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BD650.pdf
BD650 -0.5 mA CE B V CE= -60 V IB= 0 BD652 -0.5 V = -60 V I = 0 BD646 -0.2 CB E V CB= -80 V IE= 0 BD648 -0.2 V CB= -100 V IE= 0 BD650 -0.2 Collector cut-off V CB= -120 V IE= 0 BD652 -0.2 ICBO mA current V CB= -40
in „Kann man das so machen? PNP Schaltung“ · Analoge Elektronik und Schaltungstechnik ·
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74HC_HCT245.pdf
operating conditions; voltages are referenced to GND (ground = 0 V). Symbol Parameter Conditions 25 °C -40 °C to +85 °C -40 °C to +125 °C Unit Min Typ Max Min Max Min Max 74HC245 VIH HIGH-level V CC = 2.0 V 1.5 1.2 - 1.5 - 1.5 - V input voltage V CC = 4.5 V 3.15 2.4 - 3.15 - 3.15 - V V CC = 6.0 V 4.2 3.2
in „Chip gesucht: magischer Rauch in Beckhoff EL2124“ · Mikrocontroller und Digitale Elektronik ·
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Formelsammlung_BWLT_2010_04_26_1_.pdf
..............................................................................................13 2.4. Buchungsregeln..............................................................................................................13 2.4.1. Konten vergl. Tabelle 4 (S. 13).................................
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B82789C513N002_CAN_BUS_Drossel.pdf
typ R max test µH µH mA mΩ VDC, 2 s gold-plated terminals tinned terminals 11 0.06 300 250 250 B82789C0113N001 B82789C0113N002 22 0.10 250 580 250 B82789C0223N001 B82789C0223N002 22 3.0 250 580 250 B82789S0223N001 B82789S0223N002
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W78E051C40DL_4170039.pdf
8.1 Program Fetch Cycle S1 S2 S3 S4 S5 S6 S1 S2 S3 S4 S5 S6 XTAL1 TALW ALE TAPL PSEN TPSW T AAS PORT 2 T TAAH PDA TPDH, TPDZ PORT 0 Code A0-A7 Data A0-A7 Code A0-A7 Data A0-A7 8.2 Data Read Cycle S4 S5 S6 S1 S2 S3 S4 S5 S6 S1
in „Winbond W78E051 programmieren - kennt ihr compiler? woher ISP?“ · Mikrocontroller und Digitale Elektronik ·
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BC107.pdf
12 pF EBO C EB Capacitance NF Noise Figure I = 0.2 mA V = 5 V 2 10 dB C CE f = 1KHz Rg = 2K B = 200Hz hie Input Impedance IC= 2 mA VCE = 5 V f = 1KHz for BC107 4 K for BC107B 4.8 K hre Reverse Voltage Ratio IC= 2 mA VCE = 5 V f = 1KHz for BC107 2.2 10 -4 -4 for BC107B 2.7 10 hoe Output Admittance IC= 2 mA VCE = 5 V f = 1KHz for BC107 30 S for BC107B 26 S ∗ Pulsed: Pulse duration = 300 s, duty cycle ≤ 1 % 2/5 BC107 / BC107B DC Normalized Current Gain.
in „Berechnung Transistorschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BC107.pdf
12 pF EBO C EB Capacitance NF Noise Figure I = 0.2 mA V = 5 V 2 10 dB C CE f = 1KHz Rg = 2K B = 200Hz hie Input Impedance IC= 2 mA VCE = 5 V f = 1KHz for BC107 4 K for BC107B 4.8 K hre Reverse Voltage Ratio IC= 2 mA VCE = 5 V f = 1KHz for BC107 2.2 10 -4 -4 for BC107B 2.7 10 hoe Output Admittance IC= 2 mA VCE = 5 V f = 1KHz for BC107 30 S for BC107B 26 S ∗ Pulsed: Pulse duration = 300 s, duty cycle ≤ 1 % 2/5 BC107 / BC107B DC Normalized Current Gain.
