This patent relates generally to the field of airflow assemblies for use with an automotive engine cooling system, and more particularly to an airflow assembly exhibiting an improved acoustical performance.
Motor vehicles powered by an internal combustion engine typically include a liquid cooling system that maintains the engine at an operating temperature. The cooling system typically includes a liquid coolant, a heat exchanger, and an airflow assembly. A pump circulates the coolant through the engine and the heat exchanger, which is typically referred to as a radiator. The coolant extracts heat energy from the engine. As the coolant flows through the radiator, the heat energy extracted by the coolant is dissipated to atmosphere, thereby preparing the coolant to extract additional heat energy from the engine. To assist in dissipating the heat energy of the coolant, the radiator typically includes numerous fins that define many airway channels. As the vehicle is driven, ambient temperature air from atmosphere is directed through the airway channels to dissipate the heat energy.
The airflow assembly includes a shroud and a fan. Typically, the shroud is positioned to cause the ambient temperature air from atmosphere to flow through the airway channels defined by the radiator, instead of blowing around the sides of the radiator. The fan is typically connected to the shroud. When the fan is operated it assists in moving air through the airway channels of the radiator. Operation of the fan, however, typically causes the airflow assembly to generate some noise that may be objectionable to some users.
Accordingly, it is desirable to improve the airflow assembly so that the noise generated by the operating airflow assembly is less objectionable to most users.
According to one embodiment of the disclosure, an airflow assembly includes a fan, a shroud, a plurality of ribs, and a fan support. The fan has a number of fan blades. The shroud includes (i) a plenum defining a plenum opening located adjacent to the number of fan blades, and (ii) a barrel extending from the plenum so as to surround the plenum opening. The plenum further defines at least one airflow opening spaced apart from the plenum opening. Each of the plurality of ribs extends inwardly from the barrel. The fan support is attached to the plurality of ribs and is configured to support the fan. The at least one airflow opening is not an attachment structure or a guiding structure, is not configured to receive a fastening member, and does not function as a water drain.
According to another embodiment of the disclosure, an airflow assembly includes a fan, a shroud, a plurality of ribs, and a fan support. The fan has a number of fan blades. The fan is configured to rotate the number of fan blades so as to generate a flow of air. The shroud includes (i) a plenum defining a plenum opening configured to pass at least a first portion of the flow of air therethrough, and (ii) a barrel extending from the plenum so as to define a barrel space that is aligned with the plenum opening. The plenum includes a rim structure that defines at least one airflow opening configured to pass at least a second portion of the flow of air therethrough. The plenum opening is spaced apart from the at least one airflow opening. Each of the plurality of ribs extends inwardly from the barrel. The fan support is attached to the plurality of ribs and is configured to support the fan. The at least one airflow opening is spaced apart from the barrel. The at least one airflow opening is defined solely by the rim structure.
The above-described features and advantages, as well as others, should become more readily apparent to those of ordinary skill in the art by reference to the following detailed description and the accompanying figures in which:
For the purpose of promoting an understanding of the principles of the disclosure, reference will now be made to the embodiments illustrated in the drawings and described in the following written specification. It is understood that no limitation to the scope of the disclosure is thereby intended. It is further understood that the disclosure includes any alterations and modifications to the illustrated embodiments and includes further applications of the principles of the disclosure as would normally occur to one skilled in the art to which this disclosure pertains.
As shown in
Typically, a liquid coolant (not shown) is pumped through the heat exchanger 104 from the inlet structure 120 to the outlet structure 124. The airflow 144, which typically advances in a downstream direction 148, causes the heat exchanger 104 to cool the liquid coolant. The heat exchanger 104 may alternatively be any other type of heat exchanger, as known to those of ordinary skill in the art.
As shown in
The plenum opening 272 is centered about an axis 276. The axis 276 is parallel to the downstream direction 148 and an upstream direction 264 (
With reference to
As shown in
The attachment structures 244 define an opening 284 through the plenum 216 or the barrel 220 to the plenum space 268. A fastening member, a clip, a snubber, and/or any other type of fastener extends through the opening 284. As shown in
With continued reference to
As shown in
The attachment feature 249 defines an opening 289 through the plenum 216 or the barrel 220 to the plenum space 268. The attachment feature 249 cooperates with the heat exchanger 104 to connect the shroud 200 to the heat exchanger. When the shroud 200 is connected to the heat exchanger 104, the body 108 occludes at least a portion of the opening 289. To the extent that some portion of the opening 289 would not be occluded by the body 108, the resulting gap between the body and the attachment feature 249 that defines the opening 289 would at least be partially defined by the body.
