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ST7036.pdf
hold time RS AH6 20 - 20 - — ns Address setup time RS tAW6 20 - 20 - System cycle time RS tCYC6 — 400 - 280 - ns Data setup time D0 to D7 DS6 100 - 80 - — ns Data hold time D0 to D7 DH6 40 - 20 - Access time D0 to D7 tACC6 - 500 - 400 CL = 100 pF ns Output
in „i2C TWI Modus - ST7036 - DOGM DOGM162 DOGM081 EA DOGM163, ist das Möglich ?“ · Mikrocontroller und Digitale Elektronik ·
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MAX16832-MAX16832C.pdf
1 1.04 6 450 6 8 LEDs T1.03 A ) 400 A X E M μ M R1.02 T 350 LED A C1.01 E 200mA/div L 13LEDs R 300 M D1.00 7LEDs 11LEDs 15LEDs C 250 / I 1LED 3LEDs 5LEDs 9LEDs N A0.99 C 200 0 A R0.98 I 150 N Q V DIM 2 0.97 100 5V/div 3 0 0.96
in „MAX16832 v. ZXLD1362 (LED Treiber)“ · Mikrocontroller und Digitale Elektronik ·
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xlx-s3a-evl-pb-072309F.pdf
»Memory ® ® The Spartan-3A board uses the 400,000 gate 3S400A FPGA from » »32 Mb Spansion MirrorBit Xilinx. With over 8,000 logic cells available, this FPGA is ideal for NOR GL Parallel Flash exploring general logic designs as well as DSP and MicroBlaze
in „[V] Diverses“ · Markt ·
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PDF
SiT1532_rev1p26.pdf
m the smallest footprint and chip-scale packaging. This ( SiT1532 10ppm device reduces the 32 kHz footprint by as much as 85% i Max @ 25C compared to existing 2.0 x 1.2 mm SMD XTAL packages. b Unlike XTALs, the SiT1532 oscillator output enables t y greater component
in „Helium vs. Iphome“ · Offtopic ·
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Art5.pdf
the energy balance corresponding to the upper and lower aluminum 1200 absorbers, respectively: 1000 dT m c 1 +α (T − T ) = I (2) ² 800 Eppley 1 1 dt 1 1 s 0 / Thermistor pyranometer e 600 a a dT I 400 m 2 2 2 +α 2(T2 − T s) = 0 (3) dt 200 08:0009:0010:0011:0012:00 13:0014:0015:0016:0017:00 When m, i aid
in „Sonnenscheindauer Sensor selber bauen Eigenbau ATmega Assembler“ · Projekte & Code ·
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sd_aus_ek_8_9_10.pdf
ande- in der Verwendung von NTC-Wider- A A φ=89˚ EINmax.=9,9A 10 φ=22˚ 9 6 8 6 3 4 IEINmax.3,25A 0 i (t) E (t)-3 E 2 0 -6 -2 -9 -4 -12 0 50 100 150 200 250 300 350 400 450 ms 0 100 200 300 400 500 600 700 800 900 ms Zeitt Zeitt I Bild13.DerEinschaltstromverlaufbeimKaltstartdesNetzgerätesQS10.241 I Bild12
in „EMV bei gekauften Schaltnetzteilen verstehen“ · Analoge Elektronik und Schaltungstechnik ·
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TL061CP.pdf
V = 0 TA= 25°C 5 200 5 100 pA IO O TA= Full range 5 3 nA TA= 25°C 30 400 30 200 pA IB Input bias current VO = 0 T = Full range 10 7 nA A –12 –12 V Common-mode T =25°C ±11 to ±11 to V ICR input voltage range A 15 15 R = 10 kΩ, T = 25°C ±10 ±13.5 ±10 ±13.5 VOM Maximum peak
in „Messspannung von Shunt verstärken, kfz“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
PCF8563_6.pdf
