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PDF
hd44780.pdf
frame = 3.7 µs × 400 × 11 = 16300 µs = 16.3 ms Frame frequency = 1 = 61.4 Hz 16.3 ms 1/16 duty cycle 200 clocks COM1 1 2 3 4 16 1 2 V CC V1 V2 V3 V4 V5 1 frame 1 frame = 3.7 µs × 200 × 16 = 11850 µs = 11.9 ms 1 Frame frequency =11.9 ms = 84.3 Hz Figure 24 Frame Frequency 205 HD44780U Instruction and Display
in „Sinnlose Probleme mit LCD...“ · Mikrocontroller und Digitale Elektronik ·
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PDF
hd44780.pdf
frame = 3.7 µs × 400 × 11 = 16300 µs = 16.3 ms Frame frequency = 1 = 61.4 Hz 16.3 ms 1/16 duty cycle 200 clocks COM1 1 2 3 4 16 1 2 V CC V1 V2 V3 V4 V5 1 frame 1 frame = 3.7 µs × 200 × 16 = 11850 µs = 11.9 ms 1 Frame frequency =11.9 ms = 84.3 Hz Figure 24 Frame Frequency 205 HD44780U Instruction and Display
in „System(Mikrocontroller usw) mit Batterie betreiben“ · Mikrocontroller und Digitale Elektronik ·
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PDF
hd44780.pdf
frame = 3.7 µs × 400 × 11 = 16300 µs = 16.3 ms Frame frequency = 1 = 61.4 Hz 16.3 ms 1/16 duty cycle 200 clocks COM1 1 2 3 4 16 1 2 V CC V1 V2 V3 V4 V5 1 frame 1 frame = 3.7 µs × 200 × 16 = 11850 µs = 11.9 ms 1 Frame frequency =11.9 ms = 84.3 Hz Figure 24 Frame Frequency 205 HD44780U Instruction and Display
in „ATMEL_2x16LCD_Zeile 2“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HD44780.pdf
frame = 3.7 µs × 400 × 11 = 16300 µs = 16.3 ms Frame frequency = 1 = 61.4 Hz 16.3 ms 1/16 duty cycle 200 clocks COM1 1 2 3 4 16 1 2 V CC V1 V2 V3 V4 V5 1 frame 1 frame = 3.7 µs × 200 × 16 = 11850 µs = 11.9 ms 1 Frame frequency =11.9 ms = 84.3 Hz Figure 24 Frame Frequency 205 HD44780U Instruction and Display
in „LCD Ansteuerung (PIC 18F1220)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HD44780.PDF
frame = 3.7 µs × 400 × 11 = 16300 µs = 16.3 ms Frame frequency = 1 = 61.4 Hz 16.3 ms 1/16 duty cycle 200 clocks COM1 1 2 3 4 16 1 2 V CC V1 V2 V3 V4 V5 1 frame 1 frame = 3.7 µs × 200 × 16 = 11850 µs = 11.9 ms 1 Frame frequency =11.9 ms = 84.3 Hz Figure 24 Frame Frequency 205 HD44780U Instruction and Display
in „LCD Display in 4 Bit Modus bringen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HD44780.PDF
frame = 3.7 µs × 400 × 11 = 16300 µs = 16.3 ms Frame frequency = 1 = 61.4 Hz 16.3 ms 1/16 duty cycle 200 clocks COM1 1 2 3 4 16 1 2 V CC V1 V2 V3 V4 V5 1 frame 1 frame = 3.7 µs × 200 × 16 = 11850 µs = 11.9 ms 1 Frame frequency =11.9 ms = 84.3 Hz Figure 24 Frame Frequency 205 HD44780U Instruction and Display
in „Datenblatt zu HD44780 1602 LCD Modul Display Anzeigen 2X16 Zeichen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HD44780.pdf
frame = 3.7 µs × 400 × 11 = 16300 µs = 16.3 ms Frame frequency = 1 = 61.4 Hz 16.3 ms 1/16 duty cycle 200 clocks COM1 1 2 3 4 16 1 2 V CC V1 V2 V3 V4 V5 1 frame 1 frame = 3.7 µs × 200 × 16 = 11850 µs = 11.9 ms 1 Frame frequency =11.9 ms = 84.3 Hz Figure 24 Frame Frequency 205 HD44780U Instruction and Display
in „Standart LCD per i2c expander betreiben“ · Mikrocontroller und Digitale Elektronik ·
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PDF
hd44780u_Datenblatt.pdf
