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24C16.pdf
only and are not tested. IL IH 3 AC Characteristics Applicable over recommended operating range from T = -40 CAto +85 C, V ° CC = +1.8V to +5.5V, CL = 1 TTL Gate and 100 pF (unless otherwise noted). 2.7-, 2.5-, 1.8-volt 5.0-volt Symbol Parameter Min Max Min Max Units fSCL Clock Frequency, SCL 100 400
in „Erstellen eines 24C16 Eeproms in Multisim“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2SD965.pdf
10 Ta= 75°C e V t t e r 400 o t f 25°C v T a 75°C o 25°C n i 25°C n Ta= −25°C t r 0.1 i 1 t 300 t −25°C r 75°C e −25°C s t u e s c 200 i e a e 0.01 i 0.1 w r e o c e F 100 e a o B C0.001 0.01 0 0.01 0.1 1 10 0.01 0.1 1 10 0.01 0.1 1 10 Collector current IC (A) Collector current IC (A) Collector current IC (A) fT I E C obV CB Safe operation area 400 ) 100 100 V CB= 6 V p IE= 0 Single pulse Ta = 25°C ( f = 1 MHz Ta= 25°C o Ta= 25°C z C) 80 H d ) 10 CP M 300 i A ( r ( fT c IC C t = 10 ms c c n 60 n t = 1 s e a
in „CCFL Displaybeleuchtung steuern“ · Mikrocontroller und Digitale Elektronik ·
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tca9548a.pdf
V OL(max) R p(min) I OL (1) The maximum pull-up resistance is a function of the maximum rise time, t (3r0 ns for fast-mode operation, f SCL= 400 kHz) and bus capacitance, C : b t R = r p(max) 0.8473´C b (2) 2 The maximum bus capacitance for an I C bus must not exceed 400 pF for fast-mode operation.
in „plötzl. Spannungsanstieg bei TCA9548a“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DUE_Faradays_law.pdf
_02(double m) { } m0 = m; public override double f(double x) { return m0 * x; } } … and whatif coil400 receives a current in formof a parabola function or sinus function. For Arduino DUEnot aproblem: ifcoil400produce a magnetic field B(t ) I(t )thenthe inducedEMF of coil200 isproportional to thederivativeof
in „Arduino Due in plain C“ · Mikrocontroller und Digitale Elektronik ·
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PDF
X100-LE_AB_A2A.pdf
400 600 mA 1000 I I F F Relative Vorwärtsspannung 2)Seite 17 Relative Forward Voltage 2) page 17 V F -V F(25 °C) f (Tj; F = 750 mA (A) / 500 mA (B) OHL02493 0.5 V ∆V fT j25˚C) 0.3 amber blue 0.2 0.1 0 -
in „[V] Hochleistungs-LED-Module auf Metallkernplatine“ · Markt ·
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A500_KB357NT_V6__1_.pdf
mW Total power dissipation P tot 170 mW *1Isolation voltage V iso 3750 Vrms Operating temperature T opr -30 to +100 °C Storage temperature T stg -40 to +125 °C *2Soldering temperature T sol 260 °C *1 40 to 60%RH, AC for1 minute. *2 For 10 seconds. * Electro-optical Characteristics Parameter Symbol
in „Drehzahlmesser mit Mega8“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Optokoppler.pdf
mW Total power dissipation P tot 170 mW *1Isolation voltage V iso 3750 Vrms Operating temperature T opr -30 to +100 °C Storage temperature T stg -40 to +125 °C *2Soldering temperature T sol 260 °C *1 40 to 60%RH, AC for1 minute. *2 For 10 seconds. * Electro-optical Characteristics Parameter Symbol
in „S0 Ausgang wird von Gerät nicht erkannt, falscher OK?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
