-
PDF
tps65131.pdf
CURRENT MAXIMUM OUTPUT CURRENT vs vs INPUT VOLTAGE INPUT VOLTAGE 1000 2000 TPS65131 900 1800 A A m 800 m 1600 − − n 700 n 1400 VPOS = 5 V e V POS= 5 V e u u 1200 t 600 C u u t 500 t 1000 O VPOS = 8 V O VPOS = 10 V 400 800 u u i i a 300 a 600 M VPOS = 12 V M 200 400 V POS= 15 V 100 200 0 2.5 2.9 3.3 3.7
in „OLED Sammelbestellung“ · Markt ·
-
PDF
DCDC-Konverter.pdf
CURRENT MAXIMUM OUTPUT CURRENT vs vs INPUT VOLTAGE INPUT VOLTAGE 1000 2000 TPS65131 900 1800 A A m 800 m 1600 − − n 700 n 1400 VPOS = 5 V e V POS= 5 V e u u 1200 t 600 C u u t 500 t 1000 O VPOS = 8 V O VPOS = 10 V 400 800 u u i i a 300 a 600 M VPOS = 12 V M 200 400 V POS= 15 V 100 200 0 2.5 2.9 3.3 3.7
in „DC-DC-Konverter Tps65131 Funktionalität“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
test_bas.c
Sdo Alias Pinb.4 Sck Alias Portb.5 Ptc5 Alias Portc.5 Ptc4 Alias Portc.4 */ //Dim D As Word uint16_t D; //Dim Data_in(10) As Byte uint8_t Data_in[10+1]; //Dim N As Byte uint8_t N; //Dim Timeout As Word uint16_t Timeout; //Dim T As Word uint16_t T; //Dim Tt As Word uint16_t Tt; //Dim Freq As Single float
in „Code von Bascom nach C“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
BF1009SW_2001_INF.pdf
VDS = 9 V, VG2S = 6 V, f = 1 MHz Power gain (self biased) G ps 18 22 - dB VDS = 9 V, VG2S = 6 V, f = 800 MHz Noise figure (self biased) F800 - 1.4 - VDS = 9 V, VG2S = 6 V, f = 800 MHz Gain control range (self biased) 40 50 - Gps VDS = 9 V, VG2S = 6 ... 0V, f = 800 MHz 2 Jun-28-2001 BF1009SW Total power dissipation P tot = f (T S Drain current I = fD(V G2S ) 300 15 mA mW 12 11 t 200 10 t D P I 9 150 8 7 6 100 5 4 3 50 2 1 0 0 0 20 40 60 80 100 120 °C 150 0.0 1.0 2.0 3.0 4.0 V 6.0 T S VG2S Insertion power gain Forward transfer
-
Datei
main.c
WDTEN = OFF // Watchdog Timer disabled #pragma config MCLRE = OFF //ON // MCLR enabled #pragma config T1OSCMX = OFF // T1 Oscillator disabled #pragma config CP2 = OFF // CCP2 = RC1 #pragma config LPOL = LOW // Low Voltage Programming #pragma config STVREN = ON // Stack Full/Underflow Reset #pragma config
in „PIC18F2431 Probleme mit High Interrupt Handler“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
main.c
WDTEN = OFF // Watchdog Timer disabled #pragma config MCLRE = OFF //ON // MCLR enabled #pragma config T1OSCMX = OFF // T1 Oscillator disabled #pragma config CP2 = OFF // CCP2 = RC1 #pragma config LPOL = LOW // Low Voltage Programming #pragma config STVREN = ON // Stack Full/Underflow Reset #pragma config
in „PIC18F2431 Probleme mit High Interrupt Handler“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
C462925.pdf
Current vs. Input Voltage, Figure 15. Input Current vs. Input Voltage, 5.0 V Version 3.3 V Version 600 800 ) TJ= 25°C V 500 A VQ= 0 V m T = 125°C ( E J T 600 G 400 E T R L U V 300 C400 P T = 25°C T O J P R 200 T , O D , 200 V 100 IQ 0 0 0 100 200 300 400 0 10 20 30 40 50 IQ, OUTPUT CURRENT (mA) VI, INPUT
in „Verpolungsschutz“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
