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eao_Serie_31.pdf
AB AB AB abc abc h abc abc 18 06.2009 Drawings 31 Component layout 1 PCB plug-in base page 9 Extendable mounting pins b a 3 1 3 4 2 4 3 1 9 Switch . b a 1 4 2 9.6 17.9 15.24 Ø1.0 all holes 7 . 2 1 . 7 Drilling plan (conductor side) 5 . . 5 x 2.54 1 0 1.27 1.27 2 PCB plug-in base page
in „Taster für Kanalumschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
2012_02-RIAA.pdf
R18 C13 C18 1 2 2 2 10n 4n7 C6 1 C14 C19 MM_L 470n IC4A 10n 4n7 R6 3 C15 C20 C4 2 10n 4n7 0 1 5 C16 C21 220u 3 IC2A R19 R20 7 10n 220p 35V 3 R R IC4B 6 C17 0 0 10n -17V 2 2 R21 R13 R14 0 C8 0 +17V 2 5 * C12 * 8 8 7 8 7 8 8 8 C55 C56 C57 C58 C59 C60 C61 C62 220u IC1 IC2 IC3 IC4 IC5 IC6 IC7 IC8 35V 4 100n
in „Empfehlung für Phono-Vorverstärker-Schaltplan?“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
t6963c_main_v1.asm
kurz warten sbi PortB,reset ; Reset auf H rcall delay ; text start adress set ldi daten,low (TXT_BASE) rcall WriteByte ldi daten,high(TXT_BASE) rcall WriteByte ldi command, (TXTHOME) rcall WriteCMD ; text area adress set ldi daten, (SPALTEN) rcall WriteByte ldi daten, 0x00 rcall WriteByte ldi command
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ARM_Procedure_Call_Standard_for_the_ARM_Architecture_V2.1.pdf
4 half-words satisfies the requirements for a homogeneous aggregate. A Homogenous Aggregate has a Base Type, which is the Fundamental Data Type of each Element. The overall size is the size of the Base Type multiplied by the number of Elements; its alignment will be the alignment of the Base Type. 1
in „C und C++ kompatibilität“ · Mikrocontroller und Digitale Elektronik ·
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Datei
e3d_tools.inc
#local Cos=0; #local MyAxis=<0,0,0>; #else #local MyAxis=vnormalize(vcross((C-A),(B-A))); #local Base1=vnormalize(C-A); #local Base2=vnormalize(vcross(MyAxis,Base1)); #local VB=<0.5*vlength(C-A),0,0>; #local VA=vcross(VB,z); #local VD=.5*<vdot(B-A,Base1),vdot(B-A,Base2),0>; #local VC=vcross(VD,z); #
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Datei
e3d_tools.inc
#local Cos=0; #local MyAxis=<0,0,0>; #else #local MyAxis=vnormalize(vcross((C-A),(B-A))); #local Base1=vnormalize(C-A); #local Base2=vnormalize(vcross(MyAxis,Base1)); #local VB=<0.5*vlength(C-A),0,0>; #local VA=vcross(VB,z); #local VD=.5*<vdot(B-A,Base1),vdot(B-A,Base2),0>; #local VC=vcross(VD,z); #
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Datei
HWMonitor.txt
Technology 45 nm TDP Limit 95.0 Watts Core Speed 3331.7 MHz Multiplier x Bus Speed 25.0 x 133.3 MHz Base frequency (cores) 133.3 MHz Base frequency (ext.) 133.3 MHz Rated Bus speed 2398.8 MHz Stock frequency 2800 MHz Instructions sets MMX, SSE, SSE2, SSE3, SSSE3, SSE4.1, SSE4.2, EM64T, VT-x Microcode Revision
in „Gibt Festplatte langsam Geist auf?“ · PC Hard- und Software ·
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PDF
S5094873B_PA035-017BM001.pdf
・・・・・・・・・・・・・・・・・・・・・・・・・・・ 20 8 ELECTRICAL SPECIFICATIONS FOR SERIAL EEPROM ・・・・・・・・・・・・・・・・・・・・・ 21 9 ENVIRONMENT CONDITIONS ・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・ 21 9.1 Temperature ・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・ 21 9.2 Humidity ・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・ 21 9.3 Vibration ・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・ 21 9.4 Impact ・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・ 21 9.5 Noise Resistance ・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・・
