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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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TLE4945-2G_InfineonTechnologiesAG.pdf
G; TLE 4945-2 G AC/DC Characteristics 4.0 V ≤V S≤ 24 V; — 40°C ≤ Tj≤ 150 °C Parameter Symbol Limit Values Unit Test Condition Test min. typ. max. Circuit Supply current I 1.6 — 5.0 mA 1 SHigh — 2.5 — mA B < BRP 1 I — 3.5 — mA B > B 1 SLow
in „Untersuchung defektes VW Türsteuergerät“ · Fahrzeugelektronik ·
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U2010B-1.PDF
at Series Resistance 10 8 V S–13V ) 8 V =V ( 9 8 ) 6 0 Reference Points: W 3 6 V 13in 10 V V1 V 6Pin 8 P – 4 4 2 2 V T100 0 0 0 2 4 6 8 10 0 3 6 9 12 15 95 10346 t ( s ) 95 10350 S ( mA ) Figure 13. Figure 16. 20 100 Load Current limitatiomaxaOperation Max. Series Resistance V S–13V V M230VX 16 V =V 80 9 10 Reference Points:13 =Pin 10,6V =Pin 8 ) ) W ( 12 ( 60 1 a 1 1 V 8 R 40 4 20 V 0 T100 0 0 2 4 6 8 10 0 2 4 6 8 10 95 10347 V6–8( V ) 95 10349 S ( mA ) Figure 14. Figure 17
in „Wie funktioniert die Drehzahlregelung beim Allstrommotor“ · Analoge Elektronik und Schaltungstechnik ·
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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
in „OLED Sammelbestellung“ · Markt ·
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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
in „TPS63031 Beschaltungs-Frage“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
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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PDF
IRMS6400.pdf
Parameters, TA=25°C (except where noted) Parameter Min. Typ. Max. Unit Conditions Data Rate 9.6 K — 4 M bits/s Standard pulse width V Voltage 2.7 — 5.5 V 0 to 70°C, V to V CC CC SS Maximum LED Anode Voltage — — 4 V+VCC V V CC=2.7 V to 5.5 V CC Standby Current — 3.3 4.5 mA SD=0, V CC=2.7 V to 5.5 V, no receive signal CC Receiving Current — 3.8 5.0 mA 10 W, 4.0 Mb/s, 15 pF load I Shut Down Current (Note 1) — 0.01 1.0 A SD=V , V =2.7 V to 5.5 V CC CC CC CC Transmitting Current — 12 40 mA TxD=V CC, CC =5.0 V, LED=5.0 V, Ro=5.1 Minimum V CC — 2.5 — V
in „[V] Konvolut IRDA Bauteile 4x IRMS6400 und Decoder 6x HSDL7001 (10€)“ · Markt ·
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IRMS6400.pdf
Parameters, TA=25°C (except where noted) Parameter Min. Typ. Max. Unit Conditions Data Rate 9.6 K — 4 M bits/s Standard pulse width V Voltage 2.7 — 5.5 V 0 to 70°C, V to V CC CC SS Maximum LED Anode Voltage — — 4 V+VCC V V CC=2.7 V to 5.5 V CC Standby Current — 3.3 4.5 mA SD=0, V CC=2.7 V to 5.5 V, no receive signal CC Receiving Current — 3.8 5.0 mA 10 W, 4.0 Mb/s, 15 pF load I Shut Down Current (Note 1) — 0.01 1.0 A SD=V , V =2.7 V to 5.5 V CC CC CC CC Transmitting Current — 12 40 mA TxD=V CC, CC =5.0 V, LED=5.0 V, Ro=5.1 Minimum V CC — 2.5 — V
in „[V] Rolle mit IRDA 4 Mb/s Infrared Data Transceiver Infineon IRMS 6400“ · Markt ·
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PDF
Relais_244N_D012_02CS.pdf
