-
PDF
lpc2468_evb.PDF
C1313 C14C14 C1515 12.288 MHz PID1GPIO2 / DCLK 0 1u 30 10n 10 10n I0 10n 1PID1GPIO3 / SDATA PIY201 PIY202 25ID1GPIO4 / I2S_LROUT GND GND GND GND C2 I2 11ID1GPIO5 / I2S_MCLK * C1616 * C1717 12ID1GPIO6 V2V2 C0 15p I0 15p PID1GPIO7 1N4148 4 5
in „Kann sich jemand mein Schema anschauen?“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
TDA1023.pdf
n.c. 2 not connected Rpd 1 16RX Q 3 output n.c.2 15 n.c. HYS 4 hysteresis control input Q 3 14VCC PR 5 proportional range control input CI 6 control input HYS 4 13VEE TDA1023 UR 7 unbuffered reference
in „TDA1023 oder Ersatz“ · Analoge Elektronik und Schaltungstechnik ·
-
Datei
ISP.txt
-2300n2802+2300n2002-2400n2802+2400n2002-2500n2802+2500n2002-2600n2802+2600n2002-2700n2802+2700n2002-2800n2802+2800n2002-2900n2802+2900n2002-2A00n2802+2A00n2002-2B00n2802+2B00n2002-2C00n2802+2C00n2002-2D00n2802
in „Warum ließt AtmelStudio vor Programmieren?“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
A4964JPDemoR0.pdf
GND C2 + 25V P0 100n P1 J1 CRD1D A PC PC 63V C3 E202 A PP1 470n CO4 P1 - PI319 ON P2 63V 470n P1 PI322 GND GND GND IG_VBB S1 25V GND COLED X3.3 GND 1 2 LED PX3.4 PP12 GND VBBB PBVI CP1 PIC0 PC01COP2 P1 POWER
in „Allegro A4964 Demoboard - ein Phantom?“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
A4964JPDemoR0.pdf
GND C2 + 25V P0 100n P1 J1 CRD1D A PC PC 63V C3 E202 A PP1 470n CO4 P1 - PI319 ON P2 63V 470n P1 PI322 GND GND GND IG_VBB S1 25V GND COLED X3.3 GND 1 2 LED PX3.4 PP12 GND VBBB PBVI CP1 PIC0 PC01COP2 P1 POWER
in „Allegro A4964 Demoboard - ein Phantom?“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
Chip_222_-_alternative_555.pdf
www.iaras.org/iaras/journals/ijce Figure 26: Single-vibrator version. Fig.29: The frequency divider on 1, 2, 3 ... 20. The single-vibrator (Fig.27) additionally contains a control transistor VT1 2N7000. The frequency divider (Fig.30) is made on two elements of the DD1.1 and DD1.2 CD4093 chip and the DA1 222
in „Chip 222 - alternative 555“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
LT1082.pdf
25°C 300 6000 0 o 200 V = 1.5V h5000 30 A (CURRENT INTO V PIN) ( ( C E g H N 100 N4000 m 60 A R T E U 0 U3000 90 D C N G I–100 O2000 120 ) C VFB= 0.8V S V–200 (CURRENT OUT OF VC PIN) A1000 150 T –300 0 180 –400 –1000 210 0 0.5 1.0 1.5 2.0 2.5 1k 10k 100k 1M 10M VCPIN VOLTAGE
in „Boost Converter 2MHz 50V“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
f_2320312311226304479081.pdf
a status read will be received. The busy flag is outputted to D7 pin with the Writing U WR M DATA N N+1 N+2 N+3 Latch i i N+1 N+2 N+3 l BUS Holder N n Write Signal t I Reading WR U M RD DATA N N n n+1 i Address Preset i Read Signal l a e Column Address Preset N Increment N+1 N+2 I Bus Holder N n n+
in „Philips GLCD Modul“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
