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ht1632c.pdf
Rev. 1.20 11 June 28, 2011 HT1632C Command Mode - Command Code = 1 0 0 Mode - Data and Command Mode Rev. 1.20 12 June 28, 2011 HT1632C Application Circuits Low Power LED Application (Direct Drive) · 32 ROW ´ 8
in „HT1632C mit welchen Bus ansteuern?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LED_treiber_ht1632cv120.pdf
Rev. 1.20 11 June 28, 2011 HT1632C Command Mode - Command Code = 1 0 0 Mode - Data and Command Mode Rev. 1.20 12 June 28, 2011 HT1632C Application Circuits Low Power LED Application (Direct Drive) · 32 ROW ´ 8
in „HT1632C mit welchen Bus ansteuern?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ht1632cv120.pdf
Rev. 1.20 11 June 28, 2011 HT1632C Command Mode - Command Code = 1 0 0 Mode - Data and Command Mode Rev. 1.20 12 June 28, 2011 HT1632C Application Circuits Low Power LED Application (Direct Drive) · 32 ROW ´ 8
in „HT1632C mit SPI steuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ht1632cv120.pdf
Rev. 1.20 11 June 28, 2011 HT1632C Command Mode - Command Code = 1 0 0 Mode - Data and Command Mode Rev. 1.20 12 June 28, 2011 HT1632C Application Circuits Low Power LED Application (Direct Drive) · 32 ROW ´ 8
in „LED Matrix Schaltung gesucht sowie Bsp Programm“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ht1632cv120.pdf
Rev. 1.20 11 June 28, 2011 HT1632C Command Mode - Command Code = 1 0 0 Mode - Data and Command Mode Rev. 1.20 12 June 28, 2011 HT1632C Application Circuits Low Power LED Application (Direct Drive) · 32 ROW ´ 8
in „C-Code -> Verständnis problem..“ · Mikrocontroller und Digitale Elektronik ·
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Datenblattabschnitt Limiting Values und Thermal Characteristics BLF278
MIN. MAX. UNIT Per transistor section VDSS drain-source voltage - 125 V VGSS gate-source voltage - ±20 V ID drain current (DC) - 18 A PTOT total power dissipation Tmb ≤ 25 °C; total device; both sections equally loaded - 500 W Tstg storage temperature -65 150 °C TJ junction temperature - 200 °C THERMAL
in „Bauteilbestimmung: MMIC Amplifier mit Marking 03 und 06“ · HF, Funk und Felder · · Screenshots
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Systeminformationen Windows 10 Pro
Systemtyp x64-basierter PC System-SKU S26361-Kxxx-Vyyy Prozessor Intel(R) Core(TM) i5-3470 CPU @ 3.20GHz, 3201 MHz, 4 Kern(e), 4 logische(r Prozesso... BIOS-Version/-Datum FUJITSU // American Megatrends Inc. V4.6.5.3 R1.23.0 for D3162-C1x, 01.12.2014 SMBIOS-Version 2.7 Version des eingebettet... 255.255 BIOS-Modus UEFI Baseboard-Hersteller FUJITSU BaseBoard-Produkt D3162-C1 BaseBoard-Version S26361-D3162-C1
in „SATA-HDD Größenbeschränkung durch BIOS?“ · PC Hard- und Software · · Screenshots
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Datei
MultiDS18S20_0.2.bas
'=============================================================================== ' ' Auslesen von mehreren DS18S20 oder DS18B20 ' ' Erweiterung auf beliebig viele Sensoren Typ DS18B.. oder DS18S.. ' ' Siehe ' http://www.mcselec.com/index.php?option=com_content&task=view&id=75&Itemid=57 ' ' Anpassung von LCD , Texte reduziert ' (geschrieben von W. Schmidt) '=============================================================================== $regfile = "m8def.dat" $crystal = 14318180 'Mini-Atmega 4-Platine (mit LCD) $baud = 9600 Declare Function Dg_ds18s20(byval Sc(9) As Byte) As Integer 'Umrechnung