in „Transistor ; Definition von r(BE)“ · Analoge Elektronik und Schaltungstechnik ·
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179191-da-01-en-7809_1A.pdf
Typ. Max. Unit VO Output voltage TJ= 25°C 7.7 8 8.3 V V Output voltage O = 5mA to 1A, PO≤15W 7.6 8 8.4 V O VI= 11.5 to 23V VI= 10.5 to 25V, J = 25°C 80 ΔV O(1) Line regulation mV VI= 11 to 17V, J = 25°C 40 O = 5 mA to 1.5A, TJ= 25°C 100 ΔV O(1) Load regulation mV O = 250 to 750mA, TJ= 25°C 40 Id Quiescent
in „Anfängerfragen zum 7809“ · Analoge Elektronik und Schaltungstechnik ·
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L7800_ST.pdf
Typ. Max. Unit VO Output voltage T J 25°C 7.7 8 8.3 V V Output voltage IO= 5mA to 1A, P O15W 7.6 8 8.4 V O V I 11.5 to 23V V I 10.5 to 25V, J = 25°C 80 ∆V O(1) Line regulation mV V I= 11 to 17V, J = 25°C 40 IO= 5 mA to 1.5A, TJ= 25°C 100 ∆V O(1) Load regulation mV IO = 250 to 750mA, TJ= 25°C 40 Id Quiescent
in „Spannungsversorgung +5v -5v“ · Mikrocontroller und Digitale Elektronik ·
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UCC27201_datasheet.pdf
= 100 mA 0.85 1.1 RD Dynamic resistance, ΔVF / ΔI IVDD – HB = 100 mA and 80 mA 0.6 1 Ω LO GATE DRIVER VLOL Low-level output voltage LO = 100 mA 0.18 0.4 LO = –100 mA, TJ= –40 to 125°C 0.25 0.4 V VLOH High-level output voltage V = V – V LOH DD LO TJ= –40 to 140°C 0.25 0.42 Peak pullup current V = 0 V 3 LO A Peak pulldown current VLO = 12 V 3 HO GATE DRIVER VHOL Low-level output voltage HO = 100 mA 0.18 0.4 T = –40 to 125°C 0.25 0.4 V V High-level output
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BC847S.pdf
VCE = 5 V, f = 1 kHz Open-circuit output admittance h22e - 30 - µS I = 2 mA, V = 5 V, f = 1 kHz C CE Semiconductor Group 3 May-12-1998 BC 847S Total power dissipationP tot = f (T A;T ) S * Package mounted on epoxy 300 mW TS P tot 200 TA 150 100 50 0 0 20 40 60 80 100
in „Dual Transistor npn+pnp bei Reichelt?“ · Analoge Elektronik und Schaltungstechnik ·
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171115-da-01-en-IR_Empfaenger_Modul_TSOP_4838.pdf
1.2 1.5 mA S v SD V = 5 V, E = 40 klx, sunlight I 1.5 mA S v SH Supply Voltage V S 4.5 5.5 V Transmission Distance E v 0, test signal see fig.1, IR d 35 m diode TSAL6200, I F = 250 mA Output Voltage Low (Pin 1)
in „IRMP - Infrared Multi Protocol Decoder“ · Projekte & Code ·
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bq2085.pdf
00 00 0x35 0x36 Last Measured Discharge 3600 mAh 0e 10 0x37 0x38 Cycle Count Threshold 2880 mAh 0b 40 0x39 0x3a Charging Voltage 12600 mV 31 38 0x3b 0x3c Precharge Voltage 8000 mV 1f 40 0x3d 0x3e Fast-Charging Current 2500 mA 09 c4 0x3f 0x40 Maintenance Charging Current 0 mA 00 00 0x41 0x42 Precharge
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LTC3490.pdf
Voltage (Note 3) 0.9 1 V I LED Drive Current V = V , DD Package LED(MAX) 25°C to 85°C IN 330 350 370 mA –40°C to <25°C 310 350 385 mA VCTRL/SHDN = VIN S8 Package 25°C to 85°C 337 350 363 mA –40°C to <25°C 325 345 365 mA ILED(SHDN) LED Drive Current in Shutdown VCTRL/SHDN = 0V 0.1 1 µA V Output Compliance
