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PDF
DCL10_ds593.pdf
box (Figure 5). Note: The multiple USB cable management feature is only available in iMPACT version 10.1 and later. Refer to the iMPACT section of Xilinx ISE software manuals for additional details on this feature. X-Ref Target - Figure 6 DS593_06_021408 Figure 6: iMPACT (10.1) Cable Setup Information
in „USBprog CPLD Starterkit Wie bauen?“ · FPGA, VHDL & Co. ·
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PDF
DS4E-M-DC1.5V-Panasonic.pdf
resistive) Max. carrying current 3 A DC, AC FCC surge voltage between contacts and 1,500 V (Expect DS1-S type) Min. switching capacity coil (Reference value) #1 10 µA, 10 mV DC Operate time* 3(at nominal voltage) Max. 10 ms 8 3 Expected life Mechanical 10 7 Release time (without diode)* Max. 5 ms (min
in „"Merkwürdiges" Relais.“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DSxE.pdf
Vrms Max.carrying current 3 A DC, AC FCC surge voltage between contacts 8 and coil 1,500 V (Expect DS1-S type) Expected Mechanical 10 (at 600 cpm) (1 Form C 2 coil latching type: 10 ) Operate time* 3(at nominal voltage) Approx. 3 ms life (min. Electrical Release time (without diode)* (at operations)
in „Relais Polung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Gigabyte-Affected-Models.pdf
-12 A520M-DS3H-rev-1x B460M-DS3H-AC-rev-1x B550M-AORUS-PRO-rev-10 A520M-H-rev-1x B460M-DS3H-rev-10 B550M-DS3H-AC-rev-10-11-12-13 A520M-K-V2-rev-10 B460M-GAMING-HD-rev-10 B550M-DS3H-AC-rev-10-11-12-13-14 A520M-K-rev
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PDF
LM10.PDF
) DS005652-16 DS005652-15 Order Number LM10CN or LM10CLN See NS Package Number N08E © 1999 National Semiconductor CorpDS005652 www.national.com ESD rating is to be determined. Absolute Maximum Ratings (Notes
in „Suche Batteriewächter“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Service_Guide_DS1000E.pdf
input voltage CAT I 300Vrms, 1000Vpk; instantaneous voltage 1000Vpk CAT II 100Vrms, 1000Vpk RP2200 10:1: CAT II 300Vrms RP3200 10:1: CAT II 300Vrms RP3300 10:1: CAT II 300Vrms Offset Range ± 40V(250mV/div~10V/div),± 2V(2mV/div~245mV/div) Analog Bandwidth 100MHz (DS1102D,DS1102E) 50MHz (DS1052D, DS1052E
in „Rigol 1052e: Akkubetrieb zurüsten“ · Mikrocontroller und Digitale Elektronik ·
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Datei
neuds1820.h
== //pinout 0.10 #define ds1820_port C #define ds1820_pin 3 #define ow_lx 1 #define ow_ly 5 //#define ds1820_port C //#define ds1820_pin 5 #define owds1820_clr pinCLR(ds1820_port,ds1820_pin) #define owds1820_output pinDIRout
in „ds1820 + isr/Impulszähler“ · Mikrocontroller und Digitale Elektronik ·
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Datei
test2.xml
version>0003</version> <step>60</step> <!-- Seconds --> <lastupdate>1455108715</lastupdate> <!-- 2016-02-10 13:51:55 CET --> <ds> <name> T_soll_HK </name> <type> GAUGE </type> <minimal_heartbeat>120</minimal_heartbeat> <min>NaN</min> <max>NaN</max> <!-- PDP Status --> <last_ds>0</last_ds> <value>0.0000000000e
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Datei
ds1820.h
DS1820_FindNextDev to DS1820_FindNextDevice * - updated code style * * 4 31.10.10 17:12 Stadler * - introduced DS1820_DelayUs * * 3 25.10.10 13:09 Stadler * - added interrupt lock * * 2 12.03.05 11:24 Stadler