XLamp7090XR-E.pdf
W ( t 800 x Rj-a = 35°C/W t500 e a e r M r C 600 200 C400 Rj-a = 10°C/W Rj-a = 10°C/W m u Rj-a = 15°C/White u300 Rj-a = 15°C/W i 400 Rj-a = 20°C/W i Rj-a = 25°C/W Cool White Rj-a = 25°C/W 0 Neua200 WhiRj-a
in „LiPo Zelle Impulsbelastung“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
mkp_b32714h_718h.pdf
temperature and then an equivalent derating as per: RMS Tmax (T) = (Factor) ×T (85 °C). For any particularRMS the T may be calculated by: T (°C) = P (mW) / G(mW/°C). dis Where T (°C) is the difference between the temperature measured on the box (see Figure
in „[V] MKP-Kondensatoren 4 µF und 100 nF mit 1 kV Spannungsfestigkeit“ · Markt ·
-
PDF
BC547_datasheet.pdf
CE BC546B/547B/548B — 150 — BC548C — 270 — (I = 2.0 mA, V = 5.0 V) BC546 110 — 450 C CE BC547 110 — 800 BC548 110 — 800 BC547A/548A 110 180 220 BC546B/547B/548B 200 290 450 BC547C/BC548C 420 520 800 (C = 100 mA, CE = 5.0 V) BC547A/548A — 120 — BC546B/547B/548B — 180 — BC548C — 300 — Collector–Emitter
in „NPN mit PNP Transistor ersetzen für SHARP Pocket-Interface?“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
FA_SIM800L_3.pdf
PD6 10 SIM_SWITCH GND 7 11 LED2 R3 8 PB6 PD7 Green PB7 3 GND 5 GND_2 21 GND_3 GND GND Type FTDI Sim800L mit SimCard GND CTS GND VCC 3V6 TXO PIN_0 10k X1 V RXI PIN_1 PC6 3 DTR R6 8 F X C 1 E C10 C9 C11 C12 6 V V LTE-uFL 0.1uF 1uF 100uF 100uF 3 GND 3 1 2 C T 1 0 T Y 1 N P T T GND Du A A T X K K E E S T
in „IoT mit ATMEGA und SIM800L, Bienen Beute,“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
ws2812.S
range! Must be 11.3-20MHz! #endif #endif // bit times /ns #if USE_FAST_MODE == 0 // 400 kbps #define T0H 500 #define T0L 2000 #define T1H 1200 #define T1L 1300 #else // 800 kbps #define T0H 400 #define T0L 850 #define T1H 800 #define T1L 450 #endif .nolist // delay of N CPU cycles using minimum code space
in „Frage zu IR-Remote+LED-Strips an AVR“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
BUW84.PDF
BUW85 MGB865 10 handbook, full pagewidth Zth j−mb (K/W) δ= 1 0.75 1 0.50 0.33 0.20 0.10 10−1 0.05 t 0.02 P δ = p 0.01 T 0 t p T 10−2 10 −2 10−1 1 10 102 10 3 104 tp(ms) Fig.6 Transient thermal impedance. (1) (2) (3) (4) 4 MGB908 handbook, full pagewidth VCEsat (V) 3 2 1 0 0 0.05 0.1 0.15 0.2 0.25 IB
in „Hochspannung Regeln für eine Bildverstärker Röhre“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
MMBV809.pdf
2.6 2. C Rs the ratio of t measured at 2.0 Vdc divided bytC measured at 8.0 Vdc. TYPICAL CHARACTERISTICS 10 1000 9 F ( 8 E R VR= 3 Vdc N 7 E T = 25°C I F A C 6 O P 5 R C U 100 E 4 F I , , 3 Q T C 2 1 0 10 0.5 1 2 3 4 5 8 10 15
in „unbekanntes Bauteil“ · Analoge Elektronik und Schaltungstechnik ·
-
Datei
rfm12.c
SYNC 2D _RFM12_ready(); _RFM12_trans(0xB8D4); // SYNC D4 while(FIFO_available(_RFM12_txFifo)) { uint8_t data = FIFO_read(_RFM12_txFifo, 128); _RFM12_ready(); _RFM12_trans(0xB800|(pgm_read_byte(&hamminge[data/16]))); _RFM12_ready(); _RFM12_trans(0xB800|(pgm_read_byte(&hamminge[data&15]))); } _RFM12_ready
