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at98c51ed2.pdf
B1h Interrupt Enable Control 1 - - - - - ESPI KBD IPH0 B7h Interrupt Priority Control High 0- PPCH PT2H PHS PT1H PX1H PT0H PX0H IPL0 B8h Interrupt Priority Control Low 0 - PPCL PT2L PLS PT1L PX1L PT0L PX0L IPH1 B3h Interrupt Priority Control High 1- - - - - SPIH KBDH IPL1 B2h Interrupt Priority Control
in „8051: Oszillatorfrequenz und Maschinenzyklus“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
B1h Interrupt Enable Control 1 - - - - - ESPI KBD IPH0 B7h Interrupt Priority Control High 0- PPCH PT2H PHS PT1H PX1H PT0H PX0H IPL0 B8h Interrupt Priority Control Low 0 - PPCL PT2L PLS PT1L PX1L PT0L PX0L IPH1 B3h Interrupt Priority Control High 1- - - - - SPIH KBDH IPL1 B2h Interrupt Priority Control
in „Mikrocontrollerboard: Funktioniert das?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
B1h Interrupt Enable Control 1 - - - - - ESPI KBD IPH0 B7h Interrupt Priority Control High 0- PPCH PT2H PHS PT1H PX1H PT0H PX0H IPL0 B8h Interrupt Priority Control Low 0 - PPCL PT2L PLS PT1L PX1L PT0L PX0L IPH1 B3h Interrupt Priority Control High 1- - - - - SPIH KBDH IPL1 B2h Interrupt Priority Control
in „EEPROM schreiben/lesen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
B1h Interrupt Enable Control 1 - - - - - ESPI KBD IPH0 B7h Interrupt Priority Control High 0- PPCH PT2H PHS PT1H PX1H PT0H PX0H IPL0 B8h Interrupt Priority Control Low 0 - PPCL PT2L PLS PT1L PX1L PT0L PX0L IPH1 B3h Interrupt Priority Control High 1- - - - - SPIH KBDH IPL1 B2h Interrupt Priority Control
in „Temperatur ohne AD-Eingang messen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
B1h Interrupt Enable Control 1 - - - - - ESPI KBD IPH0 B7h Interrupt Priority Control High 0- PPCH PT2H PHS PT1H PX1H PT0H PX0H IPL0 B8h Interrupt Priority Control Low 0 - PPCL PT2L PLS PT1L PX1L PT0L PX0L IPH1 B3h Interrupt Priority Control High 1- - - - - SPIH KBDH IPL1 B2h Interrupt Priority Control
in „Displaybeleuchtung faden ohne Analog I/O“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
B1h Interrupt Enable Control 1 - - - - - ESPI KBD IPH0 B7h Interrupt Priority Control High 0- PPCH PT2H PHS PT1H PX1H PT0H PX0H IPL0 B8h Interrupt Priority Control Low 0 - PPCL PT2L PLS PT1L PX1L PT0L PX0L IPH1 B3h Interrupt Priority Control High 1- - - - - SPIH KBDH IPL1 B2h Interrupt Priority Control
in „Displaybeleuchtung mit PWM dimmen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
B1h Interrupt Enable Control 1 - - - - - ESPI KBD IPH0 B7h Interrupt Priority Control High 0- PPCH PT2H PHS PT1H PX1H PT0H PX0H IPL0 B8h Interrupt Priority Control Low 0 - PPCL PT2L PLS PT1L PX1L PT0L PX0L IPH1 B3h Interrupt Priority Control High 1- - - - - SPIH KBDH IPL1 B2h Interrupt Priority Control
in „8051: An Port 0 kann nichts ausgegeben werden“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
B1h Interrupt Enable Control 1 - - - - - ESPI KBD IPH0 B7h Interrupt Priority Control High 0- PPCH PT2H PHS PT1H PX1H PT0H PX0H IPL0 B8h Interrupt Priority Control Low 0 - PPCL PT2L PLS PT1L PX1L PT0L PX0L IPH1 B3h Interrupt Priority Control High 1- - - - - SPIH KBDH IPL1 B2h Interrupt Priority Control
in „8051: An Port 1 nur 3.5V anstatt 5V ?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51rd2.pdf
B1h Interrupt Enable Control 1 - - - - - ESPI KBD IPH0 B7h Interrupt Priority Control High 0- PPCH PT2H PHS PT1H PX1H PT0H PX0H IPL0 B8h Interrupt Priority Control Low 0 - PPCL PT2L PLS PT1L PX1L PT0L PX0L IPH1 B3h Interrupt Priority Control High 1- - - - - SPIH KBDH IPL1 B2h Interrupt Priority Control
