ELECTRIC MODULE COMPRISING A TENSIONING DEVICE
20170133327 ยท 2017-05-11
Inventors
Cpc classification
H01L23/4012
ELECTRICITY
H05K7/209
ELECTRICITY
H01L24/72
ELECTRICITY
H01L24/90
ELECTRICITY
H01L23/053
ELECTRICITY
H01L23/20
ELECTRICITY
International classification
H01L23/053
ELECTRICITY
H01L25/065
ELECTRICITY
H01L21/48
ELECTRICITY
H01L23/20
ELECTRICITY
Abstract
An electrical module includes at least one electrical component and at least one hollow body which is filled or can be filled with a medium, particularly a fluid. The hollow body exerts a pressing force, dependent on the prevailing internal pressure in the interior of the hollow body, onto the at least one component of the module. A method for clamping an electrical module is also provided.
Claims
1-14. (canceled)
15. an electrical module, comprising: at least one electrical component; at least one hollow body having an interior being filled or being configured to be filled with a medium; said at least one hollow body exerting a pressing force on said at least one electrical component; and said pressing force being dependent upon an internal pressure prevailing in said interior of said at least one hollow body.
16. The module according to claim 15, wherein said medium is a fluid.
17. The module according to claim 15, wherein said at least one hollow body is formed by a bladder or a balloon having a size being dependent upon said internal pressure.
18. The module according to claim 15, wherein: said at least one electrical component has a cross-sectional area; the module has a longitudinal direction; said at least one hollow body has a cross-sectional area with a size transverse to the longitudinal direction of the module; and said size of said cross-sectional area of said at least one hollow body corresponds to said cross-sectional area of said at least one electrical component.
19. The module according to claim 15, wherein: said medium is a compressible gas; and said at least one hollow body forms a gas pressure spring being a component of a clamping device clamping the module and exerting a resilient force on said at least one component.
20. The module according to claim 18, wherein said compressible gas is air.
21. The module according to claim 15, wherein: said at least one electrical component includes two or more electrical components in at least one component stack; and said at least one hollow body forms a component of a clamping device pressing said component stack together.
22. The module according to claim 15, wherein said at least one hollow body includes two or more hollow bodies being in communication with one another in terms of pressure.
23. The module according to claim 22, wherein said two or more hollow bodies being in communication with one another in terms of pressure form a pressure-tight pressure spring clamping system resiliently clamping the module.
24. The module according to claim 21, wherein said at least one hollow body is disposed outside said component stack and exerts a pressing force on said component stack from outside.
25. The module according to claim 24, which further comprises: a receiving container receiving said at least one hollow body disposed outside said component stack; said receiving container forming a counter bearing and said receiving container having a container aperture in a direction towards said component stack through which said at least one hollow body exerts said pressing force on said component stack.
26. The module according to claim 21, wherein: said component stack has a first stack end and a second stack end; said at least one hollow body includes a first hollow body disposed on said first stack end and exerting a pressing force on said first stack end from outside; and said at least one hollow body includes a second hollow body disposed on said second stack end and exerting a pressing force on said second stack end from outside.
27. The module according to claim 26, which further comprises: a first receiving container receiving said first hollow body disposed outside said component stack, said first receiving container forming a first counter bearing and said first receiving container including a container aperture facing said first stack end, said first hollow body exerting said pressing force through said container aperture on said first stack end of said component stack; and a second receiving container receiving said second hollow body disposed outside said component stack, said second receiving container forming a second counter bearing and said second receiving container including a container aperture facing said second stack end of said component stack, said second hollow body exerting said pressing force through said container aperture on said second stack end of said component stack.
28. The module according to claim 21, wherein said component stack has an interior, and said at least one hollow body lies in said interior of said component stack, divides said component stack to form stack segments and exerts a pressing force on said stack segments lying against said component stack.
29. The module according to claim 21, wherein said component stack includes components selected from the group consisting of semiconductor components, semiconductor elements, rectifier elements, cooling bodies and connection electrodes.
30. A method for clamping an electrical module having at least one component, the method comprising the following step: filling at least one hollow body of a clamping device of the module with a fluid until the at least one hollow body exerts a predetermined minimum pressing force directly or indirectly on the at least one component.
Description
[0023] The invention is further explained hereinunder with reference to exemplary embodiments; in the drawings by way of example:
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031] For the sake of clarity, identical or comparable components are always provided with identical reference numerals in the figures.
[0032]
[0033] The clamping device 30 comprises a first expandable hollow body 40 and a second expandable hollow body 50. The two expandable hollow bodies 40 and 50 can be formed by way of example by bladders or expandable balloons.
