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PDF
ds.pdf
characteristics Figure 2. Typ. transfer characteristics 100000 10.0 f = 100 kHz ) I = 8 A V = 0 V ( D GS e V = 400 V 10000 t DS o 7.5 F C iss v ( c e 1000 u n o t - 5.0 c C a p 100 oss G a ,S , G C V 2.5 10 C rss 1 0.0 0 20 40 60 80 100 0 10 20 30 40 50 V DSDrain-source voltage (V) Qg, Gate charge(nC) Figure 3.
in „Ersatz für MOSFET OSG80R250F gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
an10160.pdf
Examples where this isolation feature could be useful include: 1. Allow mixed operation of 100 kHz and 400 kHz devices on a combined bus by isolating the segment with 100 kHz devices from the rest of the 400 kHz system so that the 400 kHz devices can operate at their maximum speed. 2. Supporting the PCI
in „Bussystem mit AVR für Baugruppenträger“ · Mikrocontroller und Digitale Elektronik ·
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PDF
an10160.pdf
Examples where this isolation feature could be useful include: 1. Allow mixed operation of 100 kHz and 400 kHz devices on a combined bus by isolating the segment with 100 kHz devices from the rest of the 400 kHz system so that the 400 kHz devices can operate at their maximum speed. 2. Supporting the PCI
in „18 x SHT11 an welchem Mikrocontroller“ · Mikrocontroller und Digitale Elektronik ·
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PDF
3c30.pdf
25 o 3C30 µ B 100 C i (mT) 4000 400 3000 300 2000 200 1000 100 0 0 50 50 150 T ( C) 250 25 0 25 50 150 250 H (A/m) Fig.2 Initial permeability as a function of temperature. Fig.3 Typical B-H loops. 2008 Sep 01 93 Ferroxcube Material
in „Bau einer einstellbaren HV-Quelle 100kV/100µA - erste Fragen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
IGD_1_424_P1N4_DL_FA_08800445.pdf
IGD-1-424-P1N4-DL-FA Absolute maximun ratings T AMBIENT T AIR COOLING 40°C unless otherwise specified Symbol Conditions Values Unit OUT MAX Maximum continuous output current 200 A RMS VOUT MAX Maximum output voltage 500 VAC 900 VBUS MAX Maximum DC
in „Such nach High Level shifter“ · Mikrocontroller und Digitale Elektronik ·
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PDF
epcos-inrush-overcurrent.pdf
or V AC, V = 400 V DC or V AC, T = 120 °C (typ.), R = ±25 % max R ref R B750 123 245 4.0 4 25 13 X X B59750B0120A070 B770 64 127 2.8 3.0 70 45 X X B59770B0120A070 C751 87 173 4.0 3.5 50 26 X X B59751C0120A070 C752 69
in „Schaltzyklen bei PTC-Sicherungen?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
epcos-inrush-overcurrent.pdf
or V AC, V = 400 V DC or V AC, T = 120 °C (typ.), R = ±25 % max R ref R B750 123 245 4.0 4 25 13 X X B59750B0120A070 B770 64 127 2.8 3.0 70 45 X X B59770B0120A070 C751 87 173 4.0 3.5 50 26 X X B59751C0120A070 C752 69
in „Einschaltstrombegrenzung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
tempf_lm335.pdf
C Uncalibrated Temperature Error TMIN ≤ TC≤ TMAX , R = 1 mA 2 5 4 9 ˚C 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 TC= T MAX (Intermittent) 2 2 ˚C Temperatures Non-Linearity IR= 1 mA 0.3 1.5 0.3 1.5 ˚C Electrical Characteristics
in „Temperaturmessung mit μC und LM 335“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM135_LM235_LM335TO92_NSC.pdf
