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tle4905l.pdf
Current versus Quiescent Current versus Supply Voltage Junction Temperature 8 AED01248 8 AED01249 ΙS ΙS mA V =High mA Q V =High 6 Q 6 = 4 Tj -40˚C 4 VS=24V T =150˚C j VS=3.8V 2 2 0 0 0 5 10 15 V 25 -50 0 50 100 C 200 V S Tj Quiescent Current Difference Saturation Voltage versus versus Temperature Output Current 1.0 AED01459 1.2 AED01461 Ι S VQ V mA 1.0 3.8V<V <24V ΙS=ΙSLow-SHigh S 0.75 ΙQ=40mA 0.8 0.5 0.6 T =150˚C j 0.4 0.25 0.2 Tj=-40˚C 0 0 -40 0 50 100 150 ˚C200 0 20 40 60 mA 100 Tj ΙQ Semiconductor Group 12 1997-09-01 TLE 4905 L; TLE
in „Frage zu TLE 4905L (Hallsensor)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tle4905l.pdf
Current versus Quiescent Current versus Supply Voltage Junction Temperature 8 AED01248 8 AED01249 ΙS ΙS mA V =High mA Q V =High 6 Q 6 = 4 Tj -40˚C 4 VS=24V T =150˚C j VS=3.8V 2 2 0 0 0 5 10 15 V 25 -50 0 50 100 C 200 V S Tj Quiescent Current Difference Saturation Voltage versus versus Temperature Output Current 1.0 AED01459 1.2 AED01461 Ι S VQ V mA 1.0 3.8V<V <24V ΙS=ΙSLow-SHigh S 0.75 ΙQ=40mA 0.8 0.5 0.6 T =150˚C j 0.4 0.25 0.2 Tj=-40˚C 0 0 -40 0 50 100 150 ˚C200 0 20 40 60 mA 100 Tj ΙQ Semiconductor Group 12 1997-09-01 TLE 4905 L; TLE
in „Umdrehungs Sensor“ · Mikrocontroller und Digitale Elektronik ·
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TLE4905.pdf
Current versus Quiescent Current versus Supply Voltage Junction Temperature 8 AED01248 8 AED01249 ΙS ΙS mA V =High mA Q V =High 6 Q 6 = 4 Tj -40˚C 4 VS=24V T =150˚C j VS=3.8V 2 2 0 0 0 5 10 15 V 25 -50 0 50 100 C 200 V S Tj Quiescent Current Difference Saturation Voltage versus versus Temperature Output Current 1.0 AED01459 1.2 AED01461 Ι S VQ V mA 1.0 3.8V<V <24V ΙS=ΙSLow-SHigh S 0.75 ΙQ=40mA 0.8 0.5 0.6 T =150˚C j 0.4 0.25 0.2 Tj=-40˚C 0 0 -40 0 50 100 150 ˚C200 0 20 40 60 mA 100 Tj ΙQ Semiconductor Group 12 1997-09-01 TLE 4905 L; TLE
in „Hallsensor TLE 4905 - Schaltung“ · Mikrocontroller und Digitale Elektronik ·
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r1210nxx2_ea-3219701.pdf
27µH 1.6 1.6 e g a Vstart l o )1.2 o V1.2 Vstart V (V V d o o - o d h l V o t 0.8 o r0.8 / at p t u s - V r V a t 0.4 Vhold S 0.4 Vhold S 0.0 0.0 0 20 40 60 80 100 0 20 40 60 80 100 Output Current IT(mA) Output CurrenOUT (mA) R1210N502C R1210N502D L:27µH L:27µH 1.6 1.6 g g Vstart t Vhold t o ) o ) V d1.2 V d1.2 o o o o l V l V o r0.8 Vstart o r0.8 Vhold p t p t - V - V r r S 0.4 S 0.4 0.0 0.0 0 20 40 60 80 100 0 20 40 60 80 100 Output Current IT(mA) Output Current I (mA) 5) Output Voltage vs. Temperature R1210N302C R1210N302D L:27µH L:27µH 3.10 3.10 ) V ( U3.05 U3.05 O IOU
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OP196_296_496_empfehlung_aus_AAN_105-03_.pdf
