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MAX1425.pdf
SSOP package. MAX1425EAI -40°C to +85°C 28 SSOP For a pin-compatible version at a lower data rate, refer to the MAX1426 data sheet. For a higher data rate, refer to the MAX1424 data sheet. Applications Pin Configuration Medical Ultrasound Imaging TOP VIEW CCD Pixel Processing IR Focal Plane Array AGND
in „SRam und ADC extern takten“ · Mikrocontroller und Digitale Elektronik ·
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MOSFET_IRF630_N-Ch_TO-220AB_200V_9_A.pdf
IRF630, RF1S630SM Data Sheet January 2002 9A, 200V, 0.400 Ohm, N-Channel Power Features MOSFETs • 9A, 200V These are N-Channel enhancement mode silicon gate r DS(ON) = 0.400Ω power field effect transistors. They are advanced power MOSFETs designed,
in „Hilfe bei transistor auswahl/suche“ · Analoge Elektronik und Schaltungstechnik ·
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Accu_main.pdf
MUX und Quelle #define VOLT_LADE ((0 << MUX0) | (0 << MUX1) | (0 << MUX2) | (0 << MUX3) | \ (0 << REFS1) | (1 << REFS0) | (1 << ADLAR)) //ADC0 #define VOLT_EINGANG ((1 << MUX0) | (0 << MUX1) | (0 << MUX2) | (0 << MUX3) | \ (0 << REFS1) | (1 << REFS0) | (1 << ADLAR)) //ADC1 unsigned int ADC_WERT; //für
in „Watchdog läßt sich nicht stoppen“ · Mikrocontroller und Digitale Elektronik ·
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EEPROM_s_93Cxx.pdf
ns tSHQV tSV Chip Select to Ready/Busy Status 400 400 ns tSLQZ tDF Chip Select Low to Output Hi-Z 200 200 ns tCHCL(2) tSKH Clock High Time 250 250 ns t (2) t Clock Low Time 250 250 ns CLCH SKL W WP Erase/Write Cycle time 10 10 ms C fSK Clock Frequency 0 1 0 1 MHz Notes: 1. Chip Select must be brought
in „EEPROM 93C86 ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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wg160128b_datasheet.pdf
TYP. MAX. UNIT (V)θ CR≧ 2 20 40 deg ViewAngle (H)φ CR≧ 2 -30 30 deg Contrast Ratio CR - 3 - T rise - 200 300 ms Response Time T fall - 200 300 ms 6.1 Definitions View Angles Contrast Ratio Z (Visualangledirection) Brightnessatselectedstate(BS) θ CR= Brightnessatnon-selectedstate (Bns) Selectedstate % Non-selectedstate
in „GLCD Kontrast (WG160128B & T6963c)“ · Mikrocontroller und Digitale Elektronik ·
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GM47_Integrators_Manual_R1C.pdf
Displacement: 7.5mm sinusoidal Acceleration amplitude: 20m/s² and 40m/s² Frequency range: 2-8Hz, 8-200Hz, 200-500Hz Stationary vibration, Acceleration spectral density (m²/s²): random 0.96, 2.88, 0.96 Frequency range: 5-10Hz, 10-200Hz, 200-500Hz, 60min/axis Non-stationary vibration, Shock response spectrum
in „GM47 GSM Spannungsversorgung aus LiIo-Akku“ · Mikrocontroller und Digitale Elektronik ·
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ad620.pdf
10 G S A I T N E20 E C G R A 10 P L O 10 V GAIN = 100, 1,000 GAIN = 1000 BW LIMIT 7 0 0 0 1 - –400 –200 0 200 400 - 1 10 100 1k 10k 100k 5 7 FREQUENCY (Hz) 0 INPUT OFFSET CURRENT (pA) 0 0 Figure5.TypicalDistributionofInputOffsetCurrent Figure8.VoltageNoiseSpectralDensityvs.Frequency(G=1−1000) Rev. H |
in „Probleme mit AD620 EKG“ · Analoge Elektronik und Schaltungstechnik ·