free Plastic sealed N approx. FBR244G005/02 FBR244NG005/02 4.5 VDC 36 125 mA 3.1 VDC 0.20 VDC T FBR244G006/02 FBR244NG006/02 6 VDC 66 91 mA 4.0 VDC 0.27 VDC Approx. Approx. Approx. FBR244G009/02 FBR244NG009/02 9 VDC 140 64 mA 6.0 VDC 0.38 VDC 550 mW 250 mW 50
in „230 V~ schalten: Wie mache ich es sicher?“ · 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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PDF
ADM660_8660.pdf
–3.4 80 l A V m2.5 – – E–3.8 60 % N G – E2.0 T C R LV = GND L N U VOLTAGE DOUBLER V I C1.5 T–4.2 40 I L P V OUT F P T E U1.0 O S –4.6 20 0.5 LV = GND VOLTAGE INVERTER –5.0 0 0 1 10 100 1000 0 20 40 60 80
in „[V] 48St. AnalogDevice ADM660 SMD CMOS Switched-Capacitor Voltage Converters / Inverts or Doubles“ · Markt ·
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PDF
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
in „5 mm LED knicken - Pfusch?“ · Analoge Elektronik und Schaltungstechnik ·
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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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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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eao_Serie_31.pdf
31-745.0292 4 1 8 21 0.010 2 D MA UT 31-720.0292 31-716.0292 31-750.0292 4 1 8 8 0.010 M UT 31-712.0292 31-708.0292 31-746.0292 4 1 8 22 0.010 - MA S 31-282.0252 31-262.0252 31-272.0252 1 8 9 0.008 M S 31-152.0252 31-122.0252 31-132.0252 1 8 23 0.008 3 NC + 3 NO - MA S 31-283.0252 31-263.0252 31-273.0252 1 8 6 0.010 M S 31-153.0252 31-123.0252 31-133.0252 1 8 20 0.010 4 NC + 4 NO - MA S 31-284.0252 31-264.0252 31-274.0252 1 8 5 0.012 M S 31-154.0252 31-124.0252 31
in „[S] Custom Tastaturkappen mit individueller Beschriftung“ · Markt ·
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PDF
eao_Serie_31.pdf
31-745.0292 4 1 8 21 0.010 2 D MA UT 31-720.0292 31-716.0292 31-750.0292 4 1 8 8 0.010 M UT 31-712.0292 31-708.0292 31-746.0292 4 1 8 22 0.010 - MA S 31-282.0252 31-262.0252 31-272.0252 1 8 9 0.008 M S 31-152.0252 31-122.0252 31-132.0252 1 8 23 0.008 3 NC + 3 NO - MA S 31-283.0252 31-263.0252 31-273.0252 1 8 6 0.010 M S 31-153.0252 31-123.0252 31-133.0252 1 8 20 0.010 4 NC + 4 NO - MA S 31-284.0252 31-264.0252 31-274.0252 1 8 5 0.012 M S 31-154.0252 31-124.0252 31
in „Taster für Kanalumschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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153802-da-01-en-Hall-Sensor_TLE4945L.pdf
07-01 TLE 4905 L; TLE 4935 L; TLE 4935-2 L; TLE 4945 L; TLE 4945-2L AC/DC Characteristics 3.8 V ≤V S≤ 24 V; — 40°C ≤ Tj ≤ 150 °C Parameter Symbol Limit Values Unit Test Condition Test min. typ. max. Circuit Supply current ISHigh — 3 7 mA B < BRP 1 ISLow — 4 8 mA B > BOP 1 Output saturation V QSat —
in „Welchen Hall- Sensor für Magnetfeld/Strommessung?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
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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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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PDF
datenblatt-179345-stmicroelectronics-l78s05cv-spannungsregler-linear-typ78-to-220ab-positiv-fest-5-v-2-a.pdf
