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p6smb6.pdf
OF k SHOWN IN FIGURE 2 PP. ( 10 100 E ) PEAK VALUE PPI O ( P E A L IPP P V HALF VALUE - 2 ,P 50 P 1 t P 0.1 0 0.1 ms 1 ms 10 ms 100 ms 1 ms 10 ms 0 1 2 3 4 5 P , PULSE WIDTH t, TIME (ms) Figure 1. Pulse Rating Curve Figure 2. Pulse Waveform 160 10,000 5 F 2 140 P6SMB6.8AT3G O =A ) % T 120 p1000 I T (
in „was ist das für ein Bauteil“ · Analoge Elektronik und Schaltungstechnik ·
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p6smb6_8at3_d-1196020.pdf
OF k SHOWN IN FIGURE 2 PP. ( 10 100 E ) PEAK VALUE PPI O ( P E A L IPP P V HALF VALUE - 2 ,P 50 P 1 t P 0.1 0 0.1 ms 1 ms 10 ms 100 ms 1 ms 10 ms 0 1 2 3 4 5 P , PULSE WIDTH t, TIME (ms) Figure 1. Pulse Rating Curve Figure 2. Pulse Waveform 160 10,000 5 F 2 140 P6SMB6.8AT3G O =A ) % T 120 p1000 I T (
in „Ersatzteilempfehlungen gesucht (TVS-Diode HDD)“ · Analoge Elektronik und Schaltungstechnik ·
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ETEMB043013XDHAL_-_ver2.pdf
OF MODULE (CENTCR) B thx= y=0olo380 425 t a cd/m NOTE ( 6 ) MODULEIFORMITY OF u x= yh0 70 o5u % NOTE ( 7 ) NOTE ( 1 TEST CONDITION: A e c ith FOR 30 MINUTES. MEASUREMENT SHOULD BE EXECUTED IN A STABLE, WINDLESS, AND DARK ROOM. lay
in „EDT Display Interface mit STM32F7“ · Mikrocontroller und Digitale Elektronik ·
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VirusTotal_-_ZiGuangWC_Setup.pdf
9.0.16440.0 2011.12.06 Backdoor.Generic.392289 Fortinet 4.3.388.0 2011.12.06 - GData 22 2011.12.06 - Ikarus T3.1.1.109.0 2011.12.06 - Jiangmin 13.0.900 2011.12.06 - K7AntiVirus 9.119.5598 2011.12.05 - Kaspersky 9.0.0.837 2011.12.06 - McAfee 5.400.0.1158 2011.12.06 - McAfee-GW-Edition 2010.1D 2011.12.06 - Microsoft
in „Virus oder Fehlalarm?“ · Offtopic ·
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MGA-62563__AV02-1237EN_.pdf
(pin 3) [3] dBm 21 3. With the DC (typical bias) and RF applied to the device at board temperatureT = B5°C. Iref Bias Reference Current (pin 4) mA 12 4. Total dissipation power is referred to board Pdiss Total Power Dissipation [4] mW 600 (package belly) temperature T = 85BC, P disss required to derate at 10 mW/°C for TCH ChannelTemperature °C 150 T B 85°C. T StorageTemperature °C 150 5. Thermal resistance measured using 150°C STG Liquid Crystal Measurement method. θch_b Thermal Resistance [5] °C/W 97 + 10 pF _ 3V 68 pF 47 nH 240 4 6.8 nH MGA-62563
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Phoenix_ELR.pdf
griert werden. 1 24 V DC GND L1 L2 L3 N PE F1 2 L1L2 L3 US E R L ELR H5-.../500AC-... 2/4/ 6/ A S T S2 T1T2 T3 97 6 /9895 M R A S2 A1 S 1 S12 S21 S 2 13 23 31 PSR-SCP-24UC/ESA4/2X1/1X2 U1 V1 W1 A2 S 3 S34 14 24 32 M 3 S3 PE 24 V DC GND 4 3 Bild 4 NOT-HALT 1 Versorgung 1 Die Steuerspeisespannung wird
in „Günstiges Wendeschütz gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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211-1-PLEXIGLAS-GS-XT-de.pdf
UV- weitgehend UV-undurchlässig. undurchlässig. PLEXIGLAS® LED (truLED) PLEXIGLAS® LED (EndLighten T) UV-undurchlässige Sorten speziell für die Hinterleuch- Transparente, UV-undurchlässige, „vorwärtsstreuende“ tung; mit LED optimierten Eigenschaften, wie max. Spezialität für kantenbeleuchtete, energiesparende