in „Alternative Funktion von Pins“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
B1h Interrupt Enable Control 1 - - - - - ESPI KBD IPH0 B7h Interrupt Priority Control High 0- PPCH PT2H PHS PT1H PX1H PT0H PX0H IPL0 B8h Interrupt Priority Control Low 0 - PPCL PT2L PLS PT1L PX1L PT0L PX0L IPH1 B3h Interrupt Priority Control High 1- - - - - SPIH KBDH IPL1 B2h Interrupt Priority Control
in „Frequenz für µC AT89C51ED2“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BTB16-600C.pdf
IL G = 1.2 xGT mA II Max. 15 30 60 80 dV/dt(2) VD= 67% V DRM, gate open, j = 125 °C Max. 20 40 500 1000 V/µs (dV/dt)c = 0.1 V/µsj T = 125 °C Min. 3.5 6.5 (dl/dt)c2)(dV/dt)c = 10 V/µs, T = 125 °C Min. 1.0 2.9 A/ms j Without snubber, j = 125 °C Min. 6.5 12 1. Minimum I GT is guaranteed at 5 % GT max. 2.
in „Leistung für Gatewiderstand Triac“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Anleitung_PGI_1200_A1.pdf
you Protection type IP23M also pass on all the documentation with it. Continuous output P ratedS1) 1000 W Important! When using the equipment, a few safety precautions Max. output P max(S2/5 s) 1200 W must be observed to avoid injuries and damage. Please read the complete operating instructions and Nominal
in „Inverter Generator PGI 1200 A1 - keine Spannung an 230V“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Anleitung_PGI_1200_A1.pdf
you Protection type IP23M also pass on all the documentation with it. Continuous output P ratedS1) 1000 W Important! When using the equipment, a few safety precautions Max. output P max(S2/5 s) 1200 W must be observed to avoid injuries and damage. Please read the complete operating instructions and Nominal
in „Inverter Generator PGI 1200 A1 - keine Spannung an 230V“ · Mechanik, Gehäuse, Werkzeug ·
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PDF
349_529-15.pdf
ERN 180 22 1000 bis 5000 1000 bis 5000 1000 bis 5000 Striche Striche Striche – ROD 1020 – ROD 1030 ROD 1080 24 100 bis 3600 60 bis 3600 100 bis 3600 Striche Striche Striche ROQ 425 ROD 426 ROD 466 ROD 436 ROD 486 26
in „Wie entsteht das Sinusförmige Signal eines Drehgebers/ Vermutung“ · Offtopic ·
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PDF
A_Design_of_High_Speed_and_Real-time_DSO_Based_on_FPGA.pdf
m m * m (fj'!rilfft~!i*i r]8r,-,-tl'ß1f'&iti~:i*i ÄÄJ1'IIJn, ilifil;1l'l'l.:'J1'IIJntieffjrj'ßl!J.!Pt«iit1mi!t1T1'rIXJ1'(("ii'tJlJ(, 7f'1Y 'l;T'!!"1-• • 8'JmliIWl'ilül'llr~Pt'*Mt(mif~,MliiirJB'JX1t1Jl', ~21tTm,&lltiCi, t"jt;;1:',:14-." FPGA iJl!ilJiC*J(J~iiliND ~m*((:<ilii'&Wf1,&ji(i1*n '!&"i'ilj-\EilFPGA
in „Oszilloskop - SoC“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
VSC055.pdf
START condition. The VSC055-01 supports two pin-selectable, 4-bit device type identifier values, 1000b and 1100b. The address bits and the device identifier allow the use of up to 16 devices on a single two-wire serial interface. The serial interface control logic includes: ● a slave state machine ●
in „Prüfplatine für 400++ I/Os“ · Mikrocontroller und Digitale Elektronik ·
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PDF
OSRAM_SFH9202.pdf
20mA 0.4 60 ΙF=15mA 0.3 Detector 40 Ι =10mA 0.2 F 20 0.1 ΙF=5mA Emitter 0 0 0.1 100 10 V 700 800 900 1000 nm 1100 λ VCE Permissible Pulse Handling Capability Permissible Pulse Handling Capability Zulässige Pulsbelastbarkeit Zulässige Pulsbelastbarkeit IF= f(p ), A = 25 °C, duty cycle D = parameter IF= f