VOLTAGE – V LOAD CURRENT – mA TPC 9. Input Bias Current vs. Common-Mode Voltage TPC 12. Output Voltage to Supply Rail vs. Load Current REV. C –7– OP196/OP296/OP496 4.95 90 IL= 100A 80 VS= ⴞ2.5V TA= –40ⴗC 4.70 70 – I = 1mA B E L d60 G – GAIN T 4.45 I50 L A V G40 0 T O U 4.2 I = 2mA O ⴗ T L -30 45 – U E T O V = 5V P20 90 I O S O PHASE S V3.85 10 135 E S 0 180 H P 3.7 225 –75 –50 –25 0 25 50 75 100 125 150 –1010 100 1k 10k 100k 1M TEMPERATURE
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switch_regulator_33063.pdf
2 = GND C S0.2 Pin 2, 3, 5 = GND I 0.4 TA= 25°C V TA= 25°C 0.0 0.0 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 0 5 10 15 20 25 30 35 40 IC, Collector Current (A) VCC , Supply Voltage (V) Figure 3. Output Switch Saturation
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MC34063A.pdf
2 = GND C S0.2 Pin 2, 3, 5 = GND I 0.4 TA= 25°C V TA= 25°C 0.0 0.0 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 0 5 10 15 20 25 30 35 40 IC, Collector Current (A) VCC , Supply Voltage (V) Figure 3. Output Switch Saturation
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TI_tle2426.pdf
and O I sourcing current. The TLE2426 provides a low- 0 0 0.25 0.5 0.75 1 impedance output with 20 mA of sink and source capability while drawing less than 280 µA t − Time − s of supply current over the full input range of 4 V to 40 V. A designer need not pay the price in terms of board space for a conventional
in „[V] Virtual Ground Chips“ · Markt ·
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uc3903.pdf
80 65 80 dB PSRR +VIN = 8 to 40 V 65 100 65 100 dB Unity Gain Frequency 1 1 MHz Slew Rate 0.4 0.4 V/ s Short Circuit Current T = 2°C 40 40 mA J G.P. OP-AMP (3) Input Offset Voltage 1 5 1 8 mV Input Bias Voltage 0.1 2 0.1 4 A Input
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G406800_DE.pdf
Ansicht von der Seite 37 Zubehör 38 Frontplatten 38 Konfigurations-Software 39 Stichwortverzeichnis 40 Glossar 44 4 National Rejectors, Inc. GmbH, Buxtehude G-40 S1 A LLGEMEINES 1 Allgemeines Dieses Kapitel soll Ihnen einen ersten Überblick über die Vorteile und Optionen des Münzprüfers G-40 S1 verschaffen
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UTC-88Nxx_Voltage-Detector.pdf
OUT 3 2.88 4.98 mA Nch, VDS=0.5V, VDD2.4V Output transistor Leakage Current ILEAK 3 0.1 μA Nch, VDS=10V, V DD0V Detection Voltage Temperature ∆- VDET 1 TA=-40°C ~ +85°C ±100 ±350 ppm/°C Coefficient (Note 2) ∆Ta×-
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TLPR5600.pdf
0° 10° 20° 30° 10 t t s s e e red I n s 40° s o u 1 i 1.0 i u m L 0.9 50° u v e a 0.8 t e 60° l 0.1 R e -r 0.7 70° - IV 80° e V I 0.01 0.6 0.4 0.2 0 0.2 0.4 0.6 1 10 100 95 10078 95 10076 IF- Forward Current (mA) Fig. 3 - Relative
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LM2940T-10.0.pdf
Tape and Reel LM2940LDX-5.0 LM2940LDX-8.0 LM2940LDX-9.0 LM2940LDX-10 LM2940LDX-12 LM2940LDX-15 LLP 4.5k Units Tape and Reel −40˚C ≤ J≤ LM2940T-5.0 LM2940T-8.0 LM2940T-9.0 LM2940T-10 LM2940T-12 TO-220 125˚C LM2940S-5.0 LM2940S-8.0 LM2940S-9.0 LM2940S-10 LM2940S-12 TO-263 LM2940SX-5.0 LM2940SX-8.0 LM2940SX