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Datei
ds3231.c
void ds3231_put_time void { ds3231_RTC_read_time(); lcd_data(0x30+(ds3231_hour / 10)); lcd_data(0x30+(ds3231_hour % 10)); lcd_data(':'); lcd_data(0x30+(ds3231_min / 10)); lcd_data(0x30+(ds3231_min % 10)); lcd_data(':'); lcd_data(0x30+(ds3231_sec / 10)); lcd_data(0x30+(ds3231_sec % 10)); } // Temperatur zeigen void ds3231_put_temperatur void { unsigned char a,b; ds3231_RTC_read_temper(); lcd_data('+'); a = ds3231_t1; b = 0; while(a >=
in „AVR RTC - Modul“ · Mikrocontroller und Digitale Elektronik ·
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Datei
DS10-g0134-PID.c
// 1---Vss Masse 5---R/W // 2---VDD +5V 6---E // 3---Vo Kontrast 7---DB0 // 4---RS 14---DB7 // // DS10_0101 190210; if (ADC12MEM3>50) ab ca 60E am Anschlag // DS10_0102 190210 D-Anteil einfügen, if (ADC12MEM3>50)reglerstart=1; // DS10_0102 190211 if (ADC12MEM3>50)reglerstart=1; entfernt // DS10_0103
in „while-Schleife wird "unerlaubt verlassen"“ · Mikrocontroller und Digitale Elektronik ·
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Datei
test2.xml
version>0003</version> <step>60</step> <!-- Seconds --> <lastupdate>1455120835</lastupdate> <!-- 2016-02-10 17:13:55 CET --> <ds> <name> T_soll_HK </name> <type> GAUGE </type> <minimal_heartbeat>120</minimal_heartbeat> <min>NaN</min> <max>NaN</max> <!-- PDP Status --> <last_ds>21</last_ds> <value>NaN</value
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Datei
DS10-g0133-PID.c
// 1---Vss Masse 5---R/W // 2---VDD +5V 6---E // 3---Vo Kontrast 7---DB0 // 4---RS 14---DB7 // // DS10_0101 190210; if (ADC12MEM3>50) ab ca 60E am Anschlag // DS10_0102 190210 D-Anteil einfügen, if (ADC12MEM3>50)reglerstart=1; // DS10_0102 190211 if (ADC12MEM3>50)reglerstart=1; entfernt // DS10_0103
in „while-Schleife wird "unerlaubt verlassen"“ · Mikrocontroller und Digitale Elektronik ·
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PDF
rtc.pdf
DS1391U-3 -40°C to +85°C 10 µSOP DS1391 rr-3 DS1391U-33 -40°C to +85°C 10 µSOP DS1391 rr-33 DS1392U-18 -40°C to +85°C 10 µSOP DS1393 rr-18 DS1392U-3 -40°C to +85°C 10 µSOP DS1392 rr-3 Typical Operating Circuits and Pin Configurations appear atS1392U-33 -40°C to +85°C 10 µSOP DS1392 rr-33 end of the data sheet. DS1393U-18 -40°C to +85°C 10 µSOP DS1393 rr-18 DS1393U-3 -40°C to +85°C 10 µSOP DS1393 rr-3 DS1393U-33 -40°C to +85°C 10 µSOP DS1393 rr-33 Where “rr” is a revision
in „ein Uhrenquartz für AVR und RTC???“ · Mikrocontroller und Digitale Elektronik ·
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Datei
DS1302.cpp
[5]=0; else { if (t.sec<10) output[6]=48; else output[6]=char((t.sec / 10)+48); output[7]=char((t.sec % 10)+48); output[8]=0; } return output; } char *DS1302::getDateStr(uint8_t slformat, uint8_t eformat, char divider) { char
in „rtc 1302 tage vergleichen (arduino)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
DS1302.cpp
+ 48); output[8] = char(((yr % 100) / 10) + 48); output[9] = char((yr % 10) + 48); output[10] = 0; } break; } return output; } char *DS1302::getDOWStr(uint8_t format) { char *output = "xxxxxxxxx"; Time t; t = getTime(); switch (t.dow) { case
in „rtc 1302 tage vergleichen (arduino)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ds18x20.c