in „Step Up Wandler 1.5V -> 3.2 V“ · Mikrocontroller und Digitale Elektronik ·
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s202se2_e.pdf
contact a local SHARP sales representative to see the actual status of the production. Sheet No.: D4-A03301EN 5 S202SE2 Series Fig.1 Forward Current vs. Fig.2 RMS ON-state Current vs. Ambient Temperature Ambient Temperature 60 4 50 ) ( ) s A ( ( 40 I 3 t n e r r 30 c c t 2 a s w 20 N o O F S M 1 10
in „Solid State Relais an 3,3 Volt PIC“ · Analoge Elektronik und Schaltungstechnik ·
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MCP6562.pdf
) StDev = 6.6 µV/°C ) Avg. = 10.4 µV/°C Avg. = 12 µV/°C ( 1380 Units ( StDev = 0.6 µV/°C StDev = 0.6 µV/°C s40% T = -40°C to +125°C s 40% c A c e30% e 30% r r u20% u 20% c c 1380 Units O O 10% 10% TA= -40°C to 125°C VCM= SS 0% 0% -60
in „Schmitttrigger mit MCP6562 unklare Abweichung“ · Analoge Elektronik und Schaltungstechnik ·
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MOC3020_MOC3021_MOC3022_MOC3023_TEX.pdf
volIOg= 15 mA, See Figure 1 0.15 V/ s MOC3020 15 30 MOC3021 8 15 I Input trigger current, O utpt supply voltage = 3 V mA FT either direction MOC3022 5 10 MOC3023 3 5 V Peak on-state voltage, either direction I = 100 mA 1.4 3 V TM TM H Holding
in „2KW Ohm, 0.5KW Induktive Last Dimmer Endstufe?“ · Analoge Elektronik und Schaltungstechnik ·
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MOC3022.pdf
volIOg= 15 mA, See Figure 1 0.15 V/ s MOC3020 15 30 MOC3021 8 15 I Input trigger current, O utpt supply voltage = 3 V mA FT either direction MOC3022 5 10 MOC3023 3 5 V Peak on-state voltage, either direction I = 100 mA 1.4 3 V TM TM H Holding
in „Blitzröhre zünden, Optotriac statt Triac möglich?“ · Analoge Elektronik und Schaltungstechnik ·
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D_CH23103.pdf
refin4,5 V – 2,7 V = 1,8 V. Exakte Wiedergabe der Stromform am Wandlerausgang Da V Rim= R imI S I =S36 mA. Schnelle Schaltvorgänge, wie bei IGBTs (IGBT = Insulated mit R = 50 Ω. im Gate Bipolar Transistor),
in „Transducer LEM HAIS-50“ · Mikrocontroller und Digitale Elektronik ·
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D_CH23103.pdf
refin4,5 V – 2,7 V = 1,8 V. Exakte Wiedergabe der Stromform am Wandlerausgang Da V Rim= R imI S I =S36 mA. Schnelle Schaltvorgänge, wie bei IGBTs (IGBT = Insulated mit R = 50 Ω. im Gate Bipolar Transistor),
in „LTS25-NP Stromwandler am ATmega -> Spannungsverstärkung muss wohl her“ · Mikrocontroller und Digitale Elektronik ·
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D_CH23103.pdf
refin4,5 V – 2,7 V = 1,8 V. Exakte Wiedergabe der Stromform am Wandlerausgang Da V Rim= R imI S I =S36 mA. Schnelle Schaltvorgänge, wie bei IGBTs (IGBT = Insulated mit R = 50 Ω. im Gate Bipolar Transistor),
in „Messung mit Stromwandler LTSR 15-NP“ · Analoge Elektronik und Schaltungstechnik ·