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NCR320U_NCR321U.pdf
V EN =3.3 V [1] - 1.2 - mA RB bias resistor NCR320U - 10 - kΩ NCR321U - 1.5 - kΩ I stabilized output current out NCR320U V EN = 12 V; Vout= 1.4 V [1] 9 10 11 mA NCR321U V EN = 3.3 V; Vout= 1.4 V [1] 9 10 11 mA out stabilized output current NCR320U at R ext= 3 Ω V EN = 12 V; Vout> 1.4 V [1] - 250 - mA NCR321U at R = 3 Ω V = 3.3 V; V > 1.4 V [1] - 250 - mA ext EN out Vout, min lowest sufficient output Iout 10 mA - 1.4 - V voltage overhead: V out= VCC - VLED ΔI /(I x ΔT ) stabilized
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u2010b.pdf
Reference point pin 10, unless otherwise specified. Parameters Pin Symbol Value Unit Sink current 11 -S 30 mA t ≤10 µs 11 -s 100 mA Synchronous currents 15 ±IsyncV 5 mA t ≤10 µs 15 ±isyncV 5 mA Phase Control Control voltage 4, 8 -VI 0 - 8 V Input current 4 ±II 500 µA Charging current 14 -j†max 0.5 mA Soft
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semi_eng_apv.pdf
Minimum Riso 1,000 MΩ 500 V DC *1.Drop-out voltage measurement circuit APV1122(A) APV1121S, APV2121S, APV2111V I =0mA 1 6 I =0 mA 1 4 2 V RV=10M Ω VR =10M Ω 3 4 2 3 *2.Short circuit current measurement circuit APV1122(A) APV1121S, APV2121S, APV2111V I =0mA 1 6 I =0 mA 1 4 2 IR= 100Ω IR =100Ω
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Farnell_1330644_LT1364.pdf
VOUT Output Swing RL= 1k, VIN 40mV 15V 13.5 14.0 V RL= 500 , V IN40mV 15V 13.0 13.7 V RL= 500 , V IN40mV 5V 3.5 4.1 V RL= 150 , V IN40mV 5V 3.4 3.8 V R = 500 , V = 40mV 2.5V 1.3 1.7 V L IN IOUT Output Current VOUT = 7.5V 15V 50 60 mA
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LB_LT_M673_Pb_free.pdf
Forward Voltage 2) page 18 Relative Luminous Intensity 2) page 17 ΔV =FV - VF F(25 °C)= f(T j; IF= 10 mA (blue) IV V(25 °C) = f(T j;IF = 10 mA OHL02352 OHL13637 0.4 IV 1.4 V ΔV F IV(25˚C) 0.3 1.2 0.2 1.0 0.1 0.8 truegreen blue 0.0 0.6 -0.1 0.4 -0.2 0.2 -0.3 0 -60 -40 -20 0 20 40 60 ˚C100 -60 -40 -20 0 20
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LCW_CQ7P.CC.pdf
Flux 2) page 22 IF = f(V F);T S = 25 °C Φ V/Φ V(350 mA) = f(IF);T S = 25 °C OHL04578 OHL04571 800 2.0 mA Φ IF V Φ V (350mA) 1.5 600 1.0 400 0.5 200 0 200 400 600 mA 800 2.8 3.0 3.2 3.4 3.6 V 3.8 I VF F 2) Seite 22 Farbortverschiebung
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Low_Drop_Spannungsregler_MCP_1702-5002.pdf
. Current. 5.00 VOUT 5.0V 3.00 OUT= 0 mA ) ) VOUT= 2.8V VOUT 5.0V µ µ 2.50 VIN 3.8V VIN 6.0V t 4.00 +130°C t e e 2.00 r r C 3.00 C 1.50 t t VOUT= 1.2V e +90°C e 1.00 VIN 2.7V s 0°C s i 2.00 +25°C i u Q 0.50 Q -45°C 1.00 0.00 6 7 8 9 10 11 12
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ADum1200pdf.pdf