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TC7920_B080613-1532304.pdf
BV DSS/BVDGS R DS(ON)max) TC7920K6-G 12-Lead DFN 3000/Reel N-Channel P-Channel N-Channel P-Channel 200V -200V 7.0Ω 8.0Ω Absolute Maximum Ratings Parameter Value Pin Configuration Drain-to-source voltage BV DSS GN1 1 12 SN1 Drain-to-gate voltage BV DGS GP1 2 11 DN1 Operating and storage temperature -55
in „Mosfet Gate Treiber MD1822/ TC7920“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
lcd-b.asm
R16, 0b10000111 ; ADEN ADSC ADFR ADIF ADIE ADPS2 ADPS1 ADPS0 OUT ADCSRA, R16 LDI R16, 0x11000000 ; REFS1 REFS0 ADLAR MUX3 MUX2 MUX1 MUX0 OUT ADMUX, R16 SBI ADCSRA, 6 ; ADSC ADC_Busy: SBIC ADCSRA, 6 ; ADSC RJMP ADC_Busy ADC_Progress: SBIS ADCSRA, 4 ; ADIF RJMP ADC_Progress IN R16, ADCL RCALL Print_Integer
in „Assembler, Nachkommastelle, DS75“ · Mikrocontroller und Digitale Elektronik ·
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Datei
PWMs.txt
15-5) ICR1=1024; } void ad_conver(void) { // AD-Wandler mit einer Auflösung von 1024 ADMUX |= ((0<<REFS1) | (0<<REFS0)); //externe Spannung als Referenz (Aus Tabelle 21-3) ADMUX |= ((0<<MUX3) | (0<<MUX2) | (0<<MUX1) | (0<<MUX0)); //Kanal ADC0 als Ausgang (Aus Tabelle 21-4) ADCSRA |= (1<<ADEN); //ADC aktivieren
in „zwei if-Anweisungeg funktionieren nicht zusammen“ · Mikrocontroller und Digitale Elektronik ·
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esda6v1sc5.pdf
max. Types note 1 note 2 0V bias V V mA A V m 10 /°C pF V mA ESDA5V3SC5 5.3 5.9 1 2 3 230 5 280 1.25 200 ESDA5V3SC6 ESDA6V1SC5 6.1 7.2 1 20 5.25 350 6 190 1.25 200 ESDA6V1SC6 ESDA14V2SC5 14.2 15.8 1 5 12 650 10 100 1.25 200 ESDA14V2SC6 ESDA25SC6 25 30 1 1 24 1000 10 60 1.2 10 note 1 : Square pulse, Ipp
in „Unbekanntes SMD Bauteil“ · Analoge Elektronik und Schaltungstechnik ·
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ucc3806.pdf
= 0 V, V = OPEN 0.4 0.5 0.6 V CS- CS+ COMP IBIAS Input bias current 1 Minimum latching current 300 200 μA Maximum non-latching current 200 80 (1) Line range = 10 V to 15 V, load range = 0.2 mA to 5 mA (2) Ensured by design. Not production tested. 4 www.ti.com UCC1806 UCC2806 UCC3806 SLUS272F - FEBRUARY
in „$40 GDI inverter, neuerdings qualitätsprobleme?“ · Haus & Smart Home ·
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Forming_Capacitors.pdf
Ifsomeofthecapacitorsareratedatalowervoltagethanthefirstoneyoushouldunsoldertheresistorfeedingthelowervoltageunits. Refer tothesecondfigurebelowforthecircuitofatypicalpowersupply. Do not worry about capacitors that are not tied into the power supply filterbyresistors. Sometimes a cathode bypass capacitor is part of the
in „Hochvolt-Elkos nach 15 Jahren noch ok?“ · Analoge Elektronik und Schaltungstechnik ·
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UC3842.pdf
Typ. Max. REFERENCE SECTION VREF Output Voltage Tj= 25⋅C Io= 1mA 4.95 5.00 5.05 4.90 5.00 5.10 V V REF Line Regulation 12V Vi 25V 6 20 6 20 mV V Load Regulation 1 I 20mA 6 25 6 25 mV REF o VREF/ T Temperature Stability (Note 2) 0.2 0.4 0.2 0.4 mV/⋅C Total Output Variant Line, Load, Temperature
in „UC3843 Flyback-Wandler 12V -> 180V“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
ApplLap.c