w_gWS5.txt
Brückenverstimmung dient eine Wechselspannung von ungefähr 19 kHz. Sie wird in einem Multivibrator (T 106, T 108, T109) erzeugt un der Brückenschal- tung über den Kondensator C 127 mit relativ kleiner Amplitude zugeführt. Über den im Brücken-Nullzweig liegenden Differentialübertrager Ü 104 wird die in
in „Details Wandel und Goltermann WS Wechselspannungsstabilisator WS5 WS6 WS10 und Kaltleiter KL100“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
U2008b.pdf
0.37 µA/mV 3 1 Offset current V = 0, V = -8 V, Pin 3 I 0 3 6 µA 1 3 0 Input voltage Pin 1 -VI 300 400 mV Input offset voltage Pin 1 ±V 0 6 mV Figure 5-1. Ramp Control 250 ) ( α 200 33 nF 10 nF6.8 nF4.7 nF3.3 nF 2.2 nF l g A 150 e a h 100 Cϕ/t = 1.5 nF P 50 0 0 200 400 600 800 1000 R ϕR 8 (kΩ) 7 4712B–AUTO–10/05 Figure 5-2. Pulse Output 120 VGT = -1.2 V 100 80 ) A ( 60 T I 40 20 0 0 200 400 600 800 1000 R (Ω) GT Figure 5-3. Output Pulse Width 400 ∆p /ϕC = 9 µs/nF 300 s ( 200 p t 100 0 0 10 20 30 C (nF) ϕ Figure 5-4. Option Soft Start 1 C5= 1 µF 0 -1 ) 10 µF ( 1 -2 V
in „Phase Control IC u2008b“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM10.pdf
Package 45˚C/W Vapor Phase (60 seconds) 215˚C Infrared (15 seconds) 220˚C Electrical Characteristics T =25˚C, T ≤T ≤T (Boldface type refers to limits over temperature range) (Note 5) J MIN J MAX Parameter Conditions LM10/LM10B LM10C Units Min Typ Max Min Typ Max Input offset voltage 0.3 2.0 0.5 4.0 mV
in „Labornetzgerät als Projekt“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
lm2731.pdf
any ambient temperature for designs using this device can be calculated using the P (MAX) = TJ(MAX) T- A = 125 T A q 265 formula: J A . If power dissipation exceeds the maximum specified above, the internal thermal protection circuitry will protect the device by reducing the output voltage as required
in „[V] 13St. LM2731 0.6/1.6-MHz Boost Converters With 22-V Internal FET Switch in SOT-23 (8€)“ · Markt ·
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PDF
lm2731.pdf
any ambient temperature for designs using this device can be calculated using the P (MAX) = TJ(MAX) T- A = 125 T A q 265 formula: J A . If power dissipation exceeds the maximum specified above, the internal thermal protection circuitry will protect the device by reducing the output voltage as required
in „[V] 13St. LM2731 0.6/1.6-MHz Boost Converters With 22-V Internal FET Switch in SOT-23 (15€)“ · Markt ·
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PDF
Memory_LCD_Theory__Programming__and_Interfaces.pdf
buffer is in RAM. // data - 0: set all bits to 0; 1: set all bits to 1 void MLCD_ClearLines(uint8_t *buffer, uint16_t linnum, uint16_t linecnt, bool data) { uint16_t *fbptr; uint16_t i, j; uint16_t mod_dat; // Sanity checks if(linnum > MLCD_VERT_RES) return; if((linnum + linecnt) > (MLCD_VERT_RES +
in „LS032B7DD02 Datenblatt“ · Mikrocontroller und Digitale Elektronik ·
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LB058WQ1-SD01.pdf
