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lm75.c
enum position {in = 0x91, out = 0x93}; signed int Read_temp(position pos) { byte a, b; int data = 0; i2c_start(); i2c_write(pos); a = i2c_read(1); b = i2c_read(0); i2c_stop(); if (bit_test(a, 7)) { data = ~a; data++; return (-data); } else { data = a; } return data; }
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Datei
lm75.c
functions #asm .equ __i2c_port=0x18 .equ __sda_bit=1 .equ __scl_bit=0 #endasm #include <i2c.h> // LM75 Temperature Sensor functions #include <lm75.h> // Declare your global variables here void main(void) { long wait; // Declare your local variables here // Input/Output Ports initialization // Port A
in „LM75 funktioniert nicht“ · Mikrocontroller und Digitale Elektronik ·
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Datei
LM75.c
"usart.h" #include "usart.c" #include "i2cmaster.h" #include "twimaster.c" #define BAUD 51 #define LM75 0x90 int main(void) { void getTemperatur(void); volatile unsigned int time_counter_[7] = {0,0,0,0,0,0,0}; usartInit(BAUD); i2c_init(); // initTimer1(); while(1) { getTemperatur(); } } void getTemperatur(void) { char usartSendBuffer[100]; unsigned int data; // unsigned int lm75_data = 0; // unsigned int temo_data = 0; char LM92CIM_Temperatur1 = 0; char LM92CIM_Temperatur2 = 0; unsigned int return_value = 0; i2c_start_wait(LM75+I2C_READ); // set device address and write mode
in „LM75 auslesen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
lm75.c
#include <stdio.h> #include <string.h> #include <unistd.h> #include <fcntl.h> #include <errno.h> #include <termios.h> #define P_ERROR -1 // to check for errors when dealing with the port int openPort(void); void closePort(int fd); void writeData(int fd, int nbytes); void readData(int fd, int nbytes); struct termios options; unsigned char sbuf[4]; // Stores data to be written unsigned char sbufr[4]; // Stores data to be read int main(int argc, char *argv[]) { int fd; fd = openPort(); if(fd > P_ERROR ) { sbuf[0] = 0x55; // read multible bytes sbuf[1] = 0x91; // Address slave and set bit 0 =1 sbuf
in „Devantech USB-I2C Adapter und LM75“ · Softwareentwicklung ·
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Datei
LM75.c
#include "LM75.h" int16_t LM75gettemp(void){ int8_t low, high; int16_t temperature; I2Cstart(); I2Csend(LM75_ADDRESS); I2Csend(LM75_TEMPERATURE); I2Crestart(); I2Csend(LM75_ADDRESS|0x01); high=I2Creceive(I2C_ACK)
in „PIC18F97J60 und LM75“ · Mikrocontroller und Digitale Elektronik ·
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Datei
LM75.h
#ifndef LM75_H_ #define LM75_H_ #define LM75_ADDRESS 0x9E #define LM75_TEMPERATURE 0x00 #include <stdint.h> #include "I2C.h" int16_t LM75gettemp(void); #endif /* end of file */
in „PIC18F97J60 und LM75“ · Mikrocontroller und Digitale Elektronik ·
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Datei
lm75.c
#define NACK FALSE #define START 0x08 #define TW_MT_SLA_ACK 0x18 #define TW_MT_DATA_ACK 0x28 void lm75_read(void); void i2c_init(void); int i2c_send_start(uint8_t adress); int i2c_send_byte(uint8_t data); void i2c_send_stop(void); int i2c_read(uint8_t adress, uint8_t ackflag); struct TEMPERATUR { uint8
