This application is based upon and claims the benefit of priority from prior Japanese Patent Application No. 2011-054378, filed Mar. 11, 2011, the entire contents of which are incorporated herein by reference.
Embodiments described herein relate generally to televisions and electronic apparatuses.
Some electronic apparatuses include a heating body, a heat sink, and a fan.
A general architecture that implements the various features of the embodiments will now be described with reference to the drawings. The drawings and the associated descriptions are provided to illustrate the embodiments and not to limit the scope of the invention.
Various embodiments will be described hereinafter with reference to the accompanying drawings.
In general, according to one embodiment, an electronic apparatus comprises a housing comprising an opening area and a closing area, a fan in the housing, a first area between the fan and the opening area, a second area between the fan and the closing area, and a windshield in the second area.
Hereinafter, exemplary embodiments will be described with reference to the accompanying drawings.
As shown in
The lower wall 7 faces a desk surface S when the electronic apparatus 1 is placed on a desk. For example, a plurality of leg portions 9 that comes into contact with the desk surface S is provided on the lower wall 7. The upper wall 6 is opposite to the lower wall 7 with a space therebetween and extends substantially in parallel to the lower wall 7. An input portion 10 (i.e., input receiving portion) is provided on the upper wall 6. An example of the input portion 10 is a keyboard. The input portion 10 is not limited to the keyboard, but may be a touch panel or other input devices.
The circumferential wall 8 connects the edge portion of the lower wall 7 and the edge portion of the upper wall 6. Both or one of the lower wall 7 and the upper wall 6 may be bent toward the circumferential wall 8 and may be connected to the circumferential wall 8 substantially in an arc shape.
As shown in
The second housing 11 is rotatably (openably) connected to the first housing 5 by the hinges 4a and 4b. In this way, the second unit 3 can be rotated between a first position where the first unit 2 and the second unit 3 overlap each other and a second position where the first unit 2 is opened from the second unit 3. At the second position, the input portion 10 of the first unit 2 and the display screen 12a of the second unit 3 are exposed to the outside of the electronic apparatus 1.
Next, the cooling structure of the electronic apparatus 1 will be described. For convenience of explanation, hereinafter, the “first housing 5” is simply referred to as the “housing 5”.
As shown in
The housing 5 includes an outer wall 17 exposed to the outside. The outer wall 17 is an example of a “wall”. The opening portion 15 is, for example, a through hole provided in the outer wall 17 and is exposed to the outside of the housing 5. The closing portion 16 is, for example, a portion of the outer wall 17 that remains between the opening portions 15 and covers (blocks) an area between the opening portions 15. An example of the closing portion 16 is, for example, a beam (vertical grid) that partitions a plurality of opening portions 15.
A heat sink is provided adjacent to the outlet portion 14 in the housing 5, which will be described below. For example, the grid is provided such that the user does not directly touch the hot heat sink. An example of an “opening area” is a portion (i.e., region) of the housing 5 in which the opening portion 15 is provided. An example of a “closing area” is a portion (i.e., region) of the housing 5 in which the closing portion 16 is provided.
As shown in
For convenience of explanation, a first direction X and a second direction Y are defined. The first direction X is the flow direction of cooling air from a fan, which will be described below, and is substantially perpendicular to the outer wall 17. The second direction Y is substantially parallel to the outer wall 17 and is substantially perpendicular to the first direction X. In this embodiment, the width W1 (that is, the thickness T2 of the closing portion 16) of the closing portion 16 in the first direction X is less than the width W2 of the closing portion 16 in the second direction Y.
As shown in
A fan 23, a heat sink 24, and a heat pipe 25 are provided in the housing 5. The fan 23 is, for example, a centrifugal cooling fan, but is not limited thereto. Other types of fans may be used as the fan 23. The fan 23 includes a fan case 26 and an impeller 23a that is rotated in the fan case 26. The fan case 26 is provided with inlets 26a and a discharge hole 26b. The fan 23 draws air in the housing 5 from the inlets 26a and discharges the air from the discharge hole 26b.