ns Period t 512 528 544 HP Width tWH 8 32 48 Hsyn Horizontal Valid HV - 400 - t c CLK Horizontal Back Porch tHBP 12 64 64 Horizontal Front tHFP 8 32 32 Porch Period VP 250 263 330 Width WV 2 - - Vertical Valid
in „LCD Display Mercedes E-Klasse Pixelfehler“ · Fahrzeugelektronik ·
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OP07_a.pdf
OP07 –TypicalPerformanceCharacteristics 1000 30 25 VS= 15V VS= 15V VS= 15V TA= 25 C,A= 70 C TA= 25 C T 25 T V 800 P P 20 / I V I V V N – 20 N – – E E E E I 600 G G G G15 G N T N T P H O 15 H O O C V THERMAL C V L 400 T E RESPONSE T E10 OP07C N U F 10 BAND U F E L F L F OP07E O S O S O 200 B DEVICE IMMERSED
in „Anfängerfrage Ltspice, Operationsverstärker“ · Analoge Elektronik und Schaltungstechnik ·
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Madli_Full.pdf
1.0u C1 V V+ 2 1 8 2 1.0u 3 1 RS232 4 C1- D 4 MADLI C2 C2+ 6 L k V- 1 5 1.0u 5 1 9 C2- R 4 1 1k 8 11 T1IN T1OUT 14 2 3 TxTTL 10 T2IN T2OUT 7 7 12 R1OUT d R1IN 13 2 RxTTL 9 n 8 MADLI 6 R2OUT G R2IN 1 1 0 C4 1.0u D2 Female LL4148 Figure 5. Simple PC to Ballast and TTL UART to Ballast interface. Circuit
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Linear_Power_MOSFETS_Basic_and_Applications.pdf
a negative slope and is determined by the maximum allowed power dissipation of the device Pd: Pd= [T J (max) T C / ZthJC= V DS D Equation (2) where Z is the junction-to-case transient thermal impedance and T is the thJC J (max) maximum allowed junction temperature of the MOSFET. Figure 2:Typical FBSOA
in „Gleichstromlast MOSFET“ · Analoge Elektronik und Schaltungstechnik ·
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DRV8711.pdf
850 mV OCPTH = 11 840 1000 1200 (1) TSD Thermal shutdown temperature Die temperature 150 160 180 °C t Thermal shutdown hysteresis 20 °C HYS CURRENT SENSE AMPLIFIERS ISGAIN = 00 5 A Gain ISGAIN = 01 10 V/V V ISGAIN = 10 20 ISGAIN = 11 40 ISGAIN = 00, ΔVIN = 400 mV 150 ISGAIN = 01, ΔVIN = 200 mV 300 ns
in „DRV8711 Schrittmotortreiber Fehler“ · Analoge Elektronik und Schaltungstechnik ·
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RGB_Bildsensor_-_D100997D.pdf
color) t1 t2 90% φ1 10% φ2 90% 10% t1' t2' φ1L 90% 10% φ2L 90% 10% t5 t3 t6 t4 t5 t3 t6 t4 φ RB 90% 10% t7 t9 t8 t10t11 t7 t9 t8 t10t11 φ CLB 90% 10% td t RFTN RFTN VOUT VOS 10% Symbol Min. Typ. Max. Unit t1,
in „Pollin 1,95€ RGB Bildsensor - C-Mos Pegel“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Diode.pdf
Rev 12 1/10 www.st.com 10 Characteristics SMAJ 1 Characteristics Table 1. Absolute maximum ratings (T = 25 °C) amb Symbol Parameter Value Unit P PP Peak pulse power dissipation (1) Tjinitial =amb 400 W T stg Storage temperature range -65 to +150 °C T Operating junction temperature range -55 to +150 °
in „Überspannungsschutz ADC“ · Analoge Elektronik und Schaltungstechnik ·
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LM135.pdf
°C Uncalibrated Temperature Error 2 5 4 9 °C TMIN≤ TC ≤ TMAX,RI = 1 mA Temperature Error with 25°C T ≤ T ≤ T , I = 1 mA 0.5 1 1 2 °C MIN C MAX R Calibration Calibrated Error at Extended T = T (Intermittent) 2 2 °C C MAX Temperatures Non-Linearity I = 1 mA 0.3 1.5 0.3 1.5 °C R Electrical Characteristics