in „I²C Bus und LM75“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM75.pdf
stations, electronic test equipment, off■ Supply Voltage LM75A 2.7V to 5.5Va management is critical to performance. The LM75A, LM75B LM75B, LM75C 3.0V to 5.5Vl and LM75C are available in an SOP-8 pacakage. The LM75Burrent operating 280 μA (typ)W and LM75C are
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LM75.pdf
Pointer Byte Ack Most Significant Data Byteck Least Significant Data ByteAck Cond Master by by by by by LM75 LM75 LM75 LM75 Master (f) T and T Write OS HYST Figure 2. Serial Port Operation http://onsemi.com 6 LM75 REGISTER SET AND PROGRAMMER’S MODEL Register (POINT), 8–bits, Write–only Pointer Register (POINT
in „TWI (I2C) Problem bekomme den TWI nicht ans laufen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lm75.pdf
www.national.com Connection Diagrams Ordering Information SO-8 Supply Order Number Voltage Supplied As LM75CIM-3 3.3V LM75CIMX-3 3.3V 2500 Units on Tape and Reel LM75CIM-5 5V TL/H/12658–2 Order Number LM75CIM-3, LM75CIMX-3, LM75CIMX-5 5V 2500 Units on Tape and Reel LM75CIM-5 or LM75CIMX-5 See NS Package
in „Arduino I2C Probleme Sonsoren werden manchmal nicht gefunden“ · Mikrocontroller und Digitale Elektronik ·
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Datei
LM75_UART.ASM
ldi r17,0b10010010 ; *** LM 75 mit Addr=1 ansprechen *** out TWDR,R17 ;Byte in Ausgaberegister ldi R16,(1<<TWINT)|(1<<TWEN) out TWCR,R16 ;Byte senden wait2: sbrs R16,TWINT ;Kommando ausgeführt? rjmp wait2 ;nein -> warten ldi r17,0b00000000 ; *** LM 75 Temperaturregister ansprechen *** out TWDR,R17 ;Byte in Ausgaberegister ldi R16,(1<<TWINT)|(1<<TWEN) out TWCR,R16 ;Byte senden wait3: sbrs R16,TWINT ;Kommando ausgeführt? rjmp wait3 ;nein -> warten
in „ATMega8 TWI“ · Mikrocontroller und Digitale Elektronik ·
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Datei
LM75_UART.ASM
ldi r17,0b10010010 ; *** LM 75 mit Addr=1 ansprechen *** out TWDR,R17 ;Byte in Ausgaberegister ldi R16,(1<<TWINT)|(1<<TWEN) out TWCR,R16 ;Byte senden wait2: in R16,TWCR ;Status holen sbrs R16,TWINT ;Kommando ausgeführt? rjmp wait2 ;nein -> warten ldi r17,0b00000000 ; *** LM 75 Temperaturregister ansprechen *** out TWDR,R17 ;Byte in Ausgaberegister ldi R16,(1<<TWINT)|(1<<TWEN) out TWCR,R16 ;Byte senden wait3: in R16,TWCR ;Status holen sbrs R16,TWINT ;Kommando ausgeführt?
in „ATMega8 TWI“ · Mikrocontroller und Digitale Elektronik ·
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Datei
lm75_anzeige.h
#ifndef _LM75_anzeige_INCLUDED_ #define _LM75_anzeige_INCLUDED_ #include <i2c.h> #include <lcd.h> #pragma used+ void lm75_auf_lcd(unsigned char chip, unsigned char x_pos, unsigned char y_pos) { char puffer[3]; /
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Datei
lm75_anzeige.h
#ifndef _LM75_anzeige_INCLUDED_ #define _LM75_anzeige_INCLUDED_ #include <i2c.h> #include <lcd.h> #include <stdlib.h> #pragma used+ void lm75_auf_lcd(unsigned char chip, unsigned char x_pos, unsigned char y_pos)
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Datei
LM75_Mega.asm