voltage interface inactivSCLf= 0 Hz; Tamb = 25 °C; 1.0 - 5.5 V see Figure 20 [1] interface activeSCL= 400 kHz; see Figure 20 1.8 - 5.5 V clock data integrity; T= 25 °C V - 5.5 V amb low IDD supply current interface active; see Figure 19 SCL = 400 kHz - - 800 A SCL = 100 kHz - - 200 A interface inactivSCLf
in „Frage zum Counter der RTC PCF8563“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ADA4807.pdf
17.9µV S R T I 40 N250 I U P G M I200 A 30 R O B R M150 E U B 20 N U 100 N 10 50 2 0 1 0 - –2.8 –2.2 –1.6 –1.0 –0.4 0.2 0.8 1.4 2.0 2.6 3.2 3.8 - –600 –400 –200 0 200 400 600 6 6 INPUT REFERRED OFFSET VOLTAGE (µV
in „LTSpice 24.1.9 AD4807-Simulation schlägt fehl“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
st7036.pdf
hold time RS AH6 20 - 20 - — ns Address setup time RS tAW6 20 - 20 - System cycle time RS tCYC6 — 400 - 280 - ns Data setup time D0 to D7 DS6 100 - 80 - — ns Data hold time D0 to D7 DH6 40 - 20 - Access time D0 to D7 tACC6 - 500 - 400 CL = 100 pF ns Output
in „DOG-M-Display/ST7036 Initialisierung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
st7036.pdf
hold time RS AH6 20 - 20 - — ns Address setup time RS tAW6 20 - 20 - System cycle time RS tCYC6 — 400 - 280 - ns Data setup time D0 to D7 DS6 100 - 80 - — ns Data hold time D0 to D7 DH6 40 - 20 - Access time D0 to D7 tACC6 - 500 - 400 CL = 100 pF ns Output
in „Initialisierungsfolge fuer EA DOGM 163 SPI 3.3V“ · Mikrocontroller und Digitale Elektronik ·
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PDF
st7036.pdf
hold time RS AH6 20 - 20 - — ns Address setup time RS tAW6 20 - 20 - System cycle time RS tCYC6 — 400 - 280 - ns Data setup time D0 to D7 DS6 100 - 80 - — ns Data hold time D0 to D7 DH6 40 - 20 - Access time D0 to D7 tACC6 - 500 - 400 CL = 100 pF ns Output
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ca3080-a.pdf
CURRENT TEST CIRCUIT FIGURE 25. INPUT CURRENT vs INPUT DIFFERENTIAL VOLTAGE SUPPLY VOLTS: V = ±15V T = 25 C S 900 SUPPLY VOLTS: V S ±15V A ) 100 V 800 ( -55 C Ω E 700 ( 10 G E T 600 o C O 25 C N V 500 T 1 S I I 400 E B o R E 300 125 C T I P 0.1 L 200 I P A 100 0.01 0 0.1 1 10 100 1000 0.1 1 10 100 1000
in „Dimensionierung eines OTA in CMOS-Technologie“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Main.pdf
Register (&USIC0_CH1->TBCTR,0xBFFFFFFF,0x40000000); // STBIEN=1 Register (&USIC0_CH1->TCSR,0xFFFFF7FF,0x400); // TDEN=1 Register (&USIC0_CH1->TCSR,0xFFFFFEFF,0x100); // TDSSM=1 // ---------- Programm ----------------------- Page 1 Main.c uint16_t data = 0x0; while(1) { USIC0_CH0->IN[0]=0x0;//ASC Tx: P1.0
in „100x Infineon XMC2Go Board mit ARM Cortex-M0 zu gewinnen“ · Mikrocontroller und Digitale Elektronik ·
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PCA9515_NXP.pdf
the I C-bus by buffering both the data (SDAn) and the clock (SCLn) lines, thus enabling two buses of 400 pF. 2 The I C-bus capacitance limit of 400 pF restricts the number of devices and bus length. Using the PCA9515 enables the system designer to isolate two halves of a bus, thus more devices or longer
in „I2C Repaeter PCA9515A“ · Mikrocontroller und Digitale Elektronik ·
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PDF
I2SBUS.pdf