in „ADC Vergleichen und Variable ändern“ · Mikrocontroller und Digitale Elektronik ·
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TL074.pdf
DIFFERENTIAL FREE AIR TEMPERATURE VOLTAGE AMPLIFICATION VERSUS FREE AIR TEMPERATURE 100 1000 VCC = 15V ) 400 n 10 E 200 ( G V N T V 100 E L ( R 1 V O 40 U L T C I A 20 S N F 10 VCC = 15V I E L V B 0.1 E P 4 O = 10V U F A R = 2k P I 2 L I D 0.01 1 -50 -25 0 25 50 75 100 125 -75 -50 -25 0 25 50 75 100 125 P
in „LineOut Signal auf 7 Verstärker duplizieren“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Datasheet_DRV8711.pdf
850 mV OCPTH = 11 840 1000 1200 (1) TSD Thermal shutdown temperature Die temperature 150 160 180 °C t Thermal shutdown hysteresis 20 °C HYS CURRENT SENSE AMPLIFIERS ISGAIN = 00 5 A Gain ISGAIN = 01 10 V/V V ISGAIN = 10 20 ISGAIN = 11 40 ISGAIN = 00, ΔVIN = 400 mV 150 ISGAIN = 01, ΔVIN = 200 mV 300 ns
in „DRV8711 Steppermotortreiber - Hohe Geschwindigkeiten“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MAX63xx.pdf
-02 MAX6325 03 2.0 400 1.5 375 0.7 280 0.6 240 1.5 300 1.0 250 0.5 200 1.0 200 0.4 160 ) ) ) ) ) ) V m V0.5 125 m V0.3 120 m (0.5 100 ( ( ( ( ( U T U T U0.2 80 T O O O O O0.1 40 O ∆ 0 0 V ∆ 0 0 ∆ ∆ V ∆ 0 0 ∆ -0.5 -100 -0.1
in „Oszi und DMM selber kalibrieren“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
001123728-da-01-en-IC_SPREF_SERIE_5V_MAX6350EPA__DIP_8_MAX.pdf
-02 MAX6325 03 2.0 400 1.5 375 0.7 280 0.6 240 1.5 300 1.0 250 0.5 200 1.0 200 0.4 160 ) ) ) ) ) ) V m V0.5 125 m V0.3 120 m (0.5 100 ( ( ( ( ( U T U T U0.2 80 T O O O O O0.1 40 O ∆ 0 0 V ∆ 0 0 ∆ ∆ V ∆ 0 0 ∆ -0.5 -100 -0.1
in „Frage zur Spannungsreferenz“ · Mikrocontroller und Digitale Elektronik ·
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PDF
21058F.PDF
Multiply by the number of pages loaded into the write cache for total time. FIGURE 1-2: BUSTIMING DATA tF tR tHIGH tLOW SCL tSU:STA tHD:DAT tSU:DAT t tHD:STA SU:STO SDA t IN SP t tBUF tAA AA SDA OUT 1995 Microchip Technology Inc. DS21058F-page 3 24C65 2.0 FUNCTIONAL DESCRIPTION 3.4 Data Valid (D) The 24C65
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ds.pdf
-55 to +150 ℃ TL Maximum Temperature for Soldering 260 ℃ Short circuit withstand timGEV =15.0VCCV≤ 400V, tsc Allowed number of short circuits<1000Time between 10 us short circuits:≥1.js,T≤150℃ 1 HMG15N60D/HMG15N60/HMG15N60F Thermal Characteristic HMG15N60D Symbol Parameter HMG15N60 HMG15N60F Units RθJC
in „Datenblatt Cypress cca7001“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BTS409L1.pdf
diagram page 7 Turn-on time IN to 90% VOUT : ton 80 200 400 s Turn-off time IN to 10% VOUT : toff 80 200 400 R = 12 ,T =-40...+150°C L j Slew rate on d /dt on 0.1 -- 1 V/ s 10 to 30% V OUT,RL = 12 ,T j=-40...+150°C Slew rate off -d /dtoff 0.1 -- 1 V/ s 70 to
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zxld1366.pdf
Output Current L=68μH 1.100 01 LEDs 03 LEDs 1.080 05 LEDs 07 LEDs 09 LEDs ) 1.060 11 LEDs A 13 LEDs t e 15 LEDs r u 1.040 t p u O 1.020 1.000 0.980 0 10 20 30 40 50 60 Supply Voltage (V) ZXLD1366 Output Current Deviation L=68μH 10% 8% 6% ) ( 4% n t i 2% e D n 0% e u 01 LEDs C -2% 03 LEDs t 05 LEDs p
