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grasshopper_schematic.pdf
6 5 [1] PA00 K2 PA00(SPIO-MISO/SSC1-RX_FRAME_SYNC) PC00(MACB0-COL/AUX2-MSEO0) T14 ETH_COL[4] [1] PA02 8 7 A [1] PA01 PA01(SPIO-MOSI/SSC1-TX_FRAME_SYNC) PC01(MACB0-CRS/AUX2-MSEO1) ETH_CRS[4] [1] PA03 A [1] PA02 K3 PA02(SPIO-SCK/SSC1-TX_CLOCK) PC02(MACB0-TX_ER/AUX2-MCKO) P14 ETH_TX_ER[4] [1] PA04 10 9
in „Grasshopper Inbetriebnahme“ · Mikrocontroller und Digitale Elektronik ·
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PDF
R32C-152_Users_Manual.pdf
occurs when the MCU detects a main clock oscillator stop. Refer to 7.2 “Oscillator Stop Detection” for details. (4) Low Voltage Detection Interrupt This interrupt occurs when a low voltage input to VCC is detected by the voltage detector. Refer to 6.2 “Low Voltage
in „Keine UART Programmierung bei R32C möglich“ · Mikrocontroller und Digitale Elektronik ·
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PDF
avr443.pdf
a BLDC motor with Hall sensors. Driver Stage Commutation Control Hall Sensor input Rev. 2596B-AVR-02/06 2 Theory of operation Control of a BLDC motor with position sensors can be implemented on sufficiently powerful microcontroller featuring basic hardware peripherals such as Analog to Digital Converter
in „Verstädnisfrage zu einer MOSFET Schaltung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TL783.pdf
SEPTEMBER 1981 – REVISED APRIL 1997 functional block diagram V I IN Error V ⌠ V ǒ1 ) R2Ǔ Amplifier O ref R1 – + VO OUT Protection Circuit V R1 ref ADJ R2 absolute maximum ratings over operating temperature range (unless otherwise noted) † Input-to-output differential voltage,lV – O . . . . . . . . . .
in „LM337 mit Zenerdiode hochlegen ?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
pt2322.pdf
State. The HIGH and LOW States of the SDA Line can only change when the SCL signal is LOW. Please refer to the figure below. DATA CLK DATA DATA LINE CHANGE DATA VALID ALLOWED START AND STOP CONDITIONS A Start Condition is activated when 1. the SCL is set to HIGH and 2. SDA shifts from HIGH to LOW State
in „5.1 Verstärker bauen (paar Fragen und Bauteilalternativen)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
pt2322.pdf
State. The HIGH and LOW States of the SDA Line can only change when the SCL signal is LOW. Please refer to the figure below. DATA CLK DATA DATA LINE CHANGE DATA VALID ALLOWED START AND STOP CONDITIONS A Start Condition is activated when 1. the SCL is set to HIGH and 2. SDA shifts from HIGH to LOW State
in „DIY 5.1 Verstärker“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
PT2322-s.pdf
State. The HIGH and LOW States of the SDA Line can only change when the SCL signal is LOW. Please refer to the figure below. DATA CLK DATA DATA LINE CHANGE DATA VALID ALLOWED START AND STOP CONDITIONS A Start Condition is activated when 1. the SCL is set to HIGH and 2. SDA shifts from HIGH to LOW State
in „Atmega 328 / PT2322 / 5532 Rauschen und I2C Fiepen.“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
pt2322.pdf