E_H_Prosonic_FMU860-862.pdf
Connection Terminal Strip L+ L- L1 N 2 1 2 3 4 5 YE RD YE RD 1 2 3 4 5 6 7 1112 132122 233132 3341 4243515253 60 616263 64 70 71 80 81 82 90 91 92 + - L L C D m m t U 1 2 V 0 0 a n M p r r 3 2 2 p h . m s s … … u l n T e e 0 / / i o y S
in „Schaltung für Füllstandsmessung mit MPX2100DP“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
S1D15605.pdf
a status read will be received. The busy flag is outputted to D7 pin with the Writing U WR M DATA N N+1 N+2 N+3 Latch i i N+1 N+2 N+3 l BUS Holder N n Write Signal t I Reading WR U M RD DATA N N n n+1 i Address Preset i Read Signal l a e Column Address Preset N Increment N+1 N+2 I Bus Holder N n n+1 n+2 Address Set Dummy Data Read Data Read #n Read #n #n+1 Figure 2 8–26 EPSON Rev. 2.4a S1D15605 Series thetimeofdisplaydatatransferwhenmultipleS1D15605 Display Data RAM series chips are used, thus and
in „Pollin Grafik LCD-Modul OPTREX F-51320AE“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
DAP8A.pdf
6 − 750 880 ▯A (Note 1) Internal IC Consumption, 1.0 nF Output Load on Pin 5,ICC2 6 − 1.2 1.4 mA F = 40 kHz (Note 2) SW Internal IC Consumption, 1.0 nF Output Load on Pin 5,ICC2 6 − 1.4 1.6 mA FSW = 60 kHz (Note 2) Internal IC Consumption, 1.0 nF Output
in „Widerstand gesucht“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
Star10_Part3.pdf
ThefeedbacksignalisprocessedthroughQ1 LookingatFigure31,thePTTand/orKey block is typical of 13.7 V power amplifier (2N2222) and Q2 (a 3N200), which put the functions are ORed together via the J1-A, design. The first stage in this amplifier is brakes on the IF/RF output coming out of E12, E13 and J1-B inputs. The signals
in „Projekt Kurzwellenempfänger Doppelsuper welcher VCO?“ · HF, Funk und Felder ·
-
Artikel
Standardbauelemente
5,5V PDF R 1,65 LF356 1 5 12 3 3 pA 30 pA Vcc+0,1V Vee+3V Vcc-2V Vee+2V @10kΩ 30V 5 high bandwidth J-FET, Settling-Time = 1,5µs @0.01% error-voltage, Eingang knapp über Vcc, PDF alle 0,50 OP07 1 0,6 0,3 0,030 0,4 nA 1 nA Vcc-1,5V Vee+1,5V Vcc-2,2V Vee+2,2V @2kΩ 15V
24V 5 Power-OPV, Thermal Shutdown, Io=1A Io(max)=1.5A PDF alle, R 0,70 LA6510 2 0,15 2 10 nA 100 nA Vcc-2V Vee+0V Vcc-2V Vee+2V @33Ω 30V 12 Power-OPV, current limiter pin, Imax=1A P=2,5W, Gehäuse:SIP10F PDF R 0,80 L272 2 0,35 1 15 50 nA 300 nA Vcc-1V Vee+0,3V @0,1A 24V Vcc-1,5V
Artikel ·
-
PDF
MOSFET_oder_bipolarer_Transistor__Zetex.pdf
Device BV / BV R I (A) h (min) Package CBO EBO CE(sat) C FE BVCES(V) (V) (mΩ) Singles FMMT618 20 5 52 2.5 300 SOT23 FMMT619 50 5 75 2.0 300 SOT23 ZXTBM322 40 7.5 47 4.5 300 2x2mm MLP 3-L ZXT13N15DE6 40 7.5 29 5.0 300 SOT23-6 ZXT13N20DE6 50 7.5 38 4.5 300 SOT23-6 FZT1048A 50 5 50 5.0 300 SOT223 FZT1049A 80 5 50 5.0 300 SOT223 ZXTCM322 100 7.5 68 4.0 300 2x2mm MLP 3-L Duals ZXT10N20DE6 20 5 52 4.0 300 SOT23-6 ZXTDBM832 40 7.5 47 4.5 300 3x2mm MLP 8-L ZDT619 50 5 75 2 300 SM-8 ZDT1048 50 5 50 5.0 300 SM-8 ZXTDCM832 100 7.5 47 4.5 300 3x2mm MLP 8-L Table
