Snowmobile heat exchanger assembly
11524569 · 2022-12-13
Assignee
Inventors
Cpc classification
F28F3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B62M2027/026
PERFORMING OPERATIONS; TRANSPORTING
B62M2027/027
PERFORMING OPERATIONS; TRANSPORTING
F28D2021/0094
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F3/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B62M2027/023
PERFORMING OPERATIONS; TRANSPORTING
B62M2027/028
PERFORMING OPERATIONS; TRANSPORTING
F28D1/035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K11/04
PERFORMING OPERATIONS; TRANSPORTING
International classification
F28F3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K11/04
PERFORMING OPERATIONS; TRANSPORTING
F28D1/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A heat exchanger assembly has a top par and a bottom part joined to the top part. At least one of the top and bottom parts defines a recess. The top and bottom parts define therebetween a passage formed in part by the recess. The passage has a first portion of the passage extending along a first side of the heat exchanger assembly; a second portion of the passage extending along a second side of the heat exchanger assembly; an inlet fluidly communicating with the first portion of the passage near a first end of the passage; and an outlet fluidly communicating with the second portion of the passage near a second end of the passage. Fluid enters the passage via the inlet, then flows in the first portion of the passage, then flows in the second portion of the passage, and then exits the passage via the outlet.
Claims
1. A heat exchanger assembly comprising: a front portion; a middle portion rearward of the front portion; a rear portion rearward of the middle portion, at least one of the front and rear portions being curved from the middle portion, the at least one of the front and rear portions extending below the middle portion; a top part; and a bottom part disposed below the top part and being joined to the top part, at least one of the top and bottom parts defining a recess, the top and bottom parts defining therebetween a passage formed in part by the recess, the passage having: a first portion of the passage extending along a first side of the heat exchanger assembly; a second portion of the passage extending along a second side of the heat exchanger assembly; an inlet fluidly communicating with the first portion of the passage near a first end of the passage; and an outlet fluidly communicating with the second portion of the passage near a second end of the passage, at least one of the inlet and outlet is defined in the at least one of the front and rear portions extending below the middle portion, wherein the passage is adapted such that fluid enters the passage via the inlet, then flows in the first portion of the passage in a first direction, then flows in the second portion of the passage in a second direction opposite the first direction, and then exits the passage via the outlet.
2. The heat exchanger assembly of claim 1, wherein the fluid flowing in the passage from the inlet to the outlet flows along at least a majority of the passage.
3. The heat exchanger assembly of claim 1, wherein the front portion is curved from the middle portion.
4. The heat exchanger assembly of claim 3, wherein the rear portion is curved from the middle portion.
5. The heat exchanger assembly of claim 3, wherein the recess extends at least in part along the middle portion and the front portion and is curved to follow a curvature defined by the front portion and the middle portion.
6. The heat exchanger assembly of claim 1, wherein the bottom part defines the recess.
7. The heat exchanger assembly of claim 6, wherein the top part defines at least one other recess, the passage being also formed in part by the at least one other recess.
8. The heat exchanger assembly of claim 1, wherein the passage extends longitudinally along the first side of the heat exchanger, then laterally along the rear portion, then longitudinally along the second side of the heat exchanger and then laterally along the front portion.
9. The heat exchanger assembly of claim 1, wherein the passage extends at least in part along the middle portion and the at least one of the front and rear portions.
10. The heat exchanger assembly of claim 1, wherein at least a portion of the passage defined in the middle portion is wider than at least another portion of the passage defined in the middle portion.
11. The heat exchanger assembly of claim 1, wherein at least a portion of the passage is thicker than at least another portion of the passage.
12. The heat exchanger assembly of claim 1, wherein the recess is a first recess and the passage is a first passage; the heat exchanger assembly further comprising an other part defining a second recess, the other part being joined to one of the top and bottom parts, the other part and the one of the top and bottom parts to which the other part is joined defining therebetween a second passage formed in part by the second recess, the second passage having another inlet and another outlet, the second passage being fluidly separate from the first passage.
13. The heat exchanger assembly of claim 12, wherein the other part is curved; and wherein the other part is joined to the middle portion and the at least one of the front and rear portions being curved from the middle portion.
14. The heat exchanger assembly of claim 13, wherein the first passage extends at least in part longitudinally along one side of the second passage.
15. The heat exchanger assembly of claim 1, wherein the passage extends at least in part along the front portion; wherein a width of a portion of the passage extending along the front portion is at least three quarters of a width of the front portion.