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D_CH23103.pdf
refin4,5 V – 2,7 V = 1,8 V. Exakte Wiedergabe der Stromform am Wandlerausgang Da V Rim= R imI S I =S36 mA. Schnelle Schaltvorgänge, wie bei IGBTs (IGBT = Insulated mit R = 50 Ω. im Gate Bipolar Transistor),
in „Wo Entstörkondensatoren in meiner Schaltung?“ · Mikrocontroller und Digitale Elektronik ·
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D_CH23103.pdf
refin4,5 V – 2,7 V = 1,8 V. Exakte Wiedergabe der Stromform am Wandlerausgang Da V Rim= R imI S I =S36 mA. Schnelle Schaltvorgänge, wie bei IGBTs (IGBT = Insulated mit R = 50 Ω. im Gate Bipolar Transistor),
in „Strommessung mit Hallsensor“ · Mikrocontroller und Digitale Elektronik ·
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LTSR.pdf
refin4,5 V – 2,7 V = 1,8 V. Exakte Wiedergabe der Stromform am Wandlerausgang Da V Rim= R imI S I =S36 mA. Schnelle Schaltvorgänge, wie bei IGBTs (IGBT = Insulated mit R = 50 Ω. im Gate Bipolar Transistor),
in „LEM-Wandler Datenblatt“ · Analoge Elektronik und Schaltungstechnik ·
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D_CH23103.pdf
refin4,5 V – 2,7 V = 1,8 V. Exakte Wiedergabe der Stromform am Wandlerausgang Da V Rim= R imI S I =S36 mA. Schnelle Schaltvorgänge, wie bei IGBTs (IGBT = Insulated mit R = 50 Ω. im Gate Bipolar Transistor),
in „Stromsensor von LEM prüfen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
txb0108.pdf
recommended operating free-air temperature range (unless otherwise noted) PARAMETER TEST V V T A 25°C –40°C to 85°C UNIT CONDITIONS CCA CCB MIN TYP MAX MIN MAX 1.2 V 1.1 VOHA IOH = –20 mA V 1.4 V to 3.6 V VCCA – 0.4 1.2 V 0.9 VOLA IOL= 20 mA V 1.4 V to 3.6 V 0.4 VOHB IOH = –20 mA 1.65 V to 5.5 V VCCB – 0.4
in „Logic Level Converter / Adafruit 8 Channel“ · Analoge Elektronik und Schaltungstechnik ·
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MC33290-single-wire.pdf
TEMPERATURE (°C) TA, AMBIENT TEMPERATURE (°C) Figure 2. ISO Input Threshold/V BB vs. Temperature Figure 4. ISO Fall Time vs. Temperature 0.95 ) 0.7 µ ) ( V = 5.25 V, V = 18 V s 0.9 A DD BB Pd H-L ( V = 5.25 V, V = 18 V L 0.6 E DD BB E V DD= 4.75 V, BB= 8.0 V I 0.85 D T O 0.5 L T F 0.8 A G S P 0.4 ,)0.75
in „RX und TX auf einer Leitung“ · Mikrocontroller und Digitale Elektronik ·
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OPA128KM.pdf
vs TEMPERATURE vs SUPPLY VOLTAGE 4 4 3 6 z z H 3 3 ) H ) ( µ (2 4 µ t V t V i e i + Slew e d 2 2 a d a n R n – Slew R B e B e i S i1 2 S a a G 1 1 G 0 0 0 0 –75 –50 –25 0 25 50 75 100 125 0 5 10 15 20 Ambient Temperature (°C) Supply Voltage
in „OPA 128 KM - veraltet?“ · Mikrocontroller und Digitale Elektronik ·
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Maestro_GPS_Receiver_A2035_H_Product_Brief_v13.pdf
Average current draw One Socket Protocol Protocol extension for SiRFstarIV Full power mode (searching) 40 mA (TBC) Baud rate 57.6k (default) Full power mode (tracking) 29 mA (TBC) Switchable 1,200 to 115.2k PTF mode 4.1 mA (TBC) Ports Tx (Binary output) Rx (Binary input) MPM / SiRFaware 40 μA (TBC) SPI -