transmitter with data rate of 2.5MHz (〉 10%) (all values in ns) MIN TYP MAX CONDITION clock period T 360 400 440 T tr360 clock HIGH tHC 160 min > 0.35T = 140 (at typical data rate) clock LOW t LC 160 min > 0.35T = 140 (at typical data rate) delay dtr 300 max < 0.80T = 320 (at typical data rate) hold time htr 100 min > 0 clock rise-timeRC 60 max > 0.15T =tr4 (only relevant in slave mode) Example: Slave receiver with data rate of 2.5MHz (〉 10%) (all values in ns) MIN TYP MAX CONDITION clock period T 360 400 440 T tr360 clock HIGH tHC 110 min < 0.35T
in „I2S Bus mit BASCOM an AtMega“ · Mikrocontroller und Digitale Elektronik ·
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DesignGuide5843revB.pdf
1 1 1 1 C D R I O N G T N E T , R T L R M V N G P L U U L L C O V E C A C L R L S 2C I D I S A T A T S E E 3 E I R G C 4 T B U R T 8 C - S 5 H 4 C M 1 A M H MUX f μ 2 2 P N C 0. D N B B E S A 6 7 0 1 1 R R T T A A M F E A O
in „HMC5843-eval“ · Mikrocontroller und Digitale Elektronik ·
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AN_Statron-Elektronische-Last-3227.1-80-V-DC-25.5-A-200-W.pdf
über eingebauten Lüfter; temperaturgeregelt Schutzfunktionen Lastabschaltung bei >T;>Imax.; >Pmax. und >Umax. Verpolungsschutz über Schutzdiode und Sicherung Aufbau massefrei Arbeitstemperaturbereich 0 ... + 35 °C relative Luftfeuchtigkeit 80% bei 35°C Netzanschluß 230V/ 50Hz - 60Hz
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SMD-QUARTZ-CRYSTAL-SMD03025-4.pdf
27.600 MHz 28.6363 MHz 29.4912 MHz 30.000 MHz 32.000 MHz 32.768 MHz 33.000 MHz 36.000 MHz 36.864 MHz 37.400 MHz 38.400 MHz 40.000 MHz 48.000 MHz 49.152 MHz 50.000 MHz 52.000 MHz 54.000 MHz 55.46667 MHz 62.400 MHz 125.000 MHz 200.000 MHz CRYSTALS ∙ OSCILLATORS ∙ CERAMIC RESONATORS ∙ CERAMIC FILTERS ∙ SAW COMPONENTS
in „Bauteilidentifikation: Quarz oder Oszillator?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
mc33036.pdf
regulatiVn = 5 V to 40 V Full range 1.4 5 mV th CC IB Input bias current VIN = 0 V Full range −20 −400 nA TOTAL DEVICE PARAMETER TEST CONDITIONS T MIN MAX UNIT A VCC = 5 V to 40 V,TC = 1 nF, I Supply current V = V , V > V , Full range 4 mA CC PIN7 CC PIN5 th VPIN2 = GND, all other pins open POST OFFICE
in „SEPIC mit mc33063“ · Analoge Elektronik und Schaltungstechnik ·
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Dr.Arbeit_H-Bruecken.1455549.pdf
400 v v i i 200 v 36 200 v 36 g g V i A V i A i i i i g 0 0 n g 0 0 n t r t r o u o u V C V C -200 -36 -200 -36 -400 -400 0 0.005 0.01 0.015 0 0.005 0.01 0.015 Time in s Time in s (c) POD-LSPWM (d) APOD-LSPWM 400 400 vi v i 200 vg 36 200 v g 36 V i A V i A i i i i e t e t a 0 0 r a 0 0 r o u o u V C V C -200 -36 -200 -36 -400 -400 0 0.005 0.01 0.015 0 0.005 0.01 0.015 Time in s Time in s (e) NLC (f) SVM Figure
in „DIY 10kW/20kWh eta=99% Insel ESS Projektvorstellung“ · Haus & Smart Home ·
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Bild
Schaltplan eines Schaltnetzteils