in „kleiner Barcode Scanner bei variabler Geschwindigkeit“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TimerPumpe_S01_CMOS4060.pdf
-32Vin max.10Ain 12-35Vo 6Aout 100W max.150W+Fan 65x56,5x23mm, UC3843A SO8, 78L09 SOT89 max30V 2x 1000uF 25mA 049-01 2,87€ , Oese1-2_12V +13,8VM1 Pressure Water Pump FL-40 12V 9,2A 110W 17L/Min 1020l/h ThermalProtection, d LiFePo4 4s4p 13,2V 3,3V 2,3Ah 70A 120Apk 8mR A123 26650 16Zellen +HoldInOut1/2
in „Laufzeitbegrenzung für 12V Pumpe mit Akku, Solarmodul, Step-Up, Zeitschaltuhrbetrieb LED-Anzeige MPP“ · Projekte & Code ·
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PDF
xfft_ds260.pdf
Ignored when C_USE_FLT_PT = 1 C_HAS_ROUNDING Rounding mode. 0,1 rounding_modes: truncation => 0, Ignored when C_USE_FLT_PT = 1 convergent_rounding => 1 After a state structure has been created, it can be used as many times as
in „Implementierung der XILINX FFT-Core“ · FPGA, VHDL & Co. ·
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PDF
SC17_GENERAL_TEMP_1996_3.pdf
key characteristics R 25 AVAILABLE TOLERANCE T operRANGE FAMILY TYPE ( ) ( R) (°C) PACKAGE KTY81-1 1000 ±1% up to ±5% −55 to 150 SOD70 KTY81-2 2000 ±1% up to ±5% −55 to 150 SOD70 KTY82-1 1000 ±1% up to ±5% −55 to 150 SOT23 KTY82-2 2000 ±1% up to ±5% −55 to 150 SOT23 KTY83-1 1000 ±1% up to ±5% −55 to 175
in „Polynom für PTC KTY84-110“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TEMP1996.PDF
key characteristics R 25 AVAILABLE TOLERANCE T operRANGE FAMILY TYPE ( ) ( R) (°C) PACKAGE KTY81-1 1000 ±1% up to ±5% −55 to 150 SOD70 KTY81-2 2000 ±1% up to ±5% −55 to 150 SOD70 KTY82-1 1000 ±1% up to ±5% −55 to 150 SOT23 KTY82-2 2000 ±1% up to ±5% −55 to 150 SOT23 KTY83-1 1000 ±1% up to ±5% −55 to 175
in „Temperatur Sensor KTY“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SC17_GENERAL_TEMP_1996_3.pdf
key characteristics R 25 AVAILABLE TOLERANCE T operRANGE FAMILY TYPE ( ) ( R) (°C) PACKAGE KTY81-1 1000 ±1% up to ±5% −55 to 150 SOD70 KTY81-2 2000 ±1% up to ±5% −55 to 150 SOD70 KTY82-1 1000 ±1% up to ±5% −55 to 150 SOT23 KTY82-2 2000 ±1% up to ±5% −55 to 150 SOT23 KTY83-1 1000 ±1% up to ±5% −55 to 175
in „Spezifikation Temperatursensor“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SC17_GENERAL_TEMP_1996_3.pdf
key characteristics R 25 AVAILABLE TOLERANCE T operRANGE FAMILY TYPE ( ) ( R) (°C) PACKAGE KTY81-1 1000 ±1% up to ±5% −55 to 150 SOD70 KTY81-2 2000 ±1% up to ±5% −55 to 150 SOD70 KTY82-1 1000 ±1% up to ±5% −55 to 150 SOT23 KTY82-2 2000 ±1% up to ±5% −55 to 150 SOT23 KTY83-1 1000 ±1% up to ±5% −55 to 175
in „KTY81-110 ADC WERT -> Temperatur“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SC17_GENERAL_TEMP_1996_3.pdf
key characteristics R 25 AVAILABLE TOLERANCE T operRANGE FAMILY TYPE ( ) ( R) (°C) PACKAGE KTY81-1 1000 ±1% up to ±5% −55 to 150 SOD70 KTY81-2 2000 ±1% up to ±5% −55 to 150 SOD70 KTY82-1 1000 ±1% up to ±5% −55 to 150 SOT23 KTY82-2 2000 ±1% up to ±5% −55 to 150 SOT23 KTY83-1 1000 ±1% up to ±5% −55 to 175
in „Atmega168 ADC - Schwankungen/Beeinflussungen vom Nachbarpin“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Flash_EEPROM.txt
0x80 #define BIT8 0x100 #define BIT9 0x200 #define BIT10 0x400 #define BIT11 0x800 #define BIT12 0x1000 #define BIT13 0x2000 #define BIT14 0x4000 #define BIT15 0x8000 #define BIT16 0x10000 #define BIT22 0x400000 #define BIT24 0x1000000 #define BIT30 0x40000000 #define Null (void*) 0 #include<aduc7060.