State. The HIGH and LOW States of the SDA Line can only change when the SCL signal is LOW. Please refer to the figure below. DATA CLK DATA DATA LINE CHANGE DATA VALID ALLOWED START AND STOP CONDITIONS A Start Condition is activated when 1. the SCL is set to HIGH and 2. SDA shifts from HIGH to LOW State
in „Atmega 328 / PT2322 / 5532 Rauschen und I2C Fiepen.“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TDA8425.PDF
SHEET TDA8425 Hi-fi stereo audio processor; 2 I C-bus October 1988 File under Integrated Circuits, IC02 Philips Semiconductors Product specification Hi-fi stereo audio processor; I C-bus 2 TDA8425 GENERAL DESCRIPTION The TDA8425 is a monolithic bipolar integrated stereo sound circuit with a loudspeaker channel
in „Eingangsspannung beim TDA8425“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TDA8425.pdf
SHEET TDA8425 Hi-fi stereo audio processor; 2 I C-bus October 1988 File under Integrated Circuits, IC02 Philips Semiconductors Product specification Hi-fi stereo audio processor; I C-bus 2 TDA8425 GENERAL DESCRIPTION The TDA8425 is a monolithic bipolar integrated stereo sound circuit with a loudspeaker channel
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PDF
HDLx-2416.pdf
inch) Smart 5×7 Alphanumeric DisplaysPackage Dimensions Package Dimensions 25.15 0.38 (0.990) (0.015)REF. 3.05 (0.120) 6.35 0.25±0.13 TYP. (0.250)TYP. (0.010±0.005) 10.03 (0.395) 5.08 10.16 REF. 15.24 (0.200) (0.400) (0.600) 20.07 (0.790) IMAGEPLANE PIN1IDENTIFIER 3.43 1.52 2.41 (0.060)REF. (0.095) (0.135
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Datei
iom16.h
TWI Was I2C(tm)" */ #define TWBR _SFR_IO8(0x00) #define TWSR _SFR_IO8(0x01) #define TWAR _SFR_IO8(0x02) #define TWDR _SFR_IO8(0x03) /* ADC */ #define ADCW _SFR_IO16(0x04) #define ADCL _SFR_IO8(0x04) #define ADCH _SFR_IO8(0x05) #define ADCSR _SFR_IO8(0x06) #define ADCSRA _SFR_IO8(0x06) #define ADMUX _SFR_IO8
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Datei
iom8535v.h
define ADPS2 2 #define ADPS1 1 #define ADPS0 0 #define ADMUX (*(volatile unsigned char *)0x27) #define REFS1 7 #define REFS0 6 #define ADLAR 5 #define MUX4 4 #define MUX3 3 #define MUX2 2 #define MUX1 1 #define MUX0 0 /* Analog Comparator */ #define ACSR (*(volatile unsigned char *)0x28) #define ACD 7 #define
in „kleines C-Problem“ · Mikrocontroller und Digitale Elektronik ·
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Datei
atm324p.c
receiver board */ void IOInitGen( void) { //data direction registers DDRA = 0x7F; //channel selection CDP-02 DDRB = 0x0; DDRC = 0x0; DDRD = TYP_SW_1 | TYP_SW_2_3; PORTA = 0; PORTB = 0xFF; //Switch-Port pull up enable PORTC = 0; PORTD = TYP_SW_1 | TYP_SW_2_3; } /* * IO init for transmitter board */ void IOInitTX
in „ATMEGA324P über die ISP Schnittstelle“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Temp_Host.c
betätigten Taster TCCR2= 1<<WGM21; OCR2= 0x30; TIMSK|= 1<<TOIE2 | 1<<OCIE2; // ADC konfigurieren ADMUX= 1<<REFS1 | 1<<REFS0 | 0<<ADLAR | 1<<MUX2 | 1<<MUX1 | 1<<MUX0; ADCSRA= 1<<ADEN | 1<<ADSC | 1<<ADPS2; // Timer starten TCCR1B|= 1<<CS10; // Teiler 1 TCCR2|= 1<<CS22 | 1<<CS21 | 1<<CS20; // Teiler 32 TCCR0= 0<<CS02 | 1<<CS01 | 0<<CS00; // Teiler 8 @8MHz = 3,9kHz / 8 = 500Hz sei(); // TWTakt einstellen (12: 8MHz=200kHz, 16MHz=400kHz) TWBR=24; TWSR=0; TWAR=0xF0; // Endlosschleife while(1) { // Sleepmodi? } } // Ziffer