in „Luftspalt in den Ferritkern einbringen, welche Folie, Material“ · Analoge Elektronik und Schaltungstechnik ·
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DS1302_DAL.pdf
VCC1=2.5V 0.4 Active Supply Current CC1A mA 5, 12 VCC1=5V 1.2 VCC1=2.5V 0.3 TimekeepingCurrent CC1T A 4, 2 VCC1=5V 1 VCC1=2.5V 100 10, 12, Standby Current CC1S nA 14 VCC1=5V 100 VCC2=2.5V 0.425 Active Supply Current CC2A mA 5, 13 VCC2=5V 1.28 *Unless otherwise noted. 041697 8/12 DS1302 DC ELECTRICAL
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DS1302.pdf
VCC1=2.5V 0.4 Active Supply Current CC1A mA 5, 12 VCC1=5V 1.2 VCC1=2.5V 0.3 TimekeepingCurrent CC1T A 4, 2 VCC1=5V 1 VCC1=2.5V 100 10, 12, Standby Current CC1S nA 14 VCC1=5V 100 VCC2=2.5V 0.425 Active Supply Current CC2A mA 5, 13 VCC2=5V 1.28 *Unless otherwise noted. 041697 8/12 DS1302 DC ELECTRICAL
in „DS1302 zu langsam“ · Mikrocontroller und Digitale Elektronik ·
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slyt441.pdf
Slave from the slave back to the master. Figure 2 Link clarifies the benefit of clock feedback. Here t0 t0+ tP SCK M P CLK t0represents the first rising clock edge, or the start of a data transmission, and t Ps SPl1 = the data-link propagation delay. After tra- Master t t + t MOSI 0 P 0 P SIMO 1 versing
in „SPI über Distanz (3,5m)“ · Mikrocontroller und Digitale Elektronik ·
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LCC110-form-C.pdf
DC (L =120mA )DC (IL=120mA ) DC 1.0 6 1.4 IF=8mA 0.9 5 1.2 IF=10mA s 0.8 ) s IF=20mA ( m (1.0 e 0.7 t 4 e i e i0.8 T 0.6 r 3 T O C O0.6 n 0.5 D 2 n u 0.4 E u0.4 T L T 0.3 1 0.2 0.2 0 0 0 5 10 15 20 25 30 35 40 45 50 -40 -20 0 20 40 60 80 100 -40 -20 0 20 40 60 80 100 LED Forward Current (mA) Temperature
in „Optokoppler nicht invertierend ohne zusätzliche Schaltung am Ausgang“ · Mikrocontroller und Digitale Elektronik ·
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AMS1117.pdf
Minimum Operating Current (Adjustable Device) Short-Circuit Current 12 1.25 ) A TJ= 125°C ( )1.00 T 9 ( T = 25°C E T = 125°C T J R J E U R C U0.75 G T = 25°C C T 6 J I A U E R P C0.50 O T M O M 3 H N S0.25 I M 0 0 0 5 10 15 20 0 5 10 15 INPUT/OUTPUT DIFFERENTIAL (V) INPUT/OUTPUT DIFFERENTIAL Load Regulation Ripple Rejection vs. Current 0.10 100 ∆ LOAD= 1A 90 % 0.05 fRIPPLE 120Hz ( 80 O ) T B 70 V ≤3Vp-p I 0 ( RIPPLE V N D I 60 E C f = 20Hz G -0.05 J 50 RIPPLE T R L E 40 V P V RIPPLE.5Vp-p T -0.10 I P R 30 T O 20 -0.15 V = 5V 10 OUT C ADJ= 25µF C OUT= 25µF -0.20 0 -50 -25 0 25 50 75 100
in „Max Spannung in AMS1117 5.0V“ · Analoge Elektronik und Schaltungstechnik ·
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LOG_T77K_Pb_free.pdf
Pulse Handling Capability Duty cycle D = parameter, TA = 25 °C Duty cycle D = parameter, T A = 85 °C 0.12 OHL00827 0.12 OHL00828 tP tP IF A tP IF IF A tP IF D =T D =T 0.10 T 0.10 T 0.09 0.09 D = D = 0.08 0.005 0.08 0.005 0.01 0.01 0.07 0.02 0.07 0.02 0.05 0.05 0.06 0.1 0.06 0.1 0.05 0.2 0.05
in „TOPLED Suche“ · Analoge Elektronik und Schaltungstechnik ·