in „Schlampiges GPS-Receiver Datenblatt (Maestro 2035-H)“ · Mikrocontroller und Digitale Elektronik ·
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SG6105A.pdf
5 A — P o 5.7 2.6 00 w e r ) 5.5 2.5 50 S A ) u ( ( p P 5.3 F 2.5 00 l - R y C V S I u 5.1 2.4 50 p e r 4.9 2.4 00 v -40 -25 -10 5 20 35 50 65 80 95 110 125 -40 -25 -10 5 20 35 50 65 80 95 110 1 25 s o Temperature (°C) Temperature (°C) + R Figure
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AT24C01A_02_04_08_16__2001_.pdf
°C) AT24C02-10TC-2.7 8T 1500 4 100 AT24C02-10PI-2.7 8P3 Industrial AT24C02N-10SI-2.7 8S1 (-40°C to 85°C) AT24C02-10TI-2.7 8T 10 1000 4 100 AT24C02-10PC-2.5 8P3 Commercial AT24C02N-10SC-2.5 8S1 (0°C to 70°C) AT24C02-10TC-2.5 8T 1000
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TL77xx.pdf
LOAD RESISTANCE 42 7 VCC = 5 V VCC = 5 V C = 0.1 F CT= 0.1 F T 6 C = 10 pF 38 CL= 10 pF L TA= 25⋅C s TA= 25⋅C s 5 n – e 34 e m T T n 4 n 30 i RESET tf t RESET tr e e s 3 s a A 26 D t – 2 t RESET tr 22 RESET t f 1 18 0 0 2 4 6 8 10 0 2 4 6 8 10 R – Load Resistance – k RL– Load Resistance – k L Figure
in „uC Powersupply Supervision“ · Mikrocontroller und Digitale Elektronik ·
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TL77xx.pdf
LOAD RESISTANCE 42 7 VCC = 5 V VCC = 5 V C = 0.1 F CT= 0.1 F T 6 C = 10 pF 38 CL= 10 pF L TA= 25⋅C s TA= 25⋅C s 5 n – e 34 e m T T n 4 n 30 i RESET tf t RESET tr e e s 3 s a A 26 D t – 2 t RESET tr 22 RESET t f 1 18 0 0 2 4 6 8 10 0 2 4 6 8 10 R – Load Resistance – k RL– Load Resistance – k L Figure
in „Wie sprunghafte Bereitstellung der Betriebsspannung für MC realisieren?“ · Mikrocontroller und Digitale Elektronik ·
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2n3958.pdf
100 nA 5 ) s I @ I = 200 mA A – G D ( o 10 nA n 4 2.6 w r DSS a TA= 125_C u d e n gfs r g 1 nA a 3 2.2 n k I @ 125_C D c e GSS 50 mA n n L 100 pA t u a 200 mA 50 mA r t G a 2 1.8 n – S e G 10 pA – m I T = 25_C IGSS@ 25_C S S A I 1 DSS @ VDS = 15 V,GS = 0 V 1.4 ) gfs V DG = 15 V,GS = 0 V 1 pA f = 1 kHz 0 1 0.1 pA 0 –1 –2 –3 –4 –5 0 10 20 30 40 50 VGS(off)Gate-Source Cutoff Voltage (V) VDG – Drain-Gate Voltage (V) Output
in „JFET prüfen mit transistortester“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
2n3958.pdf
100 nA 5 ) s I @ I = 200 mA A – G D ( o 10 nA n 4 2.6 w r DSS a TA= 125_C u d e n gfs r g 1 nA a 3 2.2 n k I @ 125_C D c e GSS 50 mA n n L 100 pA t u a 200 mA 50 mA r t G a 2 1.8 n – S e G 10 pA – m I T = 25_C IGSS@ 25_C S S A I 1 DSS @ VDS = 15 V,GS = 0 V 1.4 ) gfs V DG = 15 V,GS = 0 V 1 pA f = 1 kHz 0 1 0.1 pA 0 –1 –2 –3 –4 –5 0 10 20 30 40 50 VGS(off)Gate-Source Cutoff Voltage (V) VDG – Drain-Gate Voltage (V) Output
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UCC28880.pdf
full FB = 0.75 V (> V ) 72 120 µA FL load FB_TH CH0 Charging VDD Cap current VVDD = 0 V, –3.8 –1.6 –0.4 mA I Charging VDD Cap current V = 4.4V, V = 1.25 V –3.40 –1.30 –0.25 mA CH1 VDD FB Internally regulated low V Voltage supply (supplied from 4.5 5.0 5.5 V VDD HVIN pin) VFB_TH FB pin reference threshold