in „C, Variable 0xFF wird als !=0xFF erkannt?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DW01-P_DataSheet_V10.pdf
Charger Detection Threshold Voltage VCHA -1.2 -0.7 -0.2 V OD Pin Output “H” Voltage VDH VCC -0.1 CC -0.02 V OD Pin Output “L” Voltage VDL 0. 1 0.5 V OC Pin Output “H” Voltage VCH VCC -0.1 CC -0.02 V OC Pin Output “L” Voltage VCL 0.1 0.5 V Fortune Semiconductor CoTEL: +886-2-2809-4742 5/11 DW01-P-DS-10_EN
in „TP4056 Parallel?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
irl3705n.pdf
based on maximum allowable junction temperature; for recommended current-handling of the package refer to Design Tip # 93-4 IRL3705N 1000 VGS 1000 VGS TOP 15V TOP 15V 12V 12V ) 10V ) 10V ( 6.0V ( 6.0V t 4.0V t 4.0V n 3.0V n 3.0V r BOTTOM 2.5V r BOTTOM 2.5V u 100 u 100 C C e e r r u u o o - - t t - -
in „Ventilansteuerung mit Mosfet - Temperatur?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DW01-P_DataSheet_V10.pdf
Charger Detection Threshold Voltage VCHA -1.2 -0.7 -0.2 V OD Pin Output “H” Voltage VDH VCC -0.1 CC -0.02 V OD Pin Output “L” Voltage VDL 0. 1 0.5 V OC Pin Output “H” Voltage VCH VCC -0.1 CC -0.02 V OC Pin Output “L” Voltage VCL 0.1 0.5 V Fortune Semiconductor CoTEL: +886-2-2809-4742 5/11 DW01-P-DS-10_EN
in „Solarlampe (China) Spannungsbegrenzung hinzufügen.“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
telos-revb-2004-09-27.pdf
P6.5/A5 P5.1/SIMO1 45 RESET X0 EXPANSION 1 2 DNG DAC0 ADC6 5 P6.6/A6/DAC0 P5.0/STE1 44 U2 3 2 EVQ-P2K02Q SVSin ADC7 6 P6.7/A7/DAC1/SVSIN P4.7/TBCLK 43 FLASH_HOLD AVCC 1 1 2 2 UART0RX 1 7 42 RADIO_RESET ADC0 3 4 UART0TX DVCC C 32kHz Vref+ P4.6/TB6 3 4 C 8 41 ADC1 5 6 I2C_SCL R4 R5 XIN MCU P4.5/TB5 RADIO_VREF_EN
in „Mic Amp an 2.4GHz Sender - Störung“ · HF, Funk und Felder ·
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PDF
DW01-P_DataSheet_V10.pdf
Charger Detection Threshold Voltage VCHA -1.2 -0.7 -0.2 V OD Pin Output “H” Voltage VDH VCC -0.1 CC -0.02 V OD Pin Output “L” Voltage VDL 0. 1 0.5 V OC Pin Output “H” Voltage VCH VCC -0.1 CC -0.02 V OC Pin Output “L” Voltage VCL 0.1 0.5 V Fortune Semiconductor CoTEL: +886-2-2809-4742 5/11 DW01-P-DS-10_EN
in „Frage zu 5V-Mini-USB-1A-Lithium-Li-ion-Akku-Lademodul“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DW01-P_DataSheet_V10.pdf
Charger Detection Threshold Voltage VCHA -1.2 -0.7 -0.2 V OD Pin Output “H” Voltage VDH VCC -0.1 CC -0.02 V OD Pin Output “L” Voltage VDL 0. 1 0.5 V OC Pin Output “H” Voltage VCH VCC -0.1 CC -0.02 V OC Pin Output “L” Voltage VCL 0.1 0.5 V Fortune Semiconductor CoTEL: +886-2-2809-4742 5/11 DW01-P-DS-10_EN
in „batteriebetriebener ESP32 --- Batterieschutzschaltung?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DW01-P.pdf
Charger Detection Threshold Voltage VCHA -1.2 -0.7 -0.2 V OD Pin Output “H” Voltage VDH VCC -0.1 CC -0.02 V OD Pin Output “L” Voltage VDL 0. 1 0.5 V OC Pin Output “H” Voltage VCH VCC -0.1 CC -0.02 V OC Pin Output “L” Voltage VCL 0.1 0.5 V Fortune Semiconductor CoTEL: +886-2-2809-4742 5/11 DW01-P-DS-10_EN