frame = 3.7 µs × 400 × 11 = 16300 µs = 16.3 ms Frame frequency = 1 = 61.4 Hz 16.3 ms 1/16 duty cycle 200 clocks COM1 1 2 3 4 16 1 2 V CC V1 V2 V3 V4 V5 1 frame 1 frame = 3.7 µs × 200 × 16 = 11850 µs = 11.9 ms 1 Frame frequency =11.9 ms = 84.3 Hz Figure 24 Frame Frequency 205 HD44780U Instruction and Display
in „hd44780 / LCD SC1602D / ATmega16 (STK500)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HD44780U.pdf
frame = 3.7 µs × 400 × 11 = 16300 µs = 16.3 ms Frame frequency = 1 = 61.4 Hz 16.3 ms 1/16 duty cycle 200 clocks COM1 1 2 3 4 16 1 2 V CC V1 V2 V3 V4 V5 1 frame 1 frame = 3.7 µs × 200 × 16 = 11850 µs = 11.9 ms 1 Frame frequency =11.9 ms = 84.3 Hz Figure 24 Frame Frequency 205 HD44780U Instruction and Display
in „LCD Initialisierung Mikrocontroller“ · Mikrocontroller und Digitale Elektronik ·
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Datei
BCORF-FT.ASM
inca ; count up sta loop bita #$40 ; every 64 cycles bne skip_start ; blink the message jsr reset0ref ; zero integrators jsr intensity_to_3f ldu #press_start jsr print_1_string ; print a message skip_start: jsr reset0ref jsr read_buttons ; read button values ldu #player1 ; get player record lda __buttons
in „6809 Assembler Frage“ · Mikrocontroller und Digitale Elektronik ·
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PDF
manual_XT-v.005.pdf
product manuals, installation guides, diagnostic utilities and device driver software. Notes: 1. Please refer to the RS-232/ 422/485 Interfaces section in the back of the manual for more information concerning RS-232 and RS-422/485 settings for the Xtreme/104 adapter. 2. Please refer to the Factory Default
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PDF
lm317.pdf
. B. CO improves transient response, but is not needed for stability. Voutis calculated as: Vout V ref1 ) R2 Ǔ ) (IAdj R2) R1 SinceAdjis typically 50 µA, it is negligible in most applications. Figure 1. Adjustable Voltage Regulator LM317 +35 V INPUT OUTPUT V O ADJUST R1 120 Ω –10 V C1 R2 0.1 µF R3 3 kΩ 680 Ω Voutis calculated as: V + V ǒ1 ) R2 ) R3 Ǔ ) I (R2 ) R3) – 10 V out ref R1 Adj Since Adjis typically 50 µA, it is negligible in most applications. Figure 2. 0-V to 30-V Regulator Circuit 4 POST OFFICE BOX 6•5DALLAS, TEXAS 75265 LM317 3-TERMINAL ADJUSTABLE REGULATOR SLVS044H
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rd15hvf1-1.pdf
TEMPERATURE 100 10 Vds=10VC ) ( 8 c 80 P N A I 60 s 6 A I I S 40 4 D L N N 20 2 H C 0 0 0 40 80 120 160 200 0 2 4 6 8 10 AMBIENT TEMPERATURE Ta(°C) Vgs(V) Vds VS. Ciss CHARACTERISTICS 80 Ta=+25°C f=1MHz 60 ) p s40 i C 20 0 0 5 10 15 20 Vds(V) Vds VS. Coss CHARACTERISTICS Vds VS. Crss CHARACTERISTICS 100 10
in „RD15HVF1 Fake oder nicht Fake das ist hier die Frage ;)“ · Analoge Elektronik und Schaltungstechnik ·
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S2-L2-5V.pdf
10%) mH power, voltage, V DC V DC (max.) V DC (min.) mA mW V DC (40 °C) ST-3V 3 2.1 0.3 66.7 45 23 200 5.5 ST-5V 5 3.5 0.5 38.5 130 65 192 9.0 ST-6V 6 4.2 0.6 33.3 180 93 200 11.0 ST-12V 12 8.4 1.2 16.7 720 370 200 22.0 ST-24V 24 16.8 2.4 8.4 2,850 1,427 202 44.0 ST-48V 48 33.6 4.8 5.6 8,500 3,410 271
in „24V Relais ansteuern“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
S2-L2-5V.pdf
10%) mH power, voltage, V DC V DC (max.) V DC (min.) mA mW V DC (40 °C) ST-3V 3 2.1 0.3 66.7 45 23 200 5.5 ST-5V 5 3.5 0.5 38.5 130 65 192 9.0 ST-6V 6 4.2 0.6 33.3 180 93 200 11.0 ST-12V 12 8.4 1.2 16.7 720 370 200 22.0 ST-24V 24 16.8 2.4 8.4 2,850 1,427 202 44.0 ST-48V 48 33.6 4.8 5.6 8,500 3,410 271
in „(V) 4-Fach 5*7 Punktmatrix Osram DLR 2416, Bistabile Relais SDS, LED-Display 7-Seg. 4-Fach“ · Markt ·
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Datei
Values.txt
K6R4008 2 J6MM 2 J5MM 2 IRFZ24N 2 IRF7425 2 IRF7103 2 IRF620 2 IRF1405 2 IR2308S 2 IPI05CN10NG 2 INT. Ref 2 IND 2 ILD74 2 Heizstab 2 HD-H101 2 Grün 2 GRN 2 grn 2 GMSTBV3 2 gelb 2 G6C-1117P 2 G2R2 2 G2R 2 FUSETE5 2 FUSEBLANK_5X20MM 2 FT245RL 2 FDN302P 2 F09H 2 Ext. Ref 2 EXT POWERSUPPLY 2 ES2D 2 Einspeisung
in „[KiCad] Bibliotheksaufbau - Konzeptideen gesucht“ · Platinen ·
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PDF
BF1009SW_2001_INF.pdf
source current ±IG1/2SM 10 Gate 1 (external biasing) +V 3 V G1SE Total power dissipationS 76 °C P tot 200 mW Storage temperature Tstg -55 ... 150 °C Channel temperature T 150 ch Thermal Resistance Channel - soldering point R thchs 280 K/W 1For calculationthJAlease refer to Application Note Thermal Resistance
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Datei
ADS1256_022.c
I_range] ); // Umwandeln in 2000000.0 in 2000000 für Anzeige //ADS_Cycle++; // Every 100 cycle make a Ref Temperature reading and calibration //if (ADS_Cycle== 100 ) // { // state_ADS = 0; // Next cycle with calibration and Ref Temperature reading // ADS_Cycle= 0; // } //else state_ADS = 3; // Next cycle without calibration and Ref Temperature reading state_ADS = 3; Tin[3]= 1; // Timer WDT ADS allways start TMR1IE=0; // Disable Timer Interrupts Tact[3] = 0; // Timer WDT ADS 1 second reset Tout[3]= 0; TMR1IE = 1; // Enable Interrupts
in „ADS1255 / ADS1256 Beispielcode“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MBI5016.pdf
Electrical Characteristic IDD OUT VDD / OE O.T0 IIIIL CLK . / LE OUT15 IOL SDI SDO R-EXTGND VIHVIL ref May 2003, V1.6 - 6 - MBI5016 16-bit Constant Current LED Sink Driver Switching Characteristics CHRACTERISTIC SYMBOL CONDITION MIN. TYP. MAX. UNIT CLK - OUTn tpLH1 - 200 300 ns Propagation /LE - OUTn tpLH2 - 200 300 ns Delay Time (“L” to “H”) /OE - OUTn tpLH3 - 200 300 ns CLK - SDO tpLH 20 50 70 ns CLK - OUTn tpHL1 - 200 300 ns Propagation /LE - OUTn tpHL2 V =5.0V - 200 300 ns Delay Time DD (“H” to “L”) /OE
in „Treiber für 12-stellige 7-Segment-LED-Anzeige (ohne Mux!)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tiny13_doc2535.pdf
LSB ADC clock = 200 kHz Single Ended Conversion Differential Non-linearity (DNLV = 4V, V = 4V, 0.5 LSB REF CC ADC clock = 200 kHz Single Ended Conversion Gain Error VREF = 4V, VCC= 4V, 2.5 LSB ADC clock = 200 kHz Single Ended Conversion Offset Error V = 4V, V = 4V, 1.5 LSB REF CC ADC clock = 200 kHz Conversion Time Free Running Conversion 13 260 µs Clock Frequency 50 1000 kHz V IN Input Voltage GND VREF V Input Bandwidth 38.5 kHz V Internal Voltage Reference 1.0 1.1 1.2 V
in „Atmel AVRs: SRAM so unwichtig?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IXFB100N50P_NMOS_TO-264_500_V_100_A.pdf
Charge Fig. 9. Forward Voltage Drop of Intrinsic Diode 300 10 VDS = 250V 9 250 D = 50A 8 I = 10mA G 7 s200 r l 6 e o p - A150 S 5 - G I V 4 100 TJ= 125ºC 3 2 50 TJ= 25ºC 1 0 0 0.4 0.6 0.8 1.0 1.2 1.4 1.6 0 25 50 75 100 125 150 175 200 225 250 V SD - Volts QG- NanoCoulombs Fig. 11. Capacitance Fig. 12. Forward-Bias