.include "m8def.inc" ;Definitionsdatei einbinden .def Data =R16 .def temp =R18 ;temporary storage register .def Txbyte =R19 ;Data to be transmitted .def Rxbyte =R20 ;Received data .def tmpdelay = r21 ;Used as: I2C Delay loop variable .org 0x0000 rjmp reset reset: ldi r16, low(RAMEND) out SPL, r16 ldi r16, high(RAMEND) out SPH, r16 sbi UCSRB,TXEN ;TX aktivieren ldi temp,12; 4800 Baud out UBRRL,temp ldi r16, (1<<URSEL)|(1<<USBS)|(3<<UCSZ0) out UCSRC,r16 ;init TWI ldi Data, 0xD0 ;Bit Rate Generator out TWBR, Data ;ldi Data, 0x00 ;Slave Address Register ;out TWAR, Data ldi temp,(1<<TWPS0)|(1<<TWPS1
in „Hardware I2C beim ATMega“ · Mikrocontroller und Digitale Elektronik ·
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Datei
simple_lm75.c
get low-byte TWCR = (1<<TWINT) | (1<<TWSTO) | (1<<TWEN); return ret_val; } int main (void) { int16_t lm75_temp; int8_t whole_number_degrees; twi_init(); while (1) { lm75_temp = get_lm75_temp(LM75_ADR); if (lm75_temp & TW_ERROR_MSK) { /* There was an error in communication */ } else { //no error while reading the lm75 whole_number_degrees = lm75_temp >>8; lm75_temp >>=7; UDR0 = whole_number_degrees; } } }
in „LM75 an ATMega 8“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM75_-_TempSensor.PDF
Pointer Byte Ack Most Significant Data Byteck Least Significant Data ByteAck Cond Master by by by by by LM75 LM75 LM75 LM75 Master (f) T and T Write OS HYST Figure 2. Serial Port Operation http://onsemi.com 6 LM75 REGISTER SET AND PROGRAMMER’S MODEL Register (POINT), 8–bits, Write–only Pointer Register (POINT
in „LM75 mit MSP430F1611“ · Mikrocontroller und Digitale Elektronik ·
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PDF
180698-da-01-ml-LED_MODUL_ALUSTAR_3_60GRAD_1W_KALT_de_en.pdf
Discription Part.-No. Light colour Wavelength (nm)* Luminance min. max. Alustar 1W 3° 9008246 ww 2700K 66lm 2.8V 3.5V 75 Alustar 1W 3° 9009139 ww 3200K 66lm 2.8V 3.5V 75 Alustar 1W 3° 9008245 nw 4300K 66lm 2.8V 3.5V 75 Alustar 1W 3° 9008244 cw 6000K 100lm 2.8V 3.5V 75 Alustar 1W 3° 9008247 red 623nm 51.2lm
in „KSQ für 350mA power led in Kfz betrieb“ · Mikrocontroller und Digitale Elektronik ·
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Datei
twi-v1.c
" #include "lcd.c" #define TWI_ADR 0x00 #define _TWINT 0b10000000 #define _TWEN 0b00000100 #define LM75_ADR 0b10010000 #define LM75_CONFIG 0b00000001 #define LM75_HYST 0b00000010 #define LM75_SET 0b00000011 #define LM75_TEMP 0b00000000 int main(void) { unsigned char ret1,ret2; unsigned char t[4]; ; wait_ms(200); lcd_init(); i2c_init(); // initialize I2C library // init LM75 i2c_start_wait(LM75_ADR+I2C_WRITE); i2c_write(LM75_CONFIG); // Config Register auswählen i2c_write(0); i2c_write(0); i2c_stop(); i2c_start_wait(LM75_ADR+I2C_WRITE); i2c_write(LM75_HYST); // Config
in „LM75 und LCD“ · Mikrocontroller und Digitale Elektronik ·
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Datei
twi-v1.c
" #include "lcd.c" #define TWI_ADR 0x00 #define _TWINT 0b10000000 #define _TWEN 0b00000100 #define LM75_ADR 0b10010000 #define LM75_CONFIG 0b00000001 #define LM75_HYST 0b00000010 #define LM75_SET 0b00000011 #define LM75_TEMP 0b00000000 int main(void) { unsigned char ret1,ret2; unsigned char t[4]; ; wait_ms(200); lcd_init(); i2c_init(); // initialize I2C library // init LM75 i2c_start_wait(LM75_ADR+I2C_WRITE); i2c_write(LM75_CONFIG); // Config Register auswählen i2c_write(0); i2c_write(0); i2c_stop(); i2c_start_wait(LM75_ADR+I2C_WRITE); i2c_write(LM75_HYST); // Config