synchronisieren, wenn auch ein Referenzpunkt aus der Vorrunde gefunden wurde */ if (isPositionFound) { RefWheelticksAbsOld = result->RefWheelticksAbs; /* noch steht ja der alte Wert in result->RefWheelticksAbs drin */ SeitSyncVerfahrenerWeg = DpRam.WheelTicksAbs - DpRam.BlackSectors[BSWDP_NUM_MAX_BLACKSECTORS - 1].WegpunktAbs; result->RefWheelticksAbs = SeitSyncVerfahrenerWeg + DpRam.BlackSectors[ErmittelteVorrundenSektorNr].WegpunktAbs; result->SyncDataWheelticksAbs = (Int16)(result->RefWheelticksAbs - RefWheelticksAbsOld); result->
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Datei
PWM_ADC_UART_11.c
> 8 ); UBRRL = (uint8_t)UART_UBRR_CALC( UART_BAUD_RATE, F_CPU ); } void Init_ADC() { ADMUX |= (1<<REFS1) | (1<<REFS0); // interne Referenzspannung nutzen // Activate ADC with Prescaler 16 --> 16Mhz/128 = 125kHz ADCSRA = _BV(ADEN) | _BV(ADPS2)|(1<<ADPS1)|(1<<ADPS0); // Select pin ADC0 using MUX ADMUX
in „Schwierigkeiten USART Übertragung mit itoa“ · Mikrocontroller und Digitale Elektronik ·
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DOKUMENTATION_MSP430-F2013.pdf
reference input VeREF- voltage range (see Note 4) VeREF+ > VeREF- 0 1.2 V Differential external reference input V eREF voltage range VeREF+ > VeREF- (see Note 5) 1.4 V CC V VeREF = VeREF+ - VeREF- 0V V V , eREF+ CC
in „MSP430 2013 XOUT/XIN ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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Display.pdf
Display Control (2) Register Set D 7 D6 D5 D 4 D 3 D2 D1 D 0 CSB RS WRB RDB RE 1 0 0 1 REV NLIN SWAP REF 0 1 0 1 0 (At the time of reset : (REV, NLIN, SWAP, REF)H=, read address H)9 Various controls of display are set up. (1) REF Command When MPU accesses to the graphic display can be reversed by register
in „LC-Display Sharp M078CKA ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lh155.pdf
Display Control (2) Register Set D 7 D6 D5 D 4 D 3 D2 D1 D 0 CSB RS WRB RDB RE 1 0 0 1 REV NLIN SWAP REF 0 1 0 1 0 (At the time of reset : (REV, NLIN, SWAP, REF)H=, read address H)9 Various controls of display are set up. (1) REF Command When MPU accesses to the graphic display can be reversed by register
in „Suche sehr dünnes Grafikdisplay“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lh155.pdf
Display Control (2) Register Set D 7 D6 D5 D 4 D 3 D2 D1 D 0 CSB RS WRB RDB RE 1 0 0 1 REV NLIN SWAP REF 0 1 0 1 0 (At the time of reset : (REV, NLIN, SWAP, REF)H=, read address H)9 Various controls of display are set up. (1) REF Command When MPU accesses to the graphic display can be reversed by register
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Datei
clk_wiz_0.xml
spirit:wireTypeDefs> <spirit:wireTypeDef> <spirit:typeName>std_logic</spirit:typeName> <spirit:viewNameRef>xilinx_anylanguagesynthesis</spirit:viewNameRef> <spirit:viewNameRef>xilinx_anylanguagebehavioralsimulation</spirit:viewNameRef> </spirit:wireTypeDef> </spirit:wireTypeDefs> <spirit:driver> <spirit:
in „Genesys 2 (Xilinx Kintex 7): Audio-Codec Implementierung und Filteranbindung“ · FPGA, VHDL & Co. ·
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Datei
clk_wiz_0.xml