in „Speichern und lesen eines internen EEPROMs“ · Mikrocontroller und Digitale Elektronik ·
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AvrBoard.pdf
AVR-Mikrokontroller ATmega8, 16MHz, DIL 1 MAX232A RS232-Spannungswandler, Version für 100nF-Kondensatoren 1 B80C1000 DIL Graetz-Brückengleichrichter im DIL-Gehäuse – 80V – 1,0A 1 78L05 Spannungsregler +5V, 100mA, TO92 1 LED grün LowCurrent-LED grün, ∅ 3mm, 2mA 1 LED gelb LowCurrent-LED gelb, ∅ 3mm, 2mA 2 LED rot LowCurrent-LED
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PDF
AvrBoard.pdf
AVR-Mikrokontroller ATmega8, 16MHz, DIL. 1 MAX232A RS232-Spannungswandler, Version für 100nF-Kondensatoren 1 B80C1000 DIL Graetz-Brückengleichrichter im DIL-Gehäuse – 80V – 1,0A 1 78L05 Spannungsregler +5V, 100mA, TO92 1 LED grün LowCurrent-LED grün, ∅ 3mm, 2mA 1 LED gelb LowCurrent-LED gelb, ∅ 3mm, 2mA 2 LED rot LowCurrent-LED
in „LED flackern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AvrBoard__1_.pdf
AVR-Mikrokontroller ATmega8, 16MHz, DIL. 1 MAX232A RS232-Spannungswandler, Version für 100nF-Kondensatoren 1 B80C1000 DIL Graetz-Brückengleichrichter im DIL-Gehäuse – 80V – 1,0A 1 78L05 Spannungsregler +5V, 100mA, TO92 1 LED grün LowCurrent-LED grün, ∅ 3mm, 2mA 1 LED gelb LowCurrent-LED gelb, ∅ 3mm, 2mA 2 LED rot LowCurrent-LED
in „portpin PD.3 liefert kein signal“ · Mikrocontroller und Digitale Elektronik ·
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PDF
VISH-S350P.PDF
V Emitter Collector Voltage V 5 V ECO Collector Current IC 50 mA Peak Collector Current tp/T = 0.5,pt x 10 ms ICM 100 mA Total Power Dissipation T x 55 °C P 100 mW amb tot Junction Temperature Tj 100 °C Storage Temperature Range Tstg –55...+100 °C Soldering Temperature t x 3 s T 260 °C sd Thermal Resistance
in „Lichtschranken Signal bricht bei höheren f zusammen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
VISH-S350P.PDF
V Emitter Collector Voltage V 5 V ECO Collector Current IC 50 mA Peak Collector Current tp/T = 0.5,pt x 10 ms ICM 100 mA Total Power Dissipation T x 55 °C P 100 mW amb tot Junction Temperature Tj 100 °C Storage Temperature Range Tstg –55...+100 °C Soldering Temperature t x 3 s T 260 °C sd Thermal Resistance
in „Lichtschranken Signal bricht bei höheren f zusammen“ · Analoge Elektronik und Schaltungstechnik ·
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X100-LEB_LET_A2A.pdf
of the NTC 6000 thermistor T ⋅ TN R N 5000 B = B N ⁄ T = ------- ⋅ l---- T – N R T 4000 3000 2000 1000 0 0 10 20 30 40 50 60 70 ˚C90 TNTC 2005-10-12 5 LE T A2A, LE B A2A Wellenlängengruppen (Dominantwellenlänge) 4) Seite 16 Wavelength Groups (Dominant Wavelength) 4) page 16 Gruppe true green Gruppe blue
in „[V] Hochleistungs-LED-Module auf Metallkernplatine“ · Markt ·
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Datei
main.html