in „i2c und lm 75“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lm1117.pdf
3.1 LM1117DT-3.3/NOPB NDP TO-252 3 75 508 20 4165.6 3.1 LM1117DT-3.3/NOPB.B NDP TO-252 3 75 508 20 4165.6 3.1 LM1117DT-5.0/NOPB NDP TO-252 3 75 508 20 4165.6 3.1 LM1117DT-5.0/NOPB.B NDP TO-252 3 75 508 20 4165.6 3.1 LM1117DT-ADJ/NOPB NDP TO-252 3 75 508 20 4165.6 3.1 LM1117DT-ADJ/NOPB.B NDP TO-252 3 75 508 20 4165.6 3.1 LM1117IDT-3.3/NOPB NDP TO-252 3 75 508 20 4165.6 3.1 LM1117IDT-3.3/NOPB.B NDP TO-252 3 75 508 20
in „LM1117-5.0 Ausgangsspannung mit R in GND erhöhen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
WBDesign5.pdf
Incorporated 3 ti.com/webench ® WEBENCH Design Report LM5022MM/NOPB : LM5022MM/NOPB 11V-16V to 60.00V @ 2.1A October 18, 2018 05:05:12 GMT-07:00 WEBENCH ® Design Efficiency M1 TjOP 75.0 96.0 72.5 95.5 70.0 67.5 95.0 ) C 65.0 % 94.5 g 62.5 y e c 94.0 ( 60.0
in „Drehstrom Motor anfangstrom berechnen“ · Analoge Elektronik und Schaltungstechnik ·
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LM75A_1.pdf
sensor and thermal Watchdog⊗ LM75A GENERAL DESCRIPTION FEATURES The LM75A is a temperature-to-digital converter using an on-chip Pin-for-pin replacement for industry standard LM75 and offers band-gap temperature sensor and Sigma-delta
in „LM 75 temperatur wird nicht aktualisiert“ · Mikrocontroller und Digitale Elektronik ·
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LM2940T-10.0.pdf
V MIN LM2940C 55 45 Reverse Polarity R O 100Ω DC Input Voltage LM2940 −30 −15/−15 −30 −15/−15 V MIN LM2940C −30 −15 Reverse Polarity R O 100Ω Transient Input T ≤ 100 ms Voltage LM2940 −75 −50/−50 −75 −50/−50
in „Low Drop Low Current Spannungsregler 10V“ · Analoge Elektronik und Schaltungstechnik ·
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LM2937.pdf
Number LM2937ET-5.0, LM2937ET-8.0, Front View LM2937ET-10, LM2937ET-12 or LM2937ET-15 Order Number LM2937IMP-5.0, See NS Package Number T03B LM2937IMP-8.0, LM2937IMP-10, LM2937IMP-12 or LM2937IMP-15 See NS Package
in „Minimale Hardware zum Auto CAN-Bus abhören“ · Mikrocontroller und Digitale Elektronik ·
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LED.pdf
Stopper, gegurtet LMTP2P32A1AWX03 Si LED, SMD, PLCC-2, 1-Chip, amber white, 120°, ohne Zenerdiode, LM 1000 / Gurt 1.040 312835 8541 4010 Silikonverguss LEMWS37Q75GZ00 LED, SMD, weiß, typ. 5665 K, 80 mA, typ. 24 lm, CRI 75, 120° LG Innotek 2000 / Gurt 1.020 321936 8541 4010 YE-BU5N30Y Rank U LED, 5mm,
in „[V] Großer Posten SMD und THT LEDs günstig abzugeben“ · Markt ·
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Datei
LM75_auslesen_2.txt
