This non-provisional application claims priority under 35 U. S. C. ยง 119(a) on Patent Application No(s). 106116888 filed in Taiwan on May 22, 2017, the entire contents of which are hereby incorporated by reference.
The disclosure relates to a latch and an assembly using the same, more particularly to a bidirectional latch and an assembly using the same.
The more efficient the processing unit of the electronic device is, more heat is produced, and therefore the demand of heat dissipation increases. Hence, a heat dissipating device is provided to remove the heat. Generally, the heat dissipating device is disposed on the processing unit through screws and elastic members, such as springs, to secure the heat dissipating device to an electronic board having the processing unit.
One embodiment of the disclosure provides a latch comprising a hollow pillar and a bolt. The hollow includes a first engaging portion and a second engaging portion opposite to each other. The hollow pillar has an inserting hole. The inserting hole passes through the first engaging portion and the second engaging portion. The bolt is inserted into the inserting hole and is movable between a first inserting position and a second inserting position. When the bolt is moved from the first inserting position to the second inserting position along a direction from the first engaging portion pointing to the second engaging portion, and the second engaging portion is expanded by the bolt. Therefore, the outer edge of the second engaging portion is smaller when the second engaging portion is located at the first inserting position than is located at the second inserting position.
One embodiment of the disclosure provides an assembly comprising a first object and a second object. The second object has a through hole. The latch includes a hollow pillar and a bolt. The hollow pillar includes a first engaging portion and a second engaging portion opposite to each other. The hollow pillar has an inserting hole. The inserting hole passes through the first engaging portion and the second engaging portion. The first engaging portion is disposed through the through hole. The bolt is inserted into the inserting hole and is movable between a first inserting position and a second inserting position. When the bolt is moved from the first inserting position to the second inserting position, the second engaging portion is expanded by the bolt to make the size of the second engaging portion become larger.
The present disclosure will become more fully understood from the detailed description given here in below and the accompanying drawings which are given by way of illustration only and thus are not intending to limit the present disclosure and wherein:
In the following detailed description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the disclosed embodiments. It will be apparent, however, that one or more embodiments may be practiced without these specific details. In other instances, well-known structures and devices are schematically shown in order to simplify the drawing.
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The hollow pillar 121 of the latch 12 includes a first engaging portion 1211, a second engaging portion 1212, and a bearing block 1213. The first engaging portion 1211 and the second engaging portion 1212 are respectively located at two opposite sides of the bearing block 1213. The hollow pillar 121 has an inserting hole 121a, and the inserting hole 121a passes through the first engaging portion 1211, the second engaging portion 1212 and the bearing block 1213. The hollow pillar 121 has a positioning recess 121b at a side close to the inserting hole 121a.
The first engaging portion 1211 includes two engaging members 12110 spaced apart from each other. The engaging members 12110 surround the central axis C of the inserting hole 121a. Each engaging member 12110 has an engaging block 1211a at a side away from the inserting hole 121a. Each engaging block 1211a has a first guiding surface 1211b at a side away from the inserting hole 121a. The first guiding surface 1211b inclines toward the central axis C of the inserting hole 121a along a direction from the second engaging portion 1212 pointing to the first engaging portion 1211. Thus, when the first engaging portion 1211 is being inserted into the second through hole 110 along a direction from the bottom surface 11a of the second object 11 to the top surface 11b of the second object 11, the second object 11 is able to push the engaging block 1211a along the first guiding surface 1211b in order to move the engaging members 12110 to come closer to each other, and so that the engaging member 12110 is able to pass through the second through hole 110. When the engaging block 1211a passes through the second through hole 110, the engaging member 12110 recover to its original shape so as to be fixed to the second object 11.
In this embodiment, although the first engaging portion 1211 includes two engaging members 12110, the present disclosure is not limited thereto. In other embodiments, the first engaging portion 1211 may have more than two engaging members 12110.
The second engaging portion 1212 includes four flexible arms 12120 spaced apart from one another. The flexible arms 12120 surround the central axis C of the inserting hole 121a. Each flexible arm 12120 has a pushing block 1212a at a side close to the inserting hole 121a. Each pushing block 1212a has a second guiding surface 1212b at a side close to the inserting hole 121a. The second guiding surface 1212b inclines toward the central axis C of the inserting hole 121a along a direction from the first engaging portion 1211 pointing to the second engaging portion 1212. The pushing blocks 1212a surround an area having an inner diameter D1. In this embodiment, the number of the flexible arms 12120 is four, but the present disclosure is not limited thereto. In other embodiments, the number of the flexible arms 12120 may be adjusted.
There is a distance S between the bearing block 1213 and the engaging block 1211a, the distance S is determined by the thickness T1 of the second object 11, which is the distance between the bottom surface 11a and the top surface 11b of the second object 11. The thickness of the bearing block 1213 is determined by the thickness T3, which is the distance between the bottom surface 11a of the second object 11 and the first object 9.