<span class='cpp09'>#define T10ms (F_CPU/100) </span> <span class='cpp09'>#define T8msh (((F_CPU/1000)*8)+((F_CPU/10000)*Tolleranz)) </span> <span class='cpp09'>#define T8msl (((F_CPU/1000)*8)-((F_CPU/10000)*Tolleranz)) </span> <span class='cpp09'>#define T4msh (((F_CPU/1000)*4)+((F_CPU/10000)*Tolleranz)) </span> <span class='cpp09'>#define T4msl (((F_CPU/1000)*4)-((F_CPU/10000)*Tolleranz)) </span> <span class='cpp09'>#define T055msh (((F_CPU/100000)*55)+((F_CPU/100000)*3*Tolleranz)) </span> <span class='cpp09'>#define T055msl (((F_CPU/100000)*55)-((F_CPU
in „Daewoo-Fernbedienungscode / Interrupt lässt sich nicht ausschalten“ · Mikrocontroller und Digitale Elektronik ·
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Datei
hardinfo_report.html
(for DRM device)</td></tr> <tr><td class="field">atl1c</td><td class="value">Qualcom Atheros 100/1000M Ethernet Network Driver</td></tr> <tr><td class="field">i2c_algo_bit</td><td class="value">I2C-Bus bit-banging algorithm</td></tr> <tr><td class="field">ahci</td><td class="value">AHCI SATA low-level
in „Notebook vom Typ Asus UL50VT erkennt weder Festplatte noch DVD-Laufwerk“ · PC Hard- und Software ·
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Datei
schemath.txt
COLLINS: 75A-2 R388/URR R392URR DRAKE 2B R-4B EDDYSTONE: EC10 680X 730/4 770S 830 840A GRUNDIG:SATELLIT 1000 HAGENUK:E75 UE12 HA5K39B HALLICRAFTER:SX-28A SX-42 HAMMERLUND:HQ-140X HEATHKIT:GR78 HR10B HR1680 HRO:5A1 7 50 60 ICOM: R70 IC-EX257(FM UNIT) JRC: 515 KENWOOD: R300 R599A R600 R820 R1000 R2000 R5000
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PDF
MS-17631_2.0.pdf
GMT X_G547I1P81U_MSOP8 ▯ S <22> CTL1_EC C <22> CTL3_EC F 0 USB5V_PT2 +3VSUS 3 USB3.0 Port 2 USB5V_PT2 USB2 1 ▯ 3 L15 2 ISTX2P_CC_JNC C153 C0.1u10X0402 USB3_TX2_P <16> 3 N ▯ 4 1 SSTX2N_CC_JNC C156 C0.1u10X0402 USB3_TX2_N <16> X_10KR0402 <16> USB_PN1 4 LI2 1 USB_PN1_R
in „In Circuit Programmierer für 8-pin 150mil SOIC PM25LD512“ · Mikrocontroller und Digitale Elektronik ·
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Datei
frq16f628.asm
(LSB) ; virtuell steht davor BIN+3=0 ; das mach dann 32Bit ; ; für Autorange: 1MHz Resolution bei PT=256:1 ; 256 us x 1 MHz / 256 = 1 ; 256 us = 640 Takte = 32 x 20 Takte , 00,20h=32d ; ; ; für die Messung 500 ms ; 10MHz ; 500 ms = 1250000 Takte = 62500 x 20 Takte, 0,f4,24h=62500d -Default ; 10MHz ;
in „Von 10Mhz nach 20Mhz umschreiben“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Philips_TPM7_1E_LA_Plan.pdf
1/8W C F 7 C C929 NC 0.8uH W 5 8 0 4 330P 50V_NC 1 POWER X'FMR + C932 + C937 C960 / U 1 2 1 D921 1000uF/16V 47UF 50V 100N 50V 1 1 1 1 % ! ! MBRF10100CT ! 1 5 9 R - R950 V + BD901 R + 9 K 1K 1/4W S 1 Skip/latch HV 8 Q901 1 HD918 KBJ608G M C 9 1 3 2 FB R915 F C903 O 3 C955 R % 3 CS VCC 6 130 OHM TO-220FP
in „Philips TV Netzteil resettet selbständig“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Philips_TPM7_1E_LA_Plan.pdf