± 4% Efficiency: ≥ 84% Ripple: ≤ 120 mV pk-pk No Load Consumption: < 0.52 W @ 230 VAC C13 0.33 µF 400 V C12 0.022 µF 400 V C11 0.01 µF 400 V D2 MBR20100 D3 MBR20100 C3 820 µF 25 V L1 200 µH C14 0.1 µF 3.6 A RTN C2 820 µF 25 V C4 820 µF 25 V R1 270 Ω R4 31.6 kΩ 1% R2 1 kΩ U2 PC817A R5 562 Ω 1% R8 4.7
in „Schaltnetzteil startet nicht“ · Analoge Elektronik und Schaltungstechnik · · Schaltpläne
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C_D-TECH_HPR417C_EPM_1515D2.pdf
90 % of Rated Load (%) Temperature (°C) SAFE OPERATI NG AREA L O A D C A PA C ITA N C E v s IN P U T R IS E T IM E L O A D C A PA C ITA N C E v s IN P U T R IS E T IM E (5 V o u t m o d e ls ) (1 5 V o u t m o d e ls ) 6 0 0 6 0 5 0 0 5 0 ) u ( 4 0 0 c 4 0 n i a p 3 0 a 3 0 0 C a S A F E O P E R AT IN G A R E A o S A F E O P E R A T IN G A R E A l 2 0 0 t 2 0 o T T 1 0 0 1 0 0 0 0 5 1 0 1 5 2 0 2 5 3 0 3 5 4 0 4 5 5 0 0 5 1 0 1 5 2 0 2 5 3 0 3 5 4 0 4 5 5 0 R is e Tim e o f In p u t Vo lta g e (m S ) R is e T im e o f In p u t V
in „[V] DC/DC-Wandler In: 15V, Out 2x15V, Ideal zur Dual-Spg.-Versorgung von OPs bei nur Single Spg.“ · Markt ·
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PDF
VishayPrecRes.pdf
pulse voltage U max. i 10 000 P2512 P2010 ) P1206 ( P0805 g P0603 t 1000 P0402 o V s u P l i i 100 m e P 10 0.00001 0.0001 0.001 0.01 0.1 1 10 Pulse Duration t (s) Revision: 24-Jan-12 7 Document Number: 53017 For technical questions, contact: sfer@vishay.com THIS DOCUMENT
in „Auswahl Widerstände für Temp-Messung mit OP“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LTC1864.pdf
1000 V CC= 5V CONV = VCC = 5V TA = 25°C 900 CONV LOW = 800ns 100 ) 800 800 A A A ( ( (700 N N 600 T600 R 10 R E R R R500 C C C L 1 L 400 P400 P P E U U S300 S S V = 5V 0.1 200 VCC = 5V 200 REF SAMPLE = 250kHz 100 0 CONV HIGH = 3.2μS 0 0.01 –50 –25 0 25 50 75 100 125 –50 –25 0 25 50 75 100 125 0.01
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ADC_LTC1865.pdf
1000 V CC= 5V CONV = VCC = 5V TA = 25°C 900 CONV LOW = 800ns 100 ) 800 800 A A A ( ( (700 N N 600 T600 R 10 R E R R R500 C C C L 1 L 400 P400 P P E U U S300 S S V = 5V 0.1 200 VCC = 5V 200 REF SAMPLE = 250kHz 100 0 CONV HIGH = 3.2μS 0 0.01 –50 –25 0 25 50 75 100 125 –50 –25 0 25 50 75 100 125 0.01
in „LTC1865 Halber Messbereich“ · Mikrocontroller und Digitale Elektronik ·
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PDF
manual_MB_IB_LB_SB_TB_230v.pdf
3830200 - Instructions manual Ref. 0425450 LB 3200 230V Ref. 3200200 - 70W solderingiron with tip T-55 D Ref. 3070000 - Control Unit Ref. 3230200 - Soldering iron stand US 1000 Ref. 0290100 - 20W soldering iron with tip B-05 D Ref. 3000000 - Instructions manual Ref. 0425450 - Soldering iron stand LS
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PDF
VN920SP.pdf
100 V 0.1 µs, 50 Ω 4 - 4 V - 5 V - 6 V - 7 V 100 ms, 0.01 Ω 5 + 26.5 V + 46.5 V + 66.5 V + 86.5 V 400 ms, 2 Ω Table 13. Electrical transient requirements on V CC pin (part 2) ISO T/R Test levels results 7637/1 test pulse I II III IV 1 C C C C 2 C C C C 3a C C C C 3b C C C C 4 C C C C 5 C E E E Table
in „[V] Highside-Schalter“ · Markt ·
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PDF
en.CD00003902.pdf
