FASTENING UNIT FOR CONNECTING THERMALLY STRESSED COMPONENTS TO EACH OTHER
20200365484 · 2020-11-19
Assignee
Inventors
Cpc classification
F16B43/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B5/0642
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01L2023/4087
ELECTRICITY
International classification
Abstract
The invention relates to a fastening unit (10) for connecting thermally stressed components to each other, particularly a heat-generating body (44) having a heat sink (42), comprising a retaining pin (12) and a retaining element (16), wherein the retaining pin (12) is connected to a retaining head (14), the retaining pin (12) extends through the retaining element (16), the retaining head (14) contacts the retaining element (16), and the retaining element (16) engages on the body (44) or heat sink (42) and retains it in a fastening direction (26) of the retaining pin (12). According to the invention, the retaining element (16) is designed to engage laterally on the body (44) or heat sink (42), in that the retaining element (16) has, on the side thereof facing the body (44) or heat sink (42), a retaining groove (24) extending in a longitudinal direction crosswise to the fastening direction, wherein at least one groove surface (24a, 24b) contacts the body (44) or heat sink (42) at least in regions when in the assembled state.
Claims
1. Fastening unit (10) for connecting thermally stressed components to each other, in particular a heat-generating body (44) having a heat sink (42), comprising a retaining pin (12) and a retaining element (16), wherein the retaining pin (12) is connected to a retaining head (14), the retaining pin (12) extends through the retaining element (16), the retaining head (14) contacts the retaining element (16), and the retaining element (16) engages on the body (44) or the heat sink (42) and retains it in a fastening direction (26) of the retaining pin (12), characterized in that the retaining element (16) is designed to engage laterally on the body (44) or the heat sink (42), in that the retaining element (16) has, on the side thereof facing the body (44) or the heat sink (42), a retaining groove (24) extending in a longitudinal direction perpendicular to the fastening direction, wherein, in the assembled state, at least one groove surface (24a, 24b) contacts the body (44) or the heat sink (42) at least in regions.
2. Fastening unit according to claim 1, characterized in that the retaining groove (24) is formed in a V-shape by two groove surfaces (24a, 24b), one groove surface (24a; 24b) being aligned parallel to the longitudinal axis of the fastening pin (12) and the other groove surface (24a; 24b) being inclined relative thereto, with the groove surfaces (24a, 24b) in particular extending at an acute or obtuse angle to one another.
3. Fastening unit according to one of claims 1 and 2, characterized in that the base area of the retaining element (16) is substantially rectangular.
4. Fastening unit according to any one of the preceding claims, characterized in that the retaining element (16) has a greater length in the longitudinal direction of the retaining groove (24) than transversely to the longitudinal direction of the retaining groove (24).
5. Fastening unit according to any one of the preceding claims, characterized by a symmetrical design of the retaining element (16) with two retaining grooves (24), so as to enable the retaining element (16) to bear against different adjacent bodies (44) or heat sinks (42) simultaneously.
6. Fastening unit according to claim 5, characterized in that at its center, to the side of the fastening pin (12), the retaining element (16) has an elongated projection (web 30a) that extends perpendicularly to the fastening pin (12), which projection in turn has a further groove (30) made in its side remote from the retaining head (14).
7. Fastening unit according to claim 6, characterized in that the further groove (30) is V-shaped.
8. Fastening unit according to any one of the preceding claims, characterized in that the retaining head (14) engages in, and bears against, a recess (20) of the retaining element (16).
9. Fastening unit according to claim 8, characterized in that the retaining head (14) is cylindrical and the recess (20) is of cylindrical shape, with the result that an end face of the retaining head (14) rests on the end face of the recess (20), thus enabling a relative compensating movement about the cylinder axis.
10. Fastening unit according to one of claims 1 to 8 above, characterized in that the retaining head (14) is at least partially spherical on its side facing the recess (20), the recess (20) has a partially spherical shape adapted to the retaining head (14), so that the spherical surfaces facing one another permit a compensating movement relative to one another in the manner of a ball joint.
11. Fastening unit according to any one of the preceding claims, characterized in that the fastening pin (12) has a thread (32) at its end (34) remote from the retaining head (14), which thread (32) is adapted to engage a thread (32) in a bore (40) made in the heat sink (42) or in the body (44).
12. Fastening unit according to one of claims 1 to 10 above, characterized in that its end (32) remote from the retaining head (14), the fastening pin (12) has at least one detent means (38) which is adapted to engage an undercut in a bore (40) in the heat sink (42) or in the body (44), and the fastening pin is slotted in the region of the end (34) remote from the retaining head (14).
13. Fastening unit according to any one of the preceding claims, characterized in that the body (44) is constituted by a power semiconductor.
14. Fastening unit according to any one of the preceding claims, characterized in that the heat sink (42) is an air heat sink and/or a liquid heat sink.
15. Fastening unit according to any one of the preceding claims, characterized in that the fastening head (14) consists of a thermally and/or an electrically insulating material, or of an electrically conductive material.
