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AM186ED-20KC/W 数据表(PDF) 52 Page - Advanced Micro Devices |
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AM186ED-20KC/W 数据表(HTML) 52 Page - Advanced Micro Devices |
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52 / 88 page ![]() 52 Am186ED/EDLV Microcontrollers PRELI M INARY D RA F T Typical Ambient Temperatures The typical ambient temperature specifications are based on the following assumptions and calculations: The commercial operating range of the Am186ED microcontroller is a case temperature TC of 0 to 100 degrees Centigrade. TC is measured at the top center of the package. An increase in the ambient temperature causes a proportional increase in TC. Microcontrollers up to 40 MHz are specified as 5.0 V plus or minus 10%. Therefore, 5.0 V is used for calculating typical power consumption up to 40 MHz. Typical power supply current (ICC) in normal usage is estimated at 5.9 mA per MHz of microcontroller clock rate. Typical power consumption (watts) = (5.9 mA/MHz) times microcontroller clock rate times VCC divided by 1000. Table 12 shows the variables that are used to calculate the typical power consumption value for each version of the Am186ED microcontroller. Table 12. Typical Power Consumption Calculation Thermal resistance is a measure of the ability of a package to remove heat from a semiconductor device. A safe operating range for the device can be calculated using the formulas from Figure 14 and the variables in Table 11. By using the maximum case rating TC, the typical power consumption value from Table 12, and θ JC from Table 11, the junction temperature TJ can be calculated by using the following formula from Figure 14. TJ = TC + (P ⋅ θ JC) Table 13 shows TJ values for the various versions of the Am186ED microcontroller. The column titled Speed/Pkg/Board in Table 13 indicates the clock speed in MHz, the type of package (P for PQFP and T for TQFP), and the type of board (2 for 2-layer and 4-6 for 4-layer to 6-layer). Table 13. Junction Temperature Calculation By using TJ from Table 13, the typical power consumption value from Table 12, and a θ JA value from Table 11, the typical ambient temperature TA can be calculated using the following formula from Figure 14: TA = TJ – (P ⋅ θJA) For example, TA for a 40-MHz PQFP design with a 2- layer board and 0 fpm airflow is calculated as follows: TA = 108.3 – (1.2 ⋅ 45) TA = 55.2 In this calculation, TJ comes from Table 13, P comes from Table 12, and θ JA comes from Table 11. See Table 14. TA for a 33-MHz TQFP design with a 4-layer to 6-layer board and 200 fpm airflow is calculated as follows: TA = 105.8 – (1.0 ⋅ 28) TA = 78.6 See Table 17 for the result of this calculation. Table 14 through Table 17 and Figure 15 through Fi gu r e 18 s h ow TA based on the prec eding assumptions and calculations for a range of θ JA values with airflow from 0 linear feet per minute to 600 linear feet per minute. P = MHz ⋅ I CC ⋅ V CC/1000 Typical Power (P) in Watts MHz Typical ICC Volts 40 5.9 5.0 1.2 33 5.9 5.0 1.0 25 5.9 5.0 0.7 20 5.9 5.0 0.6 Speed/ Pkg/ Board TJ(°C) TJ = TC + (P ⋅ θ JC) TC P θ JC 40/P2 108.3 100 1.2 7 40/T2 111.8 100 1.2 10 40/P4-6 105.9 100 1.2 5 40/T4-6 107.1 100 1.2 6 33/P2 106.8 100 1.0 7 33/T2 109.7 100 1.0 10 33/P4-6 104.9 100 1.0 5 33/T4-6 105.8 100 1.0 6 25/P2 105.2 100 0.7 7 25/T2 107.4 100 0.7 10 25/P4-6 103.7 100 0.7 5 25/T4-6 104.4 100 0.7 6 20/P2 104.1 100 0.6 7 20/T2 105.9 100 0.6 10 20/P4-6 103.0 100 0.6 5 20/T4-6 103.5 100 0.6 6 |
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