data Type STD - ST Dual Gauge Type STD - ST Single Gauge Dim. mm. mm. Min. Typ. Max. Min. Typ. Max. A 4.40 4.60 4.40 4.60 b 0.61 0.88 0.61 0.88 b1 1.14 1.70 1.14 1.70 c 0.48 0.70 0.48 0.70 D 15.25 15.75 15.25 15.75 D1 1.27 E 10.00 10.40 10.00 10.40 e 2.40 2.70 2.40 2.70 e1 4.95 5.15 4.95 5.15 F 1.23 1.32
in „TL431 schwankt wie verrückt!“ · Analoge Elektronik und Schaltungstechnik ·
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HCPL4100.pdf
than 10% i-o of one bit time. 3.0 3.5 1.3 2.8 VCC = 5 V VCC = 5 V IO VI= 2 V 3.0 VI= 0.8 V V 2.6 20 mA V A 1.2 E E 2.5 – G 2.4 G T 1.1 T 12 mA T E O 2.2 O 2.0 R 1.0 V V U VO U 2.0 2 mA U 1.5 E 27 V T T C 0.9 U 1.8 U VCC= 5 V P – – 1.0 VI= 2 V – 0.8 20 V O 1.6 O TA= 25 °C I V V 1.4 0.5 0.7 1.2 0 0.6 -40
in „Datenübertragung 1km“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM324.PDF
15V, over temp. 5 8 5 8 VIN=+1V, VIN=0V, V O200mV 12 50 12 50 A SC Short-circuit current 10 40 60 10 40 60 mA GBW Unity gain bandwidth 1 1 MHz SR Slew rate 0.3 0.3 V/ s VNOISE Input noise voltage f=1kHz 40 40 nV/÷Hz V Differential input voltage V V V DIFF CC CC 1995 Nov 27 3 Philips Semiconductors
in „Messschieber auslesen ATMega + LM234“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM324.pdf
15V, over temp. 5 8 5 8 VIN=+1V, VIN=0V, V O200mV 12 50 12 50 A SC Short-circuit current 10 40 60 10 40 60 mA GBW Unity gain bandwidth 1 1 MHz SR Slew rate 0.3 0.3 V/ s VNOISE Input noise voltage f=1kHz 40 40 nV/÷Hz V Differential input voltage V V V DIFF CC CC 1995 Nov 27 3 Philips Semiconductors
in „Verständnisfragen zu OpAmps“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
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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PDF
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
in „230V Dimmer µC gesteuert“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IEE_03602-105-05220.pdf
–160–05440 4 X 40 5.00mm 3.30mm 4.9mm Table 3–2 Display Character Fonts SIZE CODE IDENT NO. S036X2–XXX–XXXXX Industrial Electronic Engineers, Inc. A 05464 Van Nuys, California SCALE N/A REV N SHEET 11 of 49 01/27
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PDF
IEE_03602-105-05220.pdf
–160–05440 4 X 40 5.00mm 3.30mm 4.9mm Table 3–2 Display Character Fonts SIZE CODE IDENT NO. S036X2–XXX–XXXXX Industrial Electronic Engineers, Inc. A 05464 Van Nuys, California SCALE N/A REV N SHEET 11 of 49 01/27
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PDF
X100-LE_AB_A2A.pdf
Current ( blue ) Relative Luminous Intensity IF = f(V F);T board= 25 °C ΙV V(25 °C)= f(T j;IF = 750 mA (A) / 500 mA (B) OHL02490 3 OHL02695 1.6 Φ A V F Φ V(25˚C) 1.2 0 10 1.0 0.8 5 amber blue 0.6 0.4 0.2 -1 10 0-40 -20 0 20 40 60 ˚C 100 2 2.5 3 3.5 4 4.5 V 5.5 V F Tj 2005-10-12 8 LE AB A2A Dominante Wellenlänge
in „[V] Hochleistungs-LED-Module auf Metallkernplatine“ · Markt ·
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PDF
Optokoppler_ACPL-T350.pdf
VCC = 15 to 30 V E -2 EE G -1 V EE= 0 V R VEE = 0 V G T R T O C1.6 O -3 T H V U -2 I G T H H O T1.4 U -4 H P T I T U - -3 U1.2 - -5 100 ° ) - )C C H C 25 °C - I - -40 C H -4 1.0 O-6 V -40 -20 0 20 40 60 80 100 -40 -20 0 20 40 60 80 100 ( 0 0.5 1.0 1.5 2.0 2.5 ( T A TEMPERATURE - °C TA- TEMPERATURE