in „Sanyo Denki Servo Motor Encoder / Kompatibilität Yaskawa, Omron, Panasonic“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MGA52543.pdf
Parameters in ICM test fixture) Freq s (m) s (a) s (dB) s (m) s (a) s (dB) s (m) s (a) s (m) s (a) K 11 11 21 21 21 12 12 12 22 22 0.2 0.64 -17.42 14.92 5.57 168.30 -22.90 0.072 16.89 0.53 -14.49 1.00 0.3 0.62 -18.44 14.76 5.47 166.18 -22.62 0.074 9.26 0.51 -15.38 1.04 0.4 0.61 -20.41 14.67 5.41 163.57 -22.56
in „Wie ist ein MMIC intern aufgebaut?“ · HF, Funk und Felder ·
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Datei
lib_AT91SAM7S256.h
------------------------------------------------------------------------ //* \fn AT91F_SetRTT_TimeBase() //* \brief Set the RTT prescaler according to the TimeBase in ms //*-------------------------------------------------------------------------------------- inline unsigned int AT91F_RTTSetTimeBase(
in „C Datein werden in Eclipse nicht kompiliert“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Anleitung_Interruptcontroller.pdf
#define INTC DEVICE ID XPAR INTC 0 DEVICE ID #define INTC DEVICE INTR ID XPAR INTC 0 GPIO 1 VEC ID 21 23 /∗ functions ∗/ 25 XStatus IntcLowLevelExample(Xuint32 IntcBaseAddress ) ; 27 void SetupInterruptSystem () ; 29 void DeviceDriverHandler (void ∗CallbackRef ) ; 31 33 /∗∗∗∗∗∗∗∗∗∗∗∗∗∗∗∗∗∗∗∗∗∗∗∗∗∗ Variable
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Datei
sfr_3083.h
G0TMCR7 00DFH // Group0 time measurement control register 7 #pragma ADDRESS G0BT 00E0H // Group0 base timer register 0 #pragma ADDRESS G0BTL 00E0H // Group0 base timer register 0 (low) #pragma ADDRESS G0BTH 00E1H // Group0 base timer register 0 (high) #pragma ADDRESS G0BCR0 00E2H // Group0 base timer
in „M32C/83 bits setzen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
20110326_log.txt
offset value name 0x40010: 0x01DA0F83(PCI_SETUP) 0x40014: 0x00000047(PCI_CTRL) 0x40018: 0x18000000(PCI_BASE1_LO) 0x4001C: 0x1A000000(PCI_BASE1_HI) 0x40020: 0x1C000000(PCI_BASE2_LO) 0x40024: 0x1E000000(PCI_BASE2_HI) 0x40028: 0x00008000(PCI_RDLIFETIME) 0x4002C: 0x00000000(PCI_GPPM_ADDR) 0x40030: 0x00000000(
in „Pollin - Receiver-Mainboard mit Twin DVB-[T,C] Tuner, NXP PNX8950EH“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Timer.txt
input_capture_output_compare_chan7; //1E + 1F char pulse_accu_a_control; //20 char pulse_accu_a_flag; //21 char pulse_accu_count_3; //22 char pulse_accu_count_2; //23 char pulse_accu_count_1; //24 char pulse_accu_count_0; //25 char modulus_down_counter_control; //26 char modulus_down_counter_flag; //27 char
in „Problem mit dem Timer eines HCS12“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
PrescalerValue = (uint16_t) 36000 - 1; // Vorteiler berechnen (36Mhz/36000 = 1khz) TIM_TimeBase_InitStructure.TIM_Prescaler = PrescalerValue; // TIM_TimeBase_InitStructure.TIM_ClockDivision = TIM_CKD_DIV1; // nach Prescaler=1kHz TIM_TimeBase_InitStructure.TIM_CounterMode = TIM_CounterMode_Up; TIM_TimeBase_InitStructure.TIM_Period = 1000; // Eine Sekunde (=1000*1kHz=1s) TIM_TimeBaseInit(TIM2, &TIM_TimeBase_InitStructure); //Timer Vorteiler-Taktkonfiguration // TIM_PrescalerConfig(TIM2, PrescalerValue,
in „STM32 : Float linken mit Coocox“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IOWA-LX-600_UMN_v1.00.pdf