The connection tabs 252 extend from the plenum 216 and define connection openings 292. The connection openings 292 are spaced apart from the plenum space 268. Accordingly, the connection openings 292 do not affect the airflow 144 and the airflow 144 does not pass through the connection openings. With reference to
As shown in
The barrel 220 includes a water drain structure 308 that defines a water drain opening 312. The water drain opening 312 enables water and other liquid fluids that may collect in the barrel channel 304 to exit the barrel channel. In other embodiments, the barrel 220 may not include a water drain structure 308.
As shown in
The airflow opening 324 is spaced apart from the barrel 220 and the plenum opening 272. The airflow opening 324 extends through the plenum 216 from the interior surface 260 to the exterior surface 256.
The airflow opening 324 is defined solely by the rim structure 224, in that no other component contributes to defining the airflow opening except for the rim structure. This distinguishes the airflow opening 324 from the opening 280 defined by the component structure 240, the openings 284 defined by the attachment structures 244, and the opening 288 defined by the guiding structure 248, since each of these openings 280, 284, 288 receives a component, fastener, and/or element that at least partially defines any opening through which the airflow 144 may advance.
The airflow opening 324 is not a component structure 240, an attachment structure 244, or a guiding structure 248. Accordingly, fastening members, other components, and/or elements do not extend through the airflow opening 324 during operation of the airflow assembly 100. Additionally, the rim structure 224 is not a water drain structure 308, and the airflow opening 324 does not function as a water drain.
As shown in
The fan support 208 is attached the ribs 204 and is at least partially positioned in the barrel space 300. The fan support 208 supports any type of fan 212 that is usable with the airflow assembly 100. The fan support 208 positions the fan 212 at least partially in the barrel space 300.
The shroud 200, the ribs 204, and the fan support 208 are all integrally formed from injection molded thermoplastic.
As shown in
The blade assembly 340 includes a hub 344, seven (7) fan blades 348, and a band 350. The hub 344 is centered about the axis 276. The blades 348 extend radially outward from the hub 344. The band 350 is connected to a terminal edge 352 of each of the blades 348. In other embodiments, the blade assembly 340 may not include the band 350 and/or may include a different number of the blades 348.
Each of the blades 348 includes a terminal end 352 that defines a fan blade tip chord 356. The fan blade tip chord 356 is a length of the terminal end 352 that extends from an end point 357 to an end point 358 of the terminal end.
The blade assembly 340 defines an average azimuthal blade tip spacing, which is equal to 360 degrees divided by the number of the blades 348. In the embodiment of
Rotation of the blade assembly 340 causes the blades 348 to generate a flow of air that includes the airflow 144. Typically the flow of air, including the airflow 144, advances in the downstream direction 148. Since, the plenum opening 272 is located adjacent to the blades 348, the airflow 144 advances through the plenum opening from inside of the plenum space 268 to outside of the plenum space.
In the illustrated embodiment, as the blade assembly 340 rotates in a path of movement about the axis 276 it is a generatrix, in that it defines a cylinder 360 that is congruent with the band 350. The cylinder 360 has a diameter 364, and the diameter divided by two is equal to a maximum radial extent 361 (
As shown in
The above relationships expressed between the dimensions of the airflow opening 324 and the dimensions of the blade assembly 340 ensure that the airflow opening improves the acoustical performance of the airflow assembly 100 during operation of the fan 212.
In operation, the airflow opening 324 changes the characteristics of the noise that is generated by the airflow assembly during operation of the fan 212. To begin, the airflow assembly 100 is connected to the heat exchanger 104 (as shown in
The airflow 144 advances in the downstream direction 148 through the body 108 of the heat exchanger 104 and into the plenum space 268. Next, the airflow 144 advances through the plenum opening 272 and the barrel 220 to outside of the plenum space 268.
