RIVET SPACER FOR COMPROMISING ASSEMBLING BETWEEN TWO PARTS SECURED TO EACH OTHER VIA SCREW STRUCTURE
20200381333 ยท 2020-12-03
Inventors
Cpc classification
H05K2201/10545
ELECTRICITY
H05K2201/10606
ELECTRICITY
H05K7/12
ELECTRICITY
H05K1/18
ELECTRICITY
H01L2023/4087
ELECTRICITY
International classification
Abstract
An independent loading mechanism for use with a CPU connector includes a metallic frame cooperating with a back plate module to sandwich a printed circuit board therebetween. A plurality of screw nut units are provided around the four corners of the frame. A plurality of hollow spacers are secured to the corresponding through holes of the frame so as to allow the corresponding screw nut units moveable relative to the frame along the vertical direction within a range larger than a thickness of the frame, thus avoiding improper interference between the screw nut units and the corresponding screw posts of the back plate module during sequential screwing.
Claims
1. An independent loading mechanism for mounted to a printed circuit board which defines opposite top and bottom surfaces and a plurality of through holes therein, comprising: a metallic frame for mounting upon a top surface of the printed circuit board and a back plate module for mounting upon a bottom surface of the printed circuit board so as to cooperatively sandwich the printed circuit board therebetween in a vertical direction; the back plate module forming plural pairs of upwardly extending screw posts thereof for extending through corresponding through holes in the printed circuit board; the frame forms plural pairs of holes adapted to be aligned with the corresponding through holes of the printed circuit board in the vertical direction; and plural pairs of screw nut units respectively retained in the corresponding pairs of holes, respectively, at least in one pair, one screw nut unit thereof including a nut riveted with a corresponding collar and commonly moveable within a corresponding hole in the frame, and the other screw nut unit thereof including a lengthened nut riveted with another corresponding collar and commonly moveable within a tubular spacer which is secured to a corresponding hole in the frame; wherein the tubular spacer provides a space allowing said other screw nut to move relative to the frame in the vertical direction within a range larger than that of said one screw nut unit.
2. The independent loading mechanism as claimed in claim 1, wherein a dimension of the spacer is larger than a thickness of the frame in the vertical direction.
3. The independent loading mechanism as claimed in claim 1, wherein said another hole of the frame, which receives the spacer, is diametrically larger than said hole of the frame which receives said one screw nut unit.
4. The independent loading mechanism as claimed in claim 1, wherein when the other screw nut is upwardly lifted by the corresponding screw post, a rim of the corresponding collar is spaced from a top portion of the spacer with a distance in the vertical direction.
5. The independent loading mechanism as claimed in claim 1, wherein the collar forms a ceiling section at a top end for cooperating with a rim of the corresponding collar for prevent upward withdrawal of said other screw nut unit therefrom.
6. The independent loading mechanism as claimed in claim 1, wherein when the lengthened nut downwardly abuts against a top face of the spacer, the rim of the corresponding collar is adapted to be seated upon a top surface of the printed circuit board.
7. The independent loading mechanism as claimed in claim 1, wherein in said at least one pair, the distance between said one screw nut unit and said other screw nut unit is less than 30 mm.
8. The independent loading mechanism as claimed in claim 1, wherein the spacer is either metal or plastic.
9. The independent loading mechanism as claimed in claim 1, wherein the screw nut unit can be equipped with a threaded stud on a top end.
10. A method of assembling an independent loading mechanism upon a printed circuit board defining opposite top and bottom surfaces in a vertical direction and a plurality of through holes thereof, comprising steps of: providing a metallic planar frame with a plurality of holes and mounted said frame upon the top surface of the printed circuit board; providing a first screw nut unit received within a first hole of said holes and moveable with regard to the frame along the vertical direction with a first distance; securing a tubular space in a second hole of said holes adjacent to said first hole; and providing a second screw nut unit received within an interior space of the spacer and moveable with regard to the frame along the vertical direction with a second distance; wherein the second distance is larger than the first distance.
11. The method as claimed in claim 10, further providing a back plate module with a plurality of upwardly extending screw posts and assembling said back plate module on the bottom surface of the printed circuit board to have the screw posts respectively extend through the corresponding through holes of the printed circuit board, wherein the screw posts are fastened to the corresponding first screw nut unit and second screw nut unit, respectively.
12. The method as claimed in claim 11, wherein the first screw nut unit is firstly assembled with the corresponding screw post, and the second screw nut unit is secondly assembled with the corresponding screw post.
13. The method as claimed in claim 12, wherein when the first screw nut unit is assembled with the corresponding screw post, the second screw nut unit is upwardly lifted by the corresponding screw post with a distance smaller than the second distance so as not to damage the second screw nut unit.
14. The method as claimed in claim 11, wherein the first screw nut unit downwardly abuts against an upper surface of the frame when fastened with the corresponding screw post, and the second screw nut unit downwardly abuts against a top face of the spacer when fastened with the corresponding screw post.
15. The method as claimed in claim 11, wherein a vertical dimension of said spacer is larger than a thickness of the frame in the vertical direction.
16. The method as claimed in claim 11, wherein the second hole is diametrically larger than the first hole.
17. A combination of an independent loading mechanism comprising: a printed circuit board defining opposite top and bottom surfaces in a vertical direction, and a plurality of through holes thereof; a metallic frame positioned upon the top surface of the printed circuit board and forming a first hole and a second hole adjacent to each other; a first screw nut unit being assembled within the first hole and moveable relative to the frame in the vertical direction with a first distance; a tubular spacer secured within the second hole; and a second screw nut being assembled within the spacer and moveable relative to the frame in the vertical direction with a second distance; wherein the second distance is larger than the first distance.
18. The combination as claimed in claim 17, further including a back plate module attached upon the bottom surface of the printed circuit board, wherein said back plate module forms a first screw post and a second screw post respectively secured to the corresponding first screw nut unit and second screw nut unit, respectively.
19. The combination as claimed in claim 18, wherein the second screw nut unit is longer than the first screw nut unit in the vertical direction.
20. The combination as claimed in claim 18, wherein a dimension of the spacer in the vertical direction is equal to at least one and half thickness of the frame.
Description
BRIEF DESCRIPTION OF THE DRAWING
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
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[0019] Understandably, for each pair of screw nut units, only one is required to be lengthened and equipped with an additional spacer. In other embodiments, the screw nut unit may be replaced with the screw stud as long as such a securing mechanism uses screwing operation. The spacer is either metal or plastic. In each pair of screw nut units, the distance therebetween is less than 30 mm. In other embodiments, for all four pairs of screw nut units, at least one pair has one lengthened nut and the corresponding spacer for distinguishing from the conventional independent loading mechanism. In this embodiment, the dimension of the space 128 of the spacer 126 in the vertical direction is larger than the distance with which the rim of the collar 124 is lifted by the screw post 132 from the top surface of the printed circuit board 500, Understandably, the rim of the (traditional) collar 124 is roughly seated upon the top surface of the printed circuit board 500 when the nut 122 downwardly abuts against the upper surface 114 of the frame 112. Similarly, the rim of the collar 124 is roughly seated upon the top surface of the printed circuit board 500 when the lengthened nut 124 downwardly abuts against the top face 127 of the spacer 126. Notably, if available, the rim of the collar 124, 124 may not touch the top surface of the printed circuit board 500 under such situations.
[0020] Although the present invention has been described with reference to particular embodiments, it is not to be construed as being limited thereto. Various alterations and modifications can be made to the embodiments without in any way departing from the scope or spirit of the present invention as defined in the appended claims.