options are: None 360K, 5.25 in. 1.2M, 5.25 in. 720K, 3.5 in. 1.44M, 3.5in (Default) 2.88M, 3.5 in. Base Memory: The Base Memory is NOT user configurable. The POST determines the amount of base (or conventional) memory installed in the system. The value of the base memory is typically 512K for systems
in „DOS mit aktueller Technik / RAM“ · PC Hard- und Software ·
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Datei
main.c
0; i < VIC_SIZE; i++ ) { // Alle vec und vec control regs -> 0 vect_addr = (unsigned long *)(VIC_BASE + VECT_ADDR_INDEX + i*4); vect_cntl = (unsigned long *)(VIC_BASE + VECT_CNTL_INDEX + i*4); *vect_addr = 0; *vect_cntl = 0; } VICDefVectAddr = (unsigned long)DefaultVICHandler; // default VIC Handler
in „Interrupts beim LPC2138“ · Mikrocontroller und Digitale Elektronik ·
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PDF
GS503__Communication_Protocol__von_http-www.iconcox.com-uploads-soft-140917-1-14091GT538.pdf_.pdf
identity code according to functional areas. Type identity Function code GPS+ message sending +Multi-base station 100F LBS+ message sending + Multi-base station 1010 GPS+ no message + Multi-base station XX LBS+ no message + Multi-base station XX GPS+ message sending + Single base station 100C LBS+ message sending + Single base station 100D GPS+ no message + Single base station 1006 LBS+ no message + Single base station 1009 4.5.1.1.3 Extended bit Nibble bit15—bit4 Lsb nibble bit4-bit0 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0
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PDF
153157-da-01-en-TRANSISTOR_AF_BC847_B_SOT_23__INF.pdf
BC849... 30 Collector-emitter voltage V CES BC847..., BC850... 50 BC848..., BC849... 30 Collector-base voltage V CBO BC847..., BC850... 50 BC848..., BC849... 30 Emitter-base voltage V EBO BC847..., BC850... 6 BC848..., BC849... 6 100 mA Collector current C Peak collector currept, t ≤ 10 ms CM 200 Total
in „Check Transistorschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
out.lst
that a character has been received */ while(!UART_ReceivedChar); 216: 80 91 aa 00 lds r24, 0x00AA 21a: 88 23 and r24, r24 21c: e1 f3 breq .-8 ; 0x216 UART_ReceivedChar = 0; 21e: 10 92 aa 00 sts 0x00AA, r1 /* read byte from UART data buffer */ return UART_RxChar; 222: 80 91 ae 00 lds r24, 0x00AE 226:
in „Multiplikation ist zu schnell...“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BFL_SHA2_Spec_Rev2.2_-_Release.pdf
0001 dddd ddDd xxxx xddd d8 valid_state[0] 1 ddd dddd 0110 0001 dddd dddD xxxx xddd P a g e | 28 d7 base_state[7] 1 ddd dddd 0110 0001 dddd dddd Xxxx xddd d6 base_state[6] 1 ddd dddd 0110 0001 dddd dddd xXxx xddd d5 base_state[5] 1 ddd dddd 0110 0001 dddd dddd xxXx xddd d4 base_state[4] 1 ddd dddd 0110 0001 dddd dddd xxxX xddd d3 base_state[3] 1 ddd dddd 0110 0001 dddd dddd xxxx Xddd d2 base_state[2] 1 ddd dddd 0110 0001 dddd dddd xxxx xXdd d1 base_state[1] 1 ddd dddd 0110 0001 dddd dddd xxxx xdXd d0 base_state[0] 1 ddd dddd 0110
in „Chips für SHA256 Berechnungen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
w5500.h
(_W5500_IO_BASE_ + (0x0031 << 8) + (WIZCHIP_CREG_BLOCK << 3)) // Reserved (_W5500_IO_BASE_ + (0x0032 << 8) + (WIZCHIP_CREG_BLOCK << 3)) // Reserved (_W5500_IO_BASE_ + (0x0033 << 8) + (WIZCHIP_CREG_BLOCK << 3)) // Reserved (_W5500_IO_BASE_ + (0x0034 << 8) + (WIZCHIP_CREG_BLOCK << 3)) // Reserved (_W5500_IO_BASE_ + (0x0035 << 8) + (WIZCHIP_CREG_BLOCK << 3)) // Reserved (_W5500_IO_BASE_ + (0x0036 << 8) + (WIZCHIP_CREG_BLOCK << 3)) // Reserved