in „Problem RFM12 Library von Manuel Stahl“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
FA_SIM800L_Komponenten.pdf
productdetail/keystone-electronics/2464?qs=sGAEpiMZZMvxqoKe%252bDjhrte%252blrLaYtz%2fAsRQM0pc49M= sim800l sim800l GSM-Modul 1 2,00 € 2,00 € https://www.alibaba.com/product-detail/Original-new-IC-SIM800L_60217884532.html?spm=a2700.7724838.2017115.293.74ee396aCqOfsy C1 0603 Kondensator 10uF 1 0,115 0,12
in „IoT mit ATMEGA und SIM800L, Bienen Beute,“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
logFile.txt
9800 (M18) JN (AGP), ATI Radeon X800XT (R420) JP (AGP), ATI RADEON X800 SE, ATI Radeon X800 (R423) UH (PCIE), ATI Radeon X800PRO (R423) UI (PCIE), ATI Radeon X800LE (R423) UJ (PCIE), ATI Radeon X800SE (R423) UK (PCIE), ATI FireGL V7200
-
Datei
strandtest.ino
Arduino pin number (most are valid) // Parameter 3 = pixel type flags, add together as needed: // NEO_KHZ800 800 KHz bitstream (most NeoPixel products w/WS2812 LEDs) // NEO_KHZ400 400 KHz (classic 'v1' (not v2) FLORA pixels, WS2811 drivers) // NEO_GRB Pixels are wired for GRB bitstream (most NeoPixel products
in „Auswahl zweier Arduino Sketches“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
304-01386-0-M42SP-6NK.pdf
among the outer diameter 42mm model series-holding torque : 41.2mN·m, pull- out torque : 21.6mN·m/800pps, and pull-in torque : 25.5mN·m/200pps (12V DC). With superior running noiselessness and other features, this model motor is the most suited to future, compact electronic equipment. FEATURES 1.High
in „L293D und Stepper Läuft nicht :(.“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
condensator.pdf
/08 0,68 800 25x43 50 1,00 0,0025 0,0370 134 1756 7,67 Plus/0,82/08 0,82 800 25x43 50 1,00 0,0020 0,0030 134 1757 8,18 Plus/1,00/08 1,00 800 25x43 50 1,00 0,0020 0,0030 134 1758 8,69 Plus/1,50/08 1,50 800 25x43 50 1,00 0,0015 0,0023 134 1759 12,27 Plus/2,2/08 2,20 800 25x43 50 1,00 0,0009 0,0014 134 1760 15,85 Plus/3,3/08 3,30 800 30x43 50 1,00 0,0009 0,0014 134 1761 17,90 Plus/4,7/08 4,70 800 36x63 50 1,50 0,0008 0,0012 134 1762 23,01 Plus/5,6/08 5,60 800 35x63
in „Kennzeichnung Kondensator Q4“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
AT070TN83___LCM__TTL_TCB___TSP__Final_Spec1214.pdf
/Fall Time CLKr,tCLKf - - 3 HSYNC Period tHP - 928 - CLK HSYNC Pulse Width tHW - 48 - CLK HSYNC Back Porch HBP - 40 - CLK HSYNC Width + Back Porch thw+ tHBP 88 CLK Horizontal valid data width tHV 800 CLK HSYNC Front Porch
-
PDF
ws2811.pdf
Prameter Symbol Condition Min Tpy Max Unit Operation Fosc1 —— —— 400 —— KHz frequency Fosc2 —— —— 800 —— KHz Transmission tPLZ CL=15pF,DIN→ —— —— 300 ns delay time DOUT,RL=10KΩ CL=300pF,OUTR/ Fall time tTHZ OUTG/OUTB —— —— 120 µs Data transmission rate F MAX Duty ratio50% 400 —— —— Kbps Input capcity CI —— —— —— 15 pF Low Speed mode time T0H 0 code,high voltage time 0.5 µs ±150ns T1H 1 code,high voltage time 1.2 µs ±150ns T0L 0 code,low voltage time 2.0 µs ±150ns T1L 1 code,low voltage time 1.3 µs ±150ns RES low voltage time Above 50µs