in „230V AC -> 3V3 DC“ · Analoge Elektronik und Schaltungstechnik ·
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file.pdf
used in the first calendar aging study Step Parameters Termination 1 Pause t > 20 s 2 Calculate Once Vstart V 3 Pause t > 20 s 4 Voltage Ramp V1= V start V > 4.2 V Slope = 3 mV/min V2= 4.2 V 5 Charge CV V = 4.2 V I < 100 mA 6 Voltage Ramp V1= 4.2 V V < 3.0 V Slope = –3 mV/min V2= 3.0
in „Pedelec: Akku und Controller verklebt - ist das rechtens ?“ · Fahrzeugelektronik ·
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PDF
L4940xx5__1_.pdf
otherwise specified.) Symbol Parameter Test conditions Min. Typ. Max. Unit V O Output voltage O = 500 mA 4.9 5 5.1 V V O Output voltage O = 5mA to 1.5A,IV = 6.5 to 15 V 4.8 5 5.2 V VI Input voltage O = 5 mA 17 V ΔV Line regulation V = 6 to 17 V, I = 5 mA 4 10 mV O I O I = 5 mA to 1.5 A 8 25 mV ΔV Load regulation
in „Spannungsregler ala 7805 + niedriger Spannungsabfall“ · Analoge Elektronik und Schaltungstechnik ·
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W24257AK_32kx8_SRam.pdf
to VDD, CS = V IH -10 - +10 μA Current or OE = V IH or WE = V IL Output Low Voltage VOL IOL = +8.0 mA - - 0.4 V Output High Voltage VOH IOH = -4.0 mA 2.4 - - V Operating Power IDD CS = V ILI/O = 0 mA 10 - - 170 mA Supply Current Cycle = MIN 12 - - 160 mA Duty = 100% 15 150 mA 20 - - 140 mA Standby Power
in „8 Kanal 50Ms/s AVR Logic-Analyzer“ · Mikrocontroller und Digitale Elektronik ·
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W24257.pdf
to VDD, CS = V IH -10 - +10 μA Current or OE = V IH or WE = V IL Output Low Voltage VOL IOL = +8.0 mA - - 0.4 V Output High Voltage VOH IOH = -4.0 mA 2.4 - - V Operating Power IDD CS = V ILI/O = 0 mA 10 - - 170 mA Supply Current Cycle = MIN 12 - - 160 mA Duty = 100% 15 150 mA 20 - - 140 mA Standby Power
in „Frage zu SRAM Timing“ · Mikrocontroller und Digitale Elektronik ·
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BFR93AR_1.pdf
Fig 9. Gain as a function of frequency; typical values mbb253 mbb254 40 B 30 S BS (mS) NF = 4.0 dB (mS) 20 20 3.5 10 3.0 1.6 3.0 NF = 3.5 dB 2.0 2.5 2.5 0 0 2.3 10 20 20 40 30 0 20 40 60 80 0 20 40 G (mS) 60 GS (mS) S IC= 4 mA; V CE = 8 V; f = 800 MHz; amb = 25 °C. C = 4
in „KiCAD: SOT323 aus libcms scheint defekt zu sein“ · Platinen ·
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QM30HA-H_Transistormodul_Datasheet.pdf
C ) 7 T Tj=125°C s A t 5 U V 4 s 4 ts T t , 3 S s o 2 VCC=300V R E 3 t B1=–I=0.6A T V E I M 10 0 M E T - A 2 G 7 ton R L I 5 tf T O H 4 C V T 3 L 1 I L IC=20A C=30A S 2 Tj=25°C C C=10A Tj=125°C 0 10–1 10–2 2 3 4 5 710
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1W_LED_9_spec.pdf
;FI = 350)A CCT Range Luminous Color (K) Flux(lm) Ordering Code White 5500~6500 80~90 NPT1W0805565S White 5500~6500 90~100 NPT1W0905565S White 5500~6500 NPT1W1005565S 100~110 White 5500~6500 110~120 NPT1W1105565S White 5500~6500 120~130 NPT1W1205565S Warm White 2700~3300 NPT1W0802733S 80~90 Warm White