16. The heat exchanger assembly of claim 1, wherein: the at least one of the front and rear portions extending below the middle portion is the front portion; and the outlet is defined in the front portion.
17. The heat exchanger assembly of claim 1, wherein the inlet and outlet are adapted for fluidly communicating with a motor.
18. A heat exchanger assembly comprising: a top part; and a bottom part disposed below the top part and being joined to the top part, at least one of the top and bottom parts defining a recess, the top and bottom parts defining therebetween a passage formed in part by the recess, the passage having: a first portion of the passage extending along a first side of the heat exchanger assembly; a second portion of the passage extending along a second side of the heat exchanger assembly; an inlet fluidly communicating with the first portion of the passage near a first end of the passage; and an outlet fluidly communicating with the second portion of the passage near a second end of the passage, the inlet of the passage being rearward of the outlet of the passage, and from the outlet, the passage extending forwardly then laterally, wherein the passage is adapted such that fluid enters the passage via the inlet, then flows in the first portion of the passage in a first direction, then flows in the second portion of the passage in a second direction opposite the first direction, and then exits the passage via the outlet.
19. The heat exchanger assembly of claim 18, further comprising: a front portion; a middle portion rearward of the front portion; and a rear portion rearward of the middle portion, at least one of the front and rear portions being curved from the middle portion, the at least one of the front and rear portions extending below the middle portion; wherein the passage extends at least in part along the middle portion and the at least one of the front and rear portions.
20. The heat exchanger assembly of claim 19, wherein the front portion is curved from the middle portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) For a better understanding of the present technology, as well as other aspects and further features thereof, reference is made to the following description which is to be used in conjunction with the accompanying drawings, where:
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DETAILED DESCRIPTION
(48) Referring to
(49) A motor 26 (schematically illustrated in
(50) An endless drive track 30 is disposed generally under the tunnel 18. The drive track 30 is operatively connected to the engine 26 through a belt transmission system (not shown) and a reduction drive (not shown). The endless drive track 30 is driven to run about a rear suspension assembly 32 connected to the frame 16 for propulsion of the snowmobile 10. The endless drive track 30 has a plurality of lugs 31 extending from an outer surface thereof to provide traction to the track 30.
(51) The rear suspension assembly 32 includes drive sprockets 34, idler wheels 36 and a pair of slide rails 38 in sliding contact with the endless drive track 30. The drive sprockets 34 are mounted on a drive axle 35 and define a sprocket axis 37. The slide rails 38 are attached to the tunnel 18 by front and rear suspension arms 40 and shock absorbers 42. It is contemplated that the snowmobile 10 could be provided with a different implementation of a rear suspension assembly 32 than the one shown herein.
(52) A straddle-type seat 60 is positioned atop the fuel tank 28. A fuel tank filler opening covered by a cap 92 is disposed on the upper surface of the fuel tank 28 in front of the seat 60. It is contemplated that the fuel tank filler opening could be disposed elsewhere on the fuel tank 28. The seat 60 is adapted to accommodate a driver of the snowmobile 10. The seat 60 could also be configured to accommodate a passenger. A footrest 64 is positioned on each side of the snowmobile 10 below the seat 60 to accommodate the driver's feet.
(53) At the front end 12 of the snowmobile 10, fairings 66 enclose the engine 26 and the belt transmission system, thereby providing an external shell that not only protects the engine 26 and the transmission system, but can also make the snowmobile 10 more aesthetically pleasing. The fairings 66 include a hood 68 and one or more side panels which can be opened to allow access to the engine 26 and the belt transmission system when this is required, for example, for inspection or maintenance of the engine 26 and/or the transmission system. A windshield 69 connected to the fairings 66 acts as a wind screen to lessen the force of the air on the rider while the snowmobile 10 is moving.
(54) Two skis 70 positioned at the forward end 12 of the snowmobile 10 are attached to the front suspension module 22 of the frame 16 through a front suspension assembly 72. The front suspension module 22 is connected to the front end of the engine cradle portion 20. The front suspension assembly 72 includes ski legs 74, supporting arms 76 and ball joints (not shown) for operatively connecting to the respective ski leg 74, supporting arms 76 and a steering column 82.