in „Frage zu Li-Ion Akku mit TP4056 laden“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DW01-P_DataSheet_V10.pdf
Charger Detection Threshold Voltage VCHA -1.2 -0.7 -0.2 V OD Pin Output “H” Voltage VDH VCC -0.1 CC -0.02 V OD Pin Output “L” Voltage VDL 0. 1 0.5 V OC Pin Output “H” Voltage VCH VCC -0.1 CC -0.02 V OC Pin Output “L” Voltage VCL 0.1 0.5 V Fortune Semiconductor CoTEL: +886-2-2809-4742 5/11 DW01-P-DS-10_EN
in „Erstes Board - Feedback willkommen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DW01-P.pdf
Charger Detection Threshold Voltage VCHA -1.2 -0.7 -0.2 V OD Pin Output “H” Voltage VDH VCC -0.1 CC -0.02 V OD Pin Output “L” Voltage VDL 0. 1 0.5 V OC Pin Output “H” Voltage VCH VCC -0.1 CC -0.02 V OC Pin Output “L” Voltage VCL 0.1 0.5 V Fortune Semiconductor CoTEL: +886-2-2809-4742 5/11 DW01-P-DS-10_EN
in „RDSon zur Strombegrenzung nutzen?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AD9954__DDS_.pdf
layout. Rev. 0 | Page 9 of 36 AD9954 TYPICAL PERFORMANCE CHARACTERISTICS MKR1 98.0MHz MKR1 80.0MHz REF 0dBm ATTEN 10dB –70.68dB REF 0dBm ATTEN 10dB –61.55dB PEA K 0 PEA K 0 LOG 1R LOG 1R 10dB/ –10 10dB/ –10 –20 –20 –30 –30 –40 MARKER –40 MARKER 100.000000MHz 80.000000MHz –50 –70.68dB –50 –61.55dB –60
in „DDS-Funktionsgenerator“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Interfacing_3V_Dataflash_Ap_Note.pdf
register a logic 1, and the V ILrequirement of a TTL-compatible input is 0.8V to register a logic 0. Refer to the manufacturers datasheet to ensure full compliance with the input and output logic level requirements. CMOS Logic Levels The minimum V IHrequirement for a CMOS-compatible input is 0.7 x V CC
in „chip fehlt :(“ · Mikrocontroller und Digitale Elektronik ·
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PDF
e2928_a8v-vm_se.pdf
contents of the support CD that comes with the motherboard package. Where to find more information Refer to the following sources for additional information and for product and software updates. 1. ASUS websites The ASUS website provides updated information on ASUS hardware and software products. Refer
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PDF
nightsky_arx15.pdf
DDR_VREFCA_CHB_DIMM DQS7_C 95 M_B_DQS#7 3 162 DQS8_C VDDQ 165 S2*/C0 C1164 S3*/C1 C1163 R403 1K_1%_04 *0.1u_6.3V_X5R_02 D4AR0-26001-1P80 0.47u_4V_X6S_02 C1139 C1120 C1118 C1117 C1130 C1123 C1136 C1127 ddr4_260p_rvs_h92_d4arx NV_0201_LARGE A 1u_6.3V_X5R_02 1u_6.3V_X5R_02 1u_6.3V_X5R_02 1u_6.3V_X5R_02 1u_6.3V_X5R_02 1u_
in „SMD TGAJ TVS Diode USB“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LOG_RATIO_-_log102.pdf
8 2 used, the value may be large depending on I REF. If REF is 10nA and +2.5V is used: CC Amplifier4Aot being used. R REF = 2.5V/10nA = 250MΩ 1000pF 10µF V– Unused amplifiers should I have positive inputs grounded REF 2N2905 and negative inputs tied to their respective outputs. R REF 2N2905 3.6kΩ FIGURE 1. Basic Connections with Output Gain Factor of the +15V –15V 6V LOG102. IN834 I = 6V REF RREF INPUT CURRENT RANGE FIGURE 3. Temperature Compensated Current Source. To maintain specified
in „Logarithmic and log ratio amplifier“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