spirit:wireTypeDefs> <spirit:wireTypeDef> <spirit:typeName>std_logic</spirit:typeName> <spirit:viewNameRef>xilinx_anylanguagesynthesis</spirit:viewNameRef> <spirit:viewNameRef>xilinx_anylanguagebehavioralsimulation</spirit:viewNameRef> </spirit:wireTypeDef> </spirit:wireTypeDefs> <spirit:driver> <spirit:
in „Genesys 2 (Xilinx Kintex 7): Audio-Codec Implementierung und Filteranbindung“ · FPGA, VHDL & Co. ·
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Datei
clk_wiz_0.xml
spirit:wireTypeDefs> <spirit:wireTypeDef> <spirit:typeName>std_logic</spirit:typeName> <spirit:viewNameRef>xilinx_anylanguagesynthesis</spirit:viewNameRef> <spirit:viewNameRef>xilinx_anylanguagebehavioralsimulation</spirit:viewNameRef> </spirit:wireTypeDef> </spirit:wireTypeDefs> <spirit:driver> <spirit:
in „Genesys 2 (Xilinx Kintex 7): Audio-Codec Implementierung und Filteranbindung“ · FPGA, VHDL & Co. ·
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PDF
XLampXML2.pdf
-000US60E7 T2 200 227 275 386 485 XMLBWT-00-0000-000UT20E7 Notes: • Cree maintains a tolerance of ±7% on flux and power measurements, ±0.005 on chromaticity (CCx, CCy) measurements and ±2 on CRI measurements. • Typical
in „Li Akku effizient in WLED endladen“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
mig_7series_v1_9.ucf
NET "sys_clk_p" TNM_NET = TNM_sys_clk; TIMESPEC "TS_sys_clk" = PERIOD "TNM_sys_clk" 2.5 ns; NET "clk_ref_p" TNM_NET = TNM_clk_ref; TIMESPEC "TS_clk_ref" = PERIOD "TNM_clk_ref" 5 ns ; # Note: the following CLOCK_DEDICATED_ROUTE constraint will cause a warning in place similar # to the following: # WARNING
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DS1302.pdf
Surface 2 Mount X2 3 3 6 I/O GND 4 S 5 CE § Simple 3-Wire Interface D § TTL-Compatible (V CC= 5V) SO (200 mils/150 mils) § Optional Industrial Temperature Range: -40°C to +85°C § DS1202 Compatible § Underwriters Laboratory (UL) Recognized VCC2 1 8 VCC1 N.C 2 7 N.C. ORDERING INFORMATION X1 3 2 6 SCLK PART
in „Wiedermal ein RTC-Problem“ · Mikrocontroller und Digitale Elektronik ·
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MCP4821-MCP4822.pdf
/DC CHARACTERISTICS (CONTINUED) Electrical Specifications: Unless otherwise indiDDt= 3V, ASS = 0V, REF= 2.048V external, output buffer gain (G) = 1x, RL= 5 kΩ to GND, L = 100 pF,AT = -40 to +85°C. Typical values at 25°C Parameters Sym Min Typ Max Units Conditions Internal Voltage ReferenceREF) Nominal
in „Digital-Analog-Umsetzer (10V -> 1mV Auflösung)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
code.txt
;Drehzahlvorgabe mit den Tasten .def DrehzByADC = r22 ;Drehzahlvorgabe mit dem ADC .equ DrehzMin = 200 ;höchster Wert im Timer bedeutet .equ Drehz2 = 150 ;langsamste Drehzahl .equ Drehz3 = 100 .equ DrehzMax = 2 .equ WinkelMin = 50 .equ Winkel2 = 100 .equ Winkel3 = 150 .equ WinkelMax = 200 .def StepCounter
in „Timer zählt nicht atmega32“ · Mikrocontroller und Digitale Elektronik ·
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n172_mpeg2_de.pdf
bedingt im 8k-Modus einen Crest-Faktor von: 44 Neues von Rohde&Schwarz Heft 172 (2001/III) BILD 25 200 mV/DIV Das DVB-T- Anders dagegen bei DVB: Durch den Funktionsblock „Sync 1 Inverter und Zeitsignal. Verwischung“ im DVB-Modulator (siehe U ss = U s 6,1 (Zirkawert, normiert aueff ) EN300421, EN300429