(55) A steering assembly 80, including the steering column 82 and a handlebar 84, is provided generally forward of the seat 60. The steering column 82 is rotatably connected to the frame 16. The lower end of the steering column 82 is connected to the ski legs 74 via steering rods (not shown). The handlebar 84 is attached to the upper end of the steering column 82. The handlebar 84 is positioned in front of the seat 60. The handlebar 84 is used to rotate the steering column 82, and thereby the skis 70, in order to steer the snowmobile 10. A throttle operator (not shown) in the form of a finger-actuated throttle lever is mounted to the right side of the handlebar 84. Other types of throttle operators, such as a thumb-actuated throttle lever and a twist grip, are also contemplated. A brake actuator (not indicated), in the form of a hand brake lever, is provided on the left side of the handlebar 84 for braking the snowmobile 10 in a known manner. It is contemplated that the windshield 69 could be connected directly to the handlebar 84.
(56) At the rear end of the snowmobile 10, a snow flap 94 extends downward from the rear end of the tunnel 18. The snow flap 94 protects against dirt and snow that can be projected upward from the drive track 30 when the snowmobile 10 is being driven. It is contemplated that the snow flap 94 could be omitted.
(57) The snowmobile 10 includes other components such as a display cluster, an exhaust system, an air intake system, and the like. As it is believed that these components would be readily recognized by one of ordinary skill in the art, further explanation and description of these components will not be provided herein.
(58) Turning now to
(59) Turning now to
(60) The top part 108 is made of a piece of sheet metal that is curved down at its front. The front portion of the top part 108 is flat, and then curves to the middle portion of the top part 108. The middle and rear portion of the top part 108 are flat. A plurality of apertures 112 (only some of which are labeled for clarity) are formed in the top part 108 to permit the attachments of various components of the snowmobile 10 to the heat exchanger assembly 100 such as the fuel tank 28. As can be seen in
(61) The bottom part 110 is made of a piece of sheet metal that is curved down at its front such that its curvature matches the curvature of the top part 108. Once curved, the bottom part 110 is stamped to form a recess 122. The piece of sheet metal from which the bottom part 110 is made is initially shaped such that only a border 124 is left around the recess 122, thereby reducing the weight of the bottom part 110. Alternatively, it is contemplated that the sheet metal could be cut after the recess 122 has been formed so as to only leave the border 124 around the recess 122. It is also contemplated that the sheet metal could not be cut. The border 124 of the bottom part 110 is welded or otherwise joined to the top part 108 to form the heat exchanger assembly 100. Additional details regarding the method of manufacturing the heat exchanger assembly 100 will be provided further below.
(62) By joining the top part 108 to the bottom part 110, a passage is formed between the recess 122 and the top part 108. The recess 122 defines the shape of the passage. This passage permits the flow of engine coolant through the heat exchanger assembly 100. Although in the present implementation the heat exchanger 100 is used to cool engine coolant, it is contemplated that it could be used to cool other motor fluids such as, for example, oil used to lubricate the engine 26 or air to be supplied to the engine 26.
(63) During operation of the engine 26, the hot engine coolant flows from the engine 26 through a pipe (not shown) connected to the inlet pipe 120, then through the inlet pipe 120 and then into the passage formed between the top and bottom parts 108, 110 via the inlet 116.
(64) As can be seen in
(65) From the portion 134 of the passage, the coolant flows rearward and laterally into a portion 132 of the passage defined by a wide part of the recess 122 along the rear portion 104 of the heat exchanger assembly 100. In an exemplary implementation, a width of the passage in the portion 132 is at least three quarters of the width of the top part 108 in the rear portion 104. The portion 132 of the passage is located above the rear idler wheels 36A (see
(66) From the portion 132 of the passage, the coolant flows forward into a narrow and long portion 130 of the passage defined by a narrow part of the recess 122 and extending along the middle portion 106 on a left side thereof.
(67) From the portion 130, the coolant flows forwardly and then laterally into a portion 128 of the passage defined by a wide part of the recess 122 along the front portion 102 of the heat exchanger assembly 100. As can be seen, the portion 128 of the passage is curved to follow a curvature of the top part 108. In an exemplary implementation, a width of the passage in the portion 128 is at least three quarters of the width of the top part 108 in the front portion 102. The portion 128 of the passage is located forwardly of the sprocket axis 37 (i.e. the axis of rotation of the sprockets 35). As the track 30 passes around the sprockets 35, it projects snow onto the portion of the bottom part 110 defining the portion 128 of the passage. Making the portion 128 wide and long increases the amount of cooling obtained from this projected snow since a large surface is exposed to the projected snow.