in „Frage zur Optokoppler“ · Mikrocontroller und Digitale Elektronik ·
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LT1498.pdf
V = 3V l ±10 ±20 mA S IS Supply Current per Amplifier l 1.9 2.6 mA GBW Gain-Bandwidth Product (Note 7) l 6.1 9 MHz SR Slew Rate (Note 8) V = 5V, A = –1, R = Open, V = 4V l 2.5 4.0 V/μs S V L O l V S= 3V,VA = –1,LR = Open
in „KSQ für LED mit OPV“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
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
in „Suche Protection IC“ · Analoge Elektronik und Schaltungstechnik ·
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ULN2803.pdf
1.1 1.3 V C = 350 mA, B = 500 A Ñ 1.3 1.6 V Input Current IN(ON) 3 ULx2803x VIN= 3.85 V Ñ 0.93 1.35 mA ULx2804x V = 5.0 V Ñ 0.35 0.5 mA IN V = 12 V Ñ 1.0 1.45 mA IN IN(OFF) 4 All C = 500 A, TA= 70°C 50 65 Ñ A Input Voltage VIN(ON) 5 ULx2803x VCE = 2.0 VC l = 200 mA Ñ Ñ 2.4 V VCE = 2.0 V,CI = 250 mA Ñ
in „ULN2803 + Relais, weitere Freilaufdiode nötig?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LRTB_GVTG_15_.pdf
Intensity I /I (25 °C) = f (T ); I = 20 mA; red I /I (25 °C) = f (T ); I = 20 mA; true green; V V S F V V S F Iv 1,6 LRTB GVTG Iv 1,2 LRTB GVTG Iv(25°C) Iv(25°C) 1,4 1,0 1,2 0,8 1,0 0,8 0,6 0,6 0,4 0,4 0,2 0,2 0,0 0,0 -40 -20 0 20 40 60 80 100 -40 -20 0 20 40 60 80 Tj[°C] Tj[°C] Relative Lichtstärke
in „LRTBGVT erstellen(LTspice)“ · Analoge Elektronik und Schaltungstechnik ·
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tl431.pdf
traditional and new thermal metrics, see the IC Package Thermal Metrics application report (SPRA953). 7.4 Recommended Operating Conditions See (1) MIN MAX UNIT VKA Cathode voltage Vref 36 V I Cathode current 1 100 mA KA TL43xxC 0 70 TA Operating free-air temperature TL43xxI –40 85 °C TL43xxQ –40 125 (1)
in „Analogeingang: Problem bei Überlast“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
datenblatt-1184984-stmicroelectronics-le50abz-ap-spannungsregler-linear-to-92-3-positiv-fest-100-ma.pdf
I = 100 mA 0.2 0.4 V Dropout voltage O V d I = 100 mA, T = -40 to 125°C 0.5 O J V Control input logic low T = -40 to 125°C 0.8 V IL J V Control input logic high T = -40 to 125°C 2 V IH J I Control input current
in „Spannungsregler Schaltung funzt nit?!“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LRTB_G6TG_Pb_free.pdf
Current Relative Luminous Intensity IF = f(V F);T A = 25 °C; blue, true green IV V(25 °C)= f(T j;IF = 20 mA OHL03513 10 2 OHL02359 1.6 I V mA IV(25˚C) IF 5 1.4 1.2 1 10 1.0 5 blue 0.8 truegreen red 0.6 0 10 2.5 3 3.5 4 4.5 V 5 0.-40 -20 0 20 40 60 ˚C 100 VF Tj 2009-03-18 9 LRTB G6TG Dominante Wellenlänge 6
in „LRTB G6GT Eagle-Library“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MCP73832T.pdf
external components • Four Voltage Regulation Options: required make the MCP73831/2 ideally suited for - 4.20V, 4.35V, 4.40V, 4.50V portable applications. For applications charging from a • Programmable Charge Current: 15 mA to 500 mA USB port, the MCP73831/2 adhere to all the specifications governing the