16. Use of at least two fastening units according to any one of the preceding claims for connecting a heat sink (42) and a body (44) to each other, characterized in that two fastening units (10) are mounted opposite one another on the edge of the body (44) or the heat sink (42), thus forming a floating bearing with the body (44) or the heat sink (42).
17. Use according to claim 16, characterized in that in the mounted state, the retaining grooves (24) of the fastening units (10) are aligned parallel to each other.
18. Method for connecting two thermally stressed components to each another, in particular a heat sink (42) and a body (44), by means of a floating bearing which allows movement of the one component relative to the other component at least along one axis, in particular using a fastening unit (10) of the type specified in any one of the preceding claims.
Description
[0026] Throughout the description, the claims and the drawings, those terms and associated reference signs are used as are indicated in the list of reference signs below. In the drawings:
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[0040] Illustrated in
[0041] In addition, the fastening unit 10 comprises a retaining element 16 which has a through-hole 18 as well as a cylindrical recess 20 arranged concentrically thereto on its upward facing side 10a. Viewed from above, the basic shape of the retaining element 16 is rectangular. In the longitudinal direction, the retaining element 16 is longer than in the transverse direction. On a first long side 10b, a retaining arm 22 protrudes along the entire long side 10b, extending at an angle relative to the upward facing side 10a. A V-shaped retaining groove 24 that is parallel to the long side 10a is provided underneath the retaining arm 22, in which the groove surface 24a nearest to the through-hole 18 extends parallel to the through-hole 18 and the further groove surface 24b extends at an angle thereto.
[0042] As can be seen in particular in
[0043] The groove surface 24a is extended downwards and part of the underside of the retaining element 16 is slanted relative to the groove surface 24a.
[0044] The fastening pin 12 with the retaining head 14 is inserted in the through-hole 18 in the fastening direction, which is designated by the reference sign 26, until the end face of the retaining head 14 comes to bear against the upward facing surface of the recess 20. In this state, the upper face of the retaining head 14 is flush with the upward facing side 10a.
[0045] As the fastening pin 12 with its retaining head 14 is inserted into the through-hole 18 and the recess 20 of the retaining element 16, the fastening pin 12 will also be anchored in a heat sink or other component, as will be described in more detail below.
[0046] The views of
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[0048] Illustrated in
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[0051] In
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[0053] The view of
[0054] The use of retaining grooves 24 and the attachment of the fastening units 10 on opposite sides make it possible for the power semiconductors 44 to expand parallel to the retaining grooves 24. Stresses are thus avoided. For example, two fastening units 10 are arranged on each long side of a power semiconductor 44. Depending on whether the fastening units 10 are to hold one or two adjacent power semiconductors 44 in place, the embodiment of the fastening unit 10 having one retaining arm 22 or the embodiment having two retaining arms 22a, 22b will be used. The power semiconductors 44 are thus held in place by a floating bearing, meaning that movement in one direction will be possible. This direction is the main expansion direction of the power semiconductor 44.
[0055] The distance of two power semiconductors 44 relative to each other, but also the distance of the hole for the fastening pin 12 from the edge of the power semiconductor 44 can be adjusted via the length of the lateral protrusion of the retaining arms 22.
[0056] Preferably, one set of retaining elements 16 is provided which have retaining arms 22 that protrude at different lengths. Depending on requirements, the retaining element 16 will then be used that has a longer protruding retaining arm 22 or a shorter protruding retaining arm 22. The fastening pin 12 with its retaining head 14 may remain the same for the different retaining elements 16. However, fastening pins 12 of different lengths and diameters can also be provided for assembly.
[0057] Depending on the individual application, the fastening units 10 can be designed to be electrically conductive, electrically insulating, thermally conductive or thermally insulated. It is also possible for the retaining elements 16 on the one hand and the fastening pin 12 with its retaining head 14 on the other hand to have different material properties.
[0058] In a simple manner, the fastening units 10 according to the invention therefore allow an expansion of the power semiconductors 44 and thus a relative movement between power semiconductor 44 and heat sink 42. Firm anchoring of the fastening pins 12 prevents elastic deformation along the fastening axis. This is a simple way of preventing stresses in operation.
LIST OF REFERENCE SIGNS
[0059] 10 fastening unit [0060] 10a side facing upwards [0061] 10b long sideright [0062] 10c long sideleft [0063] 12 fastening pin [0064] 12a hexagon socket, internal drive [0065] 14 retaining head [0066] 16 retaining element [0067] 18 through-hole [0068] 20 recess [0069] 22 retaining arm [0070] 22a retaining armleft [0071] 22b retaining armright [0072] 24 retaining groove [0073] 24a groove surface parallel to through-hole 18 [0074] 24b groove surface slanted relative to through-hole 18 [0075] 24c retaining grooveleft [0076] 24d retaining grooveright [0077] 26 fastening direction [0078] 28 web [0079] 30 additional groove [0080] 30a web [0081] 32 thread [0082] 34 free end [0083] 40 bore [0084] 42 heat sink [0085] 44 power semiconductor