(68) From the portion 128 of the passage, the coolant flows rearward into a narrow portion 126 of the passage above which the outlet 114 is located (shown in dotted lines in
(69) Turning now to
(70) Turning now to
(71) In the heat exchanger assembly 200, the portion 134 of the passage of the heat exchanger assembly 100 has been replaced by two long and narrow portions 234A, 234B and a wide portion 235 between the portions 234A, 234B. As can be seen by comparing
(72) In the heat exchanger assembly 200, the portion 130 of the passage of the heat exchanger assembly 100 has been replaced by two long and narrow portions 230A, 230B and a wide portion 231 between the portions 230A, 230B. As can be seen by comparing
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(74) The wider portions 231 and 235 of the passage of the heat exchanger assembly 200 are disposed along the middle portion 106 forward of the axis of rotation 39 of the middle idler wheels 36B such that as the track 30 passes around the middle idler wheels 36B, it projects snow onto the portions of the bottom part 210 defining the portions 231 and 235 of the passage. Making the portions 231 and 235 wide increases the amount of cooling obtained from this projected snow since a large surface is exposed to the projected snow. In the present implementation, the portions 231 and 235 are disposed so as to extend both forward and rearward of a point P where a line 240 intersects the heat exchanger assembly 200 for all or most degrees of compression of the rear suspension assembly 32′ in order help ensure that snow is projected on at least part of the portions 231 and 235 for all or most degrees of compression of the rear suspension assembly 32′. The line 240 is a line that passes through the tops of lugs 31 disposed in a common row along a portion of the track 30 extending between the rear and middle idler wheels 36A, 36B. As can be seen in
(75) The top portion 208 of the heat exchanger assembly 200 is similar to the top portion 108 described above except that the outlet 114 has been moved forward in order to be aligned with the portion 228 of the passage.
(76) Turning now to
(77) Turning now to
(78) Turning now to
(79) Turning now to
(80) The bottom part 610 is curved at its front to match the curvature of the top part 608. The bottom part 610 is stamped to form three recesses 622A, 622B and 622C. The recess 622A and the top part 608 form a front passage portion 328 and a long and narrow passage portion 630A. The recess 622B and the top part 608 form a long and narrow passage portion 630B, a rear passage portion 132 and a long and narrow passage portion 634A. The recess 622C and the top part 608 form a long and narrow passage portion 634B.
(81) The recess 638 in the top part 608 and the flat portion 631 of the bottom part 610 between the passage portions 630A and 630B form a passage portion 639. As best seen in
(82) During operation of the engine 26, coolant enters the heat exchanger assembly 600 via the inlet pipe 120 and the inlet 116. The coolant then flows consecutively through the passage portions 634B, 637, 634A, 132, 630B, 639, 630A and 328. From the portion 328 of the passage, the coolant then flows through the outlet 114 and the outlet pipe 118 to be returned to the engine 26.
(83) Turning now to
(84) The bottom part 710 is stamped to form a recess 722 to define the passage between the bottom part 710 and the top part 708. The passage formed by the bottom part 710 is similar to the passage formed in the heat exchanger assembly 100 except that the portions 126, 128 have been replaced by a portion 328.
(85) The bottom part 750 is stamped to form a recess 752 with a border 754 around it. The border 754 is used to weld or otherwise join the bottom part 750 to the bottom of the top part 708. As can be seen, the recess 752 is generally L-shaped and extends in part along the front portion 102 and in part along the middle portion 106. As a result, the recess 752 is also curved to follow the curvature of the top part 708. Since the recess 752 and the top part 708 define a shape of the passage, the passage formed by the recess 752 is generally L-shaped and, has seen from a lateral side of the heat exchanger assembly 700, is curved. In this this position, the passage formed by the bottom part 750 can be cooled by snow projected by the drive track 30 during operation of the snowmobile 10. The passage portion 328 extends laterally along a front of the passage formed by the bottom part 750. The passage portion 130 extends longitudinally along a left side of the passage formed by the bottom part 750. The rear portion of the passage formed by the bottom part 750 is disposed laterally between the passage portions 130 and 134. It is contemplated that instead of or in addition to the bottom part 750, another passage could be formed by another part having a recess that is joined to a top of the top part 708.
(86) The top portion 708 is shape like the top portion 108 of the heat exchanger 100 but has two apertures formed therein to form the inlet 756 and the outlet 758 (shown in dotted lines in
(87) The passage formed by the bottom part 750 is fluidly separate from the passage formed by the bottom part 710. As such, the passage formed by the bottom part 750 is used to cool a motor fluid other than the engine coolant such as oil used to lubricate the engine 26 or air to be supplied to the engine 26 by having this other motor fluid flowing through this other passage.