As shown in
As schematically shown in
The first area C1 and the second area C2 are not physically partitioned in the housing 5. An example of the first area C1 is an area from the fan 23 to the opening portion 15 (that is, an area between the fan 23 and the opening portion 15). An example of the second area C2 is an area from the fan 23 to the closing portion 16 (that is, an area between the fan 23 and the closing portion 16).
As shown in
Next, the heat sink 24 will be described.
In this embodiment, the heat sink 24 includes a plurality of fins 27 thermally connected to the heating body 22. As shown in
Specifically, the first fin 28 includes a main portion 31 (first portion), a first bent portion 32 (second portion), and a second bent portion 33 (third portion). The main portion 31 has a plate shape that is substantially perpendicular to the heat pipe 25 and the heat pipe 25 passes through the main portion 31. No hole is formed in the main portion 31 of the first fin 28.
The main portion 31 includes a first end portion 31a (for example, an upper end portion) and a second end portion 31b (for example, a lower end portion) that is disposed opposite to the first end portion 31a. The first bent portion 32 is bent from the first end portion 31a of the main portion 31 substantially in the horizontal direction and extends substantially in parallel to the heat pipe 25. The second bent portion 33 is bent from the second end portion 31b of the main portion 31 substantially in the horizontal direction and extends substantially in parallel to the heat pipe 25. The first and second bent portions 32 and 33 come into contact with a neighboring fin 27 and define a gap between the fins 27.
As shown in
In this way, the area (heat dissipation area) of the second fin 29 is less than that of the first fin 28 and has a heat dissipation performance less than that of the first fin 28. The second fin 29 may have substantially the same area and heat dissipation performance as the first fin 28.
The main portion 35 of the second fin 29 includes a first end portion 35a (for example, an upper end portion) and a second end portion 35b (for example, a lower end portion) disposed opposite to the first end portion 35a.
The first bent portion 36 is bent from the first end portion 35a of the main portion 35 substantially in the horizontal direction and extends substantially in parallel to the heat pipe 25. The second bent portion 37 is bent from the second end portion 35b of the main portion 35 substantially in the horizontal direction and extends substantially in parallel to the heat pipe 25. The first and second bent portions 36 and 37 come into contact with a neighboring fin 27 and define the gap between the fins 27.
The main portion 35 further includes a third end portion 35c that extends between the edge portion of the first end portion 35a and the edge portion of the second end portion 35b and a fourth end portion 35d disposed opposite to the third end portion 35c. The third end portion 35c faces the discharge hole 26b of the fan 23. The fourth end portion 35d is adjacent to the outlet portion 14.
That is, the third end portion 35c is an upstream end portion and the fourth end portion 35d is a downstream end portion in the flow direction (first direction X) of cooling air from the fan 23. The third end portion 35c is an example of the “first end portion” of the second fin 29 from another point of view. The fourth end portion 35d is an example of the “second end portion” of the second fin 29 from another point of view.
The third bent portion 38 forms a portion of a wall portion 41 (i.e., wall) with which cooling air collides. The wall portion 41 is an example of a “windshield portion” (i.e., windbreak portion) and is an example of a “portion configured to guide at least a portion of the cooling air flowing toward the closing portion 16 into the first area C1”. The third bent portion 38 is bent (folded) from the third end portion 35c of the main portion 35 in a direction that is substantially perpendicular to the main portion 35 and extends substantially in parallel to the heat pipe 25. In other words, in this embodiment, the wall portion 41 is formed by bending the end portions of the second fins 29. The third bent portion 38 extends in a direction crossing (for example, a direction substantially perpendicular to) the flow direction (first direction X) of the cooling air.
