This application claims the priority benefit of Taiwan application serial no. 111135966, filed on Sep. 22, 2022. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
The disclosure relates to a module device, and more particularly, to a module device of a power module.
The rapid development of the process technology of power semiconductors has greatly improved the functions of electronic elements. However, with the improvement of the processing speed and current of electronic elements, the heat generated by the electronic elements also increases. If the heat cannot be effectively removed, the electronic elements may not achieve optimal performance or even fail.
The heat generated when the power semiconductor operates will cause thermal deformation of the structure of the power element, which not only affects the heat transfer effect, but also affects the working performance of the power semiconductor and shortens the life of the power semiconductor due to the increase in the working environment temperature of the power semiconductor. In order to effectively dissipate heat to the power semiconductor, some module designs directly lock the power module on the heat dissipation structure, so that the power module can be stably in contact with the heat dissipation structure. However, if the power module is not properly locked and skewed, the power module cannot be reliably in contact with the heat dissipation structure, resulting in a decrease in heat dissipation efficiency.
The disclosure provides a module device, which has good heat dissipation effect and can prolong the service life of a power module.
A module device of the disclosure is adapted to be installed on a first substrate. The module device includes a power module, a housing, a pair of locking structures, and a pair of locking members. The housing covers the power module. The locking structures are installed on a pair of opposite sides of the housing, and each of the locking structures includes a main body, a locking ring, a pair of ribs, and a pair of anchoring portions. The locking ring extends from a side of the main body toward an inner side of the main body, and the locking ring is a double-ring structure, which includes an inner ring and an outer ring. A first side of the outer ring is connected to the main body, a second side of the outer ring is connected to the inner ring, and the first side and the second side are opposite sides. The rib extends from a top surface of the main body along a normal direction of the top surface. The anchoring portion is disposed at the end of the rib, and an extending direction of the anchoring portion is perpendicular to an extending direction of the rib.
A module device of the disclosure is adapted to be installed on a first substrate. The module device includes a power module, a housing, and a pair of locking structures. The housing covers the power module. The locking structures are installed on a pair of opposite sides of the housing, and at least one of the locking structures includes a main body, a locking ring, a pair of ribs, and a pair of anchoring portions. The locking ring extends from a side of the main body toward an inner side of the main body, and the locking ring is a double-ring structure, which includes an inner ring and an outer ring. The locking ring has a slit opening, and the slit opening penetrates the outer ring and the inner ring from the side where the locking ring is connected to the main body. The rib extends from a top surface of the main body along a normal direction of the top surface. The anchoring portion is disposed at the end of the rib, and an extending direction of the anchoring portion is perpendicular to an extending direction of the rib.
Based on the above, in the module device of the disclosure, the locking structure is improved, and the improved locking structure may effectively increase the contact area between the bottom surface of the power module and the first substrate, thereby improving the overall heat dissipation effect of the module device.
Continuing the above description, the module device 1 includes a power module 11, a housing 12, a pair of locking structures 13, and a pair of locking members 14.
The housing 12 covers the power module 11. Specifically, the power module 11 has a second substrate 112, at least one power semiconductor 114, and multiple pins 116. The power semiconductor 114 and the pins 116 are disposed on the second substrate 112, and the housing 12 has multiple sockets 122 into which the pins 116 are correspondingly inserted, so that the housing 12 and the power module 11 are relatively fixed. One pin 116 is correspondingly inserted into one socket 122. However, the number of the sockets 122 is larger than the number of the pins 116, and two pins 116 do not exist in the same socket 122 at the same time. When the module device 1 is assembled on the first substrate 2, the second substrate 112 is in contact with the first substrate 2.
The housing 12 configured to cover the power module 11 is made of non-conductive material, such as glass fiber or thermoplastic polymer plastic. This is because if the housing 12 is made of a conductive material, when the housing 12 is in contact with the power semiconductor 114 or the pins 116, the housing 12 becomes the ground of the power module 11 and causes the power semiconductor 114 to fail. Therefore, selecting a non-conductive material for the housing 12 may prevent the power semiconductor 114 from failing.
The locking ring 132 extends from a side 1312 of the main body 131 toward the inner side of the main body 131 to form an elastic sheet structure. Moreover, the locking ring 132 is a double-ring structure, which includes an inner ring 1321 and an outer ring 1322. A first side S1 of the outer ring 1322 is connected to the main body 131, a second side S2 of the outer ring 1322 is connected to the inner ring 1321, and the first side S1 and the second side S2 are opposite sides. In the embodiment, the outer contours of the inner ring 1321 and the outer ring 1322 are circular shapes or similar to circular shapes, but are not limited thereto. The outer contours of the inner ring 1321 and the outer ring 1322 may also be oval, rectangular or polygonal shapes.
In the embodiment, the rib 133 extends from the side 1312 of the main body 131 where the locking ring 132 is connected to the main body 131 in a shape similar to a triangle or closer to a trapezoid toward the corresponding anchoring portion 134. A first side 1331 of the rib 133 is adjacent to the anchoring portion 134, a second side 1332 of the rib 133 is adjacent to the side 1312 of the main body 131 where the locking ring 132 is connected to the main body 131, and the length of the first side 1331 is greater than the length of the second side 1332. In the embodiment, the shape of the rib 133 can effectively increase the contact area between the locking structure 13 and the housing 12, thereby improving the connection stability of the locking structure 13 and the housing 12, and enhancing the structural rigidity of the locking structure 13 at the same time.
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The above-mentioned locking member 14 passes through the corresponding locking ring 132 and is locked into the first substrate 2. The locking member 14 may be selected from screws or rivets.
Before the module device 1 is fixed on the first substrate 2, the power module 11, the housing 12, and the locking structure 13 have been fabricated or assembled into one body.
Next, the module device 1 is placed on the first substrate 2, and the pins 116 of the power module 11 are inserted into the corresponding sockets 122.
At this time, the locking member 14 has not yet passed through the locking ring 132 of the locking structure 13 and been locked into the first substrate 2.
Incidentally, before the locking member 14 is locked into the first substrate 2, a gap exists between a bottom surface 13b of the locking structure 13 and a bottom surface 12b of the housing 12. Specifically, the bottom surface 13b of the locking structure 13 embedded in the housing 12 is not flush with the bottom surface 12b of the housing 12, but is slightly higher than the bottom surface 12b of the housing 12. Such a configuration not only can reserve a space to buffer the force exerted by the locking member 14 on the locking structure 13, but may also allow other areas of the first substrate 2 other than the area of the first substrate 2 corresponding to the locking ring 132 of the locking structure 13 to have design margins for other applications. In addition, such a configuration may further prevent the locking structure 13 from overly scratching the surface of the first substrate 2 during the assembly process, resulting in damage to the surface of the first substrate 2.
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In addition, the shapes of the inner ring 1321 and the outer ring 1322 of the aforementioned locking ring 132 are not limited to the circular shapes shown in
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Certainly, the shapes of the inner ring 1321 and the outer ring 1322 are not limited to the shapes exemplified in the specification, and the inner ring 1321 and the outer ring 1322 may be in any shape without departing from the spirit of the disclosure.
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To sum up, in the module device of the disclosure, at least the following effects are achieved by improving the locking structure:
Number | Date | Country | Kind |
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111135966 | Sep 2022 | TW | national |