A501_LA_LR_LY_W5AM.pdf
A t P IF 2.4 D =TP F IF 2.4 D = P IF T T T 2.2 2.2 2.0 2.0 D = D = 0.005 0.005 1.8 0.01 1.8 0.01 0.02 0.02 1.6 0.05 1.6 0.05 0.1 0.1 1.4 0.2 1.4 0.2 0.5 0.5 1 1 1.2 1.2 1.0 1.0 0.8 -5 -4 -3 -2 -1 0 1 2 0.8 -5 -4 -3 -2 -1 0 1 2 10 10 10 10 10 10 10 s10 10 10 10 10 10 10 10 s10 p tp 2010-06-02 12 Released
in „2 x LED und Lüfterschaltung 12V“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
EKF.pdf
the filter 0.06 0.08 ω brad/s] 100 0.04 itself. In order to achieve a full comparison, these 0 0 0.02 q constraints are included in the floating point Fig. 8. Steady state estimation error with: simulations. Np= 480,Tsc= 150µ ω ref10 rpm,r= 1. Simulation results Fig. 8 shows the steady state estimation
in „Problem mit Kalman-Filter“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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PDF
ABG128064A23-BIW-R.pdf
0.48mm(W) 2.5. Weight : Approx. 3. BLOCK DIAGRAM VSS COM 01 LCD Panel 128X64 VDD VDD(+5.0V) POWER COM 02 G G G V0D CIRCUIT 0 0 1 VEE VEE 1 COM 64 1 2 8 v r LCD VR(0~20K) D 5 Seg Driver1Seg Driver2 V0 VEE o MODULE C VSS VSS RS,R/W 4 E,RST LEDA CS1 80mA LEDK CS2 (Refer Voltage:5.0V) DB0~DB7 8 Figure 1. Block
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PDF
sm6t.pdf
(typical values) junction to ambient versus pulse duration I (A) Zth (j-a)/Rth (j-a) FM 1.00 1.0E+02 Recommended pad layout Printed circuit board FR4, copper thickness = 35 µm 1.0E+01 Tj=125 °C Tj=25 °C 0.10 1.0E+00 1.0E-01 tp s VFMV) 0.01 1.0E-02 0.0 0.5 1.0 1.5 2.0 2.5 3.0 1.0E-03 1.0E-02 1.0E-01 1.0E+00 1.0E+01 1.0E+02 1.0E+03 Figure 10: Thermal resistance junction to ambient Figure 11: Leakage current versus junction versus copper surface under each lead temperature (typical values) R th(j-a)W) I (nA) 1.E+03 R 110
in „SMD Diode unbekannte Kennzeichnung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Datasheet__ICM-20948_.pdf
the I2C_SLV(0-4)_ADDR, I2C_SLV(0-4)_REG, and I2C_SLV(0- 4)_CTRL registers. 8.34 EXT_SLV_SENS_DATA_02 Name: EXT_SLV_SENS_DATA_02 Address: 61 (3Dh) Type: USR0 Bank: 0 Serial IF: R Reset Value: 0x00 BIT NAME FUNCTION 7:0 EXT_SLV_SENS_DATA_02[7:0] Sensor data read from external I C devices via the I C master
in „20948 I2C <-> SPI?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tsc2046.pdf
sheet for more details. source to the converter is a function of conversion rate. +V V PENIRQ IOVDD CC REF Level TEMP1 TEMP0 50k Shifter or 90kΩ Logic A2− A0 SER/DFR (Shown 001 ) (Shown Low) B X+ X− Ref On/Off Y+ +IN +REF Y− ADC 2.5V −IN −REF Reference 7.5kΩ VBAT 2.5k Battery AUX On GND Figure 2. Simplified
in „Touch Display Hong Kong“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Assembler.s
importObject avr.MainStd.Waitms .importObject avr.MainStd.MethodeFinish _data: cVar_str0022: .db 0x02,"So",0x00 cVar_str0024: .db 0x02,"Mo",0x00 cVar_str0026: .db 0x02,"Di",0x00 cVar_str0028: .db 0x02,"Mi",0x00 cVar_str002A: .db 0x02,"Do",0x00 cVar_str002C: .db 0x02,"Fr",0x00 cVar_str002D: .db 0x02,"Sa",0x00 cVar_str002F: .db 0x01," " cVar_str0030: .db 0x05," " cVar_str0033: .db 0x02,"00",0x00 cVar_str0034: .db 0x03,"+00" cVar_str0035: .db 0x01,&h3A cVar_str0036: .db 0x02,&h27,"C",0x00 cVar_str0039: .db 0x02,", ",0x00 cVar_str003A: .db 0x01,"." cVar_str003B: .db 0x02,". ",0x00 .eseg