C Uncalibrated Temperature Error TMIN ≤ TC≤ TMAX , R = 1 mA 2 5 4 9 ˚C 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 TC= T MAX (Intermittent) 2 2 ˚C Temperatures Non-Linearity IR= 1 mA 0.3 1.5 0.3 1.5 ˚C Electrical Characteristics
in „Temperatusensor LM 335“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM135_LM235_LM335TO92_NSC.pdf
C Uncalibrated Temperature Error TMIN ≤ TC≤ TMAX , R = 1 mA 2 5 4 9 ˚C 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 TC= T MAX (Intermittent) 2 2 ˚C Temperatures Non-Linearity IR= 1 mA 0.3 1.5 0.3 1.5 ˚C Electrical Characteristics
in „Temperatur + Anfänger“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM135.pdf
C Uncalibrated Temperature Error TMIN ≤ TC≤ TMAX , R = 1 mA 2 5 4 9 ˚C 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 TC= T MAX (Intermittent) 2 2 ˚C Temperatures Non-Linearity IR= 1 mA 0.3 1.5 0.3 1.5 ˚C Electrical Characteristics
in „Spannungsversorgung LM135“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
pca9548a.pdf
15 O 1 ( ( a i0.8 ( 10 ( R Rp 0.6 5 0.4 0.2 V DPUX> 2V V DPUX<= 2 0 0 0 50 100 150 200 250 300 350 400 450 0 0.5 1 1.5 2 2.5 3 3.5 4 4.5 5 5.5 Cb(pF) D008 VDPUX (V) D009 Standard-mode (f SCL = 100 Fast-mode (f SCL= 400 kHz, t r VOL = 0.2*V DPUX ,OL = 2 mA when V DPUX ≤ 2 V kHz, tr= 1 µs) 300 ns) V OL
in „Unterschied TCA9548A und PCA9548A“ · Mikrocontroller und Digitale Elektronik ·
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PDF
e1529_k8v.pdf
Infineon DS HYB25D256800CE-5 512M Samsung M368L6432ETM-CCC Samsung DS K4H560838E-TCCC 256M ATP AG32L64T8SQC4S Samsung SS K4H560838D-TCC4 256M BrainPower B6U808-256M-SAM-400 Samsung SS K4H560838D-TCC4 512M BrainPower B6U808-512M-SAM-400 Samsung DS K4H560838D-TCC4 512M Apacer 77.10736.464 Samsung DS K4H560838D-TCC4 256M ADATA MDOSS6F3G31YK1EZZ Samsung SS K4H560838D-TCC4 128M NANYA NT128D64SH4B1G-5T NANYA SS NT5DS16M16BT-5T 512M NANYA N512D64S8HB1G-5T NANYA DS NT5DS32M8BT-5T 256M Hynix HYMD232646B8J-D43AA Hynix SS HY5DU56822BT-D43 256M Kingston KVR400X64C3A/256 Hynix SS HY5DV56822BT-D43 512M Kingston
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PDF
ADP3330.pdf
= 7V CL= 0.47µF V = 3V 3 E 3.05 OUT ) G C L= 0.47µF ( A T 2 V IN= 7V L 3.00 O V OUT = 3V O ) V SD = V V ( 1 IN T R L 15Ω P 2.95 CL= 10µF T U 0 O 2.90 10 200 ) N ( E I 5 R )100 V U A C ( 20mA 0 D 0 A L –5 2 –100 5 - - 0 100 200 300 400 500 9 0 200 400 600 800
in „Linearregler ADP3330 Ausgangsspannung zu niedrig“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
opr01ZE8.tmp.pdf
Stoßspitzensperrspannung V RRM [V] VRSM [V] BY 550-50 50 50 BY 550-100 100 100 BY 550-200 200 200 BY 550-400 400 400 BY 550-600 600 600 BY 550-800 800 800 BY 550-1000 1000 1000 1 Max. average forward rectified current, R-load T A= 50 /C IFAV 5 A ) Dauergrenzstrom in Einwegschaltung mit R-Last 1 Repetitive
in „Wärmeberechung einer Diode“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
10a05_ser.pdf
TYPICAL FORWARD CURRENT MAXIMUM NON-REPETITIVE FORWARD DERATING CURVE A SURGE CURRENT ) 10 , 500 ( T 8.3ms Single Half Sine-Wave T E (JEDEC Method) N R R 8.0 U 400 R C U E C 6.0 G 300 R R A S W 4.0 D 200 O Single Phase R F W E Half Wave 60Hz R A 2.0 Resistive or O 100 R Inductive Load F V A A 0 E 0
