ARRANGEMENT FOR COOLING A POWER MODULE, AND POWER MODULE
20230301039 · 2023-09-21
Inventors
- BERND ROPPELT (Unterhaid, DE)
- JENS SCHMENGER (Forchheim, DE)
- THOMAS SCHWINN (Herzogenaurach, DE)
- ROMAN KÖGLER (Nürnberg, DE)
- ALEXANDER LUFT (Nürnberg, DE)
Cpc classification
H01L23/40
ELECTRICITY
H05K7/209
ELECTRICITY
International classification
Abstract
An arrangement for cooling a power module with at least one power unit in a housing is provide, the arrangement having at least one heat sink, in which the arrangement for cooling has at least one heat-sink cover, and at least a part of the power module, in particular the housing, at least a part of the heat sink and/or at least a part of the heat-sink cover are/is configured in such a way that, after attachment of the heat-sink cover, the heat sink is fixed in the housing, in particular by way of clamping, through interaction of the configuration of heat sink, heat-sink cover and/or housing. Also, a power module having such an arrangement for cooling a power module is provided.
Claims
1-9. (canceled)
10. An arrangement for cooling a power module with at least one power unit in a housing, having at least one heat sink, wherein the arrangement for cooling has at least one heat-sink cover, and at least a part of the power module, at least a part of the heat sink and/or at least a part of the heat-sink cover are/is configured in such a way that, after attachment of the heat-sink cover, the heat sink is fixed in the housing through interaction of a configuration of the heat sink, the heat-sink cover and/or the housing, wherein the configuration is at least partially an at least partial form fit and/or a force fit of the heat sink, the heat-sink cover and/or the housing and the force fit is configured by way of formation of at least one clamp and/or at least one snap-action hook in the heat-sink cover and a cutout in the housing and/or the heat sink, and vice versa.
11. The arrangement as claimed in claim 10, wherein the power unit is fixed on the heat sink by way of adhesive bonding, soldering and/or sintering.
12. The arrangement as claimed in claim 10, wherein for the form fit and/or the force fit, there are formed elevations which engage with cutouts formed in the heat sink and/or in the housing for receiving the elevations and/or vice versa.
13. The arrangement as claimed in claim 10, wherein the heat-sink cover and/or the heat sink are/is configured in such a way that, after attachment in the power module, at least one channel for air-stream guidance is formed.
14. The arrangement as claimed in claim 13, wherein as a formation of the at least one channel, the heat-sink cover and/or the heat sink are/is configured in such a way that, at least between at least one outermost cooling rib of the heat sink and the heat-sink cover, there is formed a spacing which is configured in such a way that an air stream for cooling is guided along the rib.
15. The arrangement as claimed in claim 10, wherein the form fit is at least partially configured in such a way that heat sink, the heat-sink cover and/or the housing are/is at least partially mechanically guided during installation.
16. A power module with at least one arrangement for cooling at least one power unit as claimed in claim 10.
Description
BRIEF DESCRIPTION
[0025] Some of the embodiments will be described in detail, with reference to the following figures, wherein like designations denote like members, wherein:
[0026]
[0027]
[0028]
[0029]
[0030]
DETAILED DESCRIPTION
[0031] The exemplary embodiments explained below in
[0032] In the exemplary embodiments, the described components of the embodiments each represent individual features of the invention which are to be considered independently of one another, and which each also refine embodiments of the invention independently of one another and are therefore also to be considered to be a constituent part of embodiments of the invention individually or in a combination other than that shown.
[0033] Furthermore, the described embodiments may also be supplemented by further features of the invention that have already been described.
[0034] Identical reference signs have the same meaning in the various figures.
[0035]
[0036] For fastening by the fastening screws, the heat sink KK is, as illustrated in
[0037] As can be seen, this results in a change in spacing along the reinforcement of heat-sink ribs KK R formed on the heat-sink root. This in turn has the consequence that impairment of the cooling power occurs, since the spacing amounts to fewer cooling ribs KK R, the missing cooling ribs here not having been able to be formed and thus also not being able to be used thermally.
[0038] The same applies to the reinforcement KK_VS of the rib, which can be seen on the right-hand side of the heat sink KK. The rib thickening KK_V is used for fastening of the heat sink KK to a housing, the latter being screwed to the heat sink KK from below. As a result of this thickening, the effectiveness of the heat sink KK or the cooling contribution of each rib is altered.
[0039]
[0040] In summary, it can therefore be established that such an arrangement according to conventional art results not only in the limitation of the heat removal due to the fastening measures but also in a complex formation of the heat sink and thus in a costly production process.
[0041] Moreover, in the immediate vicinity of the heat sink, there are normally situated one or more circuit boards for control and contacting of the power unit(s) to be cooled, such as the power units LE.
[0042] This process, known from the conventional art, is illustrated in
[0043] These holes L in the circuit board are however disadvantageous since not only does the space for the hole have to be provided on the circuit board but also air and creepage paths shorten by way of the hole L between the individual circuit-board layers, so that components and copper lines have to be placed at a distance from the holes L and consequently, for a certain extent around the hole L, technical use in terms of layout is additionally no longer possible. This results in the required circuit-board area and, as a consequence of this, generally in the enlargement of the components.
[0044]
[0045] According to embodiments of the invention, the heat-sink cover NKKA is designed in such a way that it engages snugly in a form-fitting manner around the heat sink NKK such that the latter is then in a sense indirectly held, in particular by way of clamping, via the cover NKKA. The heat sink NKK according to embodiments of the invention is consequently fixed within the device.
