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LTM8049 датащи(PDF) 21 Page - Linear Technology |
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LTM8049 датащи(HTML) 21 Page - Linear Technology |
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21 / 34 page ![]() LTM4651 21 4651f For more information www.linear.com/LTM4651 componentpowerdissipationflowingthroughthetopof the package. As the electrical connections of the typical µModule regulator are on the bottom of the package, it is rare for an application to operate such that most of the heat flows from the junction to the top of the part. As in the case of θJCbottom, this value may be useful for comparing packages but the test conditions don’t generally match the user’s application. 4. θJB, the thermal resistance from junction to the printed circuit board, is the junction-to-board thermal resis- tance where almost all of the heat flows through the bottom of the µModule regulator and into the board, and is really the sum of the θJCbottom and the thermal resistance of the bottom of the part through the solder joints and through a portion of the board. The board temperature is measured a specified distance from the package, using a two sided, two layer board. This board is described in JESD51-9. A graphical representation of the aforementioned ther- mal resistances is given in Figure 9; blue resistances are contained within the µModule regulator, whereas green resistances are external to the µModule package. As a practical matter, it should be clear to the reader that no individual or sub-group of the four thermal resistance parameters defined by JESD51-12 or provided in the Pin Configuration section replicates or conveys normal operating conditions of a µModule regulator. For example, in normal board-mounted applications, never does 100% of the device’s total power loss (heat) thermally conduct exclusively through the top or exclusively through bot- tom of the µModule package—as the standard defines for θJCtop and θJCbottom, respectively. In practice, power loss is thermally dissipated in both directions away from the package—granted, in the absence of a heat sink and airflow, a majority of the heat flow is into the board. Within the LTM4651, be aware there are multiple power devices and components dissipating power, with a con- sequence that the thermal resistances relative to different junctions of components or die are not exactly linear with respect to total package power loss. To reconcile this complicationwithoutsacrificingmodelingsimplicity—but alsonotignoringpracticalrealities—anapproachhasbeen taken using FEA software modeling along with laboratory testing in a controlled-environment chamber to reason- ably define and correlate the thermal resistance values supplied in this data sheet: (1) Initially, FEA software is used to accurately build the mechanical geometry of the LTM4651 and the specified PCB with all of the correct material coefficients along with accurate power loss source definitions; (2) this model simulates a software- definedJEDECenvironmentconsistentwithJESD51-9and JESD51-12topredictpowerlossheatflowandtemperature readings at different interfaces that enable the calculation of the JEDEC-defined thermal resistance values; (3) the model and FEA software is used to evaluate the LTM4651 with heat sink and airflow; (4) having solved for and analyzed these thermal resistance values and simulated various operating conditions in the software model, a thorough laboratory evaluation replicates the simulated APPLICATIONS INFORMATION Figure 9. Graphical Representation of JESD51-12 Thermal Coefficients 4651 F09 µModule DEVICE JUNCTION-TO-CASE (TOP) RESISTANCE JUNCTION-TO-BOARD RESISTANCE JUNCTION-TO-AMBIENT THERMAL RESISTANCE COMPONENTS CASE (TOP)-TO-AMBIENT RESISTANCE BOARD-TO-AMBIENT RESISTANCE JUNCTION-TO-CASE (BOTTOM) RESISTANCE JUNCTION AMBIENT CASE (BOTTOM)-TO-BOARD RESISTANCE |
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