in „mit 2,7V schalten“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
KTY81.pdf
±1.27 2000 2020 2040 ±1.27 30 86 0.78 2037 2059 2081 ±1.39 2078 2100 2123 ±1.39 40 104 0.75 2195 2222 2250 ±1.64 2239 2267 2295 ±1.64 50 122 0.73 2360 2393 2426 ±1.91 2407 2441 2475 ±1.91 60 140 0.71 2531 2571 2611 ±2.19 2582 2623 2664 ±2.19 70 158 0.69 2710 2757 2804 ±2.49 2764 2812 2860 ±2.49 80 176
in „Spannungsquelle für KTY - gegeneinander entkoppeln?“ · Analoge Elektronik und Schaltungstechnik ·
-
Datei
reni_v0.67.c
, iAnswer[i]); else output(DBG9, " %04x", iAnswer[i]); output(DBG2, "\n"); return iAns; } void measure_dynamic(int iFirstvalue) { int i, j, iTime; output(DBG2, "START MEASURE\n"); for(i=0; g_iPkt_count<g_iPkt_max; i++) { // number of packets // wait for the transfer
in „Schreiben eines USB-Treibers mit libusb-win32“ · Softwareentwicklung ·
-
PDF
MEGA_1284P_Xplained_Schematic.pdf
VCC_MCU_P3V3 VCC_MCU_P3V3 VCC_MCU_P3V3 VCC_MCU_P3V3 AVCC_MCU_P3V3 Vestre Rosten 79 * D 1344 C5 D O100 CO15 N-7075 TILLER * L0 2 P10 1 SKRAAKE010 COW10 C210n 6 C106 07C107 I8C108 BLM18HE152SN1 NORWAY 100n 100n 100n C9 Date: 29.03.2011 13:24:55 PAGE: 2 of 7 2 02 I2 CO19 1 2 C2100n 10 2 Document number: 2 Revision
in „MEGA1284P XPLAINED über USB mit avrdudue programmieren“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
Linear_Current_Sense_AN105.pdf
0 to S + (18V – V S 36V 200Ω LT1783 400µV 45nA 1.25MHz 0.42V/µs 2.2V to 18V 0 to V + (18V – V ) 36V 3V S S RS LT1784 1500µV 250nA 2.5MHz 2.4V/µs 2V to 18V 0 to S + (18V – V S 36V 0.2Ω + Q1 LT1637 2NV904 LOAD – (0V TO 2.7V) DIP-8 OUT 2k LOAD LOA(
in „'High Side' Strom Messen - Geht das so ?“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
AN105.pdf
0 to S + (18V – V S 36V 200Ω LT1783 400µV 45nA 1.25MHz 0.42V/µs 2.2V to 18V 0 to V + (18V – V ) 36V 3V S S RS LT1784 1500µV 250nA 2.5MHz 2.4V/µs 2V to 18V 0 to S + (18V – V S 36V 0.2Ω + Q1 LT1637 2NV904 LOAD – (0V TO 2.7V) DIP-8 OUT 2k LOAD LOA(
in „High-Side Strommessung AVR (Shunt)“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
139cll.pdf
tolerance ± 20 % I Rated RMS ripple current at 100 Hz,105 °C Nominal case size: 14.3 mm x 7.6 mm x 8.2 mm R IL5 Max. leakage current after 5 min at R Taped on reel Ordering code: MAL213965101E3 tan Max. dissipation factor at 100 Hz Z Max. impedance at 10 kHz Former 12NC: 2222 139 65101 Note • Unless
in „Tantal vs Kerko“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
KTY81-2_PHI.pdf
±1.27 2000 2020 2040 ±1.27 30 86 0.78 2037 2059 2081 ±1.39 2078 2100 2123 ±1.39 40 104 0.75 2195 2222 2250 ±1.64 2239 2267 2295 ±1.64 50 122 0.73 2360 2393 2426 ±1.91 2407 2441 2475 ±1.91 60 140 0.71 2531 2571 2611 ±2.19 2582 2623 2664 ±2.19 70 158 0.69 2710 2757 2804 ±2.49 2764 2812 2860 ±2.49 80 176