#include <msp430x16x.h> void main(void) { WDTCTL = WDTPW + WDTHOLD; // Stop watchdog P2SEL|=0x00; // Port2 als input output benutzten P1DIR|=0xFF; // Port1 sind die 8 LEDs P2DIR|=0xFF; //Port2 sind die Latschsignale für 7-Segment decoder P3SEL |= 0x0a; // Assign I2C pins to module P3OUT |= 0x05; //am Port3 Pin 1+3 auf High setzen (Latch Pins) // P1OUT = 0x00; U0CTL |= I2C + SYNC; // Switch USART0 to I2C mode U0CTL &= ~I2CEN; // Recommended I2C init procedure I2CTCTL = I2CSSEL_2; // SMCLK I2CSCLH = 0x03; // High period of SCL I2CSCLL = 0x03; // Low period of SCL I2CNDAT = 0x01; // Transmit one byte
in „LM75 mit MSP430F1611“ · Mikrocontroller und Digitale Elektronik ·
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Datei
EPM8722_LM75.C
//////////////////////////////////////////////////////////////////////////// //// Library for a LM75CIM3 Temperature chip //// //// //// //// init_temp(); Call before the other functions are used //// //// //// //// d = read_full_temp(); Read the temp in degrees * 8 //// //// //// //// NOTE: MULTIPLY
in „LM75 über PIC mit C abfragen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lm1117.pdf
-3.3/NOPB ACTIVE TO-252 NDP 3 75 RoHS & Green SN Level-2-260C-1 YEAR 0 to 125 LM1117 DT-3.3 LM1117DT-5.0/NOPB ACTIVE TO-252 NDP 3 75 RoHS & Green SN Level-2-260C-1 YEAR 0 to 125 LM1117 DT-5.0 LM1117DT-ADJ/NOPB ACTIVE TO-252 NDP 3 75
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DSA00390260.pdf
L M 1 January 1995 4 0 A / L LM140A/LM140/LM340A/LM340/LM7800C M 1 Series 3-Terminal Positive Regulators 4 / General Description Features L The LM140A/LM140/LM340A/LM340/LM7800C monolith- Y Complete specifications at 1A load M ic 3
in „Beschaltung LM7805 mit C's“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
WARDSTAR-Pogo.pdf
0.68mm 16.55mm 75g 3Ampere 0.9mm 50m ohm 2.65mm Buy Now PL50-LM2 0.9mm 0.5mm 0.68mm 28.0mm 100g 3Ampere 0.9mm 50m ohm 4.2mm Buy Now P11-LM2 1.3mm 0.74mm 1.02mm 24.2mm 120g 3Ampere 1.4mm 50m ohm 4.2mm Buy Now P75-LM2 1.3mm 0.74mm1.02mm16.54mm180g 3Ampere 1.4mm 50m ohm 2.54mm Buy Now PL75-LM2 1.3mm 0.74mm 1.02mm 33.35mm 120g 3Ampere 1.4mm 50m ohm 6.35mm Buy Now PM75-LM2 1.3mm 0.66mm 1.02mm 27.8mm 120g 3Ampere 1.4mm 50m ohm 4.0mm Buy Now P100-LM2 1.5mm 1.0mm 1.36mm 33.35mm 180g 3Ampere
in „Pogo Pins Standard?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LM78XX.pdf
Coefficient of Vo ΔVo/ΔT IOUT=5mA -0.8 mV/°C Ripple Rejection RR V IN0V - 20V,f=120Hz, T =2J°C 59 75 dB Peak Output Current I T =25°C 1.7 A PEAK J Short-Circuit Current SC V IN5V, T =J5°C 250 mA For UTC LM7808 (V IN=14V) PARAMETER SYMBOL TEST CONDITIONS MIN TYP MAX UNIT T J25°C, I OUT=5mA - 1.0A 7.68
in „2 Spannungen mit 1 Labornetzteil“ · Analoge Elektronik und Schaltungstechnik ·
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99geraete.txt
2-29a 14 157 DT860D 3.5 NJU9207 MJU7002M 2-29b 157 CM2600 3.5 NJU9207 MJU7002M 2-31 15 160 3211B 3.75 ICL7139 ICM7555 2-15a 21 107 DT890D 3.5 TSC7106 TL062 TL062 LM358 CD4011 2-15b 107 CM3900 3.5 TSC7106 TL062 TL062 LM358 CD4011 2-32 22 163 DT910 3.75 TSC7139 2-16 23 109 DT940C 3.5 TSC7106 LM358 TL062
in „Suche Schaltplan / Bed-Anleitung Mastech M840D DMM gute Qualität“ · Mikrocontroller und Digitale Elektronik ·
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LM78xx_LM340.pdf
L M September 2001 3 4 0 L M 7 LM340/LM78XX Series 8 X 3-Terminal Positive Regulators X S General Description Features e The LM140/LM340A/LM340/LM7800C monolithic 3-terminal n Complete specifications at 1A load r positive voltage regulators