[0046] In an alternative or additional refinement, the cover NKKA according to embodiments of the invention is, as can be seen in
[0047] In this case, it is also possible for the heat sink NKK according to embodiments of the invention to be refined in such a way that it, too, is shaped so as to promote the form fit and/or force fit and/or to allow the fixing, in particular by way of holding and/or by way of clamping. Alternative configurations of embodiments of the invention, however, manage even without such shaping of the heat sink NKK. However, the heat sink NKK according to embodiments of the invention will be distinguished in that it will have no alterations, such as for example thickenings, which are necessary for a fastening and are detrimental with regard to cooling ribs or other measures providing the cooling.
[0048] The fastening takes place indirectly via the cover according embodiments of the invention, with or without such configurations. That is to say, the heat-sink cover NKKA according to embodiments of the invention push the heat sink NKK against the housing G. This is realized according to embodiments of the invention without additional fastening means between heat sink NKK and housing, such as screws, which, with regard to the cooling power, that is to say ultimately thermally, have an adverse effect.
[0049] As a refinement of this,
[0050] In the case shown, the fastening points BS are threaded bushings in the housing or threaded bores in the housing rear wall and, in the counterpart piece, formations in the heat-sink cover. This exemplary embodiment has the advantage that already existing formations in “standard parts” such as the housing do not have to be altered in order to contribute to the connection according to embodiments of the invention. Here, it is merely the case that the heat-sink cover according to embodiments of the invention is formed correspondingly while taking into account provided formations of the counterpart piece(s). In this way, the production outlay and/or the production costs can be reduced.
[0051] As a refinement, consideration may be given to replacement of the points for firm screwing by screws SS for power units LE in that the respective power unit LE is soldered, adhesively bonded or sintered directly to the heat sink NKK according to embodiments of the invention.
[0052] The two aforementioned configurations of embodiments of the invention, form-fitting and/or force-fitting heat-sink cover NKKA and soldered-on heat sink NKK, permit, both used individually and in combination, elimination of all the fastening points at the heat sink KK known from the conventional art and thus provision of the heat sink NKK according to embodiments of the invention, which is designed according to thermal aspects, and in particular also optimization in this respect thereof.
[0053] It goes without saying that it is also possible, with use of only one of the two configurations or else both in combination, to at least minimize, and not allow complete elimination of, the screw-connection points and/or fastening points if, for individual implementations, individual screw connections should be unavoidable.
[0054] In principle, however, according to embodiments of the invention, the intention is for the number of screws and/or fastening points, in particular at the heat sink NKK, where possible, to be reduced to zero, so that an arrangement of power units LE on a heat sink NKK according to embodiments of the invention, such as illustrated in
[0055] A further configuration or refinement of the heat-sink cover NKKA according to embodiments of the invention becomes apparent if, as is the case in
[0056] This yields a further, distinct advantage that the air stream of a fan can be introduced in such a way that the last rib is flowed around by air from both sides and can thus be used fully for cooling.
[0057] Furthermore, as a result of the flowing air between last cooling rib and heat-sink cover NKKA, the interior space of the device is thermally decoupled from the heat sink NKK. The device interior space is made cooler. The service life of structural elements situated there increases, or less expensive structural elements may be installed.
[0058]
[0059] In this way, one of the concepts according to embodiments of the invention for making as few alterations as possible for the elements involved, in particular none which could inhibit advantageous thermal properties for the cooling, is taken into account.
[0060] Embodiments of the invention are not restricted to the described configurations and refinements or the described combinations. Rather, all the resulting variants and combinations covered by the claims are considered as belonging to embodiments of the invention and also are taken into account in an implementation accordingly. Implementations are assessed as being according to embodiments of the invention in particular if they have one or more of the following features: [0061] 1. The heat sink NKK is not fastened directly to the housing, but is held indirectly via the heat-sink cover NKKA. If screws are used for fastening to the housing, then they are not in direct contact with the heat sink NKK. [0062] 2. The power unit LE is not screwed to the heat sink NKK, but is soldered on, “sintered on” and/or adhesively bonded to the latter. [0063] 3. The combination of features 1. and 2. and thus also a heat sink NKK which has at least almost no screw-connection points. [0064] 4. Between heat-sink cover NKKA and last rib(s) KK_LR of the heat sink KK, there is a gap ABS in which the air stream of the fan in introduced.
[0065] Furthermore, the following advantages, or alternative and/or additional configurations/refinements, according to embodiments of the invention are attained: [0066] The heat-sink cover NKKA combines one or more of the following functions, such as for example mechanical fastening of the heat sink NKK, directing of air in the air channel, thermal isolation with respect to the interior space, electrical insulation, in particular through enlargement of the air and creepage paths, between heat sink NKK and power electronics, guidance for installation of the power module containing the power units LE into the device, and is thus a component for multiple functions. [0067] The heat sink NKK can be thermally optimized, so that it may be made either smaller or more powerful, so that better utilization of the heat sink NKK can be ensured. [0068] Significant increase in heat-sink ribs and thus cooling power. In the illustrated configurations, an increase in the number of ribs by approximately +33% with the same installation volume is obtained by the configuration according to embodiments of the invention. [0069] Very simply designed and thus inexpensive heat sinks NKK are possible by way of the configurations of embodiments of the invention. Consequently, simple structures are possible and, not least as a result of this, fewer processing steps are necessary. [0070] More compact devices are possible. [0071] Holes L in the circuit board LP can be minimized and consequently circuit-board area can be saved. [0072] Cost saving. [0073] Lower interior-space temperature.
[0074] Although the present invention has been disclosed in the form of embodiments and variations thereon, it will be understood that numerous additional modifications and variations could be made thereto without departing from the scope of the invention.
[0075] For the sake of clarity, it is to be understood that the use of “a” or “an” throughout this application does not exclude a plurality, and “comprising” does not exclude other steps or elements.