in „Frage nach günstiges Pegelmessgerät - Messprinzip über mehrere Frequenzen“ · HF, Funk und Felder ·
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TDA1591.pdf
17) 1 − 5 V V16-17 control voltage for channel separation ducs= 6 dB; see Fig.5 − −85 − mV pin 17 (ref αcs= 26 dB; see Fig.5 − −32 − mV Pilot indicator logic level output (pin 18) V18 LOW voltage I18= −200 A − 250 400 mV I HIGH current V = 10 V − − 1 A 18 18 Muting (pin 8) MUTE att mute attenuation (
in „TDA 7313 input AM / FM“ · Analoge Elektronik und Schaltungstechnik ·
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A4988.pdf
HIGH pulse width t 1 μs A STEP minimum, LOW pulse width B 1 μs Setup time, input change to STEP C 200 ns Hold time, input change to STEP D 200 ns Figure 1: Logic Interface Timing Diagram Table 1: Microstepping Resolution Truth Table MS1 MS2 MS3 Microstep Resolution Excitation Mode L L L Full Step 2
in „Fragen rundum OpenPnP“ · Mikrocontroller und Digitale Elektronik ·
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PDF
A4988.pdf
HIGH pulse width t 1 μs A STEP minimum, LOW pulse width B 1 μs Setup time, input change to STEP C 200 ns Hold time, input change to STEP D 200 ns Figure 1: Logic Interface Timing Diagram Table 1: Microstepping Resolution Truth Table MS1 MS2 MS3 Microstep Resolution Excitation Mode L L L Full Step 2
in „RepRap mit Polulu A4988 : Stepper Motoren mit höherem Strom anschließen?“ · Mikrocontroller und Digitale Elektronik ·
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Transistortester092k.pdf
s: 1. Messung der 1.3V Referenzspannung (Bandgap Reference). Dargestellt wird in Zeile 1 der Text Ref= und die gemessene Spannung in mV, in der zweiten Zeile werden die daraus berechneten Faktoren für die Kapazitätsmessungen dargestellt. 2. Vergleich der 680Ω Widerstände. Dargestellt wird in Zeile 1
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PDF
MAX4238-MAX4239.pdf
SPEC b [(N/2)-1] x e A 0.70 0.80 T633-2 6 1.50±0.10 2.30±0.10 0.95 BSC MO229 / WEEA 0.40±0.05 1.90 REF D 2.90 3.10 T833-2 8 1.50±0.10 2.30±0.10 0.65 BSC MO229 / WEEC 0.30±0.05 1.95 REF E 2.90 3.10 T833-3 8 1.50±0.10 2.30±0.10 0.65 BSC MO229 / WEEC 0.30±0.05 1.95 REF A1 0.00 0.05 T1033-1 10 1.50±0.10 2.30±0.10 0.50 BSC MO229 / WEED-3 0.25±0.05 2.00 REF L 0.20 0.40 T1033-2 10 1.50±0.10 2.30±0.10 0.50 BSC MO229 / WEED-3 0.25±0.05 2.00 REF k 0.25 MIN. T1433-1 14 1.70±0.10 2.30±0.10 0.40 BSC - - - - 0.20±0.05 2.40 REF A2 0.20 REF. T1433-2 14 1.70±0.10
in „Meßverstärker für 1/f-Rauschen 0.1 - 10 Hz“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Infineon-IRFP4668-DataSheet-v01_01-EN.pdf
Voltage 3.0 ––– 5.0 V VDS = VGS ID= 250μA DSS Drain-to-Source Leakage Current ––– ––– 20 μA VDS = 200V, VGS= 0V ––– ––– 250 VDS = 200V, VGS= 0V, TJ= 125°C GSS Gate-to-Source Forward Leakage ––– ––– 100 nA VGS = 20V Gate-to-Source Reverse Leakage ––– ––– -100 V = -20V GS RG Internal Gate Resistance –
in „Ersatz Mosfet für 6kw Wechselrichter "Reliable/WZRELB"“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
tps61046.pdf
