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PDF
504925-panasonic-aqz202-photomos-relais-1-st-1-schliesser-60-vdc-60-vac-3000-ma-polzahl-4.pdf
voltage VF IF= 50 mA Maximum 1.5 V IF = 10 mA Typical 0.11 Ω 0.23 Ω 0.7 Ω 2.1 Ω On resistance R on IL=Max. Output Maximum 0.18 Ω 0.34 Ω 1.1 Ω 3.2 Ω Within 1 s on time IF = 0 mA Off state leakage current Maximum — 10 μA VL = Max. Typical 2.46 ms 2.40 ms 1.12 ms 1.65 ms IF = 10 mA IL= 100 mA Maximum 5.0 ms
in „Suche Halbleiterelement als Ersatz für Relai in Radar-Bewegungsmelder“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
504925-panasonic-aqz202-photomos-relais-1-st-1-schliesser-60-vdc-60-vac-3000-ma-polzahl-4.pdf
voltage VF IF= 50 mA Maximum 1.5 V IF = 10 mA Typical 0.11 Ω 0.23 Ω 0.7 Ω 2.1 Ω On resistance R on IL=Max. Output Maximum 0.18 Ω 0.34 Ω 1.1 Ω 3.2 Ω Within 1 s on time IF = 0 mA Off state leakage current Maximum — 10 μA VL = Max. Typical 2.46 ms 2.40 ms 1.12 ms 1.65 ms IF = 10 mA IL= 100 mA Maximum 5.0 ms
in „Welche Eigenschaften haben Solid State Relais, SSR ?“ · Offtopic ·
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PDF
504925-panasonic-aqz202-photomos-relais-1-st-1-schliesser-60-vdc-60-vac-3000-ma-polzahl-4.pdf
voltage VF IF= 50 mA Maximum 1.5 V IF = 10 mA Typical 0.11 Ω 0.23 Ω 0.7 Ω 2.1 Ω On resistance R on IL=Max. Output Maximum 0.18 Ω 0.34 Ω 1.1 Ω 3.2 Ω Within 1 s on time IF = 0 mA Off state leakage current Maximum — 10 μA VL = Max. Typical 2.46 ms 2.40 ms 1.12 ms 1.65 ms IF = 10 mA IL= 100 mA Maximum 5.0 ms
in „Kann diese Schaltung den 74HC132 killen?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
504925-panasonic-aqz202-photomos-relais-1-st-1-schliesser-60-vdc-60-vac-3000-ma-polzahl-4.pdf
voltage VF IF= 50 mA Maximum 1.5 V IF = 10 mA Typical 0.11 Ω 0.23 Ω 0.7 Ω 2.1 Ω On resistance R on IL=Max. Output Maximum 0.18 Ω 0.34 Ω 1.1 Ω 3.2 Ω Within 1 s on time IF = 0 mA Off state leakage current Maximum — 10 μA VL = Max. Typical 2.46 ms 2.40 ms 1.12 ms 1.65 ms IF = 10 mA IL= 100 mA Maximum 5.0 ms
in „Relais ersetzen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
4_5902390009465407372.pdf
voltage VF IF= 50 mA Maximum 1.5 V IF = 10 mA Typical 0.11 Ω 0.23 Ω 0.7 Ω 2.1 Ω On resistance R on IL=Max. Output Maximum 0.18 Ω 0.34 Ω 1.1 Ω 3.2 Ω Within 1 s on time IF = 0 mA Off state leakage current Maximum — 10 μA VL = Max. Typical 2.46 ms 2.40 ms 1.12 ms 1.65 ms IF = 10 mA IL= 100 mA Maximum 5.0 ms
in „CD4066 als Relaisersatz?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
tca9548a.pdf
© 2012–2019, Texas Instruments Incorporated Product Folder Links: TCA9548A TCA9548A www.ti.com SCPS207G –MAY 2012–REVISED NOVEMBER 2019 6 Specifications (1) 6.1 Absolute Maximum Ratings over operating free-air temperature range (unless otherwise noted) MIN MAX UNIT VCC Supply voltage –0.5 7 V VI Input