else if ( (i & DS18B20_11_BIT) == DS18B20_11_BIT ) { usart_write_str0( "B20/11" ); } else if ( (i & DS18B20_10_BIT) == DS18B20_10_BIT ) { usart_write_str0( " B20/10 " ); } else { // if ( (i & DS18B20_9_BIT) == DS18B20
in „1Wire DS18B20 auslesen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
PICkit_3_Programmer_Application_ReadMe.txt
dsPIC33FJ32GP202 dsPIC33FJ32GP204 dsPIC33FJ32GP302 dsPIC33FJ32GP304 dsPIC33FJ64GP202 dsPIC33FJ64GP204 dsPIC33FJ64GP206 dsPIC33FJ64GP306 dsPIC33FJ64GP310 dsPIC33FJ64GP706 dsPIC33FJ64GP708 dsPIC33FJ64GP710
in „PICkit3 und Windows 11“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DS1643-DS1643P.pdf
19-5058; Rev 5/10 DS1643/DS1643P Nonvolatile Timekeeping RAMs www.maxim-ic.com FEATURES PIN CONFIGURATIONS Integrated NV SRAM, Real-Time Clock, Crystal, Power-Fail Control Circuit and N.C. 1 28 VCC TOP VIEW A12 2 27
in „parallele SRAM Bausteine (nennt man das so ?) in Bascom“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ds1620.c
conversion*/ PORT_DS1620 |= (1<<DQ_DS1620) | (1<<CLK_DS1620) | (0<<RES_DS1620); _delay_ms(10); //ds1620_write_temp_L(0x0000); // Min 0°C //ds1620_write_temp_L(0x0001); // Min 1°C //ds1620_write_temp_L(0x0002); // Min 2°C
in „DS1620 - Initialisierung zumTH und TL schreiben?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DS18B20.pdf
held low for more than 480μs, all components on the bus will be reset. HARDWARE CONFIGURATION Figure 10 VPU DS18B20 1-WIRE PORT 4.7k DQ Pin 1-Wire Bus R X R X 5μA Typ. TX TX 100Ω MOSFET R X RECEIVE T X= TRANSMIT 9 of 21 DS18B20 TRANSACTION SEQUENCE The transaction sequence for accessing the DS18B20 is
in „Suche nach einem Temperatursensor“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DS18B20.pdf
held low for more than 480μs, all components on the bus will be reset. HARDWARE CONFIGURATION Figure 10 VPU DS18B20 1-WIRE PORT 4.7k DQ 1-Wire Bus Pin R X R X 5μA Typ. TX TX 100Ω MOSFET R X RECEIVE T X= TRANSMIT 9 of 21 DS18B20 TRANSACTION SEQUENCE The transaction sequence for accessing the DS18B20 is
in „Mehrere DS18B20 an einen Pin Avr-Mega32“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Datenblatt_DS18B20.pdf
°C and is accurate to ±0.5°C over the range of -10°C to +85°C. In addition, the DS18B20 can derive power directly from the data line (“parasite power”), eliminating the need for an external power supply. Each DS18B20 has a unique 64-bit serial code,
in „DS18B20 Darstellung von negativen Zahlen im Zweierkomplement?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Datenblatt_DS18B20.pdf
°C and is accurate to ±0.5°C over the range of -10°C to +85°C. In addition, the DS18B20 can derive power directly from the data line (“parasite power”), eliminating the need for an external power supply. Each DS18B20 has a unique 64-bit serial code,
in „Timing Probleme 1-Wire“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Datenblatt_DS18B20.pdf
°C and is accurate to ±0.5°C over the range of -10°C to +85°C. In addition, the DS18B20 can derive power directly from the data line (“parasite power”), eliminating the need for an external power supply. Each DS18B20 has a unique 64-bit serial code,
in „1-Wire Protokollablauf“ · Mikrocontroller und Digitale Elektronik ·