RC network formed by R and can be added; Figure 1. Electronic transformer for 12V Halogen Lamp R C2 T'1 TR1 T1 D C1 C3 T''1 TR2 AN528/0999 1/4 APPLICATION NOTE C1. This can be varied to provide a lamp dimming 3.1 Short Circuit Protection feature. Figure 2 shows a circuit with circuitry to protect Once
in „Paulmann N 105“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SAMWHA_RD.pdf
) Time (hours) Dissipation factor vs. temperature Dissipation factor vs. time 1000 0.5 r 100 r 0.4 t t a a n 10 n 0.3 i i a a i 1 i 0.2 i i D D 0.1 0.1 0.01 0 -100 -50 0 50 100 150 500 1000 2000 Time (hours) Temperature ( C) FREQUENCY CHARACTERISTICS Impedance vs. frequency Leakage current vs. time 10000 100 1000 ) 80 A 100 t ) e ( r 60 e 10 c n e d a 40 p 1 a m e I L 20 0.1 0.01 0 0 1 10 100 500 1000 2000 Frequency (kHz) Time (hours) 80
in „CERAN-Feld Privileg GK66020STC Facette Reparatur“ · Haus & Smart Home ·
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PDF
an528-electronic-transformer-for-a-12v-halogen-lamp-stmicroelectronics.pdf
RC network formed by R and can be added; Figure 1. Electronic transformer for 12V Halogen Lamp R C2 T'1 TR1 T1 D C1 C3 T''1 TR2 AN528/0999 1/4 APPLICATION NOTE C1. This can be varied to provide a lamp dimming 3.1 Short Circuit Protection feature. Figure 2 shows a circuit with circuitry to protect Once
in „Warum gibt es keine AC-Schaltnetzteile“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
cd00003902-electronic-transformer-for-a-12v-halogen-lamp-stmicroelectronics.pdf
RC network formed by R and can be added; Figure 1. Electronic transformer for 12V Halogen Lamp R C2 T'1 TR1 T1 D C1 C3 T''1 TR2 AN528/0999 1/4 APPLICATION NOTE C1. This can be varied to provide a lamp dimming 3.1 Short Circuit Protection feature. Figure 2 shows a circuit with circuitry to protect Once
in „Elektronischen Halogen-Trafo auf LED-Betrieb umrüsten“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ADXL350.pdf
. 1 2 Figure56.I CDeviceAddressing Rev. 0 | Page 19 of 36 ADXL350 Data Sheet Table 12. I C Timing (T = 25°C, V = 2.5 V, V = 1.8 V) A S DD I/O Limit 1, 2 Parameter Min Max Unit Description fSCL 400 kHz SCL clock frequency t 2.5 µs SCL cycle time 1 t2 0.6 µs tHIGH, SCL high time t3 1.3 µs tLOW , SCL low
in „Beschleunigungssensor Unklarheiten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ADXL350.pdf
. 1 2 Figure56.I CDeviceAddressing Rev. 0 | Page 19 of 36 ADXL350 Data Sheet Table 12. I C Timing (T = 25°C, V = 2.5 V, V = 1.8 V) A S DD I/O Limit 1, 2 Parameter Min Max Unit Description fSCL 400 kHz SCL clock frequency t 2.5 µs SCL cycle time 1 t2 0.6 µs tHIGH, SCL high time t3 1.3 µs tLOW , SCL low
in „Neigungswinkelinkelmessung beweglicher Teile“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
db883bb7785064c5f8a8b3b8f50858ea45a7.pdf
measure, LED D2 will glow RED when high-voltage is applied increases to a maximum of 3.5 times Vdd (T 0-T )1 At the end to JP1. L1 is a 21 uH Radio Frequency Choke (RFC) used to of the «off» cycle (T ), the vol1age across the active device block RF from leaving the module via JP1. has decreased to zero