in „el Last - Bauteilauswahl“ · Analoge Elektronik und Schaltungstechnik ·
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s_p305_intel_mm_pro_p300.pdf
test program. To format the HDD, start with Check 1 below and perform the other steps as required. Refer to the MS-DOS Manual for the operation of MS-DOS. For the format by the test program, refer to the Chapter 3. Check 1 Format an 2.5” HDD using MS-DOS FORMAT command. Type as FORMAT C:/S/U. If 2.5”
in „LCD-Inverter kaputt - wer kann helfen?“ · PC Hard- und Software ·
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PDF
ads5240.pdf
Time(4)(5) 650 ps RISE FALL VOD Rise Time or ODFall Time O = 2.5mA 400 ps O = 3.5mA 250 ps I = 4.5mA 200 ps O IO= 6mA 150 ps (1) The DC specifications refer to the condition where the LVDS outputs are not switching, but are permanently at a valid logic level 0 or 1. (2) V OSrefers to the common-mode of
in „Pipeline A/D-Wandler ADS5240 Verständnisproblem Analoge Eingangsspannung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
edison-module_HG_331189.pdf
form-factor. • Bus mode − Data bus width: 1 bit (default), 4 bits, 8 bits − Data transfer rate: up to 200 MBps (HS200) − MMC I/F clock frequency: 0~200 MHz − MMC I/F boot frequency: 0~52 MHz 3.4 DDR SDRAM Intel® Edison supports 1 GB LPDDR3 memory at speeds up to 1033 MT/s. • 8 banks • Row addresses R0-R13
in „Intel Edison Breakout Board“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IRLZ44NPBF-HXY.pdf
0.402 E1 - 8.70 - - 0.343 - E2 9.80 10.00 10.20 0.386 0.394 0.402 e 2.54 BSC 0.100 BSC e1 5.08 BSC 0.200 BSC H1 6.40 6.50 6.60 0.252 0.256 0.260 L 12.75 13.50 13.65 0.502 0.531 0.537 - 3.10 3.30 - 0.122 0.130 L1 L2 2.50 REF 0.098 REF P 3.50 3.60 3.63 0.138 0.142 0.143 P1 3.50 3.60 3.63 0.138 0.142 0.143
in „LED-Streifen fiepen bei PWM <=100%“ · Analoge Elektronik und Schaltungstechnik ·
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TI_TPS92360_Led_Treiber.pdf
V V falling 2.3 V VIN_UVLO Undervoltage lockout threshold IN 2 V VINrising 2.6 V V UVLO hysteresis 200 mV VIN_HYS IN IQ_VIN Operating quiescent current into Device enable, switching 1.2 MHz 0.3 0.45 mA VIN and no load, I Shutdown current CTRL = GND 1 2 µA SD CONTROL LOGIC AND TIMING V H CTRL Logic high
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Datei
Watchdogtimer.c
aufwecken über WD oder INT0 sleep_enable(); // Schlafmodus vorbereiten // AD-Wandler initalisieren // REFS0 und REFS1 = 0, VCC als Referenz ADMUX = 0; DIDR0 = (1 << ADC2D) | (1 << ADC3D); // digitalen Input an ADC2/3 abklemmen: Strom sparen ADCSRA = (1 << ADPS1) | (1<<ADPS0); // Vorteiler mit 8, hier haben wir Zeit, aber zw. 50 und 200kHz sollten es sein // Mode lesen PORTB |= (1 << PB0); // Potis aktivieren ADCSRA |= (1 << ADEN); // ADC einschalten ADMUX = 3 ; // Kanal 3 (PB3), Mode Treppe / Futter bestimmen ADC_Read(); // nach dem
in „ATTINY84A Zeitrelais“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SFD-056CT.pdf
consumption 1.900W(Typ) Note2 12 Panel Power consumption 0.660W(Typ) Note3 13 Weight 127.5g Note 1: Refer to Mechanical Drawing. Note 2: Including LED Driver power consumption. Note 3: Including T-con Board power consumption. 2. Pin Assignment 2.1. TFT LCD Panel Driving Section FPC connector is used for