in „Unterschied TCA9548A und PCA9548A“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tca9548a.pdf
© 2012–2019, Texas Instruments Incorporated Product Folder Links: TCA9548A TCA9548A www.ti.com SCPS207G –MAY 2012–REVISED NOVEMBER 2019 6 Specifications (1) 6.1 Absolute Maximum Ratings over operating free-air temperature range (unless otherwise noted) MIN MAX UNIT VCC Supply voltage –0.5 7 V VI Input
in „Sensor Array ansprechen mit I2C - Unterschiede zu Mega2560 und Seeed RP2040“ · Mikrocontroller und Digitale Elektronik ·
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PDF
max232.pdf
+70°C Dice* X MAX232EEPE -40°C to +85°C 16 Plastic DIP 2 MAX206EEAG -40°C to +85°C 24 SSOP 3 MAX207ECNG 0°C to +70°C 24 Narrow Plastic DIP MAX232EESE -40°C to +85°C 16NarrowSO MAX207ECWG 0°C to +70°C 24 SO MAX232EEWE -40°C to +85°C 16 Wide SO 2 MAX207ECAG 0°C to +70°C 24 SSOP MAX241ECWI 0°C to +70°C 28 SO E MAX207EENG -40°C to +85°C 24 Narrow Plastic DIP MAX241ECAI 0°C to +70°C 28SSOP / MAX241EEWI -40°C to +85°C 28 SO M MAX207EEWG -40°C to +85
in „ATMega8L an USB per max232“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX232.pdf
+70°C Dice* X MAX232EEPE -40°C to +85°C 16 Plastic DIP 2 MAX206EEAG -40°C to +85°C 24 SSOP 3 MAX207ECNG 0°C to +70°C 24 Narrow Plastic DIP MAX232EESE -40°C to +85°C 16NarrowSO MAX207ECWG 0°C to +70°C 24 SO MAX232EEWE -40°C to +85°C 16 Wide SO 2 MAX207ECAG 0°C to +70°C 24 SSOP MAX241ECWI 0°C to +70°C 28 SO E MAX207EENG -40°C to +85°C 24 Narrow Plastic DIP MAX241ECAI 0°C to +70°C 28SSOP / MAX241EEWI -40°C to +85°C 28 SO M MAX207EEWG -40°C to +85
in „Mikrocontrollerboard: Funktioniert das?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX232_MAX.pdf
+70°C Dice* X MAX232EEPE -40°C to +85°C 16 Plastic DIP 2 MAX206EEAG -40°C to +85°C 24 SSOP 3 MAX207ECNG 0°C to +70°C 24 Narrow Plastic DIP MAX232EESE -40°C to +85°C 16NarrowSO MAX207ECWG 0°C to +70°C 24 SO MAX232EEWE -40°C to +85°C 16 Wide SO 2 MAX207ECAG 0°C to +70°C 24 SSOP MAX241ECWI 0°C to +70°C 28 SO E MAX207EENG -40°C to +85°C 24 Narrow Plastic DIP MAX241ECAI 0°C to +70°C 28SSOP / MAX241EEWI -40°C to +85°C 28 SO M MAX207EEWG -40°C to +85
in „AVR an Handy C35“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX202E-MAX241E.pdf
. The MAX206E/MAX207E/MAX208E come in C1+ 1 16 CC , V+ 2 GND M 24-pin SO, SSOP, and narrow DIP packages. The 15 A MAX232E/MAX241E operate with four 1µF capacitors, C1- 3 14 T1OUT while the MAX202E/MAX206E/MAX207E
in „Touch-screen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tca9548a.pdf
