two blowers 1 are arranged on a surface in a line such that the rotation shafts 11a, 12a of the two blowers 1 are arranged in parallel with each other, as shown in
Next, the structure of the contrarotating blower 1 will be described. Because the structures of the two contrarotating blowers 1 are approximately similar to each other, one contrarotating blower 1 on the side of the motor 2, shown in
As shown in
The first axial fan 11 and the second axial fan 12 are located to be rotated reversely from each other. However, both the first axial fan 11 and the second axial fan 12 are set to induce the same air flow. Accordingly, the rotation flow component part in a circumferential direction, generated at an outlet of the first axial fan 11, is reversed by the contra-rotating of the second axial fan 12. Therefore, the dynamic pressure part of the rotation flow, generated at the outlet of the first axial flow fan 11 can be recovered as the static pressure. As a result, a high static pressure can be generated as compared with a general axial fan, thereby increasing an air amount sent from the blower 1 to the heat exchanger.
The first axial fan 11 includes a boss portion 11b, and a plurality of blades 11c arranged radially outside from the boss portion 11b. Similarly, the second axial fan 12 includes a boss portion 12b, and a plurality of blades 12c arranged radially outside from the boss portion 12b. Each of the boss portions 11b, 12b is formed into a one-side opened box shape (e.g., recess shape having approximately U-shaped cross section). The boss portion 11b includes a circular bottom portion 11d, and a side wall portion 11e protruding approximately perpendicularly from the edge portion of the bottom portion 11d. Similarly, the boss portion 12b includes a circular bottom portion 12d, and a side wall portion 12e protruding approximately perpendicularly from the edge portion of the bottom portion 12d.
One end of the rotation shaft 11a is connected to a center portion of the bottom portion 11d, and one end of the rotation shaft 12a is connected to a center portion of the bottom portion 12d. The blades 11c are connected to the outer surface of the side wall portion 11e of the boss portion 11b, and the blades 12c are connected to the outer surface of the side wall portion 12e of the boss portion 12b. In the first embodiment, the first and second axial fans 11, 12 are located, such that recess portions of the boss portions 11b, 12b are opposite to each other, and the end portions of the side wall portions 11e, 12e are opposite to each other, in an axial direction of the rotation shafts 11a, 12a.
Two main gears 22 are fixed to the rotation drive shaft 21 of the motor 2 at positions corresponding to the two contrarotating blowers 1, respectively. As the main gear 22, a screw gear or a bevel gear can be used.
The rotation shafts 11a, 12a of the first and second axial fans 11, 12 are located perpendicularly to the rotation drive shaft 21 of the motor 2. One end of the rotation shaft 11a is connected to the boss portion 11b, and the other end of the rotation shaft 11a is connected to a driven gear 11f. Similarly, one end of the rotation shaft 12a is connected to the boss portion 12b, and the other end of the rotation shaft 12a is connected to a driven gear 12f. The driven gears 11f, 12f are engaged with the main gear 22, such that the rotation driving force of the motor 2 is transmitted to the rotation shafts 11a, 12a of the first and second axial fans 11, 12 and both the first and second axial fans 11, 12 are rotated reversely. As the driven gears 11f, 12f, screw gears or bevel gears can be suitably used.
The rotation shafts 11a, 12a of the first and second axial fans 11, 12 are rotatably supported in the gear box 5 through bearings 11g, 12g, respectively. The gear box 5 is formed to house the driven gears 11f, 12f and the main gear 22. The driven gears 11f, 12f and the main gear 22 are located in the gear box 5, and the rotation drive shaft 21 is rotatably supported in the gear box 5 through a bearing 23.
As shown in
Next, the blower 1 with the structures of the gear box 5 and the first and second axial fans 11, 12 will be described.
As shown in
As shown in
On the other hand, circular second protrusion walls 510 are formed on an outer surface of the first wall surface 51 of the gear box 5 to protrude radial outside toward the bottom portions 11d, 12d of the boss portions 11b, 12b. Each of the second protrusion walls 510 is formed into a circular shape around the rotation shafts 11a, 12a. Furthermore, the circular shape of the second protrusion wall 510 has a diameter smaller than that of the first protrusion wall 110, 120. Therefore, in this embodiment, the first protrusion walls 110, 120 and the second protrusion walls 510 are located approximately concentrically so as to form a labyrinth structure. This labyrinth structure prevents foreign materials entered from the clearance A from moving toward the rotation shafts 11a, 12a, thereby preventing the foreign materials from being introduced into the gear box 5 through clearances between the gear box 5 and the rotation shafts 11a, 12a.