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sia817edj_MOSFET_SCHOTTKY.pdf
SETFORTHATwww.vishay.com/doc?91000 New Product SiA817EDJ Vishay Siliconix MOSFET TYPICAL CHARACTERISTICS (T = 25 °C, unless otherwise notAd) 1 Duty Cycle = 0.5 t e s e a n 0.2 T a v e c mp 0.1 Notes: f l E a 0.1 0.05 P d r DM l he a T 0.02 1 r t2 N 1. Duty Cycle, D = t2 2. Per Unit BathJA R110 °C/W Single
in „Korrekte LIPO-Ladeschaltung?“ · Mikrocontroller und Digitale Elektronik ·
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semi_mps_buck_55v_3a_mp24943.pdf
Oscillator Frequency SW VFB = 0.6V 70 100 140 kHz Bootstrap Voltage VBST- VSW 4.3 5.5 V Minimum-On Time tON 50 100 250 ns SW-rising edge t 50 100 ns rise SW-falling edge tfal 50 100 ns EN-Input Low Voltage 0.4 V EN-Input High Voltage 1.8 V EN-Input Bias Current VEN0-6V -10 -2 10 μA Under-VoltageLockoutThreshold
in „Bauteilsuche“ · Analoge Elektronik und Schaltungstechnik ·
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HT7133-1.pdf
March 19, 2014 HT71xx-1 Typical Performance Characteristic Test Condition: Vin=Vout+2V, Iout=10mA, T =25ºC, unless otherwise noted J Output Voltage vs Input Voltage HT7133-1 HT7150-1 3.50 5.20 3.45 Iout=10mA 5.15 Iout=10mA ) ( 3.40 ) 5.10 g ( t 3.35 g 5.05 o 3.30 l t t 5.00 u 3.25 p u u 4.95 O 3.20
in „Suche Transitor“ · Analoge Elektronik und Schaltungstechnik ·
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NC7SZ125-1011470.pdf
Diagrams 7 Z 1 5 — IEEE/IEC i y L o i Figure 1. Logic Symbol c® U H S B Pin Configurations f e r i h T h e - t t Figure 2. SC70 and SOT23 (Top View) Figure 3. MicroPak™ (Top Through View) e O t u Pin Definitions t Pin # SC70 / SOT23 Pin # MicroPak Name Description 1 1 OE Input 2 2 A Input 3 3 GND Ground
in „Qnap TS-439 Pro - Monitor am VGA geht nicht an“ · PC Hard- und Software ·
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CEPT-Laenderliste_2014.pdf
70,5125; 144–146; 432– 6 [Perth]: regionale Einschränkungen); 1,24–1,3; 2,3–2,302; 2,4–2,45; 3,3–3,425, 438 MHz; 1,24–1,3; 2,3–2,45; 3,4–3,41; 5,65–5,85; 10–10,5; 24–24,25; 47–47,2; 3,425–3,4425 (regionale Einschränkungen), 3,4425–3,475 (regionale Einschränkun- 76–81,5; 122,25–123; 134–141; 241–250 GHz
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Datenblatt_EBMPapstLuefter.pdf
Mounting position - shaft Any 2 Mechanics 2.1 General Width 119,0 mm Height 119,0 mm Depth 38,0 mm Mass 0,425 kg Housing material Metal Impeller material Plastic Max. torque when mounted across both mounting Wire outlet corner: 420 Ncm flanges Remaining corners: 600 Ncm Screw size ISO 4762 - M4 degreased, without
in „EBM Papst 4114 Lüfter mit Microcontroller steuern“ · Analoge Elektronik und Schaltungstechnik ·
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4N25.pdf
Collector-Emitter SaturationVoltage vs Collector Current (Black Package) (White Package) ) ) (100 ( E E 100 G G T T L O T = 25˚C V V A N 10 N 10 I I T A R R U T A 1 A 1 S S R I = 2.5 mA E I = 2.5 mA T F T F I I M 0.1 E 0.1 - - R O T T C IF= 20 mA E L0.01 F = 10 mA L 0.01 F = 20 mA L F = 5 mA O C C IF= 5 mA ) ) IF
in „optocoupler beschaltung“ · Mikrocontroller und Digitale Elektronik ·