in „Was brauche ich von der Seriennummer DS18B20?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
DS18B20_Multiplexer_go1.bas
$regfile = "m32def.dat" $crystal = 16000000 $swstack = 50 $hwstack = 50 $framesize = 50 Config Lcdpin = Pin , Db4 = Portc.4 , Db5 = Portc.5 , Db6 = Portc.6 , _ Db7 = Portc.7 , E = Portc.3 , Rs = Portc.2 Config Lcd = 16 * 4 Cls Cursor Off '=============================================================================== '=============================================================================== '=========================== Variablendeklaration ============================== Dim Sp1 As Integer 'Integer für Scratchpadinhalt Dim Sp2 As Integer Dim Sp3 As Integer Dim Sp4 As Integer Dim Temp1 As
in „DS18B20 multiplexen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
DS18B20_Multiplexer_go2.bas
$regfile = "m32def.dat" $crystal = 16000000 $swstack = 50 $hwstack = 50 $framesize = 50 Config Lcdpin = Pin , Db4 = Portc.4 , Db5 = Portc.5 , Db6 = Portc.6 , _ Db7 = Portc.7 , E = Portc.3 , Rs = Portc.2 Config Lcd = 16 * 4 Cls Cursor Off '=============================================================================== '=============================================================================== '========================== Variablendeklaration =============================== Dim Sp1(9) As Byte 'Array für Scratchpadinhalt Dim Sp2(9) As Byte Dim Sp3(9) As Byte Dim Sp4(9) As Byte Dim Tmp1 As Byte
in „DS18B20 multiplexen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BYW29E-150.pdf
F = 2 A; VR= 30 V; dI Fdt = 20 A/µs; - 4 11 nC Tj= 25 °C; Fig. 5; Fig. 6 trr reverse recovery time F = 1 A; VR= 30 V; dI Fdt = 100 A/µs; - 20 25 ns Tj= 25 °C; ramp recovery; Fig. 5; Fig. 7 F = 0.5 A; IR= 1 A; IR(meas)= 0.25 A; - 15 20 ns Tj= 25 °C; step recovery; Fig. 8 V FRM forward recovery F = 1 A; dIF/dt = 10 A/µs; Tj= 25 °C; - 1 - V voltage Fig. 9 BYW29E-150 All information provided in this document is subject to legal d© NXP
in „Standard-Schaltnetzteil 40W 5V/12V/-12V mit UC3844 tickert“ · Analoge Elektronik und Schaltungstechnik ·
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CM300DY-24H.pdf
CHARACTERISTICS (TYPICAL) (TYPICAL) GATE CHARGE, V GE 103 103 10 2 20 S td(off) E I = 300A E S C s P L , ( V16 tf t rr ,r , V CC= 400V s td(on) E , G , I N V V CC= 600V E T E E12 I R rr R A G 102 E 102 10 1 U L I O C O H E R V T R V E 8 W E O T S V = 600V R E M CC V R
in „teslaspulenverzweiflung“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
F2013_touchpad.c
const key_line_config_data_t *key_line_config) { key_line->base_capacitance = 0; key_line->filtered = 0; /* Set the capacitive sense pin to output, low level, low going interupts */ /* We need to keep all switches, except the one we are currently sensing, driven
in „Touchpad Eval Board mit MSP430“ · Mikrocontroller und Digitale Elektronik ·
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Designing_Wide-band_Transformers.pdf