in „KTY 81 110 an Mega“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
PHI.pdf
±1.27 2000 2020 2040 ±1.27 30 86 0.78 2037 2059 2081 ±1.39 2078 2100 2123 ±1.39 40 104 0.75 2195 2222 2250 ±1.64 2239 2267 2295 ±1.64 50 122 0.73 2360 2393 2426 ±1.91 2407 2441 2475 ±1.91 60 140 0.71 2531 2571 2611 ±2.19 2582 2623 2664 ±2.19 70 158 0.69 2710 2757 2804 ±2.49 2764 2812 2860 ±2.49 80 176
in „Kurze Frage zwecks Vorwiderstand für Sensor.“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
avr200.asm
;**** A P P L I C A T I O N N O T E A V R 2 0 0 ************************ ;* ;* Title: Multiply and Divide Routines ;* Version: 1.1 ;* Last updated: 97.07.04 ;* Target: AT90Sxxxx (All AVR Devices) ;* ;* Support E-mail: avr@atmel.com
in „Suche Routine zum Dividieren zweier 16 Bit Zahlen“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
Avr200.asm
;**** A P P L I C A T I O N N O T E A V R 2 0 0 ************************ ;* ;* Title: Multiply and Divide Routines ;* Version: 1.1 ;* Last updated: 97.07.04 ;* Target: AT90Sxxxx (All AVR Devices) ;* ;* Support E-mail: avr@atmel.com
in „16 Bit Zahl am LCD in decimal Form ausgeben“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
avr200.asm
;**** A P P L I C A T I O N N O T E A V R 2 0 0 ************************ ;* ;* Title: Multiply and Divide Routines ;* Version: 1.1 ;* Last updated: 97.07.04 ;* Target: AT90Sxxxx (All AVR Devices) ;* ;* Support E-mail: avr@atmel.com
in „Eine Frage bzg. Macro in AVR-Assembler“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
LTC1174.pdf
50 T = 25°C VOUT = 5V 1.6 A 1.5 C 1.5 40 E 1.4 Q TA= 25°C ) s R ( 1.3 ( 30 D 1.0 N 1.2 M Z S - A TA= 70°C R 1.1 F 20 M LTC1174HV O O 1.0 LTC1174-5 N 0.5 0.9 10 LTC1174HV-5 LTC1174 0.8 LTC1174-3.3 LTC1174HV-3.3 0 0.7 0 0 1 2 3 4 5 6 7 8 9 4 6 8 10 12 14 16 18 20 0 1 2 3 4 5 (VIN– VOUT
in „DC/DC Wandler LTC1174 Verhalten bei Shutdown?“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
A4973-Datasheet.pdf
O L SU LOGIC 6 V CC 9 10 15 16 SUPPLY STANDBY MODES MODE 14 VBB PHASE 7 UVLO & TSD G ENABLE 8 L U N BRAKE 1 I PWMLATCH + 11 R – SENSE Q 2 BLANKING S R S GROUND 4 VCC RC 12 + – 5 3 2 13 REF GROUND V TH C T R T 4973DS, Rev. 1 A4973 Full-Bridge PWM Motor Driver Description (continued) When a logic low
in „DC-Motor Driver IC gesucht“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
arm.pdf
1 2 3 4 5 6 7 8 V1V L1L X1X 30BQ040 100MHz/30R/3A N1N1 PIX10PIV10A PIV10K PILPIL102 PIVIN2 FBPIN106 A DC inputPIX102 BOOSTIN10 A 9..24V P4X103 7 C2 C1C1 PIX104 PION / OFF 10n L2L 3.3V power supply 733-334
in „ARM Board Layout“ · Platinen ·
-
PDF
PDF-Demo_Board.pdf
) J6 D1 R15 4 3 2 1 5V BATTERY R R R R 6 CR1 CR2 R4 6 5 LCD1 1 R R J2 C J7 Y2 R20 U8 C18C4 Y1 3 C CONTRAST U6 U2 U1 T J1 4 C5 RRA0 R R C17 1 1 1 P E V V R + + 1 C11 C10 C19 0 C R16 1 U3 U4 2 3 D D 1 C8 C2 0 0 N N C 1