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LMD18200_-_HBr__cke.pdf
VIN e 12V, Pinse 3, 4, 5 10 mA (max) Current Sense Output IOUT e 1A (Note 8) 377 325/300 mA (min) 425/450 mA (max) Current Sense Linearity 1A s IOUT s 3A (Note 7) g 6 g 9 % Undervoltage Lockout Outputs turn OFF 9 V (min) 11 V (max) T JW Warning Flag Temperature Pin 9s 0.8V, Le 2 mA 145 § V FON) Flag
in „LMD18200 current sense Charakteristik. Erfahrung?“ · Analoge Elektronik und Schaltungstechnik ·
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3_3V_Regler.pdf
Current vs. Temperature Characteristics 500 700 6 ) ) V 600 )5 (400 ( ( E 500 E A A A4 ILOAD= 1mA T300 L00 T O O O3 V 300 LOAD= 400mA V T200 T T O 200 P2 P P T LOAD = 400mA R100 R O1 D D00 0 0 0 0 100 200 300 400 -60 -30 0 30 60 90 120 150 0 1 2 3 4 5 6 OUTPUT CURRENT (mA) TEMPERATURE (°C) INPUT VOLTAGE
in „3,3V Regler im SOT-89 Gehäuse“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
platformio.ini
<src/gcode/calibrate/G34_M422.cpp> -<src/gcode/calibrate/G76_M192_M871.cpp> -<src/gcode/calibrate/G425.cpp> -<src/gcode/calibrate/M12.cpp> -<src/gcode/calibrate/M48.cpp> -<src/gcode/calibrate/M100.cpp> -<src/gcode/calibrate/M425.cpp> -<src/gcode/calibrate/M666.cpp> -<src/gcode/calibrate/M852.cpp> -<src
in „Ender3 Z-Achse fährt mit Marlin nur nach oben“ · Mechanik, Gehäuse, Werkzeug ·
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LMD18200.pdf
unless otherwise specified. Boldface limits apply over the entire operating temperature range, −40˚C ≤ T ≤ +125˚C, all other limits are for T = 25˚C. J A J Symbol Parameter Conditions Typ Limit Units RDS (ON) Switch ON Resistance Output Current = 3A (Note 6) 0.33 0.4/0.6 (max) R (ON) Switch ON Resistance
in „Halbbrücke für BLDC“ · Mikrocontroller und Digitale Elektronik ·
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dogs102doku.pdf
unsigned char data); 74 static void WriteCommand(unsigned char cmd); 75 static void MoveTo_XY(uint8_t PosX, uint8_t Page); 76 static void WriteCache(unsigned char PosX, unsigned char Page, unsigned int Len); 77 static int sgn(int x); //fur das Bresenhamalgorithmus 78 void SPI_Init(void); 79 void SPI_SendByte
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LB1847.pdf
18 17 16 15 LB1847 1 2 3 4 5 6 7 8 9 10 11 12 13 14 D 1 1 1 1 A A B B 2 2 2 2 B Top view M E R E Y T T T T Y E R E V R C C O O O O C C R V E E V D D A11312 No. 5982-5/16 LB1847 Block diagram 2 2 2 E Y L 2 A C A F C H E N 1 B B 4B R V P D E I I I I V 1 1 A i o i t r l c e c u t c u l i o C s c C t h t i e e u n i R B n m al t C T O b O 2 E B U O n o t t h u B l i V a c r h T T U O 1 E A U t O h i n - u k m R n m l t C O b r g n t i o u r l i r i C s c n c C D E Y E 1A A A 4A F D M S A L I I I I R
in „Spannung steig an Vcc an, wenn Vbb über 7V geht“ · Analoge Elektronik und Schaltungstechnik ·
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NEXPERIA_BC846_SER.pdf
400 (3) 100 200 0 −1 2 3 0 −1 2 3 10 1 10 10 10 10 1 10 10 10 C (mA) IC(mA) V CE= 5 V V CE = 5 V (1) T amb= 150 C (1) T amb= 55 C (2) T = 25 C (2) T = 25 C amb amb (3) T amb= 55 C (3) T amb= 150 C Fig 1. Selection A: DC current gain as a function of Fig 2. Selection A: Base-emitter voltage as