The third bent portion 38 comes into contact with a neighboring fin 27 and blocks the gap between the fin 27 provided with the third bent portion 38 and a neighboring fin 27. In this embodiment, the third bent portion 38 blocks the entire gap between the fins 27, but the embodiment is not limited thereto. The third bent portion 38 may block at least a portion of the gap.
As described above, as shown in
The first gap g1 faces the opening portion 15 in the flow direction (first direction X) of the cooling air. The second gap g2 faces the closing portion 16 in the flow direction (first direction X) of the cooling air. That is, the cooling air flowing through the first gap g1 is exhausted from the opening portion 15 to the outside of the housing 5. The cooling air flowing through the second gap g2 may collide with the closing portion 16 without the third bending portion 38. The first gap g1 is disposed in the first area C1. The second gap g2 is disposed in the second area C2.
As shown in
In this way, at least a portion of the cooling air flowing from the fan 23 to the closing portion 16 collides with the wall portion 41. The flow direction of at least a portion of the cooling air colliding with the wall portion 41 is changed from a direction toward the closing portion 16 to a direction toward the first area C1. That is, at least a portion of the cooling air collides with the wall portion 41 and the flow direction thereof is changed such that the cooling air flows into the first area C1. The cooling air passes through the first area (that is, the first gap g1) and is exhausted from the opening portion 15 to the outside of the housing 5 without substantially colliding with the closing portion 16.
Next, the operation of the electronic apparatus 1 will be described.
As shown in
As shown in
According to the electronic apparatus 1 having the above-mentioned structure, it is possible to suppress an increase in the temperature of the housing 5.
For comparison, an electronic apparatus that does not include the wall portion 41 (third bent portion 38) is considered. In this case, air from the fan draws heat while passing through a space between the fins of the heat sink and is then heated. A portion of the heated air passes through the heat sink 24 and collides with the closing portion (grid) of the housing 5. In this way, the temperature of the closing portion increases. When the temperature of the closing portion increases, the temperature of another portion (for example, a palm rest) of the housing also increases through the housing surface. When the increasing rate of the temperature of the housing is high, the user is likely to feel discomfort.
Therefore, the electronic apparatus 1 according to this embodiment includes the housings 5 provided with the opening portions 15 and the closing portions 16, the fan 23 provided in the housing 5, and the wall portion 41 (i.e., windshield portion) that is provided in the second area C2 such that the first area C1 extending from the fan 23 to the opening portion 15 is different from the second area C2 extending from the fan 23 to the closing portion 16. Since the wall portion 41 is provided, the heated air is less likely to flow to the closing portion 16 and the heated air does not collide with the closing portion 16. Therefore, it is possible to suppress an increase in the temperature of the closing portion 16 and thus suppress an increase in the temperature of the housing 5.
In this embodiment, the electronic apparatus includes the housing 5 in which the opening portions 15 and the closing portions 16 are alternately arranged, the heat sink 24 that faces the opening portions 15 and the closing portions 16 and is thermally connected to the heating body 22, and the wall portions 41 that are provided in the plurality of second areas C2 and change the flow direction of at least a portion of the cooling air flowing toward the closing portions 16 such that the cooling air flows toward the first areas C1.
According to this structure, at least a portion of the cooling air blocked by the wall portion 41 flows into the first area C1 and is then exhausted from the opening portion 15 to the outside of the housing 5. Therefore, the heated air is less likely to collide with the closing portion 16 and it is possible to suppress an increase in the temperature of the housing 5.
In this embodiment, at least a portion of the wall portion 41 extends in a direction that intersects the flow direction of the cooling air. According to this structure, it is possible to reliably change the flow direction of the cooling air to the closing portion 16 and thus suppress an increase in the temperature of the housing 5.
In this embodiment, the wall portion 41 blocks at least a portion of the gap g2 between the fins 27 of the heat sink 24. According to this structure, it is possible to reliably reduce the amount of cooling air flowing to the closing portion 16 and thus suppress an increase in the temperature of the housing 5.
