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LP2957IS 数据表(PDF) 8 Page - National Semiconductor (TI) |
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LP2957IS 数据表(HTML) 8 Page - National Semiconductor (TI) |
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8 / 14 page ![]() Application Hints (Continued) The next parameter which must be calculated is the maxi- mum allowable temperature rise, T R(Max). This is calculated by using the formula: T R(Max) = TJ(Max) − T A(Max) where: T J(Max) is the maximum allowable junction tem- perature T A(Max) is the maximum ambient temperature Using the calculated values for T R(Max) and P(Max), the re- quired value for junction-to-ambient thermal resistance, θ (JA) , can now be found: θ (JA) = TR(Max)/P(Max) If the calculated value is 60˚C/W or higher , the regulator may be operated without an external heatsink. If the calcu- lated value is below 60˚C/W, an external heatsink is re- quired. The required thermal resistance for this heatsink, θ (HA), can be calculated using the formula: θ (HA) = θ(JA) − θ (JC) − θ(CH) where: θ (JC) is the junction-to-case thermal resistance, which is specified as 3˚C/W for the LP2957. θ (CH) is the case-to-heatsink thermal resistance, which is de- pendent on the interfacing material (see Table 1 and Table 2). Typical TO-220 Case-To-Heatsink Thermal Resistance in ˚C/W TABLE 1. (From AAVID) Silicone Grease 1.0 Dry Interface 1.3 Mica with Grease 1.4 TABLE 2. (From Thermalloy) Thermasil III 1.3 Thermasil II 1.5 Thermalfilm (0.002) 2.2 with Grease θ (HA) is the heatsink-to-ambient thermal resistance. It is this specification (listed on the heatsink manufacturers data sheet) which defines the effectiveness of the heatsink. The heatsink selected must have a thermal resistance which is equal to or lower than the value of θ (HA)calculated from the above listed formula. ERROR COMPARATOR This comparator produces a logic “LOW” whenever the out- put falls out of regulation by more than about 5%. This figure results from the comparator’s built-in offset of 60 mV divided by the 1.23V reference. An out-of-regulation condition can result from low input voltage, current limiting, or thermal lim- iting. Figure 2 gives a timing diagram showing the relationship be- tween the output voltage, the ERROR output, and input volt- age as the input voltage is ramped up and down to the regu- lator without snap-on/snap-off output. The ERROR signal becomes low at about 1.3V input. It goes high at about 5V in- put, where the output equals 4.75V. Since the dropout volt- age is load dependent, the input voltage trip points will vary with load current. The output voltage trip point does not vary. The comparator has an open-collector output which requires an external pull-up resistor. This resistor may be connected to the regulator output or some other supply voltage. Using the regulator output prevents an invalid “HIGH” on the com- parator output which occurs if it is pulled up to an external voltage while the regulator input voltage is reduced below 1.3V. In selecting a value for the pull-up resistor, note that while the output can sink 400 µA, this current adds to battery drain. Suggested values range from 100k to 1 M Ω. The re- sistor is not required if the output is unused. DS011340-7 PTOTAL = (VIN − 5)I L +(VIN)IG *See EXTERNAL CAPACITORS FIGURE 1. Basic 5V Regulator Circuit www.national.com 8 |
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