[0034] The first hollow body 40, illustrated at the top in
[0035] The second hollow body 50 is located in a second receiving container 70 that is likewise fixedly mounted in place and forms a counter bearing for the second hollow body 50. The second hollow body 50 is connected by means of a container aperture 71 of the receiving container 70 to a second stack end 20b of the component stack 20, said second stack being illustrated at the bottom in
[0036] The two hollow bodies 40 and 50 are coupled in terms of pressure by way of a pressure line 80 and can be filled by way of a valve 90 with a medium, by way of example a compressible medium, such as air. The two hollow bodies 40 and 50, the pressure line 80 and the valve 90 form a pressure spring clamping system 100 of the clamping device 30 or of the electrical module 10, said pressure spring clamping system being gas-tight with respect to the outside andas a result of the pressure line 80pressure-coupled.
[0037]
[0038] In order to press the component stack 20 together or to clamp the module 10, the pressure spring clamping system 100 is filled with gas by way of the valve 90 and the internal pressure in the two hollow bodies 40 and 50 is increased. By virtue of increasing the internal pressure, the two hollow bodies 40 and 50 expand, as is illustrated in
[0039] By virtue of increasing the pressure in the interior of the two hollow bodies 40 and 50, a clamping force is generated, as a result of which the components of the component stack 20 are pressed together and the electrical contact resistance between the components of the component stack 20 is reduced.
[0040]
[0041] In order to clamp the component stack 20, a clamping device 30 is provided in the case of the electrical module 10 and said clamping device 30 comprises only a single expandable hollow body 40. The hollow body 40 is held in a receiving container that forms a counter bearing and by virtue of the container aperture 61 of said receiving container 60 the hollow body 40 lies on the stack end 20a of the component stack 20, said stack end being the upper stack end in
[0042] The second stack end 20b of the component stack 20, said second stack end being illustrated at the bottom in
[0043]
[0044]
F2>>F1.
[0045] By virtue of filling the hollow body 40 and generating the pressing force F2, the components of the component stack 20 are pressed together so that the electrical contact resistance between the components of the component stack 20 is minimized.
[0046]
[0047] The two hollow bodies 40 and 50 and also the inner-lying hollow body 200 are connected to one another in terms of pressure by way of a pressure line 80 and can be filled with gas by way of a valve 90. The three hollow bodies 40, 50 and 200, the pressure line 80 and the valve 90 form a pressure spring clamping system 10 that is gas-tight with respect to the outside andas a result of the pressure line 80pressure-coupled, said pressure spring clamping system 100 rendering it possible to press together or clamp the component stack 20.
[0048] By means of the inner-lying hollow body 200, the component stack 20 is subdivided into two stack segments 25 and 26. The stack segments 25 and 26 can be electrically isolated from one another by means of the inner-lying hollow body 200. Alternatively, it is possible to connect the two stack segments 25 and 26 in an electrical manner to one another and to provide for this purpose conducting plates with which the electrical connection is produced. Electrical plates of this type are indicated by way of example in
[0049]
[0050]
F2>>F1 and P2>>P1.
[0051] By virtue of the pressure increase in the interior of the hollow body 40, 50 and 200 and by the increase in the pressing force on the component stack 20, the components of the component stack 20 are pressed together so that the contact resistance between the components is minimized.
[0052]
[0053] The fact that a gap is not formed also means that electric arcs are not formed. Consequential damages are to a great extent prevented.
[0054] Although the invention has been further illustrated and described in detail with reference to preferred exemplary embodiments the invention is not limited by means of the disclosed examples and other variations can be derived therefrom by the person skilled in the art without departing from the protective scope of the invention.
LIST OF REFERENCE NUMERALS
[0055] 10 Electrical module [0056] 20 Component stack [0057] 20a First stack end [0058] 20b Second stack end [0059] 21 Semiconductor component [0060] 22 Cooling body [0061] 25 Stack segment [0062] 26 Stack segment [0063] 30 Clamping device [0064] 40 First hollow body [0065] 50 Second hollow body [0066] 60 First receiving container [0067] 61 Container aperture [0068] 70 Second receiving container [0069] 71 Container aperture [0070] 80 Pressure line [0071] 90 Valve [0072] 100 Pressure spring clamping system [0073] 110 Counter bearing [0074] 200 Inner-lying hollow body [0075] 300 Electrical plate [0076] F1 Pressing force/contact pressure [0077] F2 Pressing force/contact pressure [0078] F3 Pressing force/contact pressure [0079] P1 Gas pressure [0080] P2 Gas pressure [0081] P3 Gas pressure