A MODULAR ELECTRICAL SYSTEM
20180295743 ยท 2018-10-11
Inventors
Cpc classification
H05K7/20563
ELECTRICITY
International classification
Abstract
An electrical system includes modules and a frame structure for mechanically supporting the modules successively in an arrival direction of cooling air. Each module includes a cooling element in heat conductive relation with one or more electrical components. The frame structure mechanically supports the modules so that the cooling elements are substantially in the same attitude and successively in the arrival direction of the cooling air. The cooling elements are shaped so that, when the modules are mechanically supported by the frame structure, the cooling elements conduct cooling air in a direction deviating from the arrival direction of the cooling air. Furthermore, at least a part of a flank of the heat transfer portion of each cooling element is oblique with respect to the arrival direction of the cooling air. Thus, each of the cooling elements receives a fresh portion of the cooling air.
Claims
1-12. (canceled)
13. An electrical system comprising: modules each comprising a circuit board, one or more electrical components on the circuit board, and a cooling element in heat conductive relation with one or more of the electrical components, and a frame structure for mechanically supporting the modules successively in a first direction so that the circuit boards of the modules are substantially coplanar and the cooling elements of the modules are substantially in a same attitude and mutually successive in the first direction, wherein each of the cooling elements comprises a heat transfer portion for transferring heat to cooling air, and the heat transfer portions are shaped so that, when the modules are mechanically supported by the frame structure, the heat transfer portions are arranged to conduct the cooling air in a second direction deviating from the first direction, and at least a part of a first flank of each of the heat transfer portions is oblique with respect to the first direction so that an acute angle between the at least part of the first flank and the second direction is smaller than an acute angle between the first and second directions.
14. An electrical system according to claim 13, wherein the at least part of the first flank that is oblique with respect to the first direction is substantially parallel with the second direction, the acute angle between the at least part of the first flank and the second direction being substantially zero.
15. An electrical system according to claim 13, wherein a first end of each of the heat transfer portions is wider than a second end of the respective one of the cooling elements.
16. An electrical system according to claim 13, wherein first and second ends of each of the heat transfer portions are substantially perpendicular to the first direction.
17. An electrical system according to claim 13, wherein a second flank of each of the heat transfer portions is substantially parallel with the first direction.
18. An electrical system according to claim 13, wherein the heat transfer portion of each of the cooling elements comprises cooling fins for guiding the cooling air to flow in the second direction and for transferring heat to the cooling air.
19. An electrical system according to claim 13, wherein the heat transfer portion of each of the cooling elements comprises tubular cooling channels for guiding the cooling air to flow in the second direction and for transferring heat to the cooling air.
20. An electrical system according to claim 13, wherein the acute angle between the first and second directions is from 5 degrees to 45 degrees.
21. An electrical system according to claim 20, wherein the acute angle between the first and second directions is from 10 degrees to 35 degrees.
22. An electrical system according to claim 13, wherein the electrical system comprises a blower for moving the cooling air in the first direction.
23. An electrical system according to claim 13, wherein the electrical system is telecommunication equipment, the modules are plug-in units of the telecommunication equipment, and the frame structure is a rack of the telecommunication equipment.
24. An electrical system according to claim 23, wherein at least one of the modules comprises a processing system for supporting at least one of the following data transfer protocols: Internet Protocol IP, Ethernet protocol, MultiProtocol Label Switching MPLS protocol, Asynchronous Transfer Mode ATM.
25. An electrical system according to claim 14, wherein a first end of each of the heat transfer portions is wider than a second end of the respective one of the cooling elements.
26. An electrical system according to claim 14, wherein first and second ends of each of the heat transfer portions are substantially perpendicular to the first direction.
27. An electrical system according to claim 15, wherein first and second ends of each of the heat transfer portions are substantially perpendicular to the first direction.
28. An electrical system according to claim 14 wherein a second flank of each of the heat transfer portions is substantially parallel with the first direction.
29. An electrical system according to claim 15, wherein a second flank of each of the heat transfer portions is substantially parallel with the first direction.
30. An electrical system according to claim 16, wherein a second flank of each of the heat transfer portions is substantially parallel with the first direction.
31. An electrical system according to claim 14, wherein the heat transfer portion of each of the cooling elements comprises cooling fins for guiding the cooling air to flow in the second direction and for transferring heat to the cooling air.
32. An electrical system according to claim 15, wherein the heat transfer portion of each of the cooling elements comprises cooling fins for guiding the cooling air to flow in the second direction and for transferring heat to the cooling air.
Description
BRIEF DESCRIPTION OF FIGURES
[0015] Exemplifying and non-limiting embodiments of the invention and their advantages are explained in greater detail below in the sense of examples and with reference to the accompanying drawings, in which:
[0016]
[0017]
[0018]
DESCRIPTION OF EXEMPLIFYING AND NON-LIMITING EMBODIMENTS
[0019] The specific examples provided in the description given below should not be construed as limiting the scope and/or the applicability of the appended claims. Lists and groups of examples provided in the description given below are not exhaustive unless otherwise explicitly stated.
[0020]
[0021] Each of the cooling elements 106 and 107 comprises a heat transfer portion for transferring heat to the cooling air. In the exemplifying case illustrated in
[0022] The heat transfer portions of the cooling elements 106 and 107 are shaped to conduct the cooling air in a second direction that deviates from the first direction, i.e. from the z-direction. This is implemented so that the cooling fins and the tubular cooling channels of the cooling elements 106 and 107 are oblique with respect to the first direction, i.e. the z-direction. In
[0023] A part of a first flank 108 of each of the heat transfer portions of the cooling elements 106 and 107 is oblique with respect to the first direction, i.e. the z-direction, so that the acute angle between the oblique part of the first flank 108 and the second direction is smaller than the acute angle 2 between the first and second directions. As can be understood from
[0024] In the exemplifying electrical system illustrated in
[0025] In the exemplifying cases illustrated in
[0026] In the exemplifying electrical system illustrated in
[0027] The specific examples provided in the description given above should not be construed as limiting the applicability and/or the interpretation of the appended claims. Lists and groups of examples provided in the description given above are not exhaustive unless otherwise explicitly stated.