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PMT_handbook_v4E.pdf
35 Transmission mode photocathodes ) 1800 / 600 ANTUM 50% A 400 QFFIIENCY ( 441K 440K E 25% T 200 V 100 444K % T 80 400S 10 S 60 5% N 40 500U S 500S 500K 2.% T 20 A 10 400U 502K 1% D 8 A 6 400K 0.% Typical spectral re200Mse characteristics of semiconductor crystal
in „Suche nach geeignetem OpAmp als Impedanzwandler“ · Analoge Elektronik und Schaltungstechnik ·
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BYV26D.pdf
see Figs 8 and 9 BYV26A to E − 6.0 A BYV26F and G − 6.4 A FSM non-repetitive peak forward current t = 10 ms half sinj wj maxT = T− 30 A prior to surgeR V RRMmax ERSM non-repetitive peak reverse IR= 400 mA; Tj= j maxrior to − 10 mJ avalanche energy surge; inductive load switched off Tstg storage temperature
in „Wie Reverse Recovery Time messen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Graph.pdf
Lineare Rampe S-Förmige Rampe 1000 3500 1200 3500 900 3000 e 800 c 1000 3000 / / p 700 2500 s 2500 t t 800 s 600 2000 s t t i 2000 e e 500 r e 600 r g 400 1500 c k 1500 c d S d S i 300 1000 i 400 h w 1000 s 200 c e 500 e 200 500 G 100 G 0 0 0 0 0 1 2 3 4 5 6 7 0 1 2 3 4 5 6 Zeit in sec Zeit in sec Geschw
in „rampenbrechnung für schrittmotor“ · Mikrocontroller und Digitale Elektronik ·
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Graph_2.pdf
500000 [Hz] Lineare Rampe S-Förmige Rampe 1000 3000 1200 3000 900 e 800 2500 c 1000 2500 / / p 700 s t 2000 t 800 2000 s 600 s t t i e e 500 1500 r e 600 1500 r g 400 c k c d S d S i 300 1000 i 400 1000 h w s 200 500 c e e 200 500 G 100 G 0 0 0 0 0 1 2 3 4 5 6 7 0 1 2 3 4 5 6 Zeit in sec Zeit in sec Geschw
in „rampenbrechnung für schrittmotor“ · Mikrocontroller und Digitale Elektronik ·
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OP90.pdf
change without notice. Rev. C | Page 2 of 13 OP90 ELECTRICAL CHARACTERISTICS (V = ⴞ1.5 V to ⴞ15 V, –55ⴗT +125ⴗC, unless otherwise noted.) S A Parameter Symbol Conditions Min Typ Max Unit INPUT OFFSET VOLTAGE V 80 400 µV OS AVERAGE INPUT OFFSET VOLTAGE DRIFT TCV 0.3 2.5 µV/°C OS INPUT OFFSET CURRENT OS V
in „Stromverbrauch eines Mikrocontrollers zeitaufgelöst messen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AND8391-D.pdf
SOD−123) @ T = 1J05C for Variable Copper Heat Spreader 1200 0.6 TA= 25°C 1000 0.5 ) ( 800 Power Curve 2.0 oz Cu 0.4 R ) E / W ° 600 Power Curve 1.0 oz Cu 0.3 P , M J U q 400 qJA1.0 oz Cu 0.2 I X M 200 qJA2.0 oz Cu 0.1 0 0 0 100 200 300 400 500 600 700 PCB COPPER AREA (mm 2) Figure 2. SOD−123 NSI14030T1G q JAand P Ds. Cu Area http://onsemi.com 2 AND8391/D Figure 3 shows power dissipation over changes in NOTE: 300 mm 2 2 oz Cu area has
in „12 Kanäle a 12 x 1W LEDs dimmen /steuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
10350.pdf
or slave communication at up to 5.5Mb/s in Master mode and 4 Mb/s in Slave mode. 2 I C Interfaces 2 T2e two I C Interfaces provide multi-master and slave functions, support normal and fast I C mode (400 kHz) and 7 or 10-bit addressing modes. 2 2 2 One I C Interface is multiplexed with one SPI, so either