in „PIC steuert LED sehr seltsam“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
IPBP_1.bas
) ^ 2): IF N = 8 THEN GOTO WEITER5 QK = EI / (EI ^ 2 + (PB - EJ) ^ 2): IF N = 9 THEN GOTO WEITER5 QL = EI / (EI ^ 2 + (PB + EJ) ^ 2): IF N = 10 THEN GOTO WEITER5 QM = EK / (EK ^ 2 + (PB - EL) ^ 2): IF N =
-
PDF
B400_NTC-02_Serie.pdf
3.04 −2.60 1.20 1.71 2.47 65 0.3194 3.43 −2.52 1.05 1.50 2.17 70 0.2820 3.80 −2.45 0.93 1.33 1.92 75 0.2499 4.16 −2.38 0.82 1.17 1.70 80 0.2222 4.51 −2.32 0.73 1.04 1.51 85 0.1982 4.85 −2.25 0.65 0.93 1.35 90
in „Temperatur Messung mit Mega8 und NTC-Widerstand 4,7k“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
B400_NTC-02_Serie.pdf
3.04 −2.60 1.20 1.71 2.47 65 0.3194 3.43 −2.52 1.05 1.50 2.17 70 0.2820 3.80 −2.45 0.93 1.33 1.92 75 0.2499 4.16 −2.38 0.82 1.17 1.70 80 0.2222 4.51 −2.32 0.73 1.04 1.51 85 0.1982 4.85 −2.25 0.65 0.93 1.35 90
in „NTC Berechnung nach Steinhart and Hart, 2. Gleichung geht nicht!“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
Hewlett_Packard_Operating_and_Service_Manuals_for_HP361XA_30W_Bench_Series_DC_Power_Supplies.pdf
1826-1075 1 IC LF442CN-0P AMP DUAL 8 DIP-P 27014 LF442CN U5 1826-0412 1 IC 393 8-DIP-P PKG 27014 LM393N U6 1826-0221 1 IC MC791 2CT-V RGLTR TO-220 04713 MC7912CT U7 1826-0144 1 IC MC 7805CT-V RGLTR TO-220 04713 MC7805CT 02 1853-0041 1 XSTR PNP SI 04713 E3612AQ4,5 1854-0477 2 XSTR NPN 2N2222ASIT0-18 04713 2N2222A CR2 1906-0255 1 DIOOE-FW BRDG 600V 6A 28480 KBPC606 CR3 1901-0848 1 DIODE-PWR RECT 400V 3A 04713 MR854 CR4,5 1901-0461 2 DIOOE-GEN PRP 10V .2A 27014 1N4148 CR6,7,10,11 1901-0033 4 DIODE-GEN PRP
in „Gebrauchtes Labornetzteil HP Agilent“ · Mechanik, Gehäuse, Werkzeug ·
-
PDF
bs1Appnotes.pdf
Ð) connected together, anodes (+) to Stamp pins as shown. (C) 1992 Parallax, I+5V Vin 1k (all) 1 C 2 0 1 0 1 PC 6 3 5 6 2 5 6 2 E 5 4 P 6 5 4 3 4 3 M 6 7 Roll1k +5 BASIC STAMP GND 47k 1k 1k 2N2222 2N2222 Schematic to accompany program DICE .BAS . Parallax,Inc.•BASICStampProgrammingManual1.9•Page 113
in „Smartcard-Kode-Schloss mit PIC16F84“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
uc3842.pdf
potentiometer are used to sample the oscillator waveform and apply an adjustable ramp to pin 3. VREF R1 2N2222 A VCC UC1842 4.7 kW 100 kW 1 COMP V REF 8 0.1 mF ERROR AMPkW 2 VFB VCC 7 ADJUST 0.1 mF 5 kW 1 kW 1 W SENSE 3 SENSE OUTPUT 6 OUTPUT 4.7 kW ADJUST 4 R / C GROUND 5 T T GROUND CT SHUTDOWN TECHNIQUES
in „Reparatur Schaltnetzteil“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
ZXLD1362.pdf
Voltage (V) 1 LED 3 LED 5 LED 7 LED 9 LED 11 LED 13 LED 15 LED ZXLD1362 Output Current L=220µH 10% 8% 6% n 4% i i e 2% D n r 0% u t -2% p u O -4% -6% -8% -10% 0 10 20 30 40 50 60 70 Supply Voltage (V) 1 LED 3 LED 5 LED 7 LED 9 LED 11 LED 13 LED 15 LED ZXLD1362 Efficiency L=220µH 100% 90% % 80% ( c i i E 70%