Instruments Incorporated Submit Documentation Feedback 3 Product Folder Links: TCA9548A TCA9548A SCPS207D –MAY 2012–REVISED JANUARY 2015 www.ti.com 7 Specifications (1) 7.1 Absolute Maximum Ratings over operating free-air temperature range (unless otherwise noted) MIN MAX UNIT VCC Supply voltage –0.5 7
in „plötzl. Spannungsanstieg bei TCA9548a“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ILD205.pdf
Ratios 7° ILD205, 40 – 80% .230 .002 .015 .002 40° .058 .005 ILD206, 63 –125% (.38 .05) (1.49 .13) ILD207, 100 – 200% (4.88 .05) .004 (.10) ILD211, 20% Minimum .008 (.20) .008 (.20) .125 .005 ILD213, 100% Minimum 5° Max. (3.18 .13) ILD217, 100% Minimum at 1 mA R.010 Lead • High BVCEO, 70V .050 (1.27) Typ.020 .004 (.25) Max. Coplanarity • Compatible with DualWave,Vapor Phase and (.15 .10) .001 (.04) .040 (1.02) 2 Plcs. Max. IR Reflow Soldering DESCRIPTION Characteristics (T A25°C) The ILD205/206/207/211/213/217 are optically
in „Optokoppler Vergleichstyp“ · Mikrocontroller und Digitale Elektronik ·
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PDF
datenblatt-505399-panasonic-aqz204d-photomos-relais-1-st-1-schliesser-400-vdc-400-vac-450-ma-polzahl-4.pdf
= 5 V Typical 0.066 Ω 0.180 Ω 0.64 Ω 2.4 Ω VIN= 5 V On resistance Ron IL= Max. Maximum 0.18 Ω 0.34 Ω 1.1 Ω 3.2 Ω Output Within 1 s on time VIN= 0 V Off state leakage current Maximum leak 10 μA VL = Max. Typical 5.8 ms 4.2 ms 2.7 ms 2.3 ms VIN= 5 V Turn on time* Ton IL= 100 mA
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PDF
505399-panasonic-aqz204d-photomos-relais-1-st-1-schliesser-400-vdc-400-vac-450-ma-polzahl-4.pdf
= 5 V Typical 0.066 Ω 0.180 Ω 0.64 Ω 2.4 Ω VIN= 5 V On resistance Ron IL= Max. Maximum 0.18 Ω 0.34 Ω 1.1 Ω 3.2 Ω Output Within 1 s on time VIN= 0 V Off state leakage current Maximum leak 10 μA VL = Max. Typical 5.8 ms 4.2 ms 2.7 ms 2.3 ms VIN= 5 V Turn on time* Ton IL= 100 mA
in „Relais ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
505399_panasonic_aqz204d_photomos_relais_1_st_1_schliesser_400_vdc.pdf
= 5 V Typical 0.066 Ω 0.180 Ω 0.64 Ω 2.4 Ω VIN= 5 V On resistance Ron IL= Max. Maximum 0.18 Ω 0.34 Ω 1.1 Ω 3.2 Ω Output Within 1 s on time VIN= 0 V Off state leakage current Maximum leak 10 μA VL = Max. Typical 5.8 ms 4.2 ms 2.7 ms 2.3 ms VIN= 5 V Turn on time* Ton IL= 100 mA
in „230VAC Max 200mA mit ESP32 3,3VDC schalten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
505399-panasonic-aqz204d-photomos-relais-1-st-1-schliesser-400-vdc-400-vac-450-ma-polzahl-4.pdf
= 5 V Typical 0.066 Ω 0.180 Ω 0.64 Ω 2.4 Ω VIN= 5 V On resistance Ron IL= Max. Maximum 0.18 Ω 0.34 Ω 1.1 Ω 3.2 Ω Output Within 1 s on time VIN= 0 V Off state leakage current Maximum leak 10 μA VL = Max. Typical 5.8 ms 4.2 ms 2.7 ms 2.3 ms VIN= 5 V Turn on time* Ton IL= 100 mA
in „MOSFET 230V AC / 3V3 Arduