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LTC4216IDE датащи(PDF) 17 Page - Linear Technology |
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LTC4216IDE датащи(HTML) 17 Page - Linear Technology |
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17 / 24 page ![]() LTC4216 4216f 17 For example, if ILOAD(MAX) = 5A, RSENSE = 4.3mΩ. The nearest standard value is 4mΩ. For proper circuit breaker operation, kelvin-sense PCB connections between the sense resistor and the LTC4216’s SENSEP and SENSEN pins are strongly recommended. Figure 12 illustrates the correct way of making connections between the LTC4216 and the sense resistor. PCB layout should be balanced and symmetrical to minimize wiring errors. In addition, the PCB layout for the sense resistor should include good thermal management techniques for optimal sense resistor power dissipation. The power rating of the sense resistor should accom- modate the fault current level during analog current limit so that the component is not damaged before the circuit breaker trips. Circuit Breaker Trip Current Calculation For a selected RSENSE value, the typical load current that trips the circuit breaker is given by: I V R mV R TRIP TYP CB TH TYP SENSE TYP SENSE TYP () (, ) () () = ∆ = 25 (13) The minimum load current that trips the circuit breaker is given by: I V R mV R TRIP MIN CB TH MIN SENSE MAX SENSE MAX () (, ) () () . = ∆ = 21 5 (14) Figure 12. Making PCB Connections to the Sense Resistor TO SENSEP W TO SENSEN TRACK WIDTH W: 0.03˝ PER AMPERE ON 1OZ COPPER CURRENT FLOW TO LOAD SENSE RESISTOR CURRENT FLOW TO LOAD 4216 F12 where RR R SENSE MAX SENSE TYP TOL () ( ) • =+ ⎛ ⎝⎜ ⎞ ⎠⎟ 1 100 The maximum load current that trips the circuit breaker is given by: I V R mV R TRIP MAX CB TH MAX SENSE MIN SENSE MIN () (, ) () () . = ∆ = 28 5 where (15) RR R SENSE MIN SENSE TYP TOL () ( ) •– = ⎛ ⎝⎜ ⎞ ⎠⎟ 1 100 For example, if a sense resistor of 4mΩ ± 1% RTOL is used for current sensing, the typical trip current, ITRIP(TYP) = 6.25A. From Equations (14) and (15), ITRIP(MIN) = 5.3A and ITRIP(MAX) = 7.2A respectively. For proper operation and to avoid tripping the circuit breaker unnecessarily, the minimum trip current, ITRIP(MIN), must exceed the maximum operating load current of the circuit connected to the output of the MOSFET. MOSFET Selection The external MOSFET switch must have adequate safe operating area (SOA) to handle short-circuit conditions before the circuit breaker trips. These considerations take precedence over continuous drain current ratings. A MOSFET with adequate SOA for a given application can always handle the required drain current, but the opposite may not be true. Consult the manufacturer’s MOSFET datasheet for safe operating area and effective transient thermal impedance curves. MOSFET selection is a 3-step process by assuming the absence of a soft-start capacitor. First, RSENSE is chosen and then the time required to charge the load capacitance is determined. This timing, along with the maximum short- circuit current and maximum load supply voltage, defines an operating point that is checked against the MOSFET’s SOA curve. In addition, consider three other key parameters: APPLICATIO S I FOR ATIO |
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