in „MAX16832 v. ZXLD1362 (LED Treiber)“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
zxld1366.pdf
1.060 11 LEDs t n 13 LEDs r 15 LEDs u1.040 t u t O 1.020 1.000 0.980 0 10 20 30 40 50 60 Supply Voltage (V) ZXLD1366 Output Current Deviation L=220μH 10% 8% 6% ) ( 4% n t i 2% e D n 0% e u -2% 01 LEDs C 03 LEDs u 05 LEDs
-
PDF
XTR105U-4-20mA-current-transmitter.pdf
Distribution Typical Production Distribution 35 70 of Packaged Units. of Packaged Units. ) 30 R1 AND IR2Included. ) 60 % % s s n25 n 50 U U o20 o 40 n n c15 c 30 e e P10 P 20 0.04% 0.01% 0.07% 0.02% 5 10 0 0 5 1 1 2 2 3 3 4 4 5 5 6 6 7 7 2 4 6 8 1 1 1 1 1 2 2 2 2 2 3 Current Source Drift (ppm/°C) Current
in „[V] Verschiedene SMD-IC's“ · Markt ·
-
PDF
quarzfilter_rev2a.pdf
IF FT<0 THEN N1(I)=FT/1000 :N3(I)=0 1670 N2(I)=(B2*(FQ*BR+1)/(FQ+BR))/1000 1680 N4(I)=0 :IF FT<0 THEN N4(I)=N2(I)-N1(I) 1690 NEXT I 1700 CLS 1710 GOSUB 2500 '--- Ausgabe der Daempfungswerte 71 Quarzfilter, eine kleine
in „DDR- Oszilloskop OG2-30/ OG2-31 Restauration“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
quarzfilter_rev2a.pdf
IF FT<0 THEN N1(I)=FT/1000 :N3(I)=0 1670 N2(I)=(B2*(FQ*BR+1)/(FQ+BR))/1000 1680 N4(I)=0 :IF FT<0 THEN N4(I)=N2(I)-N1(I) 1690 NEXT I 1700 CLS 1710 GOSUB 2500 '--- Ausgabe der Daempfungswerte 71 Quarzfilter, eine kleine
-
PDF
Quarzfilter_Rev2b.pdf
IF FT<0 THEN N1(I)=FT/1000 :N3(I)=0 1670 N2(I)=(B2*(FQ*BR+1)/(FQ+BR))/1000 1680 N4(I)=0 :IF FT<0 THEN N4(I)=N2(I)-N1(I) 1690 NEXT I 1700 CLS 1710 GOSUB 2500 '--- Ausgabe der Daempfungswerte 71 Quarzfilter, eine kleine
in „Schmalbandiges LC-Filter, praktischer Aufbau“ · HF, Funk und Felder ·
-
PDF
Quarzfilter_Rev2b.pdf
IF FT<0 THEN N1(I)=FT/1000 :N3(I)=0 1670 N2(I)=(B2*(FQ*BR+1)/(FQ+BR))/1000 1680 N4(I)=0 :IF FT<0 THEN N4(I)=N2(I)-N1(I) 1690 NEXT I 1700 CLS 1710 GOSUB 2500 '--- Ausgabe der Daempfungswerte 71 Quarzfilter, eine kleine
in „Messen von Quarz-Parametern - Probleme“ · HF, Funk und Felder ·
-
PDF
ICM7226.pdf
FREQUENCY TIME UNIT OSCILLATOR RANGE FREQUENCY PERIOD RATIO INTERVAL COUNTER FREQUENCY 0.01s/1 Cycle D2 D2 D1 D2 D1 D2 0.1s/10 Cycle D3 D3 D2 D3 D1 D3 1s/100 Cycle D4 D4 D3 D4 D1 D4 10s/1K Cycle D5 D5 D4 D5 D1 D5 External N/A N/A N/A N/A N/A N/A 10 ICM7226A, ICM7226B Overflow Indication When timing repetitive
-
PDF
sl11hspec.pdf
The diagrams below indicate pin assignments for the SL11H 28-pin PLCC Package. 3.1 SL11H Pin Layout nRD NC VDD1 NC A0 M/S D7 26 4 nWR 5 3 2 1 28 27 25 D6 nCS 6 24 D5 ALE 7 23 D4 VDD2 8 SL11H 22 GND DATA+ 9 28 PLCC 21 D3 DATA- 10 20 D2 19 GND 11 13 14 15 16 17 D1 12 18 VDD1 X2 INTRQ D0 CLK/X1 nRST GND
in „[V] SL11H, USS720E ua.“ · Markt ·
-
PDF
AN_106f.pdf