The bolt 122 has a first end 122a and a second end 122b opposite to each other. When the bolt 122 is inserted into the inserting hole 121a of the hollow pillar 121 along a direction form the first engaging portion 1211 of the hollow pillar 121 pointing to the second engaging portion 1212 of the hollow pillar 121, the first end 122a of the bolt 122 is movable in the inserting hole 121a, and the second end 122b is movable outside the inserting hole 121a. The bolt 122 has a positioning protrusion 1221 between the first end 122a and the second end 122b. The first end 122a of the bolt 122 has an outer diameter D2, and the outer diameter D2 is larger than the inner diameter D1 of the pushing blocks 1212a. In this embodiment, the bolt 122 has one positioning protrusion 1221, but the present disclosure is not limited thereto. In other embodiments, the bolt 122 may have more than one positioning protrusions 1221.
Furthermore, in this embodiment, the second end 122b of the bolt 122 has a head portion 1222.
The bolt 122 is movable respect to the hollow pillar 121 so as to be moved between a first inserting position and a second inserting position. When the bolt 122 is at the first inserting position, the positioning protrusion 1221 of the bolt 122 is able to be located in positioning recess 121b of the hollow pillar 121. When the bolt 122 is moved from the first inserting position to the second inserting position along the direction from the first engaging portion 1211 pointing to the second engaging portion 1212, the positioning protrusion 1221 is able to be removed from the positioning recess 121b, and the first end 122a of the bolt 122 is able to force the flexible arms 1211a of the second engaging portions 1212 to deform and move outward along the second guiding surface 1212b of pushing block 1212a. In other words, when the bolt 122 is at the first inserting position, the second engaging portion 1212 has a first outer diameter W1 when the bolt 122 is at the first inserting portion, and has a second outer diameter W2 which is greater than the first outer diameter W1 when the bolt 122 is at the second inserting position. That is, the size of the second engaging portion 1212 becomes larger when the bolt 122 is moved from the first inserting position to the second inserting position.
Furthermore, when the bolt 122 is at the second inserting position, the head portion 1222 of the bolt 122 covers at least part of the first engaging portion 1211 of the hollow pillar 121 to make the appearance simple.
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Because the second outer diameter W2 of the second engaging portion 1212 is larger than the inner diameter D3 of the first through hole 90 of the first object 9, the second object 11 is firmly fixed on the first object 9 without using any elastic member. Therefore, the second object 11 is prevented from moving with respect to the first object 9 so that the assembly 10 firmly fixed in place.
Furthermore, the bearing block 1213 can keep the second object 11 and the first object 9 to be spaced apart from each other so as to prevent the second object 11 and the first object 9 to press the clamped member 8 and prevent the second object 11 or the first object 9 from being deformed by the second engaging portion 1212. That is, the bearing block 1213 can be taken as a gasket, thus the there is no need to have additional gasket.
Then, the second object 11 and the hollow pillar 121 are two independent objects, so it is favorable to replace the second object 11 according to actual requirements. Furthermore, the hollow pillar 121 is able to be replaced if it is damaged due to friction, so it only needs to replace the damaged component, which is favorable for reducing the cost.
In addition, at this point, the head portion 1222 covers the first engaging portion 1211 of the hollow pillar 121, which makes the appearance simple.
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According to the latch and the assembly in above embodiments, the first object and the second object are respectively fixed to the first engaging portion and the second engaging portion of the hollow pillar, so the second object is immovable with respect to the first object, thereby the first object and the clamped member between the first object and the second object are prevented from being damaged by the second object. Moreover, the latch and the second object are assembled to be assembly through the first engaging portion. When the bolt is moved to the second inserting position, the second engaging portion is expanded by the bolt. In other words, the size of the second engaging portion becomes larger when the bolt is moved from the first inserting position to the second inserting position. Thus, the second engaging portion of the latch is able to be disposed on the first object easily when the bolt is at the first inserting position, and is able to be fixed to the first object when the bolt is at the second inserting position.
Furthermore, the bearing block can keep the second object and the first object to be spaced apart from each other so as to prevent the second object and the first object to press the clamped member and prevent the second object or the first object from being deformed by the second engaging portion. That is, the bearing block can be taken as a gasket, thus the there is no need to have additional gasket.
In addition, since the positioning protrusion is located in the positioning recess, the bolt is prevented from falling apart from the hollow pillar. Thus the bolt is able to be at the first inserting position or the second inserting position as expected.
Then, the second object and the hollow pillar are two independent objects, so it is favorable to replace the second object according to actual requirements. Furthermore, the hollow pillar is able to be replaced if it is damaged due to friction, so it only needs to replace the damaged component, which is favorable for reducing the cost.
Number | Date | Country | Kind |
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106116888 | May 2017 | TW | national |