1.75 1.8 VIN_UVLO Under voltage lockout threshold V VINfalling 1.55 1.6 VIN_HYS VIN UVLO hysteresis 200 mV IC enabled, no load, no switching, = 1.8 V to 5.5 V, Q_VIN Quiescent current into VIN pin IN 110 200 µA VOUT = 12 V I Shutdown current into VIN pin IC disabled, IN= 1.8 V to 5.5 V,JT up to 85°C 0.1
in „Ruhestrom Spannungswandler DC DC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
70622B.pdf
MHz Programmable but requires 902 — 928 MHz specific BOM 950 — 960 MHz BRFSK Bit Rate (FSK) 1.56 — 200 kbps NRZ BROOK Bit Rate (OOK) 1.56 — 32 kbps NRZ FDFSK Frequency Deviation (FSK) 33 50 200 kHz — FXTAL Crystal Oscillator Frequency 9 12.8 15 MHz — FSSTP Frequency Synthesizer Step — 2 — kHz Variable
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PDF
70622B.pdf
MHz Programmable but requires 902 — 928 MHz specific BOM 950 — 960 MHz BRFSK Bit Rate (FSK) 1.56 — 200 kbps NRZ BROOK Bit Rate (OOK) 1.56 — 32 kbps NRZ FDFSK Frequency Deviation (FSK) 33 50 200 kHz — FXTAL Crystal Oscillator Frequency 9 12.8 15 MHz — FSSTP Frequency Synthesizer Step — 2 — kHz Variable
in „Wie genau funktioniert die drahtlose Kommunikation?“ · HF, Funk und Felder ·
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PDF
TransistorTester_eng_095k.pdf
reference voltage is read by every power on if this function is selected with the option WITH_AUTO_REF. I noticed that the reference voltage is permanently somewhat to low, so that you can choose an offset with the Makefile option REF_KORR. The measured reference voltage will then be corrected (added
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PDF
OPA642U_20MHz__BB.pdf
3RD HARMONIC DISTORTION –60 –60 G = +2 R L 100 G = +2 ) –65 )–65 B B ( –70 (–70 n n r t t –75 RL= 200 t–75 i i D –80 D–80 n R = 500 n o –85 L o–85 r r R = 500 H H L d –90 d–90 2 3 R L 200 –95 –95 RL= 100 –100 –100 0.1 1 10 0.1 1 10 Output Voltage Swing (Vp-p) Output Voltage Swing (Vp-p) 20MHz 2ND HARMONIC DISTORTION 20MHz 3RD HARMONIC DISTORTION –50 –50 G = +2 G = +2 ) –55 )–55 B c ( –60 ( –60 n RL= 200 n r t t –65 R = 100 o–65 i L i D –70 D–70 R = 200 n i L o –75 o–75 r r H –80 a R = 100 d d–80 L 2 R L 500 3 –85 –85 RL= 500 –90 –90 0.1 1 10 0.1 1 10 Output Voltage Swing (Vp-p) Output Voltage Swing
in „Oszilloskop mit AVR“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX5494-MAX5499.pdf
/MAX5498, Code >128 0.1 Two-Channel Resistance VDD = 3V to 5.25V % Matching MAX5497/MAX5499, Code >200 0.15 DIGITAL INPUTS (CS, SCLK, DIN) (Note 5) VDD = 3.6V to 5.25V 2.4 Single-supply operation VDD = 2.7V to 3.6V 0.7 x Input High Voltage VIH VDD V Dual-supply With respect to operation GND, VDD = 2.5V
in „Digitalpoteniometer für Audio-Anwendung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
25040.pdf
1.8V to 2.5V 17 THH HOLD Hold Time 100 — ns VCC = 4.5V to 5.5V 100 — ns VCC = 2.5V to 4.5V 200 — ns VCC = 1.8V to 2.5V 18 THZ HOLD Low to Output High-Z 100 — ns VCC = 4.5V to 5.5V (Note 1) 150 — ns VCC = 2.5V to 4.5V (Note 1) 200 — ns VCC = 1.8V to 2.5V (Note 1) 19 THV HOLD High to Output Valid
in „Eeprom Philip Pines Auslesen mit CH341“ · Fahrzeugelektronik ·
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PDF
interleaved_bcm_pfc.pdf