in „Touch bauen, suche günstigere alternativen“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
ws2811.pdf
Prameter Symbol Condition Min Tpy Max Unit Operation Fosc1 —— —— 400 —— KHz frequency Fosc2 —— —— 800 —— KHz Transmission tPLZ CL=15pF,DIN→ —— —— 300 ns delay time DOUT,RL=10KΩ CL=300pF,OUTR/ Fall time tTHZ OUTG/OUTB —— —— 120 µs Data transmission rate F MAX Duty ratio50% 400 —— —— Kbps Input capcity CI —— —— —— 15 pF Low Speed mode time T0H 0 code,high voltage time 0.5 µs ±150ns T1H 1 code,high voltage time 1.2 µs ±150ns T0L 0 code,low voltage time 2.0 µs ±150ns T1L 1 code,low voltage time 1.3 µs ±150ns RES low voltage time Above 50µs
in „WS2811 zu hoher Ruhestrom?“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
OSRAM_SFH9202.pdf
IF= f(tp), A = 85 °C, duty cycle D = parameter 4 OHF02623 4 OHF02622 10 10 mA tP mA tP IF tP IF IF tP IF D = T D =T T T D = D = 103 0.005 10 3 0.005 0.01 0.01 0.02 0.02 0.05 0.05 0.2 0.1 0.1 0.2 2 0.5 2 10 10 0.5 1 1 1 101 10 -5 -4 -3 -2 -1 0 1 2 10 -510 -410 -310 -210 -110 0 10
in „kleiner Barcode Scanner bei variabler Geschwindigkeit“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
rf12.c
RF_PORT, CS); asm("nop"); while (!(RF_PIN&(1<<SDO))); // wait until FIFO ready } void rf12_txdata(uint8_t *data, uint8_t number) { ausgabe("data: "); ausgabe(data); ausgabe("\n\r"); ausgabe("databin: "); ausgabeBin(*data); ausgabe("\n\r"); uint8_t i; uint8_t chksum = 0; rf12_trans(0x0000); rf12_trans(0x8239
in „RFM12 Empfäng: MSB = 1, Rest = Daten + Resetproblem“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
motor.pdf
/ ( 24 ) 100 3.6 6.550 Bipolar 200 4.500 1600 2.000 5.8 0.5 / ( 24 ) L 48 7.5 14.740 Bipolar 200 9.800 1000 6.000 7 0.6 / ( 24 ) PM55 L 48 7.5 17.000 Bipolar 200 16.000 800 6.000 5.5 0.8 / ( 24 ) 96 3.75 20.860 Bipolar 100 16.000 800 7.000 7.1 0.5 / ( 24 ) 100 3.6 21.415 Bipolar 100 16.500 800 6.200
in „schrittmotor Steuerung“ · Platinen ·
-
PDF
BC560C-D.pdf
= 300 ms − Duty cycle = 2%. http://onsemi.com 2 BC560C 2.0 -1.0 I V CE= -10 V -0.9 TA= 25°C A 1.5 T = 25°C T A -0.8 E ) VBE(sat) IC B = 10 R 1.0 T-0.7 U O VBE(on) V CE= -10 V C 0.8 (-0.6 D E D 0.6 A-0.5 I L-0.4 A V M 0.4 V-0.3 O , 0.3 -0.2 F VCE(sat)IC B = 10 h -0.1 0.2 0 -0.2 -0.5 -1.0 -2.0 -5.0 -
in „Suche Datenblatt Transistor Siemens STr 1602“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
GBS-8200_CGA_to_VGA_HD-Converter.pdf
color conversion. - Supports all VGA monitor (CRT/LCD/PDP/PROJECTOR) CONNECTIONS and KEY MAP - m c d t a w w w - D P s F b e f o f D P t r o W o f t e n II o - SPECIFICATIONS Power DC5V 2A +/- 0.5v P7 or P9 Input 14.5-16.5K signal CGA/EG 23.5-25.5K Auto P3 or P11 or P10 A 30.5-32.5K scan RGBHV 30.5-32.5K
in „Videosignal identifizieren und übersetzen“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
TX17D01VM2EAB.pdf