in „ISR macht Newbie fertig :P“ · Mikrocontroller und Digitale Elektronik ·
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Datei
tn15def.inc
ISC01 =1 .equ ISC00 =0 ; MCUSR .equ WDRF =3 .equ BORF =2 .equ EXTRF =1 .equ PORF =0 ; TCCR0 .equ CS02 =2 .equ CS01 =1 .equ CS00 =0 ; TCCR1 .equ CTC1 =7 .equ PWM1 =6 .equ COM1A1 =5 .equ COM1A0 =4 .equ CS13 =3 .equ CS12 =2 .equ CS11 =1 .equ CS10 =0 ; WDTCR .equ WDTOE =4 .equ WDE =3 .equ WDP2 =2 .equ WDP1
in „tn15def.inc????????“ · Mikrocontroller und Digitale Elektronik ·
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Datei
tn15def.inc
ISC01 =1 .equ ISC00 =0 ; MCUSR .equ WDRF =3 .equ BORF =2 .equ EXTRF =1 .equ PORF =0 ; TCCR0 .equ CS02 =2 .equ CS01 =1 .equ CS00 =0 ; TCCR1 .equ CTC1 =7 .equ PWM1 =6 .equ COM1A1 =5 .equ COM1A0 =4 .equ CS13 =3 .equ CS12 =2 .equ CS11 =1 .equ CS10 =0 ; WDTCR .equ WDTOE =4 .equ WDE =3 .equ WDP2 =2 .equ WDP1
in „Probleme mit AVR-Studio4.12“ · Mikrocontroller und Digitale Elektronik ·
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Datei
led_fade.asm
; on the PIC16F628A. This file contains the basic code * ; building blocks to build upon. * ; * ; Refer to the MPASM User's Guide for additional information on * ; features of the assembler (Document DS33014). * ; * ; Refer to the respective PIC data sheet for additional * ; information on the instruction
in „LEDs an PIC ausglimmen lassen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
1789204.pdf
MCP1401/02 Tiny 500 mA, High-Speed Power MOSFET Driver Features General Description • High Peak Output Current: 500 mA (typical) The MCP1401/02 are high-speed MOSFET drivers • Wide Input Supply Voltage Operating
in „Low Side MOSFET Treiber als Pegelwandler“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Data_Schottky___HF_Dioden.pdf
0.6 pF 323 62-03W Forward current max 40 mA case Forward voltage 0.43 V @ 1 mA SCD80 BAT SOD523 62-02W Series inductance to ground 2 nH 03W -- 0.6nH 02W R.F. elettronica di Rota Fwww.rfmicrowave.it info@rfmicrowave.it tel ++39.02.99 48 75 15fax ++39.02.99 48 92 76 continue , SMD SCHOTTKY DIODES ( HOT
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PDF
mc68hc11a1.pdf
DDRA7 — Data Direction for Port A Bit 7 0 = Input 1 = Output PAEN — Pulse Accumulator System Enable Refer to 9 Pulse Accumulator. PAMOD — Pulse Accumulator Mode Refer to 9 Pulse Accumulator. PEDGE — Pulse Accumulator Edge Control Refer to 9 Pulse Accumulator. RTR1, RTR0 — Real-Time Interrupt Rate Refer
in „mc68hc11a1fn-uC-8bit“ · Markt ·
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PDF
w25q32fv_revh_091613.pdf
ZP) Millimeters Inches Symbol Min Nom Max Min Nom Max A 0.70 0.75 0.80 0.028 0.030 0.031 A1 0.00 0.02 0.05 0.000 0.001 0.002 b 0.35 0.40 0.48 0.014 0.016 0.019 C --- 0.20 REF --- --- 0.008 REF --- D 5.90 6.00 6.10 0.232 0.236 0.240 D2 3.35 3.40 3.45 0.132 0.134 0.136 E 4.90 5.00 5.10 0.193 0.197 0.201