Mbps (CR Grade Only) VDD1 Supply Current IDD1 (25) 3.4 4.8 mA 12.5 MHz logic signal freq. VDD2 Supply Current IDD2 (25) 3.4 4.8 mA 12.5 MHz logic signal freq. For All Models Input Currents IIA IB −10 0.01 10 µA 0 ≤ VIA VIB ≤ VDD1or VDD2 Logic High Input
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NCP5104-D.PDF
Low Side Driver vs. Temperature www.onsemi.com 8 NCP5104, NCV5104 CHARACTERIZATION CURVES ) 1.6 ( 1.4 D L 1.2 E 1.4 H G S T 1.2 R 1.0 L ) H V (1.0 T 0.8 T L G P O0.8 A I H L 0.6 L ES V V R0.6 T 0.4 E T U L 0.4 N W I 0.2 L 0.2 E E 0 0 L 10 12 14 16 18 20 −40 −20 0 20 40 60 80 100 120 W O VCC, VOLTAGE
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tps63031_buckboost.pdf
90 80 80 IO= 500 mA 70 70 % % - 60 - 60 c c O = 500 mA e 50 e 50 c IO= 10 mA c IO= 10 mA f 40 f 40 E E 30 30 20 20 TPS63030 TPS63030 10 Power Save Disabled 10 Power Save Disabled 0 0 1.8 2.2 2.6 3 3.4 3.8 4.2 4.6 5 5.4
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tps63031.pdf
90 80 80 IO= 500 mA 70 70 % % - 60 - 60 c c O = 500 mA e 50 e 50 c IO= 10 mA c IO= 10 mA f 40 f 40 E E 30 30 20 20 TPS63030 TPS63030 10 Power Save Disabled 10 Power Save Disabled 0 0 1.8 2.2 2.6 3 3.4 3.8 4.2 4.6 5 5.4
in „Seltsames SMD-Pad“ · Platinen ·
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datasheet.pdf
surface under tab (printed circuit board FR4, copper thickness: 35 m). Rth(j-a) (°C/W) 80 D PAK 70 60 50 40 30 20 10 S(cm²) 00 4 8 12 16 20 24 28 32 36 40 PACKAGE MECHANICAL DATA TO-220AB (Plastic) DIMENSIONS B C REF. Millimeters Inches b2 Min.
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BTA_16-600B.pdf
surface under tab (printed circuit board FR4, copper thickness: 35 m). Rth(j-a) (°C/W) 80 D PAK 70 60 50 40 30 20 10 S(cm²) 00 4 8 12 16 20 24 28 32 36 40 PACKAGE MECHANICAL DATA TO-220AB (Plastic) DIMENSIONS B C REF. Millimeters Inches b2 Min.
in „BTA 16-600B Triacs“ · Markt ·
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NC7SZ125-1011470.pdf
0.30V CC g 1.65 1.55 1.65 1.55 c ® 1.80 1.70 1.80 1.70 U H 2.30 V IN ,IH OH100 µA 2.20 2.30 2.20 V S 3.00 2.90 3.00 2.90 B u HIGH Level 4.50 4.40 4.50 4.40 f VOH Output Voltage e 1.65 IOH-4 mA 1.29 1.52 1.29 r 2.30 IOH-8 mA 1.90 2.15 1.90 w t 3.00 IOH-16 mA 2.40 2.80 2.40 h 3.00 I =-24 mA 2.30 2.68
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SA57251.PDF
– 4.0 7.9 A -36 – 4.0 7.9 A -50 – 4.2 8.3 A DRIVEH DRIVE pin output current VDRIVE= VOUT – 0.4 V -20 – –1.9 –2.9 mA (HIGH) -25 – –2.7 –4.0 mA -28 – –2.7 –4.0 mA -30 – –3.5 –5.3 mA -33 – –3.5 –5.3 mA -36
in „Reichelt: Was ich gerne im Programm hätte“ · Mikrocontroller und Digitale Elektronik ·
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AD8606.pdf
Input Capacitance CDIFF 2.6 pF OUTPUT CHARACTERISTICS OutputVoltage High VOH L = 1 mA 4.96 4.98 V L = 10 mA 4.7 4.79 V −40°C <T < +125°C 4.6 V A OutputVoltage Low VOL L = 1 mA 20 40 mV L = 10 mA 170 210 mV −40°C <TA< +125°C 290 mV Output Current OUT ±80 mA Closed-Loop Output Impedance