in „Und wieder eine kleine lustige Teilesucherei Mosfet“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DatenblattOriginalLEDAiptekt20.pdf
and XLamp are registered trade- marks of Cree, Inc. 7 XLAMP XP-E LEDS ELECTRICAL CHARACTERISTICS (T = 25°C) J 700 600 ) A 500 ( t n 400 e r Red, Red u 300 Orange C r a 200 w o F 100 0 Graph 5 0.0 0.5 1.0 1.5 2.0 2.5 3.0 3.5 4.0 4.5 5.0 1000 Forward Voltage (V) 1000 800 ) 900 A 700 ( 800 t 600 n 700
in „Abstrhlfläche LED“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Spec_LCM-198-05_Rev_C_DMO.pdf
input signal rise time and fall time (tr, tf) is specified at 15ns or less. (tr + tf) < CYC8 - CCLW - tCCHW ) for write, (trtf) < (CYC8 - CCLR - CCHR ) for read. 2. All timing is specified using 20% and 80% of VDD as the reference. 3. tCCLW and tCCLR are specified as the overlap interval when /CS1 is low
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LT1498.pdf
Current (Output High) vs Load Current (Output Low) 400 1000 1000 VS= p15V 300 VCM = 15V ) ) ) n 200 m m T NPN ACTIVE VS= 5V, 0V E E E 100 VCM = 5V G100 G100 R T T U O O TA= 25°C C 0 V V TA= 125°C I I I B–100 V = p15V A A U PNP ACTIVE S R 10 R 10 TA= –55°C N–200 VCM = –15V T TA= –55°C T I S S VS= 5V, 0V T
in „KSQ für LED mit OPV“ · Analoge Elektronik und Schaltungstechnik ·
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flipdot.pdf
R444 R446 R448 R450 R452 R454 R456 R458 ROW_7B R405 R407 R409 R411 R413 R415 R417 R419 R421 R423 R425 R427 R429 R431 R433 R435 R437 R439 R441 R443 R445 R447 R449 R451 R453 R455 R457 R459 L230 L231 L232 L233 L234 L235 L236 L237 L238 L239 L240 L241 L242 L243 L244 L245 L246 L247 L248 L249 L250 L251 L252
in „Flipdot Matrix - FP2800A“ · Mikrocontroller und Digitale Elektronik ·
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PDF
flipdot.pdf
L223 L224 ROW_7A D393 D395 D397 D399 D401 D403 D405 D407 D409 D411 D413 D415 D417 D419 D421 D423 D425 D427 D429 D431 D433 D435 D437 D439 D441 D443 D445 D447 ROW_7B D394 D396 D398 D400 D402 D404 D406 D408 D410 D412 D414 D416 D418 D420 D422 D424 D426 D428 D430 D432 D434 D436 D438 D440 D442 D444 D446 D448
in „Flipdot Matrix - FP2800A“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LA_LO_LS_LY_T676_Pb_free.pdf
LA T676-S1T1-24 180 ... 355 760 (typ.) Q65110A9275 LA T676-Q2T1-24 90 ... 355 665 (typ.) Q65110A9273 LO T676-R1S2-24 orange 112 ... 280 600 (typ.) Q65110A2148 LO T676-S1T1-24 180 ... 355 760 (typ.) Q65110A2149
in „LED's ohne vorwiderstand Oo“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MAX312-MAX314.pdf
0.0001 1 Ground Current GND VIN= 0V or 5V, µA V+ = 16.5V TA= T MINto MAX -5 5 V- = -16.5V DYNAMIC Turn-On Time tON Figure 2, TA= +25°C 70 225 ns VCOM = ±10V TA= T MINto MAX 275 Figure 2, TA= +25°C 65 185 Turn-Off Time OFF ns VCOM = ±10V TA= T MINto MAX 235 MAX314
in „Frage zum Datenblatt max313 analogschalter“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
small_pcb.PDF
COOT PIVFD2536NC14 COBOO 0 COUSAR 12VDC COBT 5 0.1uf OTP PIRP107 PIRP108 VCC 3.3V PIVFD2536NC15 BO T USART 1 PIpower0P1IDPID302 BT GND PIC502 PIC50P1VDDL BUEY PIOTP08pwm3 PIRP105 PIRP106 PIVFD2536NC16 1 PIBOOT001OOT0 3 PIUSART03D 2 PIpowerCOD 1 PIBT01 PIOTP0PWM1 DATA PIOTP07pwm2 PIRP103 PIRP104 PIVFD2536GND7