5. Minimum switching frequency vs. RMS line voltage. L=390 H, P=75% resonant frequency=360kHz, OUT=200W. P=100% 200 200 With the variation of frequency over a switching cycle Fsw(kHz) Vin (V) Vin(V) understood, how does the switching frequency vary with 150 150 output power? This relationship is easy
in „LC-filter - Überschwingen verhinden“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
lm3444.pdf
12. Calculate inductor value at t = 3 µs: OFF 4. Calculate tON(MIN)at high line to ensure that t > 200 ns: ON(MIN) 13. Choose C10: 1.0 µF 200V 14. Calculate valley-fill capacitor values:AClow line = 90V , V minimum equals 60V. Set droop for 20V 5. maximum at full load and low line. Calculate C11 and
in „High Brightness LEDs > 50W µC als regelbare KSQ“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LRS-350-SPEC.PDF
350.4W 349.2W 350.4W RIPPLE&NOISE(max.)Note.2150mVp-p 150mVp-p 150mVp-p 150mVp-p 150mVp-p 150mVp-p 200mVp-p 200mVp-p OUTPUT VOLTAGEADJ. RANGE 2.97 ~ 3.6V 3.6 ~ 4.4V 4.5 ~ 5.5V 10.2 ~ 13.8V13.5 ~ 18V 21.6 ~ 28.8V32.4 ~ 39.643.2 ~ 52.8V VOLTAGETOLERANCE Note.±4.0% ±4.0% ±3.0% ±1.5% ±1.0% ±1.0% ±1.0% ±1.0%
in „Strombegrenzung für Solar-Laderegler“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
24C16.pdf
the EEPROM will not respond until the write is complete does generate a following stop condition (refer to Figure 4). (refer to Figure 2). RANDOM READ: A random read requires a “dummy” byte write sequence to load in the data word address. Once the PAGE WRITE: The AT24C164 is capable of a 16-byte device
in „Erstellen eines 24C16 Eeproms in Multisim“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
(1<<ADPS1) | (1<<ADPS2); // Kanal des Multiplexers waehlen ADMUX = channel; _delay_us(40); //ext. REF Versorgungsspannung auswählen ADMUX = (0<<REFS0) | (0<<REFS1); ADMUX &= ~(1<<ADLAR); //ergebnis rechtsbündig ausrichten // Den ADC initialisieren und einen sog. Dummyreadout machen ADCSRA |= (1<<ADSC
in „Suche Komplettporgramm für ADC in C“ · Mikrocontroller und Digitale Elektronik ·
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PDF
irs2011pbf.pdf
can be used to drive an N- channel power MOSFET in the high-side configuration which operates up to 200 V. Proprietary HVIC and latch immune CMOS technologies enable ruggedized monolithic construction. TypicalConnection 5 4 8 1 (Refer to Lead Assignments for correct configuration). This diagram shows
in „H-Brücke - 30A - MOSFET“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Midas.pdf
). Ø IS : normal/extension instruction select When IS=” High”, extension instruction be selected (refer extension instruction table) When IS=” Low”, normal instruction be selected (refer normal instruction table) Set CGRAM address to AC. This instruction makes CGRAM data available from MPU. Set DDRAM
in „Display mit SI7032: Wie Busy Flag lesen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lm393.pdf
IN(-) I Input bias current in linear range BIAS TA=25⋅C 25 100 25 250 25 250 nA Over temp. 300 400 200 500 nA IN(+) IN(-) I Input offset current T =25⋅C 〉 3.0 〉 25 〉 5.0 〉 50 〉 5 〉 50 nA OS A Over temp. 〉 100 〉 150 〉 50 〉 200 nA V IN(-)VDC , IN(+), OL Output sink current V 01.5VDC 6.0 16 6.0 16 6.0 16
in „200Khz Signal verstärken“ · Analoge Elektronik und Schaltungstechnik ·