In this embodiment, the wall portion 41 is formed by bending the end portions of the fins 27 of the heat sink 24. According to this structure, it is possible to achieve a structure including the wall portion 41 without additionally providing a special member. In addition, in this embodiment, the bent portion 38 is provided in the upstream end portion (third end portion 35c) of the fin 27. However, instead of this structure, the bent portion may be provided in the downstream end portion (fourth end portion 35d) of the fin 27. It is preferable that the bent portion 38 be provided in the upstream end portion of the fin 27 in order to improve the heat dissipation performance since air heated by the heat sink 24 is less likely to remain in the housing 5.
In this embodiment, the heat sink 24 includes the first fin 28 that is provided in the first area C1 and the second fin 29 that is provided in the second area C2. The area (heat dissipation area) of the second fin 29 is less than that of the first fin 28. According to this structure, the heat dissipation performance of the second fin 29 is less than that of the first fin 28 and air in the vicinity of the second fin 29 is less likely to be heated. Therefore, the cooling air that is leaked from the wall portion 41 and then flows to the second area C2 is less likely to be heated by the second fin 29. Therefore, the cooling air that is leaked from the wall portion 41 and then flows to the second area C2 is not heated to a sufficiently high temperature and collides with the closing portion 16. As a result, it is possible to suppress an increase in the temperature of the closing portion 16 and thus suppress an increase in the temperature of the housing 5.
Next, a pressure gradient in the housing 5 will be described.
First, for comparison, an electronic apparatus that does not include the wall portion 41 will be described. In this case, when the pressure between the fan and the heat sink is P1, the pressure between the heat sink and the outlet portion is P2, and the external pressure of the housing is P0, the relationship P1>P2>P0 is established. The reason is as follows. A portion of the air passing through the heat sink collides with the closing portion and air stagnates before the closing portion 16. As a result, the pressure P2 is higher than the pressure P0.
On the other hand, an electronic apparatus including the wall portion 41 is considered. When the pressure between the fan and the heat sink is P1, the pressure between the heat sink and the outlet portion is P2, and the external pressure of the housing is P0, the relationship P1>P2≈P0 is established. The reason is that air passing through the heat sink is less likely to collide with the closing portion and P2 is approximate to P0.
It is important that the value of P1 and the value of P0 be determined by the performance of the fan and atmospheric pressure, regardless of whether the wall portion 41 is provided. Therefore, when the same fan is used, the difference (pressure gradient) between P1 and P2 in the electronic apparatus including the wall portion 41 is more than the difference (pressure gradient) between P1 and P2 in the electronic apparatus that does not include the wall portion 41. This means that cooling air is likely to flow through the heat sink and can draw a large amount of heat from the heat sink in the electronic apparatus including the wall portion 41. That is, the wall portion 41 makes it possible to improve the cooling performance of the electronic apparatus 1.
Next, an electronic apparatus 1 according to a second embodiment will be described with reference to
As shown in
As shown in
The closing portion 16 includes a first portion 16a that is adjacent to the opening portion 15 and a second portion 16b that is disposed inside compared to the opening portion 15 in the housing 5. The second portion 16b is a rib that is provided as a portion of the closing portion 16 in the housing 5, from another point of view. For example, the second portion 16b is connected to at least one of the upper wall 6 and the lower wall 7 of the housing 5 and is supported by the upper wall 6 or the lower wall 7.
The closing portion 16 extends from the outer wall 17 of the housing 5 to the recess portion 45 of the heat sink 24. A portion of the closing portion 16 extends into the recess portion 45 (that is, into an area of the heat sink 24). That is, a portion of the closing portion 16 extends into the gap between the fins 27. In other words, a portion of the closing portion 16 faces the first fin 28 in a direction (second direction Y) that is substantially parallel to the outer wall 17.