in „Wiznet W5500 Datenübertragung via Ethernet“ · Mikrocontroller und Digitale Elektronik ·
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PDF
W2000US_Data_Sheet.pdf
for reference and further analysis • Autoset Menu with Waveform Selection • Normal and Delayed Time Base • Advanced Triggers, Including Pulse Width Trigger and Video Trigger • Automatic Measurements • Multi-language User Interface • Waveform and Setup Memories • FFT Standard on All Models • RS232 and USB
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Datei
Melody_ARM_aus_EEPROM_all.ino
Brahms Wiegenlied) "Keyboard Cat " // 19 Keyboard cat "MII Channel " // 20 MII Channel "Greenhill " // 21 Greenhill "Song of Storms" // 22 Song of storms "Minuet in G " // 23 Minuet in G "Pulo da gaita " // 24 Pulo da gaita "Badinerie " // 25 Badinerie "Baby elephant " // 26 Empty "Cannon in D " // 27 Cannon
in „Arduino Uno R4: Besonderheiten und Abhilfen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BD433_42_CDIL.pdf
RATINGS DESCRIPTION SYMBOL BD433 BD435 BD437 BD439 BD441 UNIT BD434 BD436 BD438 BD440 BD442 Collector Base Voltage V CBO 22 32 45 60 80 V Collector Emitter Voltage V CES 22 32 45 60 80 V Collector Emitter Voltage V CEO 22 32 45 60 80 V Emitter Base Voltage V EBO 5.0 V Collector Current C 4.0 A Collector Peak Current (t=10ms_ICM 7.0 A Base Current B 1.0 A Total Dissipation @ C=25ºC PD 36.0 W Total Dissipation @ a=25ºC PD 1.25 W Derate above 25ºC 10 mW/ ºC Operating and Storage Junction Temperature Range TjTstg - 65 to 150 ºC THERMAL RESISTANCE
in „Lichtsteuerung über i2c - ULN2803A - S12-100“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Figaro_TGS_Serien.pdf
is mounted on the tube. Electrode Heater coil Sintered SnO2 Ceramic tube Structure R type : resin base + resin cover C type : ceramic base + metal cover unit : mm unit : mm Basic measuring circuit M type : resin base / ceramic base + TGS metal cover a i Vc RL Vout t p u ( V H Circuit conditions Circuit
in „Auswertung Figaro Gassensoren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Agilent_DSO3000-Serie.pdf
voltage 300 Vrms CAT II; derated at 20 dB/decade above 100 kHz to 13 V p-p AC at 3 MHz and above Time base range 2 ns/div to 50 s/div BW limit ~ 20 MHz Input coupling DC, AC, Ground Input impedance 1 MΩ: ≈ 13 pF Time base accuracy 100 ppm * Denotes warranted specifications, all others are typical. Specifications
in „Oszilloskope; USB VS Standgerät“ · Mikrocontroller und Digitale Elektronik ·
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Datei
RFM69-Fragmente1.c
************************/ uint8_t RFM69_EntryRx(void) { uint8_t i; RFM69_Config(); //config RFM69 base parameters for(i=0;i<3;i++) SPIWrite(RFM69RxTable[i]); //config RFM69 RxMode parameters /* if((SPIRead(0x27)&0xC0)==0xC0) //Status OK? 0xC0 = 0b11000000, ModeReady und RxReady gesetzt. //Abfrage des
in „RFM69HW - Arduino Uno“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Fehlerbericht.txt
not declared in this scope f.write( ((uint8_t *)&UserVar[event->BaseVarIndex] + 0), 16 ); ^ _P168_ThermOLED:469:48: error: invalid use of incomplete type 'struct EventStruct' f.write( ((uint8_t *)&UserVar[event->BaseVarIndex] + 0), 16 ); ^ _P168_ThermOLED:117:42: error
in „ESPEasy Sketch Kompilierungsfehler“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PseudoKunstkopfStereo.pdf
