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SPC564A80B4 Folha de dados(PDF) 86 Page - STMicroelectronics |
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SPC564A80B4 Folha de dados(HTML) 86 Page - STMicroelectronics |
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86 / 157 page ![]() Electrical characteristics SPC564A74L7, SPC564A80B4, SPC564A80L7 86/157 Doc ID 15399 Rev 9 As a general rule, the value obtained on a single-layer board is within the normal range for the tightly packed printed circuit board. The value obtained on a board with the internal planes is usually within the normal range if the application board has: ● One oz. (35 micron nominal thickness) internal planes ● Components are well separated ● Overall power dissipation on the board is less than 0.02 W/cm2 The thermal performance of any component depends on the power dissipation of the surrounding components. In addition, the ambient temperature varies widely within the application. For many natural convection and especially closed box applications, the board temperature at the perimeter (edge) of the package is approximately the same as the local air temperature near the device. Specifying the local ambient conditions explicitly as the board temperature provides a more precise description of the local ambient conditions that determine the temperature of the device. At a known board temperature, the junction temperature is estimated using the following equation: Equation 2 TJ = TB + (RJB * PD) where: TB = board temperature for the package perimeter ( oC) RJB = junction-to-board thermal resistance ( oC/W) per JESD51-8S PD = power dissipation in the package (W) When the heat loss from the package case to the air does not factor into the calculation, an acceptable value for the junction temperature is predictable. Ensure the application board is similar to the thermal test condition, with the component soldered to a board with internal planes. The thermal resistance is expressed as the sum of a junction-to-case thermal resistance plus a case-to-ambient thermal resistance: Equation 3 RJA = RJC + RCA where: RJA = junction-to-ambient thermal resistance ( oC/W) RJC = junction-to-case thermal resistance ( oC/W) RCA = case to ambient thermal resistance ( oC/W) RJC is device related and is not affected by other factors. The thermal environment can be controlled to change the case-to-ambient thermal resistance, RCA. For example, change the air flow around the device, add a heat sink, change the mounting arrangement on the printed circuit board, or change the thermal dissipation on the printed circuit board surrounding the device. This description is most useful for packages with heat sinks where 90% of the heat flow is through the case to heat sink to ambient. For most packages, a better model is required. A more accurate two-resistor thermal model can be constructed from the junction-to-board thermal resistance and the junction-to-case thermal resistance. The junction-to-case thermal resistance describes when using a heat sink or where a substantial amount of heat is dissipated from the top of the package. The junction-to-board thermal resistance describes the thermal performance when most of the heat is conducted to the printed circuit |
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