(88) Turning now to
(89) Turning now to
(90) Although the heat exchanger assemblies described above are designed to take advantage of the snow projected by the drive track 30 of the snowmobile 10 during operation of the snowmobile 10, it should be understood that the air around the heat exchanger assemblies also cools the motor fluid(s) flowing through the heat exchanger assemblies. It is contemplated that fins or other types of heat sinks could be attached to at least some of the surfaces of the heat exchanger assemblies forming the passage(s) described above to further increase cooling of the motor fluid(s) flowing through the passage(s).
(91) A method of manufacturing the heat exchanger assembly 100 will now be described. A similar method is used to manufacture the other heat exchangers described above.
(92) A first part of sheet metal, such as aluminum, is cut to a desired shape in order to make the top part 108. A front portion of the first part of sheet metal is curved from a middle portion of the first part of sheet metal using a press or other suitable machine to form the top part 108. The apertures 112, the outlet 114 and the inlet 116 are then cut or drilled into the top part 108. The apertures 112, the outlet 114 and the inlet 116 could also be stamped out of the top part 108 using a press. The outlet pipe 118 and the inlet pipe 120 are then welded or otherwise connected to the top part 108 around the outlet 114 and the inlet 116 respectively.
(93) A second part of sheet metal, such as aluminum, is cut to a desired shape in order to make the bottom part 110. In one implementation, the first and second parts of sheet metal have the same initial thickness. A front portion of the second part of sheet metal is curved from a middle portion of the second part of sheet metal using a press or other suitable machine such that a curvature of the second part of sheet metal corresponds to a curvature of the top part 108. Then, using a press, the recess 122 is stamped in the second part of sheet metal thereby forming the bottom part 110. This stamping also forms the border 124.
(94) The top part 108 is then joined to the bottom part 110 thereby forming the passage between the recess 122 and the top part 108. In the present implementation, the top part 108 is welded to the border 124 of the bottom part 110, such as by friction stir welding. However it is contemplated that the top part 108 could be joined to the bottom part 110 in other manners such as by brazing, bonding or fastening for example. If fasteners are used, it is contemplated that a seal could be disposed between the border 124 and the top part 110 to prevent the motor fluid to leak out of the passage.
(95) It is contemplated that the top part 108 and the bottom part 110 could be made of other types of thin walled material. It is also contemplated that at least the bottom part 110 could be molded, in which case the recess 122 and border 124 would be formed in the mold.
(96) To make a top part having recesses and protrusions such as the top part 608, these are stamped in the sheet metal in a manner similar to which the recess 122 is formed in the bottom part 110. The part 750 is formed in a manner similar to the one used to make the bottom part 110 and is joined to its corresponding top part in a similar manner.
(97) Turning now to
(98) In the heat exchanger assembly 1100, the portion 134 of the passage of the heat exchanger assembly 100 has been replaced by a short narrow portion 1134A, a long narrow portion 1134B and a wide portion 1135 between the portions 1134A, 1134B. As best seen in
(99) In the heat exchanger assembly 1100, the portion 130 of the passage of the heat exchanger assembly 100 has been replaced by a long narrow portion 1130A, a short narrow portion 230B and a wide portion 1131 between the portions 1130A, 1130B. As best seen in
(100) The wider portions 1131 and 1135 of the passage of the heat exchanger assembly 1100 are disposed in the rear half of the heat exchanger assembly 1100. Making the portions 1131 and 1135 wide increases the amount of cooling obtained from snow projected thereon since a large surface is exposed to the projected snow.
(101) With reference to
(102) The side sections 1152 each have an arcuate part spanning an angle A1 at a radius R1 from the sprocket axis 37 (see
(103) With reference to
(104) As the central channel 1150 of the portion 1128 of the heat exchanger assembly 110 is disposed further from the drive sprocket 34 than the side sections 1152, the portions of the lugs 31 that are laterally aligned with the central channel 1150 can be provided with studs that are longer than the studs 1160 shown in
(105) Turning now to
(106) Modifications and improvements to the above-described implementations of the present technology may become apparent to those skilled in the art. The foregoing description is intended to be exemplary rather than limiting. The scope of the present technology is therefore intended to be limited solely by the scope of the appended claims.