,x:SSISR,* ; Wait for frame sync to pass. jclr #2,x:SSISR,* ; Wait for frame sync. move x:RX_BUFF_BASE,a ; Load the left channel input. move x:RX_BUFF_BASE+1,b ; Load the right channel input. jclr #14,X:$FFE4,skip_it jsr binaural ; ... do the binaural filtering skip_it move a,x:TX_BUFF_BASE ; Put value
in „Pseudo Kunstkopf Stereo mit DSP56002, alte Motorola Applikation“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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PDF
DS_SX1261-2_V1.1-1307803.pdf
transmission or from the last packet reception. 7.1 Principle of Operation 0xFF USER TRANSCEIVER txBaseAddress + txPayloadLength TxBufferPointer Transmitted WriteBuffer() Payload SetBufferBaseAddress() rxBaseAddress + rxPayloadLength GetRxBufferStatus() Received Payload SetBufferBaseAddress() RxStartBufferPointer
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PDF
PIC_32_MX_110_F_016_-_I-SO__11-2-3___SO_28_.pdf
Technology Inc. DS60001168F-page 75 PIC32MX1XX/2XX REGISTER 4-4: BMXDUPBA: DATA RAM USER PROGRAM BASE ADDRESS REGISTER Bit Bit Bit Bit Bit Bit Bit Bit Bit Range 31/23/15/7 30/22/14/6 29/21/13/5 28/20/12/4 27/19/11/3 26/18/10/2 25/17/9/1 24/16/8/0 U-0 U-0 U-0 U-0 U-0 U-0 U-0 U-0 31:24 — — — — — — — —
in „pic32 flash und i/o speed“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PIC_32M_X_220_F_032_B-50I-SP_____DIP_28_.pdf
Technology Inc. DS60001168F-page 75 PIC32MX1XX/2XX REGISTER 4-4: BMXDUPBA: DATA RAM USER PROGRAM BASE ADDRESS REGISTER Bit Bit Bit Bit Bit Bit Bit Bit Bit Range 31/23/15/7 30/22/14/6 29/21/13/5 28/20/12/4 27/19/11/3 26/18/10/2 25/17/9/1 24/16/8/0 U-0 U-0 U-0 U-0 U-0 U-0 U-0 U-0 31:24 — — — — — — — —
in „PIC32MX flash access time“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Firmware_buglist_2.06.3.pdf
crashing and not responding anymore. 2. Apply test signal, do auto setup to trigger properly. Set time base to 4ns/DIV, change Acquisition mode from “Real Time” to “Equ Time”, hide menu by pushing F0, turn time base knob from 4ns/DIV to 2ns/DIV and DSO is crashing and not responding anymore. This bug seems
in „TEKWAY DST1xx2B Oszilloskop“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Firmware_buglist_2.06.3.pdf
crashing and not responding anymore. 2. Apply test signal, do auto setup to trigger properly. Set time base to 4ns/DIV, change Acquisition mode from “Real Time” to “Equ Time”, hide menu by pushing F0, turn time base knob from 4ns/DIV to 2ns/DIV and DSO is crashing and not responding anymore. This bug seems
in „TEKWAY DST1xx2B Oszilloskop“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2N3442_Audiopower_NPN.PDF
MAXIMUM RATINGS (Note 1) Rating Symbol Value Unit Collector−Emitter Voltage V 140 Vdc CEO Collector−Base Voltage VCB 160 Vdc Emitter−Base Voltage VEB 7.0 Vdc Collector Current− Continuous C 10 Adc − Peak 15 TO−204AA (TO−3) CASE 1−07 Base Current − Continuous B 7.0 Adc − Peak − STYLE 1 Total Device Dissipation
in „BJT-2N3442 von ON -ist der echt ?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
f14a8yd_series.pdf
HOW TO CHECK THE WATER LEVEL FREQUENCY ............................................................ 21 7-4.HOWTOCHECKTHETEMPERATUREOFEACHTHERMISTORATOPERATINGCONDITION ...... 21 7-5.ERROR DISPLAY ..........................................................................................................