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2N5087-D.PDF
700 1.0 k C , COLLECTOR CURRENT (mA) IC, COLLECTOR CURRENT (mA) Figure 3. Narrow Band, 100 Hz Figure 4. Narrow Band, 1.0 kHz 1.0 M 500 k 10 Hz to 15.7 kHz S H200 k ( 100 k E Noise Figure is Defined as: N 50 k 2 2 2 T 20 k en ) 4KTR ) S n R S 1ń2 I NF + 20 log 10 ƪ 4KTR S ƫ E 10 k 0.5 dB E 5.0 k en = Noise
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CD4020BMW_883.pdf
CurrentDDe 5V V Oe 0 4V 0 64 0 51 0 88 0 36 mA (See Note 3) V e 10V V e 0 5V 1 6 1 3 2 25 0 9 mA DD O V DDe 15V V Oe 1 5V 4 2 3 4 8 8 2 4 mA OH High Level Output CurrenDDV 5V V Oe 4 6V b0 64 b 0 51 b 0 88 b 0 36 mA (See Note
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M37560_Prozessor.pdf
total average output current P4 1–P4 7, P50–P5 7, P60–P6 7 (Note 1) 10 mA ΣIOL(avg) “L” total average output current P4 0, P71–P7 7 (Note 1) 40 mA OH(peak) “H” peak output current P0 0–P0 7, P10–P1 5, P30–P3 7 (Note 2) –1.0 mA “H”
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U2008B.pdf
as the increase of revolution by the increment of mains supply voltage. 4 (10) Rev.A3, 08-Nov-99 U2008B Absolute Maximum Ratings V S 14 V, reference point Pin 4, unless otherwise specified Parameters Symbol Value Unit Current limitation Pin 5 –I 30 mA S tv 10 ms –iS 100 mA
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tps65131.pdf
V IN= 3 V % % y 60 − 60 c c VIN= 3 V i 50 e 50 i i f f E 40 E 40 Forced PWM 30 30 20 20 Forced PWM TPS65131 10 10 V = −4 V V NEG= −4 V NEG 0 0 0.10 1 10 100 1000 0.1 1 10 100 1000 I − Output Current − mA I − Output Current − mA O O Figure 11. Figure 12. 10 TPS65130
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PDF
isow7841.pdf
specified) PARAMETER TEST CONDITIONS MIN TYP MAX UNIT V ISO Isolated supply voltage External ISO = 0 to 40 mA 4.5 5.07 5.43 V V ISO(LINE) DC line regulation IISO= 20 mA, V CC = 4.5 V to 5.5 V 2 mV/V V ISO(LOAD) DC load regulation IISO= 0 to 40 mA 1% Efficiency at maximum load IISO= 40 mA, C LOAD = 0.1 µF
in „Problem mit der SPI Datenübertragung zwischen einem Arduino Portenta H7 und einem ADS8684 (ADC)“ · Mikrocontroller und Digitale Elektronik ·
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OP184_284_484.pdf
, −40°C ≤T A +125°C 2.0 mA Supply Current/Amplifier SY V S ±18V, −40°C ≤T A +125°C 2.25 mA DYNAMIC PERFORMANCE Slew Rate SR R L 2 kΩ 2.4 4.0 V/μs Full-Power Bandwidth BW p 1% distortion, L = 2 kΩ,O = 29V p-p
in „Bestellbezeichnung OP184ESZ / OP184FSZ“ · Analoge Elektronik und Schaltungstechnik ·
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TD340.pdf
V gsd Voltage (bootstrap) Freq Switching Frequency of PWM Cf = 270pF 20 25 30 kHz Cf=270pF, IN1=2.4V td Dead Time for secure Synchronous No Load 2.1 2.8 3.5 s Rectification Cload=4nF 1.5 s Output Current Capability - Low Side Source T=25°C 30 50 100 mA Ioutl -40°C < T < 125°C 25 50 100 mA T=25°C 60