1/8W C F 7 C C929 NC 0.8uH W 5 8 0 4 330P 50V_NC 1 POWER X'FMR + C932 + C937 C960 / U 1 2 1 D921 1000uF/16V 47UF 50V 100N 50V 1 1 1 1 % ! ! MBRF10100CT ! 1 5 9 R - R950 V + BD901 R + 9 K 1K 1/4W S 1 Skip/latch HV 8 Q901 1 HD918 KBJ608G M C 9 1 3 2 FB R915 F C903 O 3 C955 R % 3 CS VCC 6 130 OHM TO-220FP
in „Philips TV Netzteil defekt“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MOC3083M-D.pdf
Trigger Current vs. Temperature Current 16 10000 ) TA= 25_C D NORMALIZED TO PW IN>> 100 ms Z14 L A A 1000 R12 ( O T ( E T10 R 100 E U R C U 8 E C A R K 10 E 6 E G L R ,M T 4 R D ID 1 L ,T 2 IF 0.1 0 1 10 100 −40 −20 0 20 40 60 80 100 PW , LED TRIGGER PULSE WIDTH (ms) TA, AMBIENT TEMPERATURE (_C) IN Figure
in „Alte Triacschaltung umbauen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
74HC4066_74HCT4066_SMDHC4066_PHI.pdf
typ. max. min. max. min. max. RON ON-resistance (peak) − − − − 2.0 100 VCC VIH 54 95 118 142 4.5 1000 to or GND V IL 42 84 105 126 6.0 1000 32 70 88 105 9.0 1000 RON ON-resistance (rail) 80 − − − 2.0 100 GND V IH or 35 75 95 115 4.5 1000 27 65 82 100 6.0 1000 VIL 20 55 70 85 9.0 1000 R ON-resistance (rail) 100 − − − 2.0 100 V V ON CC IH 42 80 106 128 4.5 1000 or VIL 35 75 94 113 6.0 1000 27 60 78 95 9.0 1000 RON maximum variation of − 2.0 VCC VIH ON-resistance between 5 4.5 to or any two channels GND V 4 6.0 IL 3 9.0 Note 1. At supply voltages approaching
in „welche relais für rs232 und atmega32“ · Mikrocontroller und Digitale Elektronik ·
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PDF
INFINEON-IKW50N65F5-DS-V02_01-EN.pdf
limited byvjmax T C= 25°C value limited by bondwire C 80.0 A T C= 100°C 56.0 Pulsed collector current,pt limited bvjmax Cpuls 150.0 A Turn off safe operating area VCE≤ 650V, T vj 175°C - 150.0 A Diode forward current, limited by vjmax T = 25°C value limited by bondwire I 40.0 A C F T C= 100°C 27.0 Diode
in „SGT40n60NPFD vs IKW50N65F5“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
504925-panasonic-aqz202-photomos-relais-1-st-1-schliesser-60-vdc-60-vac-3000-ma-polzahl-4.pdf
A 6.0 A 3.0 A 1.5 A 100 ms (1 shot), VL= DC Power dissipation P out 1.6 W Total power dissipation PT 1.6 W I/O isolation voltage V iso 2,500 V AC Temperature Operating T opr –40°C to +85°C –40°F to +185°F Non-condensing at low temperatures limits Storage Tstg –40°C to +100°C –40°F to +212°F 2) Electrical
in „Suche Halbleiterelement als Ersatz für Relai in Radar-Bewegungsmelder“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AS-MLV-P2_Datasheet_EN_v2.pdf
elements operate at an elevated temperature. The elevated temperature is realized by means of the Pt heater whichisimplementedwithinthesiliconnitridemembrane.The recommended operating temperature for the AS-MLV-P2 is 300°C, which is equivalent to an applied power of approx. 34mW at room temperature.
