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MAX13181E датащи(PDF) 2 Page - Maxim Integrated Products |
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MAX13181E датащи(HTML) 2 Page - Maxim Integrated Products |
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2 / 18 page ![]() +5.0V, ±15kV ESD-Protected, Half-Duplex/ Full-Duplex, RS-485 Transceiver in µDFN 2 _______________________________________________________________________________________ ABSOLUTE MAXIMUM RATINGS DC ELECTRICAL CHARACTERISTICS (VCC = +5V ±10%, TA =TMIN to TMAX, unless otherwise noted. Typical values are at VCC = +5V and TA = +25°C.) (Note 1) Stresses beyond those listed under “Absolute Maximum Ratings” may cause permanent damage to the device. These are stress ratings only, and functional operation of the device at these or any other conditions beyond those indicated in the operational sections of the specifications is not implied. Exposure to absolute maximum rating conditions for extended periods may affect device reliability. (All voltages referenced to GND.) Supply Voltage (VCC) ...............................................-0.3V to +6V Control Voltage (RE, DE, DI, H/F).............................-0.3V to +6V Driver Output Voltage (A, B, Y, Z) ..........................-8V to +12.5V Receiver Input Voltage (A, B).................................-8V to +12.5V Receiver Input Voltage Full-Duplex (A, B)..............-8V to +12.5V Receiver Output Voltage (RO)................... -0.3V to (VCC + 0.3V) Short-Circuit Duration (A, B, Y, Z) to GND .................Continuous Continuous Power Dissipation (TA = +70°C) 10-Pin µDFN (derate 5mW/°C above +70°C ) .............403mW 14-Pin SO (derate 8.3mW/°C above +70°C )...............667mW Operating Temperature Range ...........................-40°C to +85°C Storage Temperature Range .............................-65°C to +150°C Junction Temperature ......................................................+150°C Lead Temperature (soldering, 10s) .................................+300°C PARAMETER SYMBOL CONDITIONS MIN TYP MAX UNITS DRIVER RL = 100 Ω (RS422), Figure 1 2 VCC V RL = 54 Ω (RS485), Figure 1 1.5 VCC Differential Driver Output VOD No load VCC V Change in Magnitude of Differential Output Voltage ΔVOD RL = 100 Ω or 54Ω, Figure 1, (Note 2) 0.2 V Driver Common-Mode Output Voltage VOC RL = 100 Ω or 54Ω, Figure 1 VCC / 2 3 V Change in Magnitude of Common-Mode Voltage ΔVOC RL = 100 Ω or 54Ω, Figure 1, (Note 2) 0.2 V Input-High Voltage VIH DE, DI, RE, H/F 2V Input-Low Voltage VIL DE, DI, RE, H/F 0.8 V Input Hysteresis VHYS DE, DI, RE, H/F 100 mV Internal Pullup Resistance RIN_UP Internal pullup RE 125 400 k Ω Internal Pulldown Resistance RIN_DWN Internal pulldown DE, H/F 125 400 k Ω VIN = +12V 125 Output Leakage (Y and Z) Full-Duplex IO DE = GND, VCC = GND or 5.5V VIN = -7V -100 µA 0 ≤ VOUT ≤ 12V 40 250 Driver Short-Circuit Output Current Threshold (Note 3) IOSD -7 ≤ VOUT ≤ VCC -250 -40 mA (VCC - 1V) ≤ VOUT ≤ 12V 20 Driver Short-Circuit Foldback Output Current (Note 3) IOSDF -7V ≤ VOUT ≤ 1V -20 mA Thermal-Shutdown Threshold TTS 0 ≤ VOUT ≤ 12V 140 °C Thermal-Shutdown Hysteresis TTSH 15 °C VIN = +12V 125 Input Current (A and B) IA, B DE = GND, VCC = GND or 5.5V VIN = -7V -100 µA |
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