in „Suche Vollbrücken Gatetreiber“ · Analoge Elektronik und Schaltungstechnik ·
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DCDC-Konverter.pdf
V IN= 3 V % % y 60 − 60 c c VIN= 3 V i 50 e 50 i i f f E 40 E 40 Forced PWM 30 30 20 20 Forced PWM TPS65131 10 10 V = −4 V V NEG= −4 V NEG 0 0 0.10 1 10 100 1000 0.1 1 10 100 1000 I − Output Current − mA I − Output Current − mA O O Figure 11. Figure 12. 10 TPS65130
in „DC-DC-Konverter Tps65131 Funktionalität“ · Mikrocontroller und Digitale Elektronik ·
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TL494.pdf
L 20 E ( 14 L AVOL ( E O70 40 E I 12 V60 A D 10 O 60 P A L50 80 S D 8.0 N40 φ 100 E T E C E 6.0 O30 120 E C 0.001F ,L0 140 , E 4.0 O φ , A10 160 D 2.0 0 180 % 0 1.0 10 100 1.0k 10k 100k 1.0M 500k 1.0k 10k 100k 500k f,FREQUENCY(Hz
in „PWM-IC gesucht: Betrieb für Mosfet (etwa 8A)“ · Analoge Elektronik und Schaltungstechnik ·
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hmc646.pdf
-10 RFC to RX )-10 Rx, Input ) d Rx, Output T ( S M N-20 O T L-20 S L R - S-30 T I R T -30 -40 D P -50 -40 S 0.8 0.85 0.9 0.95 1 0.8 0.85 0.9 0.95 1 - FREQUENCY (GHz) FREQUENCY (GHz) S E H Input IP3 vs. Voltage with 915 MHz Tuning C T 75 I 70 65 W S
in „passiv Video Übertragung“ · Analoge Elektronik und Schaltungstechnik ·
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MCF51QE128-1.pdf
–40°C 25°C 0.3 –40°C V 0.6 ) ( (0.2 OL = 10 mA O 0.4 O V V IOL= 6 mA 0.2 0.1 IOL= 3 mA 0 0 0 10 20 30 1 2 3 4 IOL (mA) VDD (V) Figure 6. Typical Low-Side Driver (Sink) Characteristics — High Drive (PTxDSn
in „Eingangsspannungsbereich ADC Coldfire“ · Mikrocontroller und Digitale Elektronik ·
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sn74hc165.pdf
(unless otherwise noted) PARAMETER TEST CONDITIONS V CC MIN TYP MAX UNIT 2 V 1.9 OH = –20 µA TA= –40°C to 125°C 4.5 V 4.4 6 V 5.9 VOH V I V IHor VIL I = –4 mA TA= –40°C to 85°C 4.5 V 3.84 V OH T = –40°C to 125°C 3.7 A TA= –40°C to 85°C 6 V 5.34 OH = –5.2 mA TA= –40°C to 125°C 5.2 2 V 0.1 I = 20 µA T = –40°C to 125°C 4.5 V 0.1 OL A VOL V I V IHor VIL 6 V 0.1 V OL = 4 mA TA= –40°C to 125°C 4.5 V 0.33 OL = 5.2 mA TA= –40°C to 125°C 6 V 0.33 Copyright © 1982–2015, Texas Instruments Incorporated Submit Documentation
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AD694.pdf
5 5 MΩ OUTPUT CHARACTERISTICS Operating Current Range 0 23 0 23 mA Specified Performance 4 20 4 20 mA Output Voltage Compliance VS–36 V VS–2 V VS–36 V VS2 V V Output Impedance, 4–20 mA 40.0 50.0 40.0 50.0 MΩ Current Limit (@ 2 × FS Overdrive 24 44 24 44 mA Slew Rate
in „Wie funktionieren Sensoren mit einem Sromausgang“ · Analoge Elektronik und Schaltungstechnik ·
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MC74AC74-D.pdf
4.5 − 3.86 3.76 OH −24 mA 5.5 − 4.86 4.76 −24 mA VOL Maximum Low Level 3.0 0.002 0.1 0.1 OUT = 50 μA Output Voltage 4.5 0.001 0.1 0.1 V 5.5 0.001 0.1 0.1 *VIN= VILr V IH 3.0 − 0.36 0.44 12 mA V 4.5 − 0.36