in „LM340T5 defekt?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LM567.pdf
L M May 1999 5 7 / M LM567/LM567C 6 7 Tone Decoder C n High rejection of out of band signals and noise T General Description n Immunity to false signals o The LM567 and LM567C are general purpose tone decodn Highly stable center
in „Frage zum NE567“ · Mikrocontroller und Digitale Elektronik ·
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PDF
webench_design_1688335_26_232377900.pdf
34.25VVin= 60.0V Copyright © 2014, Texas Instruments Incorporated 2 ti.com/webench WEBENCH ® Design Report LM5117PMHX/NOPB : LM5117PMHX/NOPB 8.5V-60.0V to 5.001739130434783V @ 2.0A July 8, 2014 16:26:25 GMT-7 WEBENCH ® Design Cin IRMS M2 PdSw 1.00 0.95 0.11 0.90 0.85 0.10 0.80 0.75 0.09 0.70 )0.65 )0.08 A W
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LM340.pdf
L M November 2004 3 4 0 L M LM340/LM78XX Series 7 8 3-Terminal Positive Regulators X X General Description The 5V, 12V, and 15V regulator options are available in theS The LM140/LM340A/LM340/LM78XXC monolithic steel TO-3 power package
in „Suche Schaltung für Spannungsverdoppler von 12V auf 24V“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LM1117.pdf
6 mV OUT IN LM1117-3.3 OUT = 0mA, 4.75V ≤ VIN ≤ 15V 1 6 mV LM1117-5.0 OUT = 0mA, 6.5V ≤ VIN≤ 15V 1 10 mV www.national.com 4 L M 1 LM1117 Electrical Characteristics (Continued) 1 Typicals and limits appearing in normal
in „Wie lange hält ein LM1117-5.0 ?“ · Analoge Elektronik und Schaltungstechnik ·
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lm35.pdf
LM35A S E I 80 P±1.0 U E Q T 60 ±1.5 LM35 40 ±2.0 ±75 ±25 25 75 125 175 ±75 ±25 25 75 125 175 TEMPERATURE (SC) C007 TEMPERATURE (SC) C008 Figure 7. Quiescent Current vs Temperature (in Circuit of Figure
in „Signalkonverter Ladegerät“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
lm35.pdf
LM35A S E I 80 P±1.0 U E Q T 60 ±1.5 LM35 40 ±2.0 ±75 ±25 25 75 125 175 ±75 ±25 25 75 125 175 TEMPERATURE (SC) C007 TEMPERATURE (SC) C008 Figure 7. Quiescent Current vs Temperature (in Circuit of Figure
in „Linearisierung NTC und Anpasssung“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
Master_Produktion_mit_Alarm.bas
As Single Dim Kreis5 As Single Dim Kreis6 As Single Dim Hightemp As Byte Dim Lowtemp As Byte Const Lm75slavewrite = &H90 Const Lm75slaveread = &H91 Dim Lm75high As Byte Dim Lm75low As Byte Dim Temperatur As Integer Dim Nachkommastelle As String * 2 Dim Display_eingang As Byte Dim I_o_eingang As Byte
in „PCA 9554AD Ansteuerprobleme“ · Mikrocontroller und Digitale Elektronik ·
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lm5165.pdf
g e 4.96 e 3.28 T T O 4.94 O V V 3.26 4.92 Rising Rising Falling Falling 4.9 3.24 -50 -25 0 25 50 75 100 125 150 -50 -25 0 25 50 75 100 125 150 Temperature (°C) Temperature (°C) D007 D006 LM5165X LM5165Y Figure 6-11. VOUT Regulation Thresholds vs Figure 6-12. VOUT Regulation Thresholds vs Temperature
in „Stromverbrauch Schaltregler“ · Analoge Elektronik und Schaltungstechnik ·
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DS_LM317SG.pdf