in „Voltcraft CO-20 USB-Luftqualitätsfühler“ · Mikrocontroller und Digitale Elektronik ·
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PDF
504925-panasonic-aqz202-photomos-relais-1-st-1-schliesser-60-vdc-60-vac-3000-ma-polzahl-4.pdf
A 6.0 A 3.0 A 1.5 A 100 ms (1 shot), VL= DC Power dissipation P out 1.6 W Total power dissipation PT 1.6 W I/O isolation voltage V iso 2,500 V AC Temperature Operating T opr –40°C to +85°C –40°F to +185°F Non-condensing at low temperatures limits Storage Tstg –40°C to +100°C –40°F to +212°F 2) Electrical
in „Welche Eigenschaften haben Solid State Relais, SSR ?“ · Offtopic ·
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PDF
504925-panasonic-aqz202-photomos-relais-1-st-1-schliesser-60-vdc-60-vac-3000-ma-polzahl-4.pdf
A 6.0 A 3.0 A 1.5 A 100 ms (1 shot), VL= DC Power dissipation P out 1.6 W Total power dissipation PT 1.6 W I/O isolation voltage V iso 2,500 V AC Temperature Operating T opr –40°C to +85°C –40°F to +185°F Non-condensing at low temperatures limits Storage Tstg –40°C to +100°C –40°F to +212°F 2) Electrical
in „Kann diese Schaltung den 74HC132 killen?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
504925-panasonic-aqz202-photomos-relais-1-st-1-schliesser-60-vdc-60-vac-3000-ma-polzahl-4.pdf
A 6.0 A 3.0 A 1.5 A 100 ms (1 shot), VL= DC Power dissipation P out 1.6 W Total power dissipation PT 1.6 W I/O isolation voltage V iso 2,500 V AC Temperature Operating T opr –40°C to +85°C –40°F to +185°F Non-condensing at low temperatures limits Storage Tstg –40°C to +100°C –40°F to +212°F 2) Electrical
in „Relais ersetzen“ · Analoge Elektronik und Schaltungstechnik ·
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4_5902390009465407372.pdf
A 6.0 A 3.0 A 1.5 A 100 ms (1 shot), VL= DC Power dissipation P out 1.6 W Total power dissipation PT 1.6 W I/O isolation voltage V iso 2,500 V AC Temperature Operating T opr –40°C to +85°C –40°F to +185°F Non-condensing at low temperatures limits Storage Tstg –40°C to +100°C –40°F to +212°F 2) Electrical
in „CD4066 als Relaisersatz?“ · Analoge Elektronik und Schaltungstechnik ·
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BLF578.pdf
001aak929 26 80 G p ηD (dB) (%) 24 60 (1) (4) (2) (3) (3) (2) (4) (1) 22 40 20 20 18 0 100 400 700 1000 1300 1600 100 400 700 1000 1300 1600 PL(W) PL(W) V DS = 50 V; f = 225 MHz;pt = 100 s; = 20 %. VDS = 50 V; f = 225 MHz; p = 100 s; = 20 %. (1) IDq = 0 mA (1) IDq = 0 mA (2) IDq = 40 mA (2) IDq
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OKI_C1937-01.pdf
SEGMENT SGC DATA PLA DECODER SGD SCLK BUFFER SGE TIMING SGF AND SGG CONTROL SGH 2·16 SEGMENT SGI DECIMAL PT. DRIVERS SGJ POR COMMA TAIL (ANODE) SGK SGL VSS SGM SGN VDD SGO SGP A DIGIT DRIVERS PNT (GRID) TAIL A A A A A A A A A A A A A A A A D D D D D D D D D D D1 1 1 1 1 1 1 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6
in „SPI VFD-Display OKIC1937-01“ · Mikrocontroller und Digitale Elektronik ·
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2202132000_TDK-B72207S0200K105V87_C2839244.pdf
optional): Department: PPD VAR PD Date: 2019-06-10 Version: a Prepared by: Leo Liu Release signed by PD&PT&QA: Wen Yang, Helen Li ,Mac Gao Modifications/Remarks: New issue TDK Electronics AG 2019. Reproduction, publication and dissemination of this publication, enclosures hereto and the information contained
in „Varistor Aufdruck decodieren“ · Analoge Elektronik und Schaltungstechnik ·