which the voltage across the primary is at a minimum. Inverse Tchebyschev 12. Calculate C' using: 20 dB 1.172 1.172 2.343 0.320 22 30 dB 1.866 1.866 3.733 0.201 2 40 dB 2.838 2.838 5.677 0.132 1 C 12 L EQ 2(2π f 22 ) C 22 = 2 (Eq 11) Elliptical L EQ 2(2π f 22 ) (0.1 dB Passband Ripple) 20 dB 0.850 0.850
in „Stackpole Ferrit Kerne für RF Verstärker“ · HF, Funk und Felder ·
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esp32-c3_technical_reference_manual_en.pdf
] N 20 N/A DQS D [42:47] N 20 N/A D4 o u [48:53] N 20 N/A D5 e 1 t 1 [54:59] N 20 N/A D6 o [60:65] N 20 N/A D7 n e EFUSE_SYS_DATA_PART0 78 N 20 N/A System data d BLOCK2 EFUSE_SYS_DATA_PART1 256 N 21 N/A System
in „Mit dem ESP32C3 laufen lernen“ · Mikrocontroller und Digitale Elektronik ·
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esp32-c3_technical_reference_manual_en.pdf
] N 20 N/A DQS D [42:47] N 20 N/A D4 o u [48:53] N 20 N/A D5 e 1 t 1 [54:59] N 20 N/A D6 o [60:65] N 20 N/A D7 n e EFUSE_SYS_DATA_PART0 78 N 20 N/A System data d BLOCK2 EFUSE_SYS_DATA_PART1 256 N 21 N/A System
in „ESP32C3 > PLL“ · Mikrocontroller und Digitale Elektronik ·
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Datei
LM32_Versa_Tutorial.c
MicoGPIOCtx_t *leds = (MicoGPIOCtx_t *)MicoGetDevice(LED_GPIO_INSTANCE); *((unsigned char*)(leds->base)) = oneByte; MicoSleepMilliSecs(ms); } */ void POVDisplay(int ms, char oneByte, MicoGPIOCtx_t *leds ) { *((unsigned char*)(leds->base)) = oneByte; MicoSleepMilliSecs(ms); } void Rider(MicoGPIOCtx_t
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Diamond_WP.pdf
library Dhrystone MIPS 131 324 297 Power – mW per MHz (0.13G)* 0.10 0.08 0.11 Area – (0.13u G) for base core 0.24mm ** 0.20 mm 2 0.40 mm 2 (Sage-X library, area optimized) 2 2 2 Area for core + bus interface + 0.43 mm 0.39 mm 0.55 mm interrupt controller + timers (extrapolat2d (extrapolated from 0.24mm
in „Nachfolger vom esp8266: ESP32 - besser, schneller“ · Offtopic ·
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PDF
diodesgroupbodymarking.pdf
Jul19-V; Aug19-=; Sep19-X A Oct19-YB Nov19-ZC Dec19- D X or XX … Type code (see allowed matrix) Jan20- ;EFeb20- ;FMar20- G 100% AOI to avoid wrong device Apr20- J May20- K Jun20- L Jul20- ;PAug20- ;-Sep20- R Oct20- ;TNov20- ;UDec20- V Jan21- ; Feb21- ; Mar21- Only excemptions from that matrix: BAS40L
in „Bauteil Suche?“ · Analoge Elektronik und Schaltungstechnik ·
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C-Code Ausschnitt für ESP32C3 GPIO Register
Edit Sketch Tools Help AirM2M_CORE_ESP32C3 ESP32C3_GPIO.ino 6 7 typedef struct 8 { 9 // mapped @GPIO_BASE 10 uint32_t Bt_Select_Reg; 11 uint32_t 12 uint32_t field Bt_Select_Reg 13 uint32_t 14 uint32_t Type: uint32_t 15 uint32_t offset: 0 bytes 16 uint32_t size: 4 bytes 17 uint32_t mapped @GPIO_BASE 18 uint32_t 19 uint32_t // In (anonymous struct) 20 uint32_t public: uint32_t Bt_Select_Reg; 21 uint32_t Status_W1TC_Reg; 22 uint32_t PCPU_Int_Reg; 23 uint32_t Status_Next_Reg; 24 } 25 GPIO_Cfg_Reg_t;
in „C > Struct > Pointer - Adresszuweisung“ · Mikrocontroller und Digitale Elektronik · · Screenshots
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Datei
irmp_trunk.patch
ROM_SysCtlPeripheralEnable(IRMP_PORT_PERIPH); - // Set as an input - ROM_GPIODirModeSet(IRMP_PORT_BASE, IRMP_PORT_PIN, GPIO_DIR_MODE_IN); - ROM_GPIOPadConfigSet(IRMP_PORT_BASE, IRMP_PORT_PIN, - GPIO_STRENGTH_2MA, - GPIO_PIN_TYPE_STD_WPU); + // Set as an input + ROM_GPIODirModeSet(IRMP_PORT_BASE, IRMP_PORT_PIN
in „IRMP - Infrared Multi Protocol Decoder“ · Projekte & Code ·
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PDF
VHF-COMM.1983.3.pdf
but also r, = 144 MHz !he higtlesl lnSerl ion loss, Lower corner lrequency D Attenuation allpI at = 20dB Upper corner frequency I 2 = 146 MHz D In other words. each fill er dnsrqn requi res corn Anenuanon at fp2 a2 - 20 dB Lower CUI·olI trequency tel= 140 MHz promi ses and Ihe (ask is to obtain a required
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TD_62551-TD_62553.pdf
RATINGS (Ta = 25°C) CHARACTERISTIC SYMBOL RATING UNIT Collector−Emitter Voltage V 25 V CEO Collector−Base Voltage V 35 V CBO Collector Current I 150 mA / ch C Input Voltage VIN(Note 1) 20 V Input Current IIN(Note 2) 10 mA Power Dissipation PD(Note 3) 0.75 W Operating Temperature Topr −40~85 °C Storage Temperature
in „Suche: 8fach Inverter TD 62551“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TI_VCO.pdf
are rectified and stored in the 5 μF capacitor. This potential is fed to the base of Q3. Q3's collector current will vary with the difference between its base and emitter voltages. Since the emitter voltage is fixed by the LM313 1.2V reference, Q3 performs a comparison function and
in „VCO Simulation“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TI_VCO.pdf
are rectified and stored in the 5 μF capacitor. This potential is fed to the base of Q3. Q3's collector current will vary with the difference between its base and emitter voltages. Since the emitter voltage is fixed by the LM313 1.2V reference, Q3 performs a comparison function and
in „VCO Simulation“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
irsnd.c
TimeBaseFreq = RCC_ClocksStructure.PCLK2_Frequency; } else { TimeBaseFreq = RCC_ClocksStructure.PCLK2_Frequency * 2; } # endif } freq = TimeBaseFreq/freq; /* Set frequency */ TIM_SetAutoreload(IRSND_TIMER, freq
in „IRMP - Infrared Multi Protocol Decoder“ · Projekte & Code ·
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Datei
irsnd.c
TimeBaseFreq = RCC_ClocksStructure.PCLK2_Frequency; } else { TimeBaseFreq = RCC_ClocksStructure.PCLK2_Frequency * 2; } # endif } freq = TimeBaseFreq/freq; /* Set frequency */ TIM_SetAutoreload(IRSND_TIMER, freq
in „IRMP - Infrared Multi Protocol Decoder“ · Projekte & Code ·
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PDF
WM8731_WM8731L.pdf
the output level with the input short circuited, measured ‘A’ weighted over a 20Hz to 20kHz bandwidth using an Audio analyser. 2. Ratio of output level with 1kHz full scale input, to the output level with all zeros into the digital input, measured ‘A’ weighted over a 20Hz to 20kHz
in „Altera DE1 Board: Frage zu I2C Bus Adresse vom Audiocodec.“ · FPGA, VHDL & Co. ·
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Datei
an1771sw.foru.asm