in „ARM7TDMI 32-bit RISC CPU - STR 712 FR2 T6 zu verkaufen“ · Markt ·
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ir2110.pdf
Figure 15A. Low Level Output vs. Temperature 1.00 500 0.80 A 400 V ( e n t r V0.60 C 300 u g t k O L v0.40 l 200 L p w S L s 0.20 O100 M ax. Max. 0.00 0 10 12 14 16 18 20 -50 -25 0 25 50 75 100 125 VBIASSupply Voltage (V) Temperature (°C) Figure 15B. Low Level Output vs. Voltage Figure 16A. Offset Supply Current vs. Temperature 500 500 ) µ 400 400 t e A u ( e 300 n 300 a r e C L l Max. l 200 u 200 u S t V f Typ. O 100 Max. 100 0 0 0 100 200 300 400 500 600 -50 -25 0 25 50 75 100 125 V Boost Voltage (V) IR2110 IR2113 B Temperature (°C) Figure
in „IR2110 Probleme“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ir2110.pdf
Figure 15A. Low Level Output vs. Temperature 1.00 500 0.80 A 400 V ( e n t r V0.60 C 300 u g t k O L v0.40 l 200 L p w S L s 0.20 O100 M ax. Max. 0.00 0 10 12 14 16 18 20 -50 -25 0 25 50 75 100 125 VBIASSupply Voltage (V) Temperature (°C) Figure 15B. Low Level Output vs. Voltage Figure 16A. Offset Supply Current vs. Temperature 500 500 ) µ 400 400 t e A u ( e 300 n 300 a r e C L l Max. l 200 u 200 u S t V f Typ. O 100 Max. 100 0 0 0 100 200 300 400 500 600 -50 -25 0 25 50 75 100 125 V Boost Voltage (V) IR2110 IR2113 B Temperature (°C) Figure
in „Wechselrichter mit MOSFET Endstufe“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ir2110.pdf
Figure 15A. Low Level Output vs. Temperature 1.00 500 0.80 A 400 V ( e n t r V0.60 C 300 u g t k O L v0.40 l 200 L p w S L s 0.20 O100 M ax. Max. 0.00 0 10 12 14 16 18 20 -50 -25 0 25 50 75 100 125 VBIASSupply Voltage (V) Temperature (°C) Figure 15B. Low Level Output vs. Voltage Figure 16A. Offset Supply Current vs. Temperature 500 500 ) µ 400 400 t e A u ( e 300 n 300 a r e C L l Max. l 200 u 200 u S t V f Typ. O 100 Max. 100 0 0 0 100 200 300 400 500 600 -50 -25 0 25 50 75 100 125 V Boost Voltage (V) IR2110 IR2113 B Temperature (°C) Figure
in „HIGH AND LOW SIDE DRIVER Io+ Ausgangsstrom“ · Mikrocontroller und Digitale Elektronik ·
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PDF
semi_eng_apv.pdf
to the T 2 T3 = 240 to 250°C * internal element, please refer to the item “■ Deterioration and t1 = 60 to 120 s T 1 t2 = Within 30 s destruction caused by discharge of static electricity”, and implement sufficient
in „Gibt es Optokoppler mit Öffner Kontakt?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
grundig_chassis_t5_19_22vle2000t_22-2010t_22-2940t_22-2942t_19hd_br_wp_cba_16-2941tc_19-2940t.pdf
26 R921 T 57 14 X200 T 99 115 R206 T 86 97 X400 T 68 85 C424 T 65 41 C741 T 103 56 D301 T 146 111 R460 T 22 91 R744 T 149 26 R922 T 48 24 C425 T 27 37 C742 T 14 18 D302 T 90 85 R207 T 86 92 R461 T 22 92 R745 T
in „Grundig Fernseher defekt“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Quarz_differentiell_152-01193-0-EG-2121CA.pdf
Offset Voltage VOS V 1.125 1.25 1.375 VOS1,VOS2 Change to V OS dV OS mV 150 dV OSV OS1- VOS2 Duty tw/t % 48 52 V version: <=175MHz at outputs crossing point 45 55 53.125M to 350MHz 40 60 >350M Output Rise time t ps 400 20-80% of V TLH OD Output Fall time tTHL ps 400 80-20% of V OD Phase Jitter *2 T PJ