As shown in
That is, in this embodiment, the closing portion 16 has a small width and is elongated in the depth direction. Therefore, for example, it is possible to increase the size of the opening portion 15, as compared to the first embodiment. For example, it is possible to reduce the size of the second area C2 and increase the size of the first area C1, as compared to the first embodiment. In this embodiment, for one opening portion 15, the number of second fins 29 is reduced by one and the number of first fins 28 is increased by one, as compared to the first embodiment. Therefore, the heat sink 24 according to this embodiment has a heat dissipation performance more than that of the heat sink according to the first embodiment.
According to the electronic apparatus 1 having the above-mentioned structure, it is possible to suppress an increase in the temperature of the housing 5, similarly to the first embodiment.
In addition, in this embodiment, the width W1 of the closing portion 16 in the flow direction (first direction X) of the cooling air is more than the width W2 thereof in a direction (second direction Y) substantially perpendicular to the flow direction of the cooling air. Therefore, as viewed from the fan 23, the area of the closing portion 16 that blocks the flow of air is small and the heated air is less likely to collide with the closing portion 16. As a result, an increase in the temperature of the housing 5 is suppressed.
In this embodiment, the closing portion 16 extends from the opening portion 15 to the inside of the housing 5. Therefore, even when the width W2 of the closing portion 16 in a direction (second direction Y) substantially perpendicular to the flow direction of the cooling air is reduced a little, it is possible to ensure the sufficient strength of the closing portion 16 serving as a grid. In this way, it is possible to ensure the sufficient strength of the housing 5 in the structure in which the flow of air is less likely to be hindered.
In this embodiment, in the heat sink 24, the second fin 29 is smaller than the first fin 28 and the recess portion 45 is provided so as to face the closing portion 16. The closing portion 16 extends to the recess portion 45 of the heat sink 24 and a portion of the closing portion 16 is inserted into the recess portion 45. That is, a dead space in the housing 5 which is caused by the second fin 29 smaller than the first fin 28 is effectively used and the closing portion 16 extends to the dead space. In this way, even when the closing portion 16 protrudes toward the inside of the housing 5, it is not necessary to increase the size of the housing 5. That is, according to the electronic apparatus 1 having the above-mentioned structure, it is possible to mount components with high density and reduce the size of the electronic apparatus 1.
Next, an electronic apparatus 1 according to a third embodiment will be described with reference to
As shown in
As shown in
The heat sink 24 includes a first surface 24a that faces an upper wall 6 of the housing 5, a second surface that faces a lower wall 7 of the housing 5, and a third surface 24c that faces a discharge hole 26b of a fan 23. The film member 51 includes a first portion 52 attached to the first surface 24a of the heat sink 24, a second portion attached to the second surface of the heat sink 24, and a plurality of third portions 54 attached to the third surface 24c of the heat sink 24.
As shown in
Each of the plurality of third portions 54 of the film member 51 extends between the first portion 52 and the second portion. The third portion 54 is provided so as to correspond to the closing portion 16 of the housing 5. That is, at least a portion of each third portion 54 faces the closing portion 16 in the flow direction (first direction X) of cooling air. The third portion 54 extends in a direction intersecting (for example, a direction substantially perpendicular to) the flow direction of the cooling air. In this embodiment, an example of the wall portion 41 that blocks the second gap g2 of the heat sink 24 is formed by the third portion 54 of the film member 51.
According to the electronic apparatus 1 having the above-mentioned structure, it is possible to suppress an increase in the temperature of the housing 5, similarly to the first embodiment.
In this embodiment, the wall portion 41 is formed by a portion of the film member 51 attached to the heat sink 24. According to this structure, it is not necessary to provide the bent portion 38 as the wall portion 41 in the heat sink 24. That is, the heat sink 24 can be formed by one kind of fins 27. The heat sink 24 including one kind of fins 27 can contribute to reducing the manufacturing cost of the electronic apparatus 1, as compared to the heat sink 24 including two or more kinds of fins.