in „LiPo-Charger mit MCP73832T“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MCP73831-2_ENG_TDS.pdf
external components • Four Voltage Regulation Options: required make the MCP73831/2 ideally suited for - 4.20V, 4.35V, 4.40V, 4.50V portable applications. For applications charging from a • Programmable Charge Current: 15 mA to 500 mA USB port, the MCP73831/2 adhere to all the specifications governing the
in „LiPo-IC MCP73831 kennt keine Ladeschlussspannung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BTB16-600C.pdf
H IT= 500 mA I - II - III Max. 25 50 mA I - III - IV 40 50 IL IG= 1.2 GT Max. mA II 80 100 dV/dt (2) V D 67 % V DRM gate open, j = 125 °C Min. 200 400 V/µs (dV/dt)c(2) (dI/dt)c = 5.3 A/ms, T = 125 °C Min. 5 10 V/
in „Leistung für Gatewiderstand Triac“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
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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asus-p701-unlocked.pdf
AJ18 MA_DQ27 AM22 SA_DQ26 E SA_DQS4# AM5 MA_DQS#5 AH11 SB_DQ35 SB_MA3 AK18 MA_DQ28 AL23 SA_DQ27 T SA_DQS5# AH1 MA_DQS#6 AH10 SB_DQ36 SB_MA4 AJ19 MA_DQ29 AM24 SA_DQ28 S SA_DQS6# AE4 MA_DQS#7 AJ9 SB_DQ37 R SB_MA5
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ucc3806.pdf
= 2.0 V 2.5 mA V Low-level output voltage, SYNC I = 1 mA 0.4 OL OUT VOH High-level output voltage, SYNC IOUT = -4 mA 2.4 V VIL Low-level input voltage, SYNC V CT= 0 V, VRT = VREF 0.8 VIH High-level input voltage, SYNC
in „$40 GDI inverter, neuerdings qualitätsprobleme?“ · Haus & Smart Home ·
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PDF
HCPL-063.pdf
= 3.3 V N 10 T F = 5.0 mA PRODUCTS ONLY R VE= 2.0 V* R L U F = 250 µA R O0.6 C 10 U 8 T T * FOR SINGLE C U0.5 P CHANNEL L RL= 350 Ω T T PRODUCTS O 6 U0.4 U ONLY S R L 1 KΩ O L E E 0.3 O = 13 mA E 5 H 4 V E T L L T 0.2 H P 2 O
in „Logic Gate Optocoupler“ · Mikrocontroller und Digitale Elektronik ·
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75453.pdf
current V = 30 V 300 100 A OH I Input current at maximum input volVaCC = MAX, VI= 5.5 V 1 1 mA IH High-level input current V CC = MAX, VI= 2.4 V 40 40 A I Low-level input current V = MAX, V = 0.4 V –1.1 –1.6 –1.1 –1.6 mA IL CC I CCH Supply current, outputs high V CC = MAX, VI= 0 11 14 11 14 mA
in „Suche Datenblatt“ · Mikrocontroller und Digitale Elektronik ·
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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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Schmitt-Trigger_641279.pdf
4.4 1.65 1.29 1.52 1.29 I = −4 mA OH 2.3 1.9 2.15 1.9 IOH = −8 mA 3.0 2.4 2.80 2.4 V IOH = −16 mA 3.0 2.3 2.68 2.3 IOH = −24 mA 4.5 3.8 4.20 3.8 IOH = −32 mA www.fairchildsemi.com 2 N C DC Electrical Characteristics
in „Steile Flanke erzeugen“ · Mikrocontroller und Digitale Elektronik ·
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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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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 „Fragen zur Magnetkraft?“ · Mikrocontroller und Digitale Elektronik ·
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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 ·