in „Diode kühlen, wie?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LT1111_LT.pdf
SW SaturationVoltage, Step-Up Mode 0°C ≤T A125°C, I SW = 500mA, 0.5 0.65 V T = –55°C, I = 400mA A SW SW Saturation Voltage, Step-Down Mode V IN12V, 0°C≤ TA≤ 125°C 1.5 V ISW = 500mA TA= –55°C 2.0 V V IN3V, 0°C ≤T ≤ A0°C unless otherwise noted
in „Schaltregler-Topologie: 3V.12V -> 5V/0,45A & 12V/0,8A“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
R3112x_SERIES_Ricoh.pdf
Topt=25°C Topt=25°C 1000 1000 s ( 100 s 100 t m e D t tD i 10 y 10 T l l D e 1 t 1 t t p u u 0.1 O 0.1 O PHL tPHL 0.01 0.01 0.0001 0.001 0.01 0.1 0.0001 0.001 0.01 0.1 External Capacitance CD(µF) External Capacitance CD (µF) 19 R3112x R3112x271x
in „IC von Tiefentladungsschutz identifizieren“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LT_1787fc.pdf
No Load Output Voltage No Load Output Current vs Supply Voltage vs Supply Voltage Supply Voltage 50 400 10 VS+= VS– VS+= VS– TA= –40°C 40 VBIAS= 0V 300 VBIAS= 0V 8 ) 30 VEE= –1.25V VEE= –1.25V 6 ( TA= 85°C ) 200 TA= 85°C A T = 25°C G 20 ( ( 4 A T E 100 N O 10 A R 2 V 0 L 0 U 0 S TA= 25°C V TA= 25°C C F –10 U–100 U –2 TA= 85°C T T T –4 P –20 O O I –30 T = –40°C –200 –6 VBIAS= 1V A TA = –40°C VEE = 0V –40 –300 –8 V + = V– –10 S S –50 0 10 20 30 40 50 60 –400 0 10 20 30 40 50 60 0 10 20 30 40 50 60 TOTAL SUPPLY VOLTAGE (V) TOTAL
in „Logger für Strom und Spannung im Selbstbau“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LT_1787fc.pdf
No Load Output Voltage No Load Output Current vs Supply Voltage vs Supply Voltage Supply Voltage 50 400 10 VS+= VS– VS+= VS– TA= –40°C 40 VBIAS= 0V 300 VBIAS= 0V 8 ) 30 VEE= –1.25V VEE= –1.25V 6 ( TA= 85°C ) 200 TA= 85°C A T = 25°C G 20 ( ( 4 A T E 100 N O 10 A R 2 V 0 L 0 U 0 S TA= 25°C V TA= 25°C C F –10 U–100 U –2 TA= 85°C T T T –4 P –20 O O I –30 T = –40°C –200 –6 VBIAS= 1V A TA = –40°C VEE = 0V –40 –300 –8 V + = V– –10 S S –50 0 10 20 30 40 50 60 –400 0 10 20 30 40 50 60 0 10 20 30 40 50 60 TOTAL SUPPLY VOLTAGE (V) TOTAL
in „AD 8323 : Analog Digital Wandler 16-Bit, Parallel, 500kSPS“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
irl2203n.pdf
Drain CurrenGS @ 10V 116 D @ TC= 100°C Continuous Drain CurrenGS @ 10V 82 A DM Pulsed Drain Curre t 400 PD@T C 25°C Power Dissipation 180 W Linear Derating Factor 1.2 W/°C VGS Gate-to-Source Voltage ± 16 V I Avalanche Curre t 60 A AR EAR Repetitive Avalanche Ene gy 18 mJ dv/dt Peak Diode Recovery dv
in „Saito Pro Charger Batterieladegerät - Mikrocontroller ATmel ATTINY26L defekt?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AD8418WBRMZ.pdf
Figure6.TypicalSmallSignalBandwidth(V OUT=200mVp-p) 110 20 18 100 16 ) ( 14 90 R R 12 ) R d E 10 ( T R 80 P M T 8 C O L 6 70 A O 4 T 2 60 0 50 0 –2 0 10 100 1k 10k 100k 1M 6 0 5 10 15 20 25 30 35 40 6 5 5 FREQUENC Y(Hz) 1 DIFFERENTIAL INPUT VOLTAGE (mV) 1 Figure4.TypicalCMRRvs.Frequency Figure7.TotalOutputErrorvs.DifferentialInputVoltage 500 0.5 VS= 5V NORMALIZED AT 25°C 400 ) 0.4 A 300 ( 0.3 N P ) 200 T 0.2 / U +IN ( 100 N 0.1 I O E 0 –IN R 0 P E T –100 E –0.1 I R G R –0.2 –200 C S –300 I –0.3 B –0.4 –400 –500 5 –0.5 8 –40 –25 –10 5 20 35 50 65 80 95 110 125 - –4 0 4 8
in „Spice Model AD8418“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LRTB_G6TG_Pb_free.pdf
= f(T); 3 chips on 60 OHL01683 60 OHL01684 I mA I mA F T F T 50 S 50 S T A 40 40 TA 30 30 total maximum power 20 20 dissipation of all 3chips has to be limited to <400 mW 10 10 TAtemp. ambient TA temp. ambient
in „LRTB G6GT Eagle-Library“ · Mikrocontroller und Digitale Elektronik ·
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PDF
UDN2981.pdf
DRIVERS Allowable peak collector current as a function of duty cycle Series UDN2980A 500 500 450 450 ° 400 °400 5 7 T T RECOMMENDED MAXIMUM OUTPUT CURRENT A RECOMMENDED MAXIMUM OUTPUT CURRENT A m 350 m350 I I T 3 T E E R 300 R300 U U 3 C 4 C R R T 250 5 T250 4 C C L 6 L 5 O 8 7 O 6 C200 C200 K NUMBER OF
in „Treiber ICs (Datenblatt verstehen)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2981.pdf
DRIVERS Allowable peak collector current as a function of duty cycle Series UDN2980A 500 500 450 450 ° 400 °400 5 7 T T RECOMMENDED MAXIMUM OUTPUT CURRENT A RECOMMENDED MAXIMUM OUTPUT CURRENT A m 350 m350 I I T 3 T E E R 300 R300 U U 3 C 4 C R R T 250 5 T250 4 C C L 6 L 5 O 8 7 O 6 C200 C200 K NUMBER OF
in „100mm 7 Segment Anzeige“ · Mikrocontroller und Digitale Elektronik ·
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PDF
029-02463-1-UDN2981A.pdf
DRIVERS Allowable peak collector current as a function of duty cycle Series UDN2980A 500 500 450 450 ° 400 °400 5 7 T T RECOMMENDED MAXIMUM OUTPUT CURRENT A RECOMMENDED MAXIMUM OUTPUT CURRENT A m 350 m350 I I T 3 T E E R 300 R300 U U 3 C 4 C R R T 250 5 T250 4 C C L 6 L 5 O 8 7 O 6 C200 C200 K NUMBER OF
in „ULN2003 Soll Spannung Schalten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
u2010b.pdf
6 I Output offset currents 5, 6 , 7, 8 -I0 0 3 6 µA Reference voltage 1, 2 = 100 µA 1, 2 -VRef 300 400 mV Shunt voltage amplitude See Figure 1-2 on page 2 ±V(R6) 250 mV Load-current Limitation 6, 7, 8 Threshold V High load switching T70 V T70 4 4.35 4.7 V Figure 7-9 on page 12 Threshold V T100 Overload
in „U2010B Softstart Funktion“ · Mikrocontroller und Digitale Elektronik ·
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Bild
Oszilloskop-Messung von Spannungen und Strömen
DraftSight V(400V+,SourceT1.DrainT2)+200 V(source1.drainT2)-600 V(gate1,SourceT1.DrainT2)*10 V(gate2)*10 I(Last) 700V 600V 500V 400V 300V 200V 100V 0V -100V -200V -300V -400V -500V -600V -700V 40A -36A -32A -28A -24A
in „Halbbrücke schaltet nur mit minimaler überlappung und nicht im Dutycycle“ · Analoge Elektronik und Schaltungstechnik · · Oszi-Bilder
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PDF
CAT41.pdf
T F T TR PS TP1 ILED= (1.2 V /SET) x 400 90% LED CURRENT 50% 50% 10% SHUTDOWN 0 mA 0 mA VIN QUIESCENT CURRENT SHUTDOWN 0 mA SHUTDOWN Figure 2. CAT4101 EN/PWM Timing EN/PWM Operation The EN/PWM pin has
in „LED-Treiber Schaltung anpassen“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
MultiSpeedI2CScanner.ino
("\ta = toggle address range, 0..127 - 8..120")); Serial.println(F("Speeds:")); Serial.println(F("\t0 = 50 - 800 Khz")); Serial.println(F("\t1 = 100 KHz only")); Serial.println(F("\t2 = 200 KHz only")); Serial.println(F("\t4 = 400 KHz only")); Serial.println(F("\t8 = 800 KHz only")); Serial.println(F("\n\t? = help - this page")); Serial.println(); } void I2Cscan() { startScan = millis(); uint8_t count = 0; if (header) { Serial.print(F("TIME\tDEC\tHEX\t")); for (uint8_t s = 0; s < speeds; s++) { Serial.print
in „Probleme mit meinem LCD-Display“ · Mikrocontroller und Digitale Elektronik ·
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Datei
MultiSpeedI2CScanner.ino
("\ta = toggle address range, 0..127 - 8..120")); Serial.println(F("Speeds:")); Serial.println(F("\t0 = 50 - 800 Khz")); Serial.println(F("\t1 = 100 KHz only")); Serial.println(F("\t2 = 200 KHz only")); Serial.println(F("\t4 = 400 KHz only")); Serial.println(F("\t8 = 800 KHz only")); Serial.println(F("\n\t? = help - this page")); Serial.println(); } void I2Cscan() { startScan = millis(); uint8_t count = 0; if (header) { Serial.print(F("TIME\tDEC\tHEX\t")); for (uint8_t s = 0; s < speeds; s++) { Serial.print
in „i2c & LCD stellt sich quer :/“ · Mikrocontroller und Digitale Elektronik ·
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Datei
MultiSpeedI2CScanner.ino
("\ta = toggle address range, 0..127 - 8..120")); Serial.println(F("Speeds:")); Serial.println(F("\t0 = 50 - 800 Khz")); Serial.println(F("\t1 = 100 KHz only")); Serial.println(F("\t2 = 200 KHz only")); Serial.println(F("\t4 = 400 KHz only")); Serial.println(F("\t8 = 800 KHz only")); Serial.println(F("\n\t? = help - this page")); Serial.println(); } void I2Cscan() { startScan = millis(); uint8_t count = 0; if (header) { Serial.print(F("TIME\tDEC\tHEX\t")); for (uint8_t s = 0; s < speeds; s++) { Serial.print
in „ADS1115 lässt Arduino Uno einfrieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LED_RGB.pdf
= f(T); 3 chips on OHL01683 OHL01684 60 60 mA mA IF IF TS TS 50 50 TA 40 40 T A 30 30 total maximum power 20 20 dissipation of all 3chips has to be limited to <400 mW 10 10 TAtemp. ambient TAtemp. ambient
in „Wunschfarbe über eine RGB-LED und PWM erzeugen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LQ10D421.pdf
D l ÷ " t 2 k þ s Ī g ÷ T Ī T n þ s c a Ī D h T l Ī T T 3 d c c w p H h ÷ l v d õ õ ú e ĝ ĝ Ī f Ī Ī Ī r T m 3 H s 4 ( 4 0 D ļ 3 i Ĭ 9 e Ķ m D ij D 1 Ĭ 6 o 0 e ) ÷ u D ú b H Ī o 2 Ī o H z t n a D l H v 3 l d T a
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PDF
2SD1804.pdf
Current ICBO VCB40V, IE=0 1 μA Emitter Cutoff Current IEBO VEB4V, IC=0 1 μA hFE1 VCE2V, IC=0.5A 70 400 DC Current Gain hFE2 VCE2V, IC=6A 35 Gain-Bandwidth Product fT VCE5V, IC=1A 180 MHz Output Capacitance Cob VCE10V, f=1MHz 65 pF Collector-Emitter Saturation Voltage VCE(SAT) C =4A,BI =0.2A 200 400 mV Base-Emitter Saturation Voltage VBE(SAT) C =4A,BI =0.2A 0.95 1.3 V Storage Time tSTG See test circuit 500 ns Fall Time tF See test circuit 20 ns CLASSIFICATION OF h FE1 RANK Q R S T RANGE 70-140 100-200 140-280 200-400 UNISONICTECHNOLOGIESCO.,LTD 2 of 5 www.unisonic.com.tw QW-R209
in „Green-Cap/Super-Cap 2.7V 500F - fake?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LC-R123R4PG.pdf
BatteBatteryvoltage 12.0 16.0 2 1120 0.10.10CA ) ) 0.( 1401140 ChaChargequantity(todischargequant14.014.0 0.25CA C A t 100 æ Discharge 10.0 ( ( ) 10) 100 0.50CA5CAA t 0.80.68120)120 100%(0.05CA*20H)age 12.012.0 e ( 1(0 10.50CAA e n) a( 80( CharCha50%(0.05CA*10H)ischargequa8.0ty) t a) i t 0 25 C erC qt100t100 æ—Diæcharge
in „Autoradio mit externem Netzteil +Pufferakku sowie ladegerät für Akku.“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
rtc.pdf
tCL CC ns 1.71V ≤ CC ≤ 1.89V 400 2.7V ≤ CC ≤ 5.5V 110 SCLK High Time (Note 13) tCH ns 1.71V ≤ CC ≤ 1.89V 400 SCLK Rise and Fall R F t 200 ns CS to SCLK Setup (Note 13) tCC 400 ns SCLK to CS Hold (Note
in „ein Uhrenquartz für AVR und RTC???“ · Mikrocontroller und Digitale Elektronik ·
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PDF
irl2203npbf.pdf
Drain CurrenGS @ 10V 116 D @ TC= 100°C Continuous Drain CurrenGS @ 10V 82 A DM Pulsed Drain Curre t 400 PD@T C 25°C Power Dissipation 180 W Linear Derating Factor 1.2 W/°C VGS Gate-to-Source Voltage – 16 V I Avalanche Curre t 60 A AR EAR Repetitive Avalanche Ene gy 18 mJ dv/dt Peak Diode Recovery dv
in „IRL2203N defekt?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
A500_DS_HPR40E-19K100XWHAX.pdf
19K100xWHAx 2TYPICAL ELECTRICAL OPTICAL CHARACTERISTICS CURVES 8000 K Ta=25 C 6000 K Ta=25 C 1.2 Y1.2 T I I S N1.0 N1.0 E E T N0.8 I0.8 I T T N0.6 A0.6 I I D A A0.4 R0.4 R E V V T0.2 T0.2 A A L E E 0 R 400 450 500 550 600 650 700 750 R 400 450 500 550 600 650 700 750 WAVELENGTH (nm) WAVELENGTH (nm) o o o o 4000 K Ta=25 C 1.23300 K Ta=25 C Y1.2 Y I I S1.0 S1.0 N E T T N0.8 I0.8 I T N N A0.6 I0.6 D D A A R0.4 R0.4 E E I I0.2 T0.2 A L L E 0 E 0 R 400 450 500 550 600 650 700 750 R 400 450 500 550 600 650 700 750 WAVELENGTH (nm) WAVELENGTH (nm) HUEY JANN ELECTRONICS
in „Keine angaben über erforderliche Kühlung bei 100W LED“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Samsung__35E.pdf
. 2.3.3 Don't short circuit (+) and (-) terminals with metallic object intentionally. 2.3.4 Don't pierce the battery with a sharp object such as a needle, screw drivers. 2.3.5 Don't heat partial area of the battery
in „INR18650-35E mit Labornetzteil laden“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SN75468D.pdf
25⋅C e 2.25 TA= 25⋅C l a II= 250 mA V 2 o 2 n I = 250 mA V i 1.75 I o 1.75 II= 350 mA r II= 350 mA t t r a 1.5 II= 500 mA a 1.5 r S t 1.25 e 1.25 i i II= 500 mA E 1 m 1 r r c 0.75 t e e 0.75 o l C 0.5 C 0.5 )) – aa 0.25 t)0.25 (( (( CC 0 EE V 0 100 200 300 400 500 600 700 800 VC 0 0 100 200 300 400
in „SPDIF/PCM über 3W Luxeon LED -> Treiber für MOSFET gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Control_S03_Sch_4011.pdf
C3 IC1C N-FET-G K4AC2 L N AC2-N OUT- GND S 10V / 2k2=4,5mA gn1mA H 6 2 NAND Set 10 H R4 10k 2 T1 GND S201S02 400V 1,5A sharp, S GND rd1,7V S4ext L 9 3 NAND BC546B 2 +12V S202S02 600V 250Vac 8A 1,2V 8mA Sharp zero-cross circuit reichelt.de 2,77Euro 36x18,5x5,5mm 125V 1A CD4011BE R8 S9013 GND SSR
in „Laufzeitbegrenzung für 12V Pumpe mit Akku, Solarmodul, Step-Up, Zeitschaltuhrbetrieb LED-Anzeige MPP“ · Projekte & Code ·
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PDF
LR8.pdf
243AA (SOT-89) (N8) Electrical Characteristics (Test conditions unless otherwise specified: -40°C < T < 85°C.) A Sym Parameter Min Typ Max Units Conditions V - V Input to output voltage difference 12 - 450 V --- IN OUT 13.2V < V < 400V, VOUT Overall output voltage regulation 1.14 1.20 1.26 V IN R1 =
in „20 V AC bis 70 V AC --> 5 V DC“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BP2836D.pdf
-0.3~6 V PDMAX Power dissipation (note 2) 0.9 W θJA Thermal resistance (Junction toAmbient) 80 ℃/W T Operating junction temperature -40 to 150 ℃ J T STG Storage temperature range -55 to 150 ℃ ESD (note 3) 2 KV Note 1: Stresses beyond those listed under “absolute maximum ratings” may cause permanent
in „LED Deckenlampe dimmen“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
hope.c
1)*((1/(Rsa*((Vml/Vms1)-1)))-(1/Rsi)); c=((Rma*Rsa*((Vml/Vms2)-1))-Rsi*Rsa-Rsi*Rma)/(Rsi*Rma*Rsa); t=b+c; Rka=a/t; /* Rki -------*/ e=(Rsa*Rma)/(Rsa+Rma); Rki=e*Rka*Rsi/(((Vms2/(Vml-Vms2))*Rsi*(e+Rka))-(Rka*e)); /*additon für mittelwert -------------------------*/ RkaSumm+=Rka; RkiSumm+=Rki; /* Zähler
in „Atmega88 region text overflowed by 156 bytes“ · Mikrocontroller und Digitale Elektronik ·
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kanthal-a-de.pdf
23,5 - a s A e MECHANISCHE EIGENSCHAFTEN r h v Drahtgröße Streckgrenze Zugfestigkeit Längung Härte e t Ø R R A t p0.2 m r ( mm MPa MPa % Hv : 1 1,0 550 725 22 230 4 - 4,0 450 660 24 230 - 2 0 t b MECHANISCHE EIGENSCHAFTEN BEI ERHÖHTER TEMPERATUR e a s Temperatur °C 900 r i a t A 1 KANTHAL® A MPa 34 -2
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ws2812.S
error F_CPU out of range! Must be 11.3-20MHz! #endif #endif // bit times /ns #if USE_FAST_MODE == 0 // 400 kbps #define T0H 500 #define T0L 2000 #define T1H 1200 #define T1L 1300 #else // 800 kbps #define T0H 400 #define T0L 850 #define T1H 800 #define T1L 450 #endif .nolist // delay of N CPU cycles using
in „Frage zu IR-Remote+LED-Strips an AVR“ · Mikrocontroller und Digitale Elektronik ·
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DDS.pdf
497A 3ʣ F C CαΠΫϧ 1ʣ DSSV-201M-YD 200Vʢ160ʙ240ʣ F C C cycle 1) DSSV-301L-YD 300Vʢ255ʙ345ʣ DC 100V ˓ 400A DSSV DSSV-401M-YD 400Vʢ320ʙ480ʣ 100MЊmin. DC 250V 2pF max. DOC1αΠΫϧ 2ʣ ˓ DSSV-301L-T5 300Vʢ255ʙ345ʣ DC 100V DOC 1cycle 2) ʵ 300A DSSV-401M-T5 400Vʢ320ʙ480ʣ DC 250V ʵ 1ɿFCC10/560Жsec. 100A –3times,
in „Hilfe Bauteilidentifizierung für Reparatur“ · Analoge Elektronik und Schaltungstechnik ·
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High_Performance_Flash_and_Arc_Lamps_-_PerkinElmer.pdf
= 0.015 for T 100 ms T = 1/ of pulse width (seconds) = 0.02 for 100 ms > T 1000 ms (7) = (LC) 0.5 = 0.025 for T > 1000 ms 0.5 2 (8) total pulse duration = 3(LC) at 10% current points A = cross sectional area of lamp
in „Projekt: Leistungsstarkes Blitzgerät aus 12 Volt“ · Analoge Elektronik und Schaltungstechnik ·
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Perkin_Elmer_Flash___Arc_Tubes.pdf
= 0.015 for T 100 ms T = 1/ of pulse width (seconds) = 0.02 for 100 ms > T 1000 ms (7) = (LC) 0.5 = 0.025 for T > 1000 ms 0.5 2 (8) total pulse duration = 3(LC) at 10% current points A = cross sectional area of lamp
in „Reparatur (UW) Blitzgerät möglich?“ · Mikrocontroller und Digitale Elektronik ·