in „Schaltplan gesucht/ Widerstand bestimmen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
1_AMD_BKDG_Family__15h_Mod_00h-0Fh_BKDG.pdf
. 2.For each enabled chip select, swap the corresponding BaseAddr[38:27] bits with the BaseAddr[21:13] bits as defined in Table 111. 3.For each enabled chip select, swap the corresponding AddrMask[38:27] bits with the AddrMask[21:13] bits as defined in Table 111
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PDF
ADUC7019_7020_7021_7022_7024_7025_7026_7027_7028.pdf
2 W 0x0000 53 0x0414 PLLCON 1 R/W 0x21 53 0x0418 PLLKEY2 2 W 0x0000 53 PSM Address Base = 0xFFFF0440 0x0440 PSMCON 2 R/W 0x0008 50 0x0444 CMPCON 2 R/W 0x0000 51 Rev. B | Page 35 of 92 ADuC7019/20/21/22/24/25/26/27/28 Access Default Access
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PDF
LC72130.pdf
zone mode 0 0 DZA 0 1 DZB (8) 1 0 DZC 1 1 DZD Dead zone widths: DZA < DZB < DZC < DZD Clock time base Setting TBC to one causes an 8 Hz, 40% duty clock time base signal to be output (9) BO1 TBC from the BO1 pin. (BO1 data is invalid in this mode.) Charge pump control data• Forcibly controls the charge
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Datei
sd_card.c
************** uint8_t load_waveform(void) { // set baseaddress to sram hugemem_ptr_t p; uint32_t base = BOARD_EBI_SRAM_BASE; // 0x800000UL uint_fast8_t data = 0; uint32_t offset = 0x00000; p=(hugemem_ptr_t)((uint32_t)base + offset); uint8_t sample; // load waveform uint16_t i; for (i = 0; i <= 0xFF;
in „MMC SD library FAT16 FAT32 read write“ · Projekte & Code ·
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Datei
Timer.h
TEMPLATE() ?? //#include <clock.h> // //#include <data_transfer.h> // TransferCallback ?? #include <avr/baseTimerD.h> // Timer0/2 #include <avr/baseTimerH.h> // Timer1/3(*) namespace Mcucpp { namespace Timers { //~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ struct Timer0Regs { //**********************
in „Knoten im Kopf, Klassen und Vererbung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HA-2540.pdf
R 13 R 24 V- QP5 QP25 C 1 C 2 R22 V- Q RC2 N2 QN1 QN7 QN9 R6 R7 Q + INPUT P8 R18 OUTPUT Q R P23 QN21 R8 9 R19 Q N10 QP3 QP4 Q P11 - INPUT R21 V+ Z1 QN25 QN12 R25 V+ R 10 Q N20 Q R16 Q N15 N13 D Z1 QN14 Q N16 D Z2 R11 R QN29 R R R 12 14 15 17 V- Typical Applications V+ 2K R1 4K 200 C 1NOTE 18) 10K -
in „HA-2540 Operationsverstärker wird warm“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
as6c4008.pdf
Vcc 8 25 DQ3 A3 9 4 24 OE# A18 9 24 Vss 0 A16 10 AS6C4008 23 DQ2 A2 10 0 23 A10 A14 11 22 DQ1 A12 12 21 DQ0 A1 11 8 22 CE# A7 13 20 A0 A6 14 19 A1 A0 12 21 DQ7 A5 15 18 A2 A4 16 17 A3 DQ0 13 20 DQ6 DQ1 14 19 DQ5 TSOP-I/STSOP DQ2 15 18 DQ4 Vss 16 17 DQ3 SOP/ P-DIP A18 1 32 VCC A16 2 31 A15 A14 3 30 A17
in „AS6C4008 ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ddr_init.vhd