Next, an electronic apparatus 1 according to a fourth embodiment will be described with reference to
As shown in
The windshield member 55 has, for example, a comb shape and includes a first portion 56 that is attached to a first surface 24a or a second surface of the heat sink 24 and a plurality of second portions 57 that protrudes from the first portion 56 and is inserted between the fins 27. Each of the second portions 57 is provided so as to correspond to a closing portion 16 of a housing 5. That is, at least a portion of each second portion 57 faces the closing portion 16 in the flow direction (first direction X) of cooling air. The second portion 57 extends in a direction intersecting (for example, a direction substantially perpendicular to) the flow direction of the cooling air.
The second portion 57 of the windshield member 55 is inserted into a second gap g2 of the heat sink 24. In this embodiment, the second portion 57 of the windshield member 55 forms an example of the wall portion 41 that blocks the second gap g2. Instead of the windshield member 55, for example, an elastic member, such as rubber, may be inserted into the second gap g2 of the heat sink 24.
According to the electronic apparatus 1 having the above-mentioned structure, it is possible to suppress an increase in the temperature of the housing 5, similarly to the first embodiment. In addition, in this embodiment, it is possible to reduce the manufacturing cost of the electronic apparatus 1, similarly to the third embodiment.
Next, an electronic apparatus 1 according to a fifth embodiment will be described with reference to
As shown in
As shown in
The second portion 61b extends in a direction intersecting the flow direction (first direction X) of cooling air. The second portion 61b is disposed between the second fin 29 and the closing portion 16 and faces the second gap g2 in the flow direction (first direction X) of the cooling air. A gap through which the cooling air can flow is formed between the second portion 61b and the first fin 28.
In this embodiment, the second portion 61b (bent portion) of the third fin 61 forms an example of the wall portion 41 facing the second gap g2. The wall portion 41 is provided in each of a plurality of second areas C2.
In this way, at least a portion of the cooling air flowing through the second gap g2 collides with the wall portion 41. The flow direction of the at least a portion of the cooling air colliding with the wall portion 41 is changed from a direction to the closing portion 16 to a direction to the opening portion 15 (a direction to the first area C1). The cooling air is exhausted from the opening portion 15 to the outside of the housing 5 without substantially colliding with the closing portion 16.
According to the electronic apparatus 1 having the above-mentioned structure, it is possible to suppress an increase in the temperature of the housing 5, similarly to the first embodiment.
In addition, according to this embodiment, it is possible to make cooling air flow into the second gap g2 facing the closing portion 16 while suppressing the collision of the cooling air with the closing portion 16. Therefore, the second and third fins 29 and 61 can contribute to heat dissipation, similarly to the first fin 28. In this structure, since the number of fins 27 contributing to heat dissipation increases, it is possible to improve the heat dissipation efficiency of the heat sink 24, as compared to, for example, the first to fourth embodiments. Therefore, the cooling performance of the electronic apparatus 1 is improved.
Next, an electronic apparatus 1 according to a sixth embodiment will be described with reference to
As shown in
According to the electronic apparatus 1 having the above-mentioned structure, it is possible to suppress an increase in the temperature of the housing 5, similarly to the first embodiment. The heat sink 24 may include one kind of fins 27.
Next, an electronic apparatus 1 according to a seventh embodiment will be described with reference to
In this embodiment, an insulator 71 is attached to an inner surface 17a of an outer wall 17 of a housing 5. The insulator 71 is made of, for example, plastic or rubber. The insulator 71 includes opening portions 72 (first portions) corresponding to opening portions 15 of the housing 5 and closing portions 73 (second portions) corresponding to closing portions 16. The closing portion 73 of the insulator 71 faces the closing portion 16 of the housing 5 in the flow direction (first direction X) of cooling air.