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Datei
MINI68.TXT
: DS 1; !CHECKINST VECTOR7: DS 1; !TRAPOVERFL VECTOR8: DS 1; !PRIVILEGE; VECTOR9: DS 1; !TRACEVEC FUER TRACE-INSTR. VECTOR10: DS 1; !LINE1010 EMULATOR VECTOR11: DS 1; !LINE1111 EMULATOR VECTOR12: DS 1; !TRAPERR
in „[S] MPU (Z80/6502/68k)“ · Markt ·
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PDF
LMC7111BIM5X.pdf
Inverting Large Signal Inverting Large Signal Pulse Response at 5V Pulse Response at 5V DS012352-51 DS012352-52 10V PERFORMANCE Voltage Noise vs Common Output Voltage vs Offset Voltage vs Common Mode Voltage @ 10V Input Voltage@ 10V Mode Voltage @ 10V DS012352-53 DS012352-54 DS012352-55 www.national.com 10 L M C 10V PERFORMANCE (Continued) 7 1 1 Sourcing Output vs Sinking Output vs Gain and Phase vs T Output Voltage Output Voltage Capacitive Load @ 10V n y DS012352-56 DS012352-57 DS012352-58 Gain and Phase
in „PIN Dioden Geiger“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LMC7111BIM5X.pdf
Inverting Large Signal Inverting Large Signal Pulse Response at 5V Pulse Response at 5V DS012352-51 DS012352-52 10V PERFORMANCE Voltage Noise vs Common Output Voltage vs Offset Voltage vs Common Mode Voltage @ 10V Input Voltage@ 10V Mode Voltage @ 10V DS012352-53 DS012352-54 DS012352-55 www.national.com 10 L M C 10V PERFORMANCE (Continued) 7 1 1 Sourcing Output vs Sinking Output vs Gain and Phase vs T Output Voltage Output Voltage Capacitive Load @ 10V n y DS012352-56 DS012352-57 DS012352-58 Gain and Phase
in „Einbau-Vorverstärker für E-Gitarre, Ub = 3V“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
eSpDS1k2.pdf
. Input Voltage 42Vpk (DC + AC peak) Vertical Channel 2 (DS-1202 allows to stack up to max. 6 channels.) Vertical Resolution 9 bits/channel @ 5mV/DIV- 10V/DIV (8 bits @ 2mV/DIV) Sensitivity 2mV/DIV to 10V/DIV (as 2-5-10 step) DS-1102, DS-1202: DC to 200MHz Bandwidth
in „USB Oszilloskop“ · Mikrocontroller und Digitale Elektronik ·
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PDF
datasheet.pdf
Gate threshold voltage V GS(th) V GS=VDS, D= 1 mA 2.1 3 4 Zero gate voltage drain current IDSS µA V DS= 100 V, VGS= 0 V, j = 25 °C - 0.1 1 V DS= 100 V, VGS= 0 V, j = 125 °C - 10 100 Gate-source leakage current IGSS nA V GS = 20 V, DS= 0 V - 10 100 Drain-Source on-resistance R DS(on) V GS = 10 V,DI = 6
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PDF
DS18B20.pdf
held low for more than 480ms, all components on the bus will be reset. HARDWARE CONFIGURATION Figure 10 VPU DS18B20 1-WIRE PORT 4.7k DQ Pin 1-Wire Bus R X RX 5µA Typ. TX TX 100W M OSFET R X RECEIVE T X= TRANSMIT 8 of 20 DS18B20 TRANSACTION SEQUENCE The transaction sequence for accessing the DS18B20 is
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PDF
DS18b20.pdf
registers (bytes 2, 3 and 4) to EEPROM. If the device is being used in parasite power mode, within 10 µs (max) after this command 10 of 20 DS18B20 is issued the master must enable a strong pullup on the 1-wire bus for at least 10 ms as described in the POWERING THE DS18B20 section. 2 RECALL E [B8h] This
in „Temperatur ohne AD-Eingang messen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DS18b20.pdf