3.93 L20 16.40 16.40 L30 28.90 28.90 ∅P 3.75 3.85 3.75 3.85 Q 2.65 2.95 2.65 2.95 Doc ID 2154 Rev 18 13/25 Package mechanical data LM117, LM217, LM317 Figure 14. Drawing dimension TO-220 (type STD-ST Dual Gauge) 0015988/A Note: 1 Max resin gate
in „Symmetrische Spannungsversorgung für Audiovorstufe“ · Analoge Elektronik und Schaltungstechnik ·
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LM10.PDF
(Boldface type refers to limits over temperature range) (Note 5) J MIN J MAX Parameter Conditions LM10/LM10B LM10C Units Min Typ Max Min Typ Max Load regulation 0≤I ≤1.0 mA 0.01 0.1 0.01 0.15 % REF V −VREF≥1.0V (1.1V) 0.15 0.2 % Amplifier gain 0.2V≤VREF≤35V 50 75 25 70 V/mV 23 15 V/mV Feedback sense
in „Suche Batteriewächter“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LM78LXX.pdf
Statistical Quality Control (SQC) methods. Unless otherwise specifOed:40 mA, C I= 0.33 µF, = C O 0.1 µF. LM78L05AC Unless otherwise specified,IN = 10V Symbol Parameter Conditions Min Typ Max Units VO Output Voltage 4.8 5 5.2 V 7V ≤ VIN ≤ 20V 1 mA ≤ IO≤ 40 mA 4.75 5.25 (Note 3) 1 mA ≤ IO≤ 70 mA 4.75 5.25 (Note
in „Hilfe bei Berechnung des zul. Ausgangsstroms beim Spannungsregler“ · Analoge Elektronik und Schaltungstechnik ·
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D170086D.pdf
Parameter Conditions LM2825-3.3 Units Typical Limit (Limits) (Note 6) (Note 7) V Output Voltage 4.75V ≤ V ≤ 40V, 0.1A ≤ I ≤ 1A 3.3 V OUT IN LOAD 3.168/3.135 V(min) 3.432/3.465 V(max) Line Regulation 4.75V ≤ V IN≤ 40V 1.5 mV
in „LM2528-3.3 & SI4735 & Bluetooth anliegen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM350-D.PDF
LM350 3.0 A, Adjustable Output, Positive Voltage Regulator The LM350 is an adjustable three−terminal positive voltage regulator capable of supplying in excess of 3.0 A over an output voltage range of 1.2
in „Einstellbare Last erzeugen für Netzteil-Test“ · PC Hard- und Software ·
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Datei
Uhr_Thermometer.bas
--------- 'Konfiguration TWI/I²C '--------------------- Config Sda = Portc.4 Config Scl = Portc.5 'LM75-Adressen Const Lm75_schreiben = &H90 Const Lm75_lesen = &H91 'DS1307-Adresse Const Ds1307_schreiben = &HD0 Const Ds1307_lesen = &HD1 I2cinit '--------------------- 'Konfiguration Eingabe '---------
in „Bascom LM75 Schalttemperatur auslesen“ · Mikrocontroller und Digitale Elektronik ·
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lm2731.pdf
Product Sample & Technical Tools & Support & Folder Buy Documents Software Community LM2731 SNVS217G –MAY 2004–REVISED SEPTEMBER 2015 LM 27310.6/1.6-M H zB oostC onvertersW ith22-VInternalFETSw itchinSO T-23 1 Features 3 Description • 22-V DMOS FET Switch The LM2731 switching regulators
in „[V] 5St. Boost Reg. ADJ TI LM2731XMF 1,6Mhz 1,8A Switch (SOT23-5)“ · Markt ·
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LM317LZ_Motorola_vorh.pdf
Order this document by LM317L/D LM317L Three-Terminal Adjustable Output Positive Voltage LOW CURRENT Regulator THREE–TERMINAL The LM317L is an adjustable 3–terminal positive voltage regulator ADJUSTABLE POSITIVE capable of supplying
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