In this embodiment, the closing portion 73 of the insulator 71 forms an example of a wall portion 41 that covers the closing portion 16 of the housing 5. At least a portion of the cooling air flowing to the closing portion 16 of the housing 5 collides with the wall portion 41. The flow direction of the at least a portion of the cooling air colliding with the wall portion 41 is changed from a direction to the closing portion 16 to a direction to the opening portion 15 (a direction to the first area C1). Then, the cooling air is exhausted from the opening portion 15 to the outside of the housing 5, without substantially colliding with the closing portion 16.
According to the electronic apparatus 1 having the above-mentioned structure, it is possible to suppress an increase in the temperature of the housing 5, similarly to the first embodiment.
Next, an electronic apparatus 1 according to an eighth embodiment will be described with reference to
As shown in
As shown in
According to the electronic apparatus 1 having the above-mentioned structure, it is possible to suppress an increase in the temperature of the housing 5, similarly to the first embodiment.
In addition, in this embodiment, in the heat sink 24, the fin 27 is not provided in the second area C2. Therefore, the cooling air flowing from the fan 23 to the closing portion 16 is not heated to a sufficiently high temperature while passing through the heat sink 24 and collides with the closing portion 16. Therefore, an increase in the temperature of the closing portion 16 is suppressed and thus an increase in the temperature of the housing 5 is suppressed. According to this structure, it is possible to suppress an increase in the temperature of the housing 5, without providing the wall portion 41. The heat sink 24 may include a second fin 29 that has an area less than that of the first fin 28 and is provided in the second area C2.
Next, a television 81 according to a ninth embodiment will be described with reference to
As shown in
According to the television 81 having the above-mentioned structure, it is possible to suppress an increase in the temperature of the housing 5, similarly to the first embodiment.
According to the first to ninth embodiments, it is possible to suppress an increase in the temperature of the housing 5.
The embodiments are not limited to the above-described embodiments, but the components of the above-described embodiments may be changed without departing from the scope and spirit of the invention. In addition, a plurality of components according to the above-described embodiments may be appropriately combined with each other to form various structures. For example, some of the components according to the above-described embodiments may be removed. Components according to different embodiments may be appropriately combined with each other.
Only one first area C1 and only one second area C2 may be provided. The wall portion 41 (windshield portion) may be provided in at least one of the plurality of second areas C2. The wall portion 41 does not necessarily block (cover) the entire gap between the fins 27, but it may block (cover) at least a portion of the gap.
The wall portion 41 is not necessarily provided on the upstream side of the heat sink 24, but may be provided on the downstream side of the heat sink 24. That is, the wall portion 41 according to the first, second, third, and fourth embodiments may be provided in the downstream end portion of the heat sink 24. In the third and fourth embodiments, the film member 51 and the windshield member 55 are attached to the heat sink 24, but the embodiments are not limited thereto. The film member 51 and the windshield member 55 may be attached to the fan 23 or the housing 5. In all of the above-described embodiments, the closing portion 16 may be provided so as to extend in a direction substantially perpendicular to the outer wall 17, as in the second embodiment.
The “portion configured to guide at least a part of air flowing toward the closing portion into the first area” and the “windshield” are not limited to the wall portion 41. The “portion configured to guide at least a part of air flowing toward the closing portion into the first area” and the “windshield” may be any members provided in the housing, or they may be formed by a portion of the housing. The “portion configured to guide at least a part of air flowing toward the closing portion into the first area” and the “windshield” may be any members that affect the flow of cooling air.
While certain embodiments have been described, these embodiments have been presented by way of example only, and are not intended to limit the scope of the inventions. Indeed, the novel embodiments described herein may be embodied in a variety of other forms; furthermore, various omissions, substitutions and changes in the form of the embodiments described herein may be made without departing from the spirit of the inventions. The accompanying claims and their equivalents are intended to cover such forms or modifications as would fall within the scope and spirit of the inventions.
Number | Date | Country | Kind |
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2011-054378 | Mar 2011 | JP | national |