in „micro SDHC Breakout“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AN040_Comparison_of_simple_LED_circuits_for_low_power_LEDs.pdf
integrated solution. For more information on operating LEDs with pulse width modulation (PWM), please refer to Application Note: “Dimming InGaN LEDs ”. Figure 4: LED circuit with constant power source V CC constant power source D D 1 n D6 D n+5 2020-06-02 | Document No.: AN040 4 / 13 www.osram-os.com In
in „LED-Taschenlampe "cree" XHP70.2“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Comparison_of_simple_LED_circuits_for_low_power_LEDs.pdf
integrated solution. For more information on operating LEDs with pulse width modulation (PWM), please refer to Application Note: “Dimming InGaN LEDs ”. Figure 4: LED circuit with constant power source V CC constant power source D D 1 n D6 D n+5 2020-06-02 | Document No.: AN040 4 / 13 www.osram-os.com In
in „led-tech.de: Wieso parallel verschaltete LEDs?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AN040_Comparison_of_simple_LED_circuits_for_low_power_LEDs.pdf
integrated solution. For more information on operating LEDs with pulse width modulation (PWM), please refer to Application Note: “Dimming InGaN LEDs ”. Figure 4: LED circuit with constant power source V CC constant power source D D 1 n D6 D n+5 2020-06-02 | Document No.: AN040 4 / 13 www.osram-os.com In
in „LED Gesamtstrom stimmt irgendwie nicht“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
tn461def.inc
;***** THIS IS A MACHINE GENERATED FILE - DO NOT EDIT ******************** ;***** Created: 2007-02-28 07:32 ******* Source: ATtiny461.xml *********** ;************************************************************************* ;* A P P L I C A T I O N N O T E F O R T H E A V R F A M I L Y ;* ;* Number
in „tn461def.inc : woher, schnell und einfach“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ad7328.pdf
first code transition (10 … 000) to (10 … 001) from the ideal Integral Nonlinearity (that is, −4 × REF+ 1 LSB, −2 × V REF+ 1 LSB, −V REF+ 1 LSB) This is the maximum deviation from a straight line passing after adjusting for the bipolar zero code error. through the endpoints of the ADC transfer function
in „was bringt ADC mit Sequencer (AD7328)?“ · Mikrocontroller und Digitale Elektronik ·
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Last_board_mixed.pdf
1) 1 2 3 4 5 6 C V A VCC A 2 1 1 2 2 4 . +8V F 1 3 0 1 T U t - D 2 o R401 R402 5 K401 P Q401 5 VIN-REF 3 O R403 IXFB210N30P3 , t 1 kOhm 0Ohm 1 G 1 0 t 4 10Ohm S 3 0 n C401 2 OPA735AIDBVT 1 b B 5 0 B 100pF np 0 5 SHUNT-FEEDBACK IC402 0 o V 1 8 3 = g N P 2 IN- IN+ 7 3 * u G 5 O 3 GND REF1 6 + 2 1 R r A
in „Schaltplankontrolle Last- + HMI-Board“ · Mikrocontroller und Digitale Elektronik ·
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SR0604100MSB.PDF
Glazing terminalpatent TaiwanG #140137 / #101212 USA¡G #US6197434 B1 ChinaG #ZL992011361 Series A B C ¡]ref. D^ ref. ¡ E ^ ref. ¡ F^ ref.^ ¡ ] SR0602 5.60 0.2 2.50 ¡0.3 2.30 5.80 6.00 1.70 ¡Ó ¡Ó SR0603 5.60 0.2 3.70 0.3 2.30 5.80 6.00 1.70 SR0604 5.60 0.2 4.50 ¡0.3 2.30 5.80 6.00 1.70 0.3 ¡0.3 SR0805 7.50
in „Pollin SMD-Induktivitäten identifizieren“ · Analoge Elektronik und Schaltungstechnik ·