in „Eagle Bibliothek“ · Platinen ·
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UDN2916B_MotorTreiber.pdf
150°C. UDN2916LB 24-Lead SOIC 2916 DUAL FULL-BRIDGE MOTOR DRIVER UDN2916EB (PLCC) Y Y P P U U A E1 B S E1 1 S 5 T N T A A E 1 G S O E E O L I I1 P V R L T S A R = 6.0°C/W 6 5 4 3 2 1 4 4 4 4 4 θJT W θ1 VCC I 4 GND 7 39 GND N SUFFIX 'EB', R = 30°C/W PWM 1 I θJA 8 38 T A SUFFIX 'B', R θJA = 40°C/W 9 B 37
in „Steppermotor“ · Mikrocontroller und Digitale Elektronik ·
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LT1677.pdf
–2.0 –0.45 µA VCM = 0V, –40°C ≤AT ≤ 85°C ● –2.3 –0.47 µA IOS Input Offset Current (Note 11) 4 15 nA 0°C ≤ T≤ 70°C ● 5 20 nA A –40°C ≤ A ≤ 85°C ● 8 40 nA VCM = S + 0.1V 6 30 nA VCM = S – 0.2V, 0°C A T ≤ 70°C ● 10 40 nA V = V – 0.3V
in „LT1677, Output Voltage Swing“ · Analoge Elektronik und Schaltungstechnik ·
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LT1677fa.pdf
–2.0 –0.45 µA VCM = 0V, –40°C ≤AT ≤ 85°C ● –2.3 –0.47 µA IOS Input Offset Current (Note 11) 4 15 nA 0°C ≤ T≤ 70°C ● 5 20 nA A –40°C ≤ A ≤ 85°C ● 8 40 nA VCM = S + 0.1V 6 30 nA VCM = S – 0.2V, 0°C A T ≤ 70°C ● 10 40 nA V = V – 0.3V
in „Nachbau TC1 Seismometer“ · Analoge Elektronik und Schaltungstechnik ·
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PAL-SNES_Schematic.pdf
MA4 14 MA4 S U8 33 61 68 13 MA3 C101 100nF T C62 100nF R73 P41 CPUA8 A8 MA3 E 1 P00 VCC 18 0 15pF 100nF 34 P40 CPUA7 62 67 A7 MA2 11 MA2 U15 E 2.2uF 50V 2 17 X1 17.734MHz U18 /RESOUT1 37 63 66 10 MA1 R E C29 P01 P22 GND RESET CPUA6 A6 MA1 28 VCC GND 14 S 3 P02 P21 16 C1 R1 1 XTAL +5V? 14 D7 38 D7 CPUA5 64 65 A5 MA0 9 MA0 MA14 1 R 100nF 4 P03 P20 15 2 XTAL 13 D6 39 D6 CPUA4 1 64 A4 MD7 26 MD7 A14 GND 5 14 270 3 12 D5 40 2 63 25 MD6 MA13
in „Umrüstung von AC zu DC (SNES 1995, 1 Chip Konsole)?“ · Mikrocontroller und Digitale Elektronik ·
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STM.pdf
IL IO=-7.8 mA 5.68 5.8 5.63 5.60 QA’ TO QH’ 4.5 IO=-4.0 mA 4.18 4.31 4.13 4.10 6.0 IO=-5.2 mA 5.68 5.8 5.63 5.60 V OL Low Level Output 2.0 0.0 0.1 0.1 0.1 Voltage 4.5 IO= 20 µA 0.0 0.1 0.1 0.1 VI= 6.0 VIH 0.0 0.1 0.1 0.1 QA TO QH 4.5 or IO= 6.0 mA 0.17 0.26 0.33 0.40 V V IL 6.0 IO= 7.8 mA 0.18 0.26 0.33 0.40 QA’ TO QH’ 4.5 IO= 4.0 mA 0.17 0.26 0.33 0.40 6.0 IO= 5.2 mA 0.18 0.26 0.33 0.40 I Input Leakage V = V or GND ±0.1 ±1 ±1
in „74HC299 8-bit PIPO Shift Register“ · Mikrocontroller und Digitale Elektronik ·
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1789204.pdf
Voltage VDD 4.5 — 18.0 V Power Supply Current I — 0.90 1.10 mA V = 3V S IN — 0.11 0.20 mA VIN = 0V Note 1: Switching times ensured by design. 2: Tested during characterization, not production tested. TEMPERATURE CHARACTERISTICS
in „Low Side MOSFET Treiber als Pegelwandler“ · Analoge Elektronik und Schaltungstechnik ·