As the clearance A between the rotation drive shaft 21 and ends of the side wall portions 11e, 12e of the boss portions 11b, 12b is made smaller, an introduction of foreign materials such as water, flying stones and dust, into the gear box 5 through the clearance A, can be made smaller. However, when the clearance A is made smaller, the boss portions 11b, 12b may contact the rotation drive shaft 21 by misalignment due to assemble accuracy and dimension accuracy, for example, so rotation function of the blower 1 may be deteriorated. Accordingly, in this embodiment, the clearance A is set to be larger than 0 and not larger than 10 mm. When the clearance A is set about in a range of 3 mm and 6 mm, the rotation function of the blower 1 can be improved while the entering of foreign materials into the gear box 5 through the clearance A can be effectively reduced.
In addition, as a clearance B between the boss portions 11b, 12b and the gear box 5 is made smaller, an introduction (entering) of foreign materials such as water, flying stones and dust, into the gear box 5 can be made smaller. However, when the clearance B is made too smaller, the boss portions 11b, 12b may contact the gear box 5 by misalignment due to assemble accuracy and dimension accuracy, for example, so rotation function of the blower 1 may be deteriorated. Accordingly, in this embodiment, the clearance B is set to be larger than 0 and not larger than 10 mm. When the clearance B is set about in a range of 3 mm and 6 mm, the rotation function of the blower 1 can be improved while the entering of foreign materials can be effectively reduced.
As described above, according to the first embodiment, the main gear 22 and the driven gears 11f, 12f are accommodated in the gear box 5, and the gear box 5 is covered by the boss portions 11b, 12b from both sides in the air flow direction. Therefore, it can reduce the foreign materials introduced into the main gear 22 and the driven gears 11f, 12f.
Furthermore, because the labyrinth structure is formed between the boss portions 11b, 12b and the gear box 5, it can restrict foreign materials from entering into the gear box 5 through the clearances between the rotation shafts 11a, 12a and the gear box 5. As a result, it can effectively reduce foreign materials introduced into the main gear 22 and the driven gears 11f, 12f.
A second embodiment of the present invention will be now described with reference to
As shown in
As shown in
As shown in
Because the cover plate 6 is located to cover the through hole 52a of the gear box 5 while being spaced from the second wall surface 52 having the through hole 52a in the axial direction of the shaft 21, the cover plate 6 restricts the foreign material from entering into the gear box 5 through the through hole 52a. Furthermore, because the cover plate 6 is fixed to the shaft 21, it can restrict liquid adhering to the shaft 21 from moving into the gear box 5 along the rotation drive shaft 21. Therefore, it can prevent foreign material from being introduced to the main gear 22 and the driven gears 11f, 12f.
In the second embodiment, the protrusion plates 53 for forming the labyrinth structure are formed to protrude in the axial direction of the rotation drive shaft 21 from an outer surface of the gear box 5 toward the cover plate 6 at an outer side of the through hole 52a. Each of the protrusion plates 53 is formed at the outer side of the through hole 52a to protrude from the second wall surface 52 of the gear box 5 toward the cover plate 6 in the axial direction of the rotation drive shaft 21, so as to form the labyrinth structure therebetween. Therefore, the labyrinth structure restricts foreign materials from entering into the gear box 5, thereby preventing foreign materials from being introduced to the main gear 22 and the driven gears 11f, 12f.
In the second embodiment, the groove portion 21a is provided in the shaft 21, and the cover plate 6 made of an elastic material such as rubber is provided with the cut portion 6b. Therefore, by pressing the groove portion 21a of the rotation drive shaft 21 from the cut portion 6b into the through hole 6a of the cover plate 6, the cover plate 6 can be easily attached to the rotation drive shaft 21. Thus, assembling performance of the blower 1 can be improved, while foreign material entering to the main gear 22 and the driven gears 11f, 12f can be effectively reduced.
In the second embodiment, the other parts can be made similar to those of the above-described first embodiment.
A third embodiment of the present invention will be described with reference to
The fan diameters of the axial fans 11, 12 or the dimension between the two gear boxes 5 may be different based on vehicle kinds or the like. Accordingly, if a single groove portion (first groove portion 21a) is formed, the single groove portion may need to be provided at different positions in accordance with different vehicle kinds. With respect to this, in the third embodiment, because the second groove portions 21b are provided in the rotation drive shaft 21 in addition to the first groove portion 21a, the rotation drive shaft 21 can be used in common for different kinds of vehicles, thereby improving productivity of the blower 1.
In the third embodiment, the plural second groove portions 21b, which are not directly used to fix the cover member 6, are provided in the rotation drive shaft 21. Accordingly, even if liquid adheres on the rotation drive shaft 21, the liquid is difficult to be moved into the gear box 5 due to the plural groove portions 21b, thereby restricting the liquid from entering into the gear box 5. As a result, it can further reduce foreign material introduced into the gear box 5.
In the third embodiment, the other parts can be made similar to those of the above-described second embodiment.
