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LM26LVCISDX-085/NOPB 数据表(PDF) 7 Page - Texas Instruments |
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LM26LVCISDX-085/NOPB 数据表(HTML) 7 Page - Texas Instruments |
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7 / 33 page ![]() LM26LV www.ti.com SNIS144F – JULY 2007 – REVISED FEBRUARY 2013 Electrical Characteristics Unless otherwise noted, these specifications apply for +VDD = +1.6V to +5.5V. Boldface limits apply for TA = TJ = TMIN to TMAX ; all other limits TA = TJ = 25°C. Units Symbol Parameter Conditions Typical(1) Limits(2) (Limit) GENERAL SPECIFICATIONS Quiescent Power Supply IS 8 16 μA (max) Current 5.5 °C (max) Hysteresis 5 4.5 °C (min) OVERTEMP DIGITAL OUTPUT ACTIVE HIGH, PUSH-PULL VDD ≥ 1.6V Source ≤ 340 μA VDD ≥ 2.0V Source ≤ 498 μA VDD − 0.2V V (min) VDD ≥ 3.3V Source ≤ 780 μA VOH Logic "1" Output Voltage VDD ≥ 1.6V Source ≤ 600 μA VDD ≥ 2.0V Source ≤ 980 μA VDD − 0.45V V (min) VDD ≥ 3.3V Source ≤ 1.6 mA BOTH OVERTEMP and OVERTEMP DIGITAL OUTPUTS VDD ≥ 1.6V Sink ≤ 385 μA VDD ≥ 2.0V Sink ≤ 500 μA 0.2 VDD ≥ 3.3V Sink ≤ 730 μA VOL Logic "0" Output Voltage V (max) VDD ≥ 1.6V Sink ≤ 690 μA VDD ≥ 2.0V Sink ≤ 1.05 mA 0.45 VDD ≥ 3.3V Sink ≤ 1.62 mA OVERTEMP DIGITAL OUTPUT ACTIVE LOW, OPEN DRAIN TA = 30 °C 0.001 Logic "1" Output Leakage IOH 1 μA (max) Current(3) TA = 150 °C 0.025 VTEMP ANALOG TEMPERATURE SENSOR OUTPUT Gain 1: If Trip Point = 0 - 69°C −5.1 mV/°C Gain 2: If Trip Point = 70 - 109°C −7.7 mV/°C VTEMP Sensor Gain Gain 3: If Trip Point = 110 - 129°C −10.3 mV/°C Gain 4: If Trip Point = 130 - 150°C −12.8 mV/°C Source ≤ 90 μA −0.1 −1 mV (max) (VDD − VTEMP) ≥ 200 mV 1.6V ≤ VDD < 1.8V Sink ≤ 100 μA 0.1 1 mV (max) VTEMP ≥ 260 mV VTEMP Load Regulation (4) Source ≤ 120 μA −0.1 −1 mV (max) (VDD − VTEMP) ≥ 200 mV VDD ≥ 1.8V Sink ≤ 200 μA 0.1 1 mV (max) VTEMP ≥ 260 mV Source or Sink = 100 μA 1 Ω 0.29 mV VDD Supply- to-VTEMP VDD = +1.6V to +5.5V 74 μV/V DC Line Regulation(5) −82 dB VTEMP Output Load CL Without series resistor. See CAPACITIVE LOADS 1100 pF (max) Capacitance (1) Typicals are at TJ = TA = 25°C and represent most likely parametric norm. (2) Limits are guaranteed to TI's AOQL (Average Outgoing Quality Level). (3) The 1µA limit is based on a testing limitation and does not reflect the actual performance of the part. Expect to see a doubling of the current for every 15°C increase in temperature. For example, the 1nA typical current at 25°C would increase to 16nA at 85°C. (4) Source currents are flowing out of the LM26LV/LM26LV-Q1. Sink currents are flowing into the LM26LV/LM26LV-Q1. (5) Line regulation (DC) is calculated by subtracting the output voltage at the highest supply voltage from the output voltage at the lowest supply voltage. The typical DC line regulation specification does not include the output voltage shift discussed in Section 4.3. Copyright © 2007–2013, Texas Instruments Incorporated Submit Documentation Feedback 7 Product Folder Links: LM26LV |
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