registers (bytes 2, 3 and 4) to EEPROM. If the device is being used in parasite power mode, within 10 µs (max) after this command 10 of 20 DS18B20 is issued the master must enable a strong pullup on the 1-wire bus for at least 10 ms as described in the POWERING THE DS18B20 section. 2 RECALL E [B8h] This
in „Displaybeleuchtung faden ohne Analog I/O“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DS18B20.pdf
CONFIGURATION REGISTER* CONFIGURATION REGISTER* BYTE 5 RESERVED (FFh) BYTE 6 RESERVED BYTE 7 RESERVED (10h) BYTE 8 CRC* *POWER-UP STATE DEPENDS ON VALUE(S) STORED IN EEPROM. Figure 9. DS18B20 Memory Map Maxim Integrated │ 8 www.maximintegrated.com DS18B20 Programmable Resolution 1-Wire Digital Thermometer
in „DS18B20 Sensor“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM710.PDF
-7 www.national.com 4 PrintDate=1997/05/16 PrintTime=10:46:11 7730 ds010410 Rev. No. 1 Proof 4 Typical Performance Characteristics Transfer Function Voltage Gain Voltage Gain DS010410-10 DS010410-11 DS010410-12 Input Bias Current Input Offset Current Supply
in „Hameg HM103-2 triggert nicht“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
DS10-g0120-PID.c
// 1---Vss Masse 5---R/W // 2---VDD +5V 6---E // 3---Vo Kontrast 7---DB0 // 4---RS 14---DB7 // // DS10_0101 190210; if (ADC12MEM3>50) ab ca 60E am Anschlag // DS10_0102 190210 D-Anteil einfügen, if (ADC12MEM3>50)reglerstart=1; // DS10_0102 190211 if (ADC12MEM3>50)reglerstart=1; entfernt // DS10_0103
in „while-Schleife vorzeitig verlassen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ds1820.pdf
by the bus master. INITIALIZATION PROCEDURE: RESET AND PRESENCE PULSES All communication with the DS18S20 begins with an initialization sequence that consists of a reset pulse from the master followed by a presence pulse from the DS18S20. This is illustrated in Figure 10. When the DS18S20 sends the
in „Thermometer mit ds18s20 und LED Annzeige“ · Projekte & Code ·
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PDF
lm317-1.pdf
) DS009063-61 FIGURE 9. θ JA vs 2oz Copper Area for TO-252 DS009063-63 FIGURE 10. Maximum Allowable Power Dissipation vs. Ambient Temperature for TO-252 DS009063-62 FIGURE 11. Maximum Allowable Power Dissipation
in „Konstantstromquelle“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM317__NAT.pdf
) DS009063-61 FIGURE 9. θ JA vs 2oz Copper Area for TO-252 DS009063-63 FIGURE 10. Maximum Allowable Power Dissipation vs. Ambient Temperature for TO-252 DS009063-62 FIGURE 11. Maximum Allowable Power Dissipation
in „Frage zu Spannungs/Stromregelschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DS1339.pdf
, revision code 2 = 2.0V CC±10%) 3 = 3.0V CC±10%) 33 = 3.3V CC±10%) * A “+” on the top mark indicates a lead-free device. 1 of 18 REV: 071205 2 DS1339 I C Serial Real-Time Clock ABSOLUTE MAXIMUM RATINGS Voltage Range on Any Pin Relative
in „Sehr lange Zeitspannen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DS18B20-PAR_TO-92__12_BIT_0_5__Fehler.pdf
+100°C and is accurate to ±0.5°C over a range of –10°C to +85°C. Each DS18B20-PAR has a unique 64-bit identification code, which allows multiple DS18B20-PARs to function on the same 1–wire bus; thus, it is simple to use one microprocessor to control many
in „Genauigkeitsangabe auf einem Thermometer“ · Mechanik, Gehäuse, Werkzeug ·
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PDF
DS1267.pdf