/base 16T /PAGEWIDTH 999 /PAGELENGTH 9999 $include "def08az.inc" $include "hc08mak2.asm" TRST EQU 4 ;Timer reset TSTOP EQU 5 ;Timer stop TOIE equ 6 ;Timer overflow interrupt enable TOF equ 7 ;Timer overflow flag TOV0 equ $02 ELS0B equ $08 MS0B EQU $20 RAMEnd equ $44f org $50 track RMB 1 DX RMB 2 DY RMB 2 ACFX RMB 2 ACFY RMB 2 tontime RMB 2 org $8000 SIN_TAB FCB $80,$83,$86,$89,$8C,$90,$93,$96 FCB $99,$9C,$9F,$A2,$A5,$A8,$AB FCB $AE,$B1,$B3,$B6,$B9
in „Reload Value für Timer berechnen??“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BYV29-500.pdf
MIN. TYP. MAX. UNIT VF Forward voltage IF= 8 A; T =j150˚C - 0.90 1.03 V IF= 8 A - 1.05 1.25 V IF = 20 A - 1.20 1.40 V I Reverse current V = V - 2.0 50 A R V = V RRM ; T = 100 ˚C - 0.1 0.35 mA R RRM j Q s Reverse recovery charge IF= 2 A to V ≥R30 V; - 40 60 nC dIF/dt = 20 A/ s rr Reverse recovery time
in „Brauche Hilfe bei Motoransteuerung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Infineon_TLE9263QX.pdf
because a low- power mode regulator with a lower accuracy will be active for small loads. If the base current on VCC3 exceeds IVCC3base > IVCC3base,Ipeak,ren the high-power mode regulator is enabled additionally to support an optimum dynamic load behavior. If the base current on VCC3 falls below the
in „SBC für CAN/LIN bei einem 24V Bordnetz“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AudioCodec-WM8731_8731L.pdf
the output level with the input short circuited, measured ‘A’ weighted over a 20Hz to 20kHz bandwidth using an Audio analyser. 2. Ratio of output level with 1kHz full scale input, to the output level with all zeros into the digital input, measured ‘A’ weighted over a 20Hz to 20kHz
in „Elektret-Mikrofon-Verstärker-->Line-In mit assymmetrischer Vers.Sp.“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ISP1200er.pdf
ISP-Board at 07.06.2003 11:14:39 Part Value Package C1 100n C1206 C2 22p C1206 C3 22p C1206 C4 1µ E5-5 D1 BAS16 SOT23 D2 BAS16 SOT23 IC1 AT90S1200S SO20L Q1 BC847C SOT23 Q2 BC857C SOT23-BEC Q3 4M HC49/S R1 4,7k R1206 R2 4,7k R1206 R3 4,7k R1206 R4 4,7k R1206 R5 4,7k R1206 PCB Layout (mirrored) R6 4,7k R1206
in „AVR910 ISP-Programmer: Supported AVR's?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MC1496.pdf
Signal Port Figure 16. Carrier Suppression Transadmittances versus Frequency versus Temperature B 20 A 0 ( RL= 3.9 k N I Re= 500 ▯ M 10 G 10 A ) E N d A F (20 L RL= 3.9 k (Standard H ND V 0 Re= 1.0 k Test CircuRL= 3.9 k A B30 2C E Re= 2.0 k E D D O S E -▯10 E E40 E RL= 500 ▯ B R G |C | = 0.5 Vdc Re=
in „Analogmultiplizierer aufbauen - Audiobereich“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
supercap_manual.pdf
5˚ ˚ ˚ r r s 100 s 100 8 8 7 70 s s t t t t l 80 l 80 l 40 l 40 a a a a i 60 i 60 i i q 40 q 40 q 20 q 20 E E E E 20 20 0 0 0 0 Initial value Initial value 1,000 1,000 10,000 10,000 Initial valueitial value00 1,000 1,000 10,000 10,000 Time (h) Time (h) Time (h) Time (h) 20 20 20 20 10 10 10 10 ) 0 )
in „Super cap - .1F 5.5V TOKIN“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SHURFLO_BILGE_PUMP_355.pdf
Model 355 Installation Instructions BILGE PUMP FEATURES • Quick-disconnect base plate for easy installation. • Nylon Impeller. • Submersible. • 3 ft. tinned power leads to insure operation in the wettest conditions. • Water cooled motor to insure long life. • Easy transom mount base plate. INSTALLATION LOCATION: Locate pump at deepest position in the bilge. Keep away from high heat source; engine, etc. MOUNTING: Mount quick-disconnect bracket to hull or pad with stainless steel