in „Bauplan für HF Netzteil gesucht.“ · HF, Funk und Felder ·
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PDF
k9gag08u0e.pdf
2.10 ACCharacteristicsforOperation Parameter Symbol Min Max Unit Data Transfer from Cell to Register tR - 400 μs ALE to RE Delay AR 10 - ns CLE to RE Delay tCLR 10 - ns Ready to RE Low RR 20 - ns RE Pulse Width RP 15 - ns WE High to Busy WB - 100 ns WP High to WE Low tWW 100 ns Read Cycle Time RC 30 -
in „Handydummy (Attrappe)mit richtigem Display 10Zoll - u.a.Motorola Xoom“ · Mikrocontroller und Digitale Elektronik ·
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PDF
supercap_manual.pdf
1000 (A) at 25˚C 1000 V FS0H105ZF 1kΩ 5V C FS0H474ZF V Charge current I 1000 (A) ) 100 µ 10 FT0H565ZF t ) n µ FT0H335ZF r t FT0H225ZF c FS0H224ZF e FT0H105ZF e r r FS0H104ZF c10 a e C r FT0H474ZF h FT0H224ZF C FS0H473ZF FT0H104ZF 1 1 0.1 100 200 300 400 500 600 700 0 100 200 300 400 500 600 700 Charge
in „Super cap - .1F 5.5V TOKIN“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
HCNR200.pdf
Safety-Limiting Values (Maximum values allowed in the event of a failure, also see Figure 11) Case Temperature T S 150 °C Current (Input Current IF, S = 0) S 400 mA Output Power PS,OUTPUT 700 mW Insulation Resistance at S ,IO = 500 V R S >10 9 *Refer to the front of the Optocoupler section of the current catalog
in „Spannung messen mit Arduino von zwei nicht verbundenen Batteriebänken (Segelboot)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IPP120P04.pdf
= f(V ); T = 25 °C; D = 0; SMD Z = f(t ) D DS C thJC p parameter: t p parameter: D=t /Tp 1000 101 1 µs 10 µs 100 100 µs 100 0.5 1 ms ] ] / [ [ 10-1 0.1 - J t Z 0.05 10 10-2 0.01 single pulse -3 1 10 0.1 1 10 100
in „Highside, FET wird heiß“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SN75176B_TEX.pdf
Differential input voltag(see Note 2) 〉 12 V ID Driver –60 mA High-level output currOHt, I Receiver –400 A Driver 60 Low-level output curreOL, I mA Receiver 8 SN65176B –40 105 Operating free-air temperatAre, T SN75176B 0 70 ⋅C NOTE 2: Differential-input/output bus voltage is measured at the noninverting
in „Welcher Bus für mein Projekt?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
treiber.pdf
Differential input voltag(see Note 2) 〉 12 V ID Driver –60 mA High-level output currOHt, I Receiver –400 A Driver 60 Low-level output curreOL, I mA Receiver 8 SN65176B –40 105 Operating free-air temperatAre, T SN75176B 0 70 ⋅C NOTE 2: Differential-input/output bus voltage is measured at the noninverting
in „RS485 mit SN65176B“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX4465-MAX4469.pdf
VOLTAGE OUTPUT LEAKAGE CURRENT vs. TEMPERATURE vs. FREQUENCY vs. TEMPERATURE 7 0 8 600 9 1000 V = V t t t SHDN CC - d 5 - V OUT= VCC2 6 ( 4 400 4 A I-20 M M 100 M A O 200 ) I ) p E-40 V K N ( E 10 H O 0 I --60 V T L -200 1 N A-80 C -400 0.1 -100 -600 -40 -15 10 35 60 85 0.1 1 10 100 1000 -40 -15 10 35
in „Funktioniert denn kein Mikrofon-Vorverstärker?!?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SN75176B.pdf