kΩ – DS1267-50 ~ 50 kΩ VB 1 14 VCC – DS1267-100 ~ 100 kΩ H1 2 13 SOUT § Operating Temperature Range: – Industrial: -40°C to +85°C L1 3 12 W0 W1 4 11 H0 PIN DESCRIPTIONS RST 5 10 L0 L0, L1 - Low End of Resistor
in „Poti mit Atmega8 ersetzen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
onewire.c
as input DS1820_PORT |= 1<<used_pin; //Pullup on _delay_us(4); return ; // de0508 } if (wrbit ==1) { DS1820_DDR |= 1<<used_pin; // define as ouput DS1820_PORT &= ~(1<<used_pin); //Pull low _delay_us(10); DS1820_
in „Delay mit Timer“ · Mikrocontroller und Digitale Elektronik ·
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PDF
bso215c.pdf
Preliminary data BSO 215 C Typ. capacitances (N-Ch.) Typ. capacitances (P-Ch.) C = f(V ) C = f(V ) DS DS parameter: V =0 V, f=1 MHz parameter: V =0 V, f=1 MHz GS GS 3 4 10 10 pF pF 10 3 C iss C C 2 C oss Ciss 10 Coss C rss 10 2 Crss 101 10 1 0 5 10 15 V 25 0 -5 -10 -15 V -25 V DS VDS Forward characteristics
in „H-Brücke am µC“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
176001-da-01-en-ic_lm317t.pdf
Regulator with Improved Ripple Rejection High Stability 10V Regulator DS009063-10 †Solid tantalum *Discharges C1 if output is shorted to ground DS009063-11 High Current Adjustable Regulator DS009063-12 ‡Optional — improves ripple rejection †Solid tantalum *Minimum
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PDF
176001-da-01-en-IC_LM317T.pdf
Regulator with Improved Ripple Rejection High Stability 10V Regulator DS009063-10 †Solid tantalum *Discharges C1 if output is shorted to ground DS009063-11 High Current Adjustable Regulator DS009063-12 ‡Optional — improves ripple rejection †Solid tantalum *Minimum
in „Spannungsregler“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Vishay-Silcnx_FET_VoltCntrlRES_AN105.pdf
resistors must be sufficiently large to provide minimum – VCR V GG loading to the circuit: + R = R // 10(r //R //R ) 2 3 DS load 1 R 2 R 3 10 [R ør1 DS (max) øRL] (3) Figure 6. Typically, 470-k▯ resistors will work well for most ap- plications. R1 is selected so that the ratio DS(on)øR Lo [(rDS(on)øR L
in „Spannungsgeregelter Widerstand“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LM317.pdf
Regulator with Improved Ripple Rejection High Stability 10V Regulator DS009063-10 †Solid tantalum *Discharges C1 if output is shorted to ground DS009063-11 High Current Adjustable Regulator DS009063-12 ‡Optional—improves ripple rejection †Solid tantalum *Minimum
in „Einfaches regelbares Netzteil mit LM350“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
1-buz171.pdf
pulse 0.01 -10-1 0 1 2 10 -3 -7 -6 -5 -4 -3 -2 -1 0 -10 -10 V -10 10 10 10 10 10 10 10 s 10 V t DS p Semiconductor Group 5 07/96 BUZ 171 Typ. output characteristics Typ. drain-source on-resistance I = ƒ( V ) R = ƒ(
in „IRF9Z34N als Ersatz für BUZ171“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DS1775R.pdf
AC Electrical Characteristics. The default state is R0="0" and R1="0" (9–bit conversions). 7 of 14 DS1775 Thermometer Resolution Configuration Table 5 R1 R0 Thermometer Resolution Max Conversion Time 0 0 9-bit 0.1875s 0 1 10-bit 0.375s 1 0 11-bit 0.75s 1 1 12-bit 1.5s Thermostat Setpoints Programming
in „AkkuPack mit 12 Volt 2100mAh wie laden ?“ · Mikrocontroller und Digitale Elektronik ·