in „Regler für Solarpumpe“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
Aenderung.txt
; float[] valbuf1 = new float[128]; float[] valbuf2 = new float[128]; int bufptr = 0; int maxbuf = 20; int min1= 9999; int max1 = -1; int min2 = 9999; int max2 = -1; bool paused = false; Graphics g ; //--- hier --- FileStream fs; // new FileStream StreamWriter sw; // new StreamWriter //------------ public
in „[S] günstige Möglichkeit, zwei DC-Spannungen über mehrere Stunden zu überwachen“ · Markt ·
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Datei
Aenderung.txt
; float[] valbuf1 = new float[128]; float[] valbuf2 = new float[128]; int bufptr = 0; int maxbuf = 20; int min1= 9999; int max1 = -1; int min2 = 9999; int max2 = -1; bool paused = false; Graphics g ; //--- hier --- FileStream fs; // new FileStream StreamWriter sw; // new StreamWriter //------------ public
in „[S] günstige Möglichkeit, zwei DC-Spannungen über mehrere Stunden zu überwachen“ · Markt ·
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PDF
fm600tu-07a_e.pdf
3 . 7 7 8 9 B 9 5 3 (8.7) 3 6 A L ▯▯П▯▯▯ .06/5*/(▯)0-&4 12 6 ) . ( 6 U V W ( 14 14 14 ▯▯.▯/654 14 20 20 20 (SCREWING DEPTH) 16.5 32 32 A B Tc measured point 2 4 Housing Type of A and B (Tyco Electronics P/N:) CIRCUIT DIAGRAM A: 917353-1 P B: 179838-1 (7)GUP (8)GVP (9)GW P (1)SUP (2)SVP (3)SW P U V W
in „Wechselrichter mit MOSFET Endstufe“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
PhaseShift_AD8302.pdf
angle three times as far from the peak as the original. The worst case is that the actual angle is -20 degrees, so the shift results in +20 degrees, and we have not moved away from the peak. But in any case we will be able to make all measurements at least 20 degrees from a peak. Measurements at the boundary
in „Endstufe für schwankende Lastimpedanz“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
L200_AppNotes.pdf
WhenattheterminalsofR24thereisavoltagedrop perature. To avoid having to use heatsinks which sufficienttomake Q20conduct,Q19beginstodraw are costlyandbulky,a thermal protectioncircuithas current from the base of the power transistor (dar- beenintroducedtolimittheoutputcurrentsothatthe lington formedbyQ22and Q23)
in „Labornetzteil lm200 Brauchbar?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Tiny_50Hz.c
");// @9; // measured amplitude from ADC volatile uint8_t amplitudeInput; uint8_t DEAD_TIME_HALF = 20; /*! \brief Flags for Waveform and Direction * * This variable contains all the flags used for VF control. */ register volatile PMSMflags_t fastFlags asm ("r9"); // @0x1e; /*! \brief Increment used for
in „Theorie Wechselrichter 12V DC -> 230V AC“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
MAIN.C
BGR0 = 832; // 19200 Baud @ 16MHz // BGR0 = 416; // 38400 Baud @ 16MHz // BGR0 = 2083; // 9600 Baud @ 20MHz // BGR0 = 1041; // 19200 Baud @ 20MHz // BGR0 = 520; // 38400 Baud @ 20MHz // BGR0 = 2499; // 9600 Baud @ 24MHz // BGR0 = 1249; // 19200 Baud @ 24MHz // BGR0 = 624; // 38400 Baud @ 24MHz // BGR0 =