downto 0) := "01"; ----------------------------------------------------------------------------- -- Base Mode Rgister -- ----------------------------------------------------------------------------- -- Operating modes. constant OP_NORMAL : std_logic_vector(5 downto 0) := "000000"; constant OP_DLL_RST :
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PDF
Preisliste_deutsch_0509_2.pdf
JetMove 600 - Zubehör Motorstecker SR6-X9 Gegenstecker zu JM-6xx Motor/Bremse-Anschluss 60854702 30,00 BAS 2000-15 Externer Bremswiderstand für JM-640 auf Anfrage 2000 Watt, 15 Ohm BAS 3000-15 Externer Bremswiderstand für JM-640 auf Anfrage 3000 Watt, 15 Ohm BAS 6000-15 Externer Bremswiderstand für JM-640 auf Anfrage 6000 Watt, 15 Ohm BAS 2000-10 Externer Bremswiderstand für JM-670 auf Anfrage 2000 Watt, 10 Ohm BAS 3000-10 Externer Bremswiderstand für JM-670 auf Anfrage 3000 Watt, 10 Ohm BAS 6000-10 Externer Bremswiderstand für JM-670
in „Siemens Logo“ · Haus & Smart Home ·
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PDF
2.8_HW240320F-2D-0B-L1-T4.pdf
15 Y- TP Y- 16 LEDA LED 3V 17 KEDK1 LED1 GND 18 LEDK2 LED2 GND 19 LEDK3 LED3 GND 20 LEDK4 LED4 GND 21 GND Internal logic GND: GND=0V. 22 DB4 Data Bas Line 23-30 DB10-DB17 Data Bas Line 31 /RESET Reset pin. This is an active low signal. Power supply to the crystal power supply anglog circuit. Connect
in „[V]erkaufe TFT 2.8" und TFT 2.4" mit adapter PCB“ · Markt ·
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PDF
NCP5104-D.PDF
COLLECTOR, #2 3. DRAIN, #2 3. ANODE 4. EMITTER 4. COLLECTOR, #2 4. DRAIN, #2 4. ANODE 5. EMITTER 5. BASE, #2 5. GATE, #2 5. ANODE 6. BASE 6. EMITTER, #2 6. SOURCE, #2 6. ANODE 7. BASE 7. BASE, #1 7. GATE, #1 7. ANODE 8. EMITTER 8. EMITTER, #1 8. SOURCE, #1 8. COMMON CATHODE STYLE 5: STYLE 6: STYLE 7: STYLE
in „Suche SMD Bauteil“ · Analoge Elektronik und Schaltungstechnik ·
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Techniques_for_Robust_Touch_Sensing_Design_AN1334.pdf
AN1334 Techniques for Robust Touch Sensing Design Author: Burke Davison In Figure 1, C BASE is the capacitance value when no object is over the pad. This is referred to as the Microchip Technology Inc. sensor’s base capacitance. C is the capacitance F change caused by a finger touch, and C
in „Wie realisiert man Sensortasten?“ · Analoge Elektronik und Schaltungstechnik ·
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sevs_rech_CPUZ.txt
--------------------------------------------------------------------- Register space PCI Express, base address = 0x0F0000000 Description Host Bridge Location bus 0 (0x00), device 0 (0x00), function 0 (0x00) Common header Vendor ID 0x1022 Model ID 0x1410 Revision ID 0x00 PI 0x00 SubClass 0x00 BaseClass
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