in „Korrekter Abschluss differentieller Leitungen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Timer_ISEL_Rev1.1.pdf
1 I R 820 K BC447 3 R1 K1 4 1 2 C A C A 820 5 BC447 T1 MOLEX K LED2 LED1 S T2 20mA 20mmA 100 10µ/63V MOLEX SK95-2M3OB V 1 4 5 3 2 O 1 / K C7C6 C 1 - C µ U 100n K2 I 7 0 12V/400mA L U 2 I 2 - L K K L - 1 P1 K L D 100n K 4052 4 C2 S1 0 N TR1 1 t RE1 A F U
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TDA1591.pdf
I O e s i V S L k h o E R 0 i 1 T E G Z 1 0 w = k O C T I 1 ) r 1 P A z L B 3 n a V T C k V T p r O R 9 S 6 a I 9 T T 1 1 5 d 2 P 1 L C F a A k 5 1 0 µ P T 5 r D c i E 4 u l l p D R S ( n B o LR z E T 2 C i f OT k A C C e . . en -I 8
in „TDA 7313 input AM / FM“ · Analoge Elektronik und Schaltungstechnik ·
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LED_Power_Supply_Cheng_Liang_P360W24V.pdf
PRI_LO GND 0VDC PRI_HI R? D? R? R? +24V R? D? 330k, 1/2W 2 10R, 1/2W 10R, 1/2W 5.1R, 1/2W 1N4007 FR157? T1 2 Q1 400W 24V/16.5A ER40/45-17 SH 1 C? 3 1 R? P13009 (1) 9 1 1nF, 1kV +24V B C? 0.47R, 1/2W 3 T2 2 D11 B þÿ4.7µF, 50V 11 W Base6Driving Transformer ADL MBR20200PT 1 3 C 5 L1 R_Shunt C? R , 10 6 þÿ3
in „Halbbrücken-Gegentaktwandler Ansteuerung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AN_pcf8563-73-83-93_real_time_clock.pdf
following equations: The frequency is given by: C IN 1 ω = , ω = 2 πf0 (1) L*C C = C1 // ( CIN/ ( C OUT+C T + C0) (2) C INC OUT + C T C IN (C OUT+C T= (3) C INC OUT+ C T C INC OUT +C T C1*( + C0) C = C IN+ COUT + CT (4) CIN(C OUT + CT) C1 + + C0 C IN+ C OUT+ C T 1 1 1 1 Q = * ; or first order approximation
in „I2C Buslaenge ueber 5m?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PCF8563jingdu_en.pdf
following equations: The frequency is given by: C IN 1 ω = , ω = 2 πf0 (1) L*C C = C1 // ( CIN/ ( C OUT+C T + C0) (2) C INC OUT + C T C IN (C OUT+C T= (3) C INC OUT+ C T C INC OUT +C T C1*( + C0) C = C IN+ COUT + CT (4) CIN(C OUT + CT) C1 + + C0 C IN+ C OUT+ C T 1 1 1 1 Q = * ; or first order approximation
in „CP/M auf ATmega88“ · Mikrocontroller und Digitale Elektronik ·
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board.pdf
3.3V Supply decoupling C? C? _ _ 100nF 100pF H H C C I I W W S S 1 1 20dB IF AMP +5V LOW-NOISE +5V T T T T A A C? IF AMPLIFIER F ? R ? C? . C 9 R F 100pF 2 100nF F F C +5V BW 30 MHz, total power: 3RD ORDER CHEBYSHEV 0 (-174 + 38 + 15 + 20) * 30MHz 1 9.5dB SWITCHABLE = -26dBm = 11mVrms p C 174R BAND
in „HI-Empfänger: Könnte das so funktionieren?“ · HF, Funk und Felder ·
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PDF
24lc32a.pdf
= 25˚C, Fc= 1 MHz Operating current CC Write — 3 mA V CC= 6.0V CC Read — 0.5 mA V CC= 6.0V, SCL = 400 KHz Standby current CCS — 1 5 A SCL = SDA = VCC = 5.5V CCS 1 A V CC= 2.5V (Note) Note: This parameter is periodically sampled and not 100% tested. FIGURE 1-1: BUSTIMING START/STOP VHYS SCL THD STA T
in „Logikanalzyer mit FT232BL“ · Mikrocontroller und Digitale Elektronik ·
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Metrawatt-MA_5D.pdf
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