in „program CANbus interface on fujitsu MB96340 Series with id filtering“ · Projekte & Code ·
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DS3231_M_MZ_Mems.pdf
Fs Data Hold Time tHD:DAT 0 0.9 Fs Data Set-Up Time SU:DAT 100 ns START Set-Up Time SU:STA 0.6 Fs 20 + SDA and SCL Rise Time tR (Note 7) 0.1CB 300 ns 20 + SDA and SCL Fall Time tF (Note 7) 0.1CB 300 ns STOP Set-Up Time SU:STO 0.6 Fs SDA, SCL Input Capacitance CBIN (Note 8) 10 pF Note 2: All voltages
in „(empfindlicher) GPS Modul gesucht“ · Mikrocontroller und Digitale Elektronik ·
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Blackfin_Median.pdf
*d00 = a0 c01*d01 = a1 c02*d02 = a2 c10*d10 = a3 c11*d11 = a4 SUM convolution sum #1 c12*d12 = a5 c20*d20 = a6 c21*d21 = a7 c22*d22 = a8 c00*d01 = b0 c01*d02 = b1 c02*d03 = b2 c10*d11 = b3 c11*d12 = b4 SUM convolution sum #2 c12*d13 = b5 c20*d21 = b6 c21*d22 = b7 c22*d23 = b8 Figure 9.2 3x3 Convolution
in „Bildoperatoren + DSP“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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Datei
main.c
AIC_SRCTYPE_INT_LEVEL_SENSITIVE 0x00 /* Level Sensitive */ #define AIC_SRCTYPE_INT_EDGE_TRIGGERED 0x20 /* Edge Triggered */ #define AIC_SRCTYPE_EXT_LOW_LEVEL 0x00 /* Low Level */ #define AIC_SRCTYPE_EXT_NEGATIVE_EDGE 0x20 /* Negative Edge */ #define AIC_SRCTYPE_EXT_HIGH_LEVEL 0x40 /* High Level */ #define
in „UART - Interrupt löst nicht aus (ARM7, Crossworks)“ · Mikrocontroller und Digitale Elektronik ·
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dmf5120.pdf
25.56 2.55 22.72 3.58 19.88 4.79 17.04 20 x 9 3 3 3 3 DM__-2-39 39.2 0.800 0.029 5.7 1.45 29.99 2.36 26.66 3.31 23.33 4.42 20.00 20 x 9 3 3 3 3 DM__-2-47 45.5 0.800 0.032 5.7 1.34 34.79 2.19 30.92 3.07 27.06 4.11 23.19 20 x 9 3 3 3 3 DM__-2-
in „Datenblätter gesucht“ · Mikrocontroller und Digitale Elektronik ·
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msp430f5529.pdf
CRCDIRB 02h CRC initialization and result CRCINIRES 04h CRC result reverse byte CRCRESR 06h Table 6-20. RAM Control Registers (Base Address: 0158h) REGISTER DESCRIPTION REGISTER OFFSET RAM control 0 RCCTL0 00h Table 6-21. Watchdog Registers (Base Address: 015Ch) REGISTER DESCRIPTION REGISTER OFFSET Watchdog
in „Tastatur komplett selbst erstellen“ · PC Hard- und Software ·
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PDF
ABLIC-S-8520-8251_Series.pdf
Electric Industrial Co., LtTE (16 V, 22 F tantalum type) Transistor: Toshiba Corporation 2SA1213 Base resistance (Rb: 0.68 k Base capacitor (Cb: 2200 pF (Ceramic type) Unless otherwise indicated, connect the recommended components to the IC. When V IN = VOUT(S) 1.2 V (VIN= 2.5 V ______ when V OUT(
in „EHAYP 7606 - Welcher IC?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
slaa148.pdf
1.35mA V V The pullup resistor Rpat the MSP430 input is: V − V R < CC IT(max)= 3V − 1.9V → R max< 20.9kΩ chosen R p 20 kΩ p (1+p )×ICE max 1.05 × 50μA p To avoid current consumption, the resistors R pare switched to DV CC only when necessary. 8 Interfacing the 3-V MSP430 to 5-V Circuits SLAA148 3.5
in „MSP430 5V in I/O?“ · Mikrocontroller und Digitale Elektronik ·