in „Re: [Sammelbestellung] 6 Pin 3W Power RGB LED“ · Markt ·
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Unknown.pdf
in this case is: REX21 10 V O=V 04+R EX1•REX1 IREX1=S•I4IN 30 33C The value of the external resistors may be obtained as follows: 5 SEX21.9k R VO-V 04 V 04 R EX1= R EX2= S•I4IN , (S-1)•4IN *V04: Output voltage of SI-3000C series 0 1.0 2.0 External ResistorEX1
in „Totalausfall Panasonic AG-7350 (nur noch Hintergrundbeleuchtung der Zeigerinstrumente)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
XTR115_-_4-20mA_Stromquelle.pdf
TYP MAX UNITS OUTPUT Output Current Equation IO IO= IIN• 100 Output Current, Linear Range 0.25 25 mA Over-Scale Limit LIM 32 mA Under-Scale Limit MIN REG = 0, REF= 0 0.2 0.25 mA SPAN Span (Current Gain) S 100 A/A (1) Error IIN= 250 A to 25mA ±0.05 ±0.2 ±0.4 % vs Temperature TA = –40°C to +85°C ±3 ±20
in „Fehlersuche XTR116“ · Mikrocontroller und Digitale Elektronik ·
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dscls.pdf
voltage 2.0 V CC+ 0.3 V VIL Low-level input voltage –0.3 0.8 V VOH High-level TTL output voltage IOH= –4 mA DC (7) 2.4 V High-level CMOS output voltage I = –0.6 mA DC (7), (8) 3.84 V OH VOL Low-level output voltage IOL= 4 mA DC (7) 0.45 V I I/O pin leakage current of dedicatedIinpCC or ground –10 10 µA
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dot_ledstrips_spec_en.pdf
characteristics (recommended) Current pulse duration 0,8 < T i 2,0 ms Current rise time 0 < tr< 0,4 ms Current fall time 0 < tf< 0,4 ms Current pulse amplitude 300 < I A 600 mA Recommended values for 1 DOT: - current pulse amplitude 350 < I < 450 mA A - current pulse duration T i 1ms per dot Release
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ladekuh.pdf
respeI. . . -32V N/C 1 C/S OUT 2 Trickle Bias Output Current . . . . . . . . . . . . . . . . . . . . -40mA Driver Current. . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 80mA C/S- 3 Power Dissipation atAT= 25°C(Note
in „mobile Anlage über Zigarettenanzünder laden?“ · Analoge Elektronik und Schaltungstechnik ·
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IP5306_datasheet_v1.31.pdf
otherwise noted Parameter symbol Test condition MIN TYP MAX Unit Charger system Input voltage V IN 4.65 5 5.5 V Target charge voltage V 4.2 V TRGT Charge current ICHRG VIN current 1.8 A charge Switching frequency s 750 KHZ Trickle charge current ITRKL VIN=5v,BAT=2.7v 100 mA Trickle charge stop voltage
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LM340.pdf
Voltage TJ= 25˚C, 5 mA ≤ I O 1A 4.8 5 5.2 11.5 12 12.5 14.4 15 15.6 V PD≤ 15W, 5 mA ≤ I ≤O1A 4.75 5.25 11.4 12.6 14.25 15.75 V V ≤ V ≤ V (7.5 ≤ V ≤ 20) (14.5 ≤ V ≤ (17.5 ≤ V ≤ 30) V MIN IN MAX IN IN IN 27) ∆V O Line Regulation
in „Suche Schaltung für Spannungsverdoppler von 12V auf 24V“ · Analoge Elektronik und Schaltungstechnik ·