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PDF
SitePlayer_Software_Manual.pdf
........29 Init_Object ................................................................29 Status(ByRef b As Byte)...........................................29 ReadObject(ByVal address As Long, ByRef data As Variant).....................................................................29 WriteObject(ByVal
in „RS232 nach HTTP/HTML Konverter“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Cypress_CY8C58LP_001-84932_0F-491909.pdf
mA, VDDIO = 3.3 V VDDIO – 0.4 – – V V OH Regulated mode[32] IOH= 1 mA SIO_ref – 0.65 – SIO_ref + 0.2 V I = 0.1 mA SIO_ref – 0.3 – SIO_ref + 0.2 V OH no load,OH = 0 SIO_ref – 0.1 – SIO_ref + 0.1 V V Output voltage low V = 3.30 V, I= 25 mA – – 0.8 V OL DDIO OL VDDIO = 3.30 V,OL
in „UART-Schnittstelle 2x verwenden?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ADA4807.pdf
0.7µV/°C x = –32.7µV x = –1.5µV σ = 0.5µV/°C 300 σ = 109.4µV σ = 17.9µV S R T I 40 N250 I U P G M I200 A 30 R O B R M150 E U B 20 N U 100 N 10 50 2 0 1 0 - –2.8 –2.2 –1.6 –1.0 –0.4 0.2 0.8 1.4 2.0 2.6 3.2 3.8 - –600 –400 –200 0 200 400 600 6 6 INPUT REFERRED OFFSET VOLTAGE (µV) 1 INPUT OFFSET VOLTAGE
in „LTSpice 24.1.9 AD4807-Simulation schlägt fehl“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
applsci-08-01825-v2.pdf
3 62 (62) 10 2.27 30 90 + ICE (90) 2 2.27 30 8 ref: User 1, Vehicle 3 62 (90) 10 2.27 30 90 + ICE (90) 2 2.27 30 8 4: User 2, Vehicle 1 21 (50) 10 0.39 30 89 (89) 2 1.09 30 3.9 ref: User 2, Vehicle 1 21 (90) 10 0.39 30 89 (90) 2 1.09 30 3.9 5: User 2, Vehicle 2 19 (50) 10 0.35 30 77 (77) 2 0.95 30 3.4 ref: User 2, Vehicle 2 19 (90) 10 0.35 30 77 (90) 2 0.95 30 3.4 6: User 2, Vehicle 3 46 (50) 10 0.85 30 90 + ICE (90) 2 2.27 30 6.4 ref: User 2, Vehicle 3 46 (90) 10 0.85 30 90 + ICE (90) 2 2.27 30 6.4
in „Pedelec: Akku und Controller verklebt - ist das rechtens ?“ · Fahrzeugelektronik ·
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PDF
etsi_GSM07.07.pdf
refer subclause 8.10 +CIEV: <ind>,<value> as verbose unsolicited refer subclause 8.10 +CKEV: <key>,<press> as verbose unsolicited refer subclause 8.10 +CLAV: <code> as verbose unsolicited refer subclause
in „MC mit GRPS“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DS_FT232H.pdf
up to VCCIO via an internal 200kΩ resistor. Enables the current FIFO data byte to be driven onto D0...D7 when RD# goes low. Fetches the next FIFO 26 RD# INPUT data byte (if available) from the receive FIFO buffer when RD# goes high
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PDF
SARA-G3-U2_SysIntegrManual__UBX-13000995_.pdf
the module. Preheat Heating Cooling [°C] Peak Temp. 245°C [°C] 250 250 Liquidus Temperature 217 217 200 200 40 - 60 s End Temp. max 4°C/s 150 - 200°C 150 150 max 3°C/s 60 - 120 s 100 Typical Leadfree 100 Soldering Profile 50 50 Elapsed time [s] Figure 87: Recommended soldering profile SARA-G3 and SARA-U2
in „GSM-Modul (SIM908) nur analoge Ausgänge für Anruf?“ · HF, Funk und Felder ·
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PDF
MCP6562.pdf
