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ICS8535-21 датащи(PDF) 10 Page - Integrated Circuit Systems |
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ICS8535-21 датащи(HTML) 10 Page - Integrated Circuit Systems |
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10 / 14 page ![]() 8535AG-21 www.icst.com/products/hiperclocks.html REV. A OCTOBER 20, 2004 10 Integrated Circuit Systems, Inc. ICS8535-21 LOW SKEW, 1-TO-2 LVCMOS/LVTTL-TO-3.3V LVPECL FANOUT BUFFER POWER CONSIDERATIONS This section provides information on power dissipation and junction temperature for the ICS8535-21. Equations and example calculations are also provided. 1. Power Dissipation. The total power dissipation for the ICS8535-21 is the sum of the core power plus the power dissipated in the load(s). The following is the power dissipation for V CC = 3.3V + 5% = 3.465V, which gives worst case results. NOTE: Please refer to Section 3 for details on calculating power dissipated in the load. • Power (core) MAX = VCC_MAX * IEE_MAX = 3.465V * 50mA = 173.25mW • Power (outputs) MAX = 30mW/Loaded Output pair If all outputs are loaded, the total power is 2 x 30mW = 60mW Total Power _MAX (3.465V, with all outputs switching) = 173.25mW + 60mW = 233.25mW 2. Junction Temperature. Junction temperature, Tj, is the temperature at the junction of the bond wire and bond pad and directly affects the reliability of the device. The maximum recommended junction temperature for HiPerClockSTM devices is 125°C. The equation for Tj is as follows: Tj = θ JA * Pd_total + TA Tj = Junction Temperature θ JA = Junction-to-Ambient Thermal Resistance Pd_total = Total Device Power Dissipation (example calculation is in section 1 above) T A = Ambient Temperature In order to calculate junction temperature, the appropriate junction-to-ambient thermal resistance θ JA must be used. Assuming a moderate air low of 200 linear feet per minute and a multi-layer board, the appropriate value is 85.5°C/W per Table 6 below. Therefore, Tj for an ambient temperature of 70°C with all outputs switching is: 70°C + 0.233W * 85.5°C/W = 90°C. This is well below the limit of 125°C. This calculation is only an example, and the Tj will obviously vary depending on the number of outputs that are loaded, supply voltage, air flow, and the type of board (single layer or multi-layer). θθθθθ JA by Velocity (Linear Feet per Minute) TABLE 6. THERMAL RESISTANCE θθθθθ JA FOR 14-PIN TSSOP, FORCED CONVECTION 0 200 500 Single-Layer PCB, JEDEC Standard Test Boards 146.4°C/W 125.2°C/W 112.1°C/W Multi-Layer PCB, JEDEC Standard Test Boards 93.2°C/W 85.5°C/W 81.2°C/W NOTE: Most modern PCB designs use multi-layered boards. The data in the second row pertains to most designs. |
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