25 C, fv 60Hz,VDD 3.3V Item Symbol Condition Min. Typ. Max. Unit Remarks Brightness of White - 800 1000 - cd/m 2 Note 1 0 , 0 , Brightness Uniformity - 70 - - % Note 2 ILED= 340 mA Contrast Ratio CR 300 600 - - Note 3 Response Time T r T f 0 , 0 - 30 - ms Note 4 (Rising + Fa)ling NTSC
in „[V] TFT 6,5 Zoll 1000 cd/m² Hitachi TX17D01VM2EAB“ · Markt ·
-
PDF
LT3474.pdf
LED Current vs Temperature Switch Voltage Drop 1000 1200 700 TA= 25°C TA= 25°C VADJ= VREF 600 1000 V 800 ( ) ) P500 m A 800 R T 600 ( D N N G400 R R 600 T U U O300 C400 C V E E 400 C L L I200 V = V /5 W 200 200 ADJ REF S100 0 0 0 0 0.25 0.5 0.75 1 1.25 –50 –25 0 25 50 75 100 125 0 500 1000 1500 SWITCH
in „3W Luxeon Led energiesparend dimmen“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
_FET-N__JCET_AO3400.pdf
20 4 A VGS2.5V A ( ( D D I I 15 3 N N E E R R U U C C N 10 V =2.0V N 2 A GS A R R D D Ta=100℃ 5 1 T =25 ℃ a 0 0 1 2 3 4 5 0 0.0 0.5 1.0 1.5 2.0 2.5 DRAIN TO SOURCE VOLTAGE VDS (V) GATE TO SOURCE VOLTAGE VGS (V) R DS(ON) —— I —— V D R DS(ON) GS 60 400 T =25 ℃ T =25 ℃ a a Pulsed 55 Pulsed 350 ) ) Ω 50
-
PDF
02-ETEK-Modular-Distribution-Electric-2024.pdf
-T2-20PV-2M800 EKU5-T2-20PV-2M1000 - 3Module - - EKU5-T2-20PV-3M1000 EKU5-T2-20PV-3M1500 With Remote Signaling 2Module EKU5-T2-20PV-2M600S EKU5-T2-20PV-2M800S EKU5-T2-20PV-2M1000S - 3Module - - EKU5-T2-
in „Balkonkraftwerk an alter E-Installation“ · Haus & Smart Home ·
-
PDF
AP3019A-318144-1.pdf
4. Efficiency vs. Junction Temperature Figure 5. Efficiency vs. Input Voltage 86 350 85 300 ) 84 m t 250 83 n ) r ( 82 u 200 c d e 81 a i r f 80 o 150 E y 79 k O o 100 78 V IN.6V, I OUT=20mA,T =2A C c S 77 C IN µF, C OUT0.22 µF, L=22 µH 50 76 2 3 4 5 6 7 8 0 0 200 400 600 800 1000 LED's Number Schottky
in „StepUp Regler mit wenig Aussenbeschaltung“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
UB084S01-2.pdf
following power-on condition. 90% Vcc 10% Ton=470 s±10% Sequence of Power-on/off and signal-on/off T3 T4 Power 0ms T1 70msec T1 T2 0ms T2 70msec T5 300msec T3 300msec T4 Input signal T5 10msec Apply the lamp voltage within the LCD operating range. When the backlight turns on before the LCD operation
-
PDF
UPC1676G.pdf
FREQUENCY 30 VCC= 5 V VCC = 5 V B 0 ( P TA= -40˚C ) B , B ( i 20 ( , a , s -10 RLOUT r o L e +25˚C L r o r t P t e n +85˚C e t t 10 t p -20 e p ut RLIN n I O I 0 -30 60 100 200 500 1000 2000 60 100 200 500 1000 2000 Frequency, f (MHz) Frequency, f (MHz) UPC1676G UPC1676G THIRD ORDER INTERMODULATION DISTORTION
in „ATmega8. Umbau als 2GHz Frequenz-Logger“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
ptcel.pdf
PTCEL13R251NBE 0.65 PTCEL13R501RBE 106 PTCEL17R600MBE PTCEL17R121NBE 0.60 ) 50.55 105 2 e / n V0.50 t n s m e 4 R 0.45 R10 0.40 3 10 0.35 0.30 102 0.25 0.20 10 0 100 200 300 400 500 600 700 800 900 1000 -50 -25 0 25 50 75 100 125 150 175 200 225 Temperature (°C) V PTV-pulsed V MAX. DERATING VS. T AMB
in „Leistungs PTC gesucht“ · Analoge Elektronik und Schaltungstechnik ·
-
Datei
main.c