Configuration This test circuit configuration is used to determine the AC and DC specifications. V DD MCP656X 200 kΩ OUT 200 kΩ 200 kΩ V OUT 200 kΩ 25 pF V IN= VSS V SS= 0V FIGURE 1-1: AC and DC Test Circuit for the Push-Pull Output Comparators. DS22139B-page 4 © 2009 Microchip Technology Inc. MCP6561/1R/1U/2/4
in „Schmitttrigger mit MCP6562 unklare Abweichung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
datasheet.pdf
The 3 dB bandwidth Figure 2 is the general block diagram of the RX5000 series ASH receiver. Please refer to Figure 2 for the following discussions. of the filter can be set from 4.5 kHz to 1.8 MHz with an external re- sistor. Antenna Port The filter is followed by a base-band amplifier which boosts the
in „OPV mit niedriger Eingangskapazität“ · Analoge Elektronik und Schaltungstechnik ·
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Bild
Tektronix 2230 100 MHz Digital Storage Oscilloscope
Tektronix 2230 100 MHz DIGITAL STORAGE OSCILLOSCOPE WAVEFORM REFERENCE MEMORY DISPLAY ON/OFF SAVE REF SELECT CURSOR ACQUISITION ROLL PRETRIG SAVE STORE VAR HOLD OFF INTENSITY A-B POSITION TRACE ROTATION A/B SWP SEP. POSITION B TRIGGER INT SOURCE ONLY LEVEL AFTER SLOPE VERTICAL MODE CH 1 VOLTS/DIV CH
in „[VS] Oszilloskop Tektronix 2230 defekt“ · Markt · · Fotos
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PDF
EL4430CS.pdf
±5V ±2 ±3.0 V VS= ±15V ±12 ±13.0 V VOS Input offset voltage 2 8 mV B Input bias current (IN+, IN-, REF, and FB terminals) 12 20 µA OS Input offset current between IN+ and IN- and between REF and FB 0.2 2 µA RIN Input resistance 100 230 kΩ CMRR Common-mode rejection ratio 70 90 dB PSRR Power supply rejection
in „Bezugsquelle/Ersatztyp: EL4430CS (Videodifferenzverstärker)“ · Analoge Elektronik und Schaltungstechnik ·
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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
bat42_bat43_datasheet.pdf
Parameter Value Unit VRRM Repetitive Peak Reverse Voltage 30 V F Forward Continuous Current Ta= 25 ⋅ 200 mA IFRM Repetitive Peak Fordware Current p 1s 500 mA δ 0.5 FSM Surge non Repetitive Forward Current* p = 10ms 4 A Ptot Power Dissipation* Tl= 65⋅C 200 mW Tstg Storage and Junction Temperature Range
in „Frage zur Masseführung, Datenblatt verwirrt mich“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MAX186-MAX188.pdf
Hold tDH 0 ns SCLK Fall to Output Data Valid tDO CLOAD = 100pF MAX18_ _C/E 20 150 ns MAX18_ _M 20 200 ns CS Fall to Output Enable tDV CLOAD = 100pF 100 ns CS Rise to Output Disable tTR CLOAD = 100pF 100 ns CS to SCLK Rise Setup CSS 100 ns t CS to SCLK Rise Hold CSH 0 ns SCLK Pulse Width High tCH 200 ns SCLK Pulse Width Low tCL 200 ns SCLK Fall to SSTRB SSTRB CLOAD = 100pF 200 ns CS Fall to SSTRB Output Enable (Note 6) SDV External clock mode only,LOAD = 100pF 200 ns CS Rise to SSTRB Output Disable STR External clock mode only
in „Allgemeine Frage zu ADC Spezifikationen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ADM4850_4851.pdf
Complementary Output States 0.2 V R = 27 Ω or 50 Ω, Figure 4 Output Short-Circuit Current,OUT= High −200 +200 mA −7 V < VOUT< +12 V Output Short-Circuit Current,OUT= Low −200 +200 mA −7 V < VOUT< +12 V DRIVER INPUT LOGIC CMOS Input Logic Threshold Low 1.4 0.8 V CMOS Input Logic Threshold High 2.0 1.4 V
in „IC: ADM4850 und IRS2186S“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LT1302_2Cells_to_5V_600mA.pdf