Differential input voltag(see Note 2) 〉 12 V ID Driver –60 mA High-level output currOHt, I Receiver –400 A Driver 60 Low-level output curreOL, I mA Receiver 8 SN65176B –40 105 Operating free-air temperatAre, T SN75176B 0 70 ⋅C NOTE 2: Differential-input/output bus voltage is measured at the noninverting
in „STM32 UART Kommunikation -> Langsamer uC Tod“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TGL79XX_DATA_E.pdf
mA to -1 A PO≤ 15 W -19 -20 -21 V VI= -24 to -35 V ∆VO(*) Line Regulation VI= -23 to -35 V TJ= 25°C 400 mV VI= -26 to -32 V TJ= 25°C 200 ∆VO(*) Load Regulation O = 5 mA to 1.5 A TJ= 25°C 400 mV I = 250 to 750 mA T = 25°C 200 O J d Quiescent Current TJ= 25°C 3 mA ∆Id Quiescent Current Change O = 5 mA to
in „Netzteil für Röhrenvorstufe“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ULN200xA_data.pdf
= 25°C I = 250 µA t l I o 2 o 2 V II= 250 µA n I = 350 µA o i a II= 350 µA a u 1.5 II= 500 µA t 1.5 a a S r e e i i II= 500 µA m 1 E 1 r r t t e e l o C 0.5 C 0.5 - )) tt aa (( (( EE 0 EE 0 VC 0 100 200 300 400 500 600
in „[V] Darlington Transistor Arrays, npn, Relaistreiber“ · Markt ·
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Datei
Zeitgeber1.bas
= 2 'gefälschte Sekunden pro Stunde (Debug) 'Den Portpins erstmal sinnvolle/sinnlose Namen geben: T_stu Alias Pinb.3 'Taster Stunden T_tag Alias Pinb.4 'Taster Tage T_dau Alias Pinb.1 'Taster Schaltdauer Led Alias Portb.0 'LED Dialog Aus Alias Portb.2 'Schaltausgang 'Variablen einrichten: Dim Zehntelz
in „Bascom Projekte“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX1700-MAX1701.pdf
ONA = ONB = FB = PGND = GND, OUT = POUT, V OUT = 3.6V (Note 6); MAX1701: AIN = LBN = GND, LBP = REF, T A= 0°C to +85°C, unless otherwise noted. Typical valueA are at T = +25°C.) X PARAMETER CONDITIONS MIN TYP MAX UNITS A DC-DC CONVERTER M Input Voltage Range (Note 1) 0.7 5.5 V Minimum Start-Up Voltage
in „5V Spannung aus Lipo?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mod.patch
12.807116519 +0200 @@ -12,7 +12,8 @@ #define GEN_STACK 1120 #define MAX_PLY 32 -#define HIST_STACK 400 +//#define HIST_STACK 400 +#define HIST_STACK 0x100000 #define LIGHT 0 #define DARK 1 diff -rupN tscp181/main.c tscp181-mod/main.c --- tscp181/main.c 2003-02-05 01:02:40.000000000 +0100 +++ tscp181-
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0710.pdf
0.20 99.7 -0.25 99.6 -0.30 -0.35 99.5 –50 -25 0 25 50 75 100 125 150 –50 -25 0 25 50 75 100 125 150 T (°C) T (°C) A A Total Output Error versus Ambient Temperature 6 5 4 3 ) % 2 T 1 T E 0 -1 -2 -3 –50 -25 0 25 50 75 100 125 150 TA(°C) Typical Maximum Limit Mean Typical Minimum Limit Allegro MicroSystems
in „Stromsensor ACS710“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MAX9812-MAX9813L.pdf
°C extended operating temperature range. PART TEMP RANGE PACKAGE V (V) CC Applications MAX9812LEXT+T -40°C to +85°C 6 SC70 2.7 to 3.6 Notebook Computers MAX9812HEXT+T -40°C to +85°C 6 SC70 4.5 to 5.5 MAX9813LEKA+T -40°C to +85°C 8 SOT23 2.7 to 3.6 PDAs MAX9813HEKA+T -40°C to +85°C 8 SOT23 4.5 to 5.5
in „Richtiger Anschluss einer Elektretkapsel“ · Analoge Elektronik und Schaltungstechnik ·