the input AC voltage. Circuit accuracy is within 1%in a 200kHz bandwidth. PULSE GENERATOR POWER 5V 1N4148 DRIVER 1k 1k 220k Q2 ISOLATED POWER SUPPLY ZTX-749 – 100Ω 2Ω 1k 1N5817 0.001µF LT1671 Q1 5V ISO + 2N2369 3 1 1N4689 + 750k 1N4148 5.1V 100µF 4 6 750k 5V T1 750k ISOLATION/POWER TRANSFORMER 2500V
in „Netzspannung messen.“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
Datenblatt.pdf
plastic Surface Mounted Device (SMD) SOT23 package. Other special selections are available on request. 1.2 Features n High accuracy and reliability n Long-term stability n Positive temperature coefficient; n Virtually linear characteristics fail-safe behavior 1.3 Quick reference data Table 1. Quick reference
in „KTY82/120,215“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
E416-E1-02_ZX1_Series_Datasheet.pdf
to 30 VDC Load White: OUT1 White: OUT1 judgment output Load 10 to 30 VDC judgment output Green: OUT2 Green: OUT2 10 to judgment output judgment output Load 30 VDC Load Blue: GND (0 V) Blue: GND (0 V) Orange: TUNE1 input2 Orange: TUNE1 input∗2 i i r Pink: TUNE2 input ∗2 r Pink: TUNE2 input, ∗2 l ∗2 l ∗2 r Purple: Zero reset input r Purple: Zero reset input n ∗1, ∗2 n ∗1, ∗2 I Red: LD-OFF input I Red: LD-OFF input 4 to 20 mAtput 4 to 20 mAtput Black: Analog output Black: Analog output Load 300 Ω max.
in „Microcontroller oder AD-Wandler für ZX1 gesucht“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
Transistor_Database.pdf
2N109 GE-P 35V 0.15A 0.165W 2N1304 GE-N 25V 0.3A 0.15W 10MHz 2N1305 GE-P 30V 0.3A 0.15W 5MHz 2N1307 GE-P 30V 0.3A 0.15W B>60 2N1613 SI-N 75V 1A 0.8W 60MHz 2N1711 SI-N 75V 1A 0.8W 70MHz 2N1893 SI-N 120V 0.5A 0.8W 2N2102 SI-N 120V 1A 1W <120MHz 2N2148 GE-P 60V 5A 12.5W 2N2165 SI-P 30V 50mA 0.15W 18MHz 2N2166 SI-P 15V 50mA 0.15W 10MHz 2N2219A SI-N 40V 0.8A 0.8W 250MHz 2N2222A SI-N 40V 0.8A 0.5W 300MHz 2N2223 2xSI-N
in „Bauteilebeschaffung !!“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
Transistor_Database.pdf
2N109 GE-P 35V 0.15A 0.165W 2N1304 GE-N 25V 0.3A 0.15W 10MHz 2N1305 GE-P 30V 0.3A 0.15W 5MHz 2N1307 GE-P 30V 0.3A 0.15W B>60 2N1613 SI-N 75V 1A 0.8W 60MHz 2N1711 SI-N 75V 1A 0.8W 70MHz 2N1893 SI-N 120V 0.5A 0.8W 2N2102 SI-N 120V 1A 1W <120MHz 2N2148 GE-P 60V 5A 12.5W 2N2165 SI-P 30V 50mA 0.15W 18MHz 2N2166 SI-P 15V 50mA 0.15W 10MHz 2N2219A SI-N 40V 0.8A 0.8W 250MHz 2N2222A SI-N 40V 0.8A 0.5W 300MHz 2N2223 2xSI-N
in „Transistor-Datenbank“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
LQ092B5DW02.pdf
the display function. 【Note】 X,Y,Z directions are shown as follows: Z X Y LCY10021-19 D S 3 . 0 2 n 2 l H D w V H ( H T 0 c V V T 0 0 h H d w V h T 0 1 c T ) D T n S 、 6 . D 1 1 0 m H u H ( H H r 2 s V V D f D 0 T 0 0 ・ e c v 1 2 l D a D H r S s w S s D T 8 H f l . h 0 V 1 a 0 T D p 1 0 n S w i p .
in „Anschluss TFT-LCD-Modul SHARP LQ092B5DW02 vs. LQ092B5DW01“ · Mikrocontroller und Digitale Elektronik ·