= 25°C I = 2A 450 A A SW 500 ) 350 A400 V ( ( N350 400 G 300 E300 V T R (T O C250 S00 V 250 T C O E200 V T S 200 R 200 I150 T Q S 100 100 150 50 0 0 100 2.0 2.5 3.0 3.5 4.0 4.5 5.0 0 1 2 3 4 –50 –25 0 25 50 75 100 SWITCH CURRENT (A) SUPPLY VOLTAGE (V) TEMPERATURE (°C) 1302 G01 1302 G02 1302 G03 LT1302
in „Welcher DC-DC-Converter“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lt1302-1605370.pdf
= 25°C I = 2A 450 A A SW 500 ) 350 A400 V ( ( N350 400 G 300 E300 V T R (T O C250 S00 V 250 T C O E200 V T S 200 R 200 I150 T Q S 100 100 150 50 0 0 100 2.0 2.5 3.0 3.5 4.0 4.5 5.0 0 1 2 3 4 –50 –25 0 25 50 75 100 SWITCH CURRENT (A) SUPPLY VOLTAGE (V) TEMPERATURE (°C) 1302 G01 1302 G02 1302 G03 LT1302
in „[V] Konvolut (16) ältere LinearTech StepUps LT1302, 1305, SO8 (10€)“ · Markt ·
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PDF
lt1302.pdf
= 25°C I = 2A 450 A A SW 500 ) 350 A400 V ( ( N350 400 G 300 E300 V T R (T O C250 S00 V 250 T C O E200 V T S 200 R 200 I150 T Q S 100 100 150 50 0 0 100 2.0 2.5 3.0 3.5 4.0 4.5 5.0 0 1 2 3 4 –50 –25 0 25 50 75 100 SWITCH CURRENT (A) SUPPLY VOLTAGE (V) TEMPERATURE (°C) 1302 G01 1302 G02 1302 G03 LT1302
in „[V] kleines Konvolut ältere DIL / DIP ICs (8€)“ · Markt ·
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PDF
SR087.pdf
BOM for 120VAC/230VAC loads up to 800mW in 230VAC applications. ► Built-in soft start ► Less than 200mW standby power A logic-level enable input allows the SR087 to be disabled – useful when it is employed as a keep-alive power supply. Applications WARNING! Galvanic isolation is not provided. Dangerous
in „20 V AC bis 70 V AC --> 5 V DC“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
pc715v0nszx_e.pdf
Collector Power Dissipation vs. Fig.4 Total Power Dissipation vs. Ambient Ambient Temperature Temperature 200 250 ) W ) m W 200 C 150 ( P t 170 i P a i 150 i a d 100 i e d w e 100 p w t p e 50 t o o 50 C T 0 0 −25 0 25 50 75 100 125 −25 0 25 50 75 100 125 Ambient temperature a (˚C) Ambient temperature a (˚C
in „Optokoppler bei geringen Strömen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
NUD4001.pdf
For information on tape and reel specifications, including part orientation and tape sizes, please refer to our Tape and Reel Packaging Specification Brochure, BRD8011/D. © Semiconductor Components Industries, LLC, 2011 1 Publication Order Number: November, 2011 − Rev. 7 NUD4001/D NUD4001, NSVD4001 MAXIMUM
in „LED-Leuchtmittel reparieren“ · Analoge Elektronik und Schaltungstechnik ·
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LED_Display_driver_chip_SSD1306_DataSheet.pdf
~255) is set by Set Contrast command 81h; and the scale factor is 8 by default. The magnitude of I REF is controlled by the value of resistor, which is connected between I REF pin and V as shown in Figure 8-15. It is recommended to set I to 12.5 ± 2uA so as to achieve I = SS REF SEG 100uA at maximum contrast 255. Figure 8-15 :IREF Current Setting by Resistor Value SSD1306 I (voltage at IREF~ 12.5uA REF this pin = V CC – 2.5) R1 V SS Since the voltage at I pin is V – 2.5V, the value of resistor R1 can be found as below: REF CC For IREF = 12.5uA, V CC =12V: R1 = (Voltage at I REF – V SS/ IREF = (12
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