in „STC LED Cube 8x8x8 RGB“ · Mikrocontroller und Digitale Elektronik ·
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PDF
B82432C1472K000_TDK_Epcos_unpw.pdf
max Solderability (lead-free) Sn95.5Ag3.8Cu0.7: +(245 r5) °C, (5 r0.3) s Wetting of soldering area t 90% (based on IEC 60068-2-58) Resistance to soldering heat +260 qC, 40 s (as referenced in JEDEC J-STD 020D) Climatic category 55/150/56 (to IEC 60068-1) Storage conditions Mounted: –55 °C … +150 °C
in „Pollin SMD-Induktivitäten identifizieren“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LST670.pdf
TOPLED ® Lead (Pb) Free Product - RoHS Compliant LS T670, LO T670, LY T670, LG T670, LP T670 NichtfürNeuentwicklungen Not for new designs Besondere Merkmale Features • Gehäusetyp: weißes P-LCC-2-Gehäuse, package: white P-LCC-2 package, colorless clear farbloser
in „[V] LS T670 Rote SMD Leds“ · Markt ·
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PDF
HT75xx-1.pdf
March 19, 2014 HT75xx-1 Typical Performance Characteristics Test Condition: Vin=Vout+2V, I OUT =10mA, T =25°C, uJless otherwise noted Output Voltage vs Input Voltage HT7533-1 HT7550-1 3.50 5.20 Iout=10mA Iout=10mA 3.45 5.15 V 3.40 V 5.10 e e5.05 a3.35 a l3.30 o5.00 v t u3.25 u4.95 t u O3.20 O4.90 3.15
in „2xAA + Elektronik -> Batterielebensdauer“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
lmt70_appnote.pdf
amplifier output connects to an output switch that is turned on and off by the digital control input T_ON (see Figure 1). This switch allows for the multiplexing of multiple sensors on one signal line. VDD T_ON TAO Thermal Diodes GND Figure 1. LMT70 Block Diagram The LMT70 is a contact sensor, thus making
in „Temperatursensor 35-43°C Fieberthermometer“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HD66766-10.pdf
pins to Vcc or GND. 87 HD66766 Rev. 1.0 / 30 November 2001 80-system Bus Operation VIH VIH RS VIL VIL tAS tAH VIH CS* VIL Note 1) çPWLW, PWLR çWHW, PWHR WR* VIH VIH VIL VIL RD* tWRr tWRf tCYCW, tCYCR çç tDSW ç tHWR ç DB0 VIH VIH to DB15 VIL Wrire data VIL tDDR ç tDHRçç DB0 VOH1 Read data VOH1 to DB15 VOL1
in „The Siemens S65 132x176, 65536 color display with AVR“ · Projekte & Code ·
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PDF
DS1302.pdf
Supply Current ICC1A CC1 mA 2,9 VCC1 = 5V 1.2 Timekeeping Current (OSC On) I VCC1 = 2.0V 0.3 mA 1,9 CC1T VCC1 = 5V 1 VCC1 = 2.0V 100 Standby Current (OSC Off) I VCC1 = 5V 100 nA 7,9,11 CC1S IND 200 Active Supply Current ICC2A VCC2 = 2.0V 0.425 mA 2,10 VCC2 = 5V 1.28 VCC2 = 2.0V 25.3 Timekeeping Current
in „genauer TIMER“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DS1302.pdf
Supply Current ICC1A CC1 mA 2,9 VCC1 = 5V 1.2 Timekeeping Current (OSC On) I VCC1 = 2.0V 0.3 mA 1,9 CC1T VCC1 = 5V 1 VCC1 = 2.0V 100 Standby Current (OSC Off) I VCC1 = 5V 100 nA 7,9,11 CC1S IND 200 Active Supply Current ICC2A VCC2 = 2.0V 0.425 mA 2,10 VCC2 = 5V 1.28 VCC2 = 2.0V 25.3 Timekeeping Current
in „RTC DS 1302“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HD66766R.PDF