As the airflow 144 passes through the plenum opening 272 and the barrel 220 it causes a “jet” of air, referred to an airflow 332, through the airflow opening 324. The airflow 332, which is a portion of the flow of air generated by the fan 212, is shown in
The airflow 332 affects the airflow 144 to change the noise that is generated by the airflow assembly 100. In particular, the airflow 332 improves the acoustical performance of the airflow assembly 100 by canceling certain frequencies of noise. The frequencies that are canceled are a function of the number of the airflow openings 324, the radial extent 328, the radial distance 368, and the azimuthal extent 372, among other factors. By adjusting these factors the airflow assembly 100 can be “tuned” to have a beneficial effect on the noise characteristics of the fan 212.
As shown in the graph of
The airflow opening 324 is shown at generally the five o'clock position in
The airflow assembly 100 is shown in
In embodiments of the airflow assembly 100, having more than one airflow opening 324, a total azimuthal extent is determined by combining the azimuthal extent 372 of each of the airflow openings. In some embodiments, the total azimuthal extent of the airflow openings 324 is greater than or equal to 10% of the fan blade tip chord 356 and less than or equal to the blade tip spacing S.
In embodiments of the airflow assembly 100, having more than airflow opening 324, each of the airflow openings is spaced apart from the axis 276 a radial distance 368, which is approximately 100% of the maximum radial extent 361 and less than or equal to 150% of the maximum radial extent.
In some embodiments it is desirable for the airflow openings 324 to be positioned on plenum 216 as closely as possible to the barrel 220. In some embodiments of the airflow assembly 100 the airflow openings 324 are formed in the barrel 220. In such an embodiment, the airflow openings 324 are not provided as a drain for liquid fluids since they positioned away from the regions of the barrel channel 304 in which gravity causes liquid fluids to collect.
As shown in
As shown in
As shown in
The rim structures 424 each solely define a generally circular airflow opening 480. The airflow openings 480 are each positioned a radial distance 482 from the axis 476. The airflow openings 480 are spaced apart from the barrel 420.
The rim structures 426 each solely define a generally circular airflow opening 486. The airflow openings 486 are spaced apart from the barrel 420.
Operation of the fan 212 generates a flow of air. A first portion of the flow of air passes through the plenum opening 454. A second portion of the flow of air passes through the airflow openings 480, 486 to improve the acoustical performance of the airflow assembly 400.
The rim structures 424, 426 are not the component structure 440, the attachment structures 444, or the guiding structures 448. Furthermore, the rim structures 424, 426 are not configured as water drain structures. In other embodiments, the rim structures 424, 426 may be positioned at any circumferential and/or radial location about the axis 476 that is spaced apart from the barrel 420. Additionally, in other embodiments the airflow assembly 400 may include any one or more of the rim structures 224, 424, 426.
As shown in
The rim structure 524 solely defines one generally triangularly shaped airflow opening 580. The airflow opening 580 is spaced apart from the barrel 520.
The rim structures 526 each solely define a generally kidney-shaped airflow opening 584. The airflow openings 584 are spaced apart from the barrel 520.
The rim structure 528 solely defines one airflow opening 590 having a trapezoidal shape. The airflow opening 590 is spaced apart from the barrel 520.
The rim structure 530 solely defines one airflow opening 592 having a rounded rectangular shape. The airflow opening 592 is spaced apart from the barrel 520.
Operation of the fan 212 generates a flow of air. A first portion of the flow of air passes through the plenum opening 554. A second portion of the flow of air passes through the airflow openings 580, 584, 590, 592 to improve the acoustical performance of the airflow assembly 500.
The rim structure 531 defines one airflow opening 593 having a rounded rectangular shape. The airflow opening 593 is spaced apart from the barrel 520.
In other embodiments, the rim structures 524, 526, 528, 530, 531 may be positioned at any circumferential and/or radial location about the axis 576 that is spaced apart from the barrel 520. Additionally, in other embodiments the airflow assembly 500 may include any one or more of the rim structures 224, 424, 426, 524, 526, 528, 530, 531.
While the disclosure has been illustrated and described in detail in the drawings and foregoing description, the same should be considered as illustrative and not restrictive in character. It is understood that only the preferred embodiments have been presented and that all changes, modifications and further applications that come within the spirit of the disclosure are desired to be protected.
This application claims the benefit of U.S. Provisional Application Ser. No. 61/496,915, filed Jun. 14, 2011, the disclosure of which is incorporated herein by reference in its entirety.
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Number | Date | Country | |
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20120321474 A1 | Dec 2012 | US |
Number | Date | Country | |
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61496915 | Jun 2011 | US |