Zeile itoa(ErgebnisLinks, Ausgabe, 10); lcd_string(Ausgabe); //LCD Ausgabe //################## F E R T I G ################################################################ if(ErgebnisRechts > ErgebnisLinks){ PORTD |= (1<<dir); //Richtung rechts PORTD |= (1<<step); //Step Puls an _delay_us(800); PORTD &= ~(1<<step); //Step Puls aus _delay_us(800); } if (ErgebnisRechts < ErgebnisLinks) { PORTD &= ~(1<<dir); //Richtung links PORTD |= (1<<step); //Step Puls an _delay_us(800); PORTD &= ~(1<<step); //Step Puls aus _delay_us(800); } } }
in „ADC-Schrittmotor Atmega16“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
G4_Digital_DC.pdf
remotemonitoring,dataacquisition, System for IEC61131-3 compliant and industrial internet of things (IIoT) programs,orsecureshellaccess(SSH)to applicationsworldwideallrely on Opto 22. the Linux OS for custom applications • Node-RED for creating simple IIoT logic groov RIO ® flowsfrompre-built nodes groov
-
PDF
564746-da-01-en-MOSFET_N_KA_800V_STP4N80K5_TO_220AB_STM.pdf
Absolute maximum ratings Value Symbol Parameter Unit DPAK, TO-220FP TO-220 IPAK VDS Drain-source voltage 800 V VGS Gate- source voltage ±30 V D Drain current (continuous) Ct T = 25 °C 3 3(1) 3 A D Drain current (continuous) Ct T = 100 °C 1.7 1.7(1) 1.7 A (2) (1) DM Drain current (pulsed) 12 12 12 A P TOT Total
in „Anodenspannungsstabilisierung für Röhrenverstärker mit IRF840 als Längsregler“ · Analoge Elektronik und Schaltungstechnik ·
-
Datei
_3strip.ino
_t whiteA = strip_A.Color(255, 255, 255); disabled for testing purposes //uint32_t whiteB = strip_B.Color(255, 255, 255); //uint32_t whiteC = strip_C.Color(255, 255, 255); // Define Off color to 0,0,0 turns them completely off uint32_t offA = strip_A.Color(0, 0, 0); uint32_t offB = strip_B.Color(0, 0, 0); uint32_t offC = strip_C.Color(0, 0, 0); //Testcolor to better see it in the simulator uint32_t whiteA = strip_A.Color(0, 0, 255)
in „Interrupt in C / ATTiny / WS 2812B“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
2n6032.pdf
0C/W R θJC 1) Derate linearly 800 mW/ C betweeC T = 25 C aCd T = 200 C *See appendix A for package outline 0 ELECTRICAL CHARACTERISTICS (T = 25 C unleCs otherwise noted) Characteristics Symbol Min. Max. Unit OFF CHARACTERISTICS Collector-Emitter
in „Transistor: BD249C“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
datasheet-23.pdf
CURRENT Input Bias Current 25 10 pA Over Temperature T = −40°C to +85°C 300 300 pA Input Offset Current 2 0.6 pA Over Temperature T = −40°C to +85°C 5 5 pA DYNAMIC RESPONSE Small Signal Bandwidth – 3 dB G = 1 1500 1500 kHz G = 10 800 800 kHz G = 100 120
in „Puls von EKG ableiten und weiterverarbeiten“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
twi.h
AFQjCNGGjPSUAzVUdbUqMUxPub8Ojzhh9w&sig2=4YgzXFixj15GhqkAzVS4tA*/ I2C_10KHz = 0xE010A9FF, I2C_50KHz = 0x2070A8FD, I2C_100KHz = 0x10B07EBA, I2C_200KHz = 0x00C034FF, I2C_400KHz = 0x00C0246F, I2C_600KHz = 0x00900E50, I2C_800KHz = 0x00900E35, I2C_1000KHz = 0x00900E25