A fourth embodiment of the present invention will be now described with reference to
In this embodiment, the protrusion wall portion 6a is formed integrally with the cover plate 6 at a position outside of the protrusion wall 53, to have a clearance between the protrusion wall portion 6a and the protrusion wall 53. A protrusion tip end portion of the protrusion wall portion 6a and a protrusion tip end portion of the protrusion wall 53 are overlapped in a direction perpendicular to the axial direction of the rotation drive shaft 21 while a clearance is formed between the protrusion wall 53 and the protrusion wall portion 6a of the cover plate 6. Therefore, a labyrinth structure is formed by the protrusion wall portion 6a of the cover plate 6 and the protrusion wall 53, thereby effectively reducing foreign materials entering to the main gear 22 and the driven gears 11f, 12f.
In the fourth embodiment, the other parts can be made similar to those of the above-described second embodiment or the third embodiment.
A fifth embodiment of the present invention will be now described with reference to
As shown in
The circular shape of the second protrusion wall 54 has a diameter larger than that of the first protrusion wall 53 so as to form a clearance between the first protrusion wall 53 and the second protrusion wall 54. The protrusion wall portion 6a of the cover plate 6 is located in the clearance between the first protrusion wall 53 and the second protrusion wall 54 so as to form a labyrinth structure by the protrusion walls 53, 54 and the cover plate 6. The first and second protrusion walls 53, 54 and the protrusion wall portion 6a of the cover plate 6 are overlapped in a radial direction of the shaft 21 while clearances are formed between the first and second protrusion walls 53, 54 and the protrusion wall portion 6a of the cover plate 6. Therefore, the first and second protrusion walls 53, 54 and the protrusion wall portion 6a of the cover plate 6 construct the labyrinth structure in the fifth embodiment. Accordingly, it can restrict foreign materials from entering to the main gear 22 and the driven gears 11f, 12f.
In the fifth embodiment, the other parts can be similar to those of the above-described second embodiment, third embodiment or the fourth embodiment.
Although the present invention has been fully described in connection with the preferred embodiments thereof with reference to the accompanying drawings, it is to be noted that various changes and modifications will become apparent to those skilled in the art.
For example, in the above-described embodiments, the two contrarotating blowers 1 are arranged on the same plane to be driven by the single motor 2 such that the rotation shafts 11a, 12a of the blowers 1 are located in parallel with each other. However, a single contrarotating blower 1 may be used, or plural blowers 1 more than two may be arranged on the same plane such that the rotation shafts 11a, 12a of the blowers 1 are in parallel with each other.
In the above-described embodiments, the double contrarotating fans are used for the blower 1. However, a series of axial fans may be used for the blower 1.
In the above-described embodiments, the cover plate 6 (foreign material prevention member) is made of rubber; however, can be made of the other material such as resin or metal. When the cover plate 6 is made of metal, the cover plate 6 is assembled to the rotation drive shaft 21 by press-fitting.
In the above-described first embodiment, the labyrinth structure between the boss portion 11b (12b) and the gear box 5 is constructed with both the first and second protrusion walls 110 (120) and 510. However, the labyrinth structure between the boss portion 11b (12b) and the gear box 5 may be constructed with one of the first and second protrusion walls 110 (120) and 510, or protrusion walls more that two.
Furthermore, in the above-described first embodiment, the diameter of the circular shape of the second protrusion wall 510 is made smaller than the diameter of the circular shape of the first protrusion wall 110, 120. However, the diameter of the circular shape of the second protrusion wall 510 may be made larger than the diameter of the circular shape of the first protrusion wall 110, 120. Furthermore, each of the first protrusion wall 110, 120 and the second protrusion wall 510 can be formed into a shape other than the circular shape.
In the above-described second embodiment, the diameter of the circular cover plate 6 is made larger than the distance C between the ends of the side wall portions 11e, 12e of the boss portion 11b, 12b. However, the diameter of the circular cover plate 6 may be made equal to or smaller than the distance C between the ends of the side wall portions 11e, 12e.
In the above-described second to fifth embodiments, the protrusion wall 53 is provided on the second wall surface 52 of the gear box 5 to protrude from the second wall surface 52 toward the cover plate 6. However, the protrusion wall 53 may be not provided. Similarly, the protrusion wall 54 may be not provided in the fifth embodiment.
In the above-described embodiments, the motor 2 is fixed to the fan shroud 3 through the bracket 4, and the gear box 5 is fixed to the fan shroud 3 through the stay 33. However, the motor 2 may be directly fixed to the fan shroud 3 without the bracket 4, and the gear box 5 may be directly fixed to the fan shroud 3 without the stays 33.
In the above-described third embodiment, the two second groove portions 21b are provided relative to the single first groove portion 21a. However, the second groove portion 21b may be provided at one position or three or more positions.
Such changes and modifications are to be understood as being within the scope of the present invention as defined by the appended claims.
Number | Date | Country | Kind |
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2006-129760 | May 2006 | JP | national |
2006-211716 | Aug 2006 | JP | national |