Rev. 1.0-1 / September 2002 Timing Characteristics 68-system Bus Operation VIH VIH RS VIL VIL R/W tASE tAHE CS* VIL VIL Note 1) PWEH PWEL VIH VIH E VIL VIL VIL tEr tEf tYCE tDSWE tHE Note2) VIH VIH DB0 Wrire data to DB15 VIL VIL tDDRE tDHRE Note 2) VOH1 VOH1 DB0 Read data to DB15 VOL1 VOL1 Figure79
in „LCD-Modul F51661GNCJU-MLW-AA * Info *“ · Mikrocontroller und Digitale Elektronik ·
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LY_E67F.pdf
P P 0.02 P IF 0.02 tP IF D =T D = T T T 0 -5 -4 -3 -2 -1 0 1 2 0 -5 -4 -3 -2 -1 0 1 2 10 10 10 10 10 10 10 s10 10 10 10 10 10 10 10 s10 tp p 2013-04-29 10 Version 1.1 LY E67F 9) page 19 Package Outline Maßzeichnung 9) Seite
in „PLCC-6 LED auf PLCC-4 Platine Löten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AD5415.pdf
maximum clock frequency. SDO timing specifications measured with a load circuit, as shown in Figure 4. t1 SCLK t t t t4 2 3 8 t7 SYNC t 6 5 DIN DB15 DB0 10 t9 1 LDAC t11 LDAC 2 NOTES 1ASYNCHRONOUS LDAC UPDATE MODE 2SYNCHRONOUS LDAC UPDATE MODE 0 - ALTERNATIVELY, DATA CAN BE CLOCKED INTO INPUT SHIFT REGISTER
in „D/A mit Stromausgang“ · Mikrocontroller und Digitale Elektronik ·
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POMPESminicentrale_courant_continu.pdf
alternatif Accessoires C a ra c té ris tiq u e s te c h n iq u e s d o n n é e s à titre p u re m e n t in d ic a tif e t m o d ifia b le s s a n s p ré a v is FamillePage 07 / 1 CODE147. EDITION 01/04/2000 MINICENTRALES A COURANT CONTINU CARACTERISTIQUES TECHNIQUES Lesminicentralesont été étudiéespour
in „Treiberstufe für Pumpenmotor dimensionieren“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Clock_jitter_analyzed_in_the_Time_Domain_Part_1.pdf
well as the aperture jitter of the ADC. Those –20 360 fs two components combine as follows: –40 2 2 tJitter (t Jitter,Clock_Input+(t Aperture_ ADC ) (3) –60 The aperture jitter of the ADC can be found in the data B –80 sheet. It is important to remember that this value is ( e –100 typically specified
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TLV431-DIO.pdf
Line of Diodes Incorporated TLV431 Electrical Characteristics (@T = +25°C, unless otherwise specified.) A Symbol Parameter Conditions Min Typ Max Units TLV431A 1.228 1.24 1.252 VKA = VREF, TLV431B 1.234 1.24 1.246 TA = +25°C TLV431T 1.2375 1.24 1.2425 VKA = VREF, TLV431A 1.221 1.259 TLV431B 1.227 1.253 TA = 0 to +70°C VREF Reference Voltage TLV431T 1.230 1.250 V TLV431A 1.215 1.265 VKA = VREF, T = -40 to +85°C TLV431B 1.224 1.259 A TLV431T 1.228 1.252 V = V , TLV431A 1.209 1.271 KA REF TLV431B 1.221 1.265 TA = -40 to +125°C TLV431T 1.224 1.255
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-b ×d ×v×Dt n ×e (15) e (ne- Anzahldichte der Leitungselektronen, e- Elementarladung). Wegen I= Q/ t ist I = -b ×d×v n e×e. (16) . . Wird e ▯in Gl. (16) ersetzt durch ▯aus Gl. (14), dann ergibt sich die Spannung H zu I ×B U H = 1 . (17) n e×e d Der Zusammenhang (17) zeigt, dass mit einem Leiter- oder
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LA_LO_LS_LY_E63B_Pb_free_1_.pdf
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