in „Wer nutzt das Nucleo-64 und kann mir“ · Mikrocontroller und Digitale Elektronik ·
-
Bild
Einstellungen für 3D-Drucker G-Code Parameter
Max feedrates (units/s): M203 C X300.00 Y300.00 Z5.00 E25.00 #; Max Acceleration (units/s2): M201 C X800.00 Y800.00 Z50.00 E500.00 #; Acceleration (units/s2 (P<print-accel> R<retract-accel> T<travel-accel>): M204 C P800.00 R500.00 T500.00 #; Advanced (B<min_segment_time> S<min_feedrate> T<min_travel_feedrate> J<junc_dev>): M205 C B20000.00 S0.00 T0.00 J0.01 #; Home offset: M206 C X0.00 Y0.00 Z0.00 #; Material heatup parameters: M145 S0 H180.00 B70.00 F0 M145 S1 H240.00 B110.00 F0 #; Hotend PID: M301 C P22.20 I1.08 D114.00 #; Power-loss recovery
in „Custom 3D-Drucker zu ausgebuchtete Ecken“ · Mechanik, Gehäuse, Werkzeug · · Screenshots
-
PDF
Thermoelement.pdf
Kennlinien der Thermopaare (Abb. 3) sind durch die Span- NiCrSi-NiSi „N“ Klasse 3 -200…+ 40 °C: ±0,015 x t oder ±2,5K NiCr-CuNi „E“ Klasse 1 - 40…+ 800 °C: ±0,004 x t oder ±1,5K nungsreihen so festgelegt, dass volle Aus- Klasse 2 - 40…+ 900 °C: ±0,0075 x t oder ±2,5K tauschbarkeit besteht. Klasse 3 -200…+
in „Wie funktioniert Thermosensor in Heizofen“ · Haus & Smart Home ·
-
PDF
mlcc-mark.pdf
620,000,000 W 0.68 6 8 68 680 6,800 68,000 680,000 6,800,000 68,000,000 680,000,000 X 0.75 7 5 75 750 7,500 75,000 750,000 7,500,000 75,000,000 750,000,000 Y 0.82 8 2 82 820 8,200 82,000 820,000 8,200,000 82,000,000 820,000,000 Z 0.91
in „SMD Widerstand richtig bestimmt?“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
Kemet_MLCC_Marking.pdf
620,000,000 W 0.68 6.8 68 680 6,800 68,000 680,000 6,800,000 68,000,000 680,000,000 X 0.75 7.5 75 750 7,500 75,000 750,000 7,500,000 75,000,000 750,000,000 Y 0.82 8.2 82 820 8,200 82,000 820,000 8,200,000 82,000,000 820,000,000 Z 0.91
in „Welchen Wert hat dieser Kerko?“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
gu128x64-800b_e03-f3.pdf
00・・・・・・ ・・・・・・・・ ・・・・・・・・ ・・・・・・・・ D0 0H D1 D2 1H D3 2H D4 3H i D5 0 H 4 D6 4H 6 D7 5H 1 H 6H 2 H t 3 H b 7H 2 Y-Address 1 8H 9H AH BH CH DH EH FH GRAM Data Write 128bit Position Address (0H - FH) 5 GU128X64-800B 8.1 Cont’d GRAM Display Start Position Address X-Address 00 ・・・・・・ ・・・・・・・・ ・・・・・・・・ ・
in „Grafik VFD GU128x64 an Mega32“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
MAX712_MAX713_MAX.pdf
0 200 400 600 800 1000 NOTE: FOR ABSOLUTE TEMPERATURE CHARGE CUTOFF, T2 AND T3 CAN BE REPLACED BY STANDARD RESISTORS. LOAD CURRENT (mA) Figure 9b. Alternative Temperature Comparator Configuration Figure 10. Sony Radio
in „Akku-/Batteriekapazität messen“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
SA07.pdf
) ( 103 ( 0.6 0 7 TYPICAL EXAMPLE 0 TYPICAL EXAMPLE 1 1 0.5 5 ) 4 ) 0.4 )C 5 3 MAIN THYRISTOR ) ° t 2 SA01,07 t 2 0.3 j j 2 = = AUX THYRISTOR (T ( AUX THYRISTOR T T 0.2 T T 2 (E E E E 10 G G 0.1 R R 7 T T U U SA02,04 L L 0 C C 5 AUX THYRISTOR V V MAIN THYRISTOR E E 4 R R –0.1 G G 3 G G I I I I –0.2
in „Hilfe bei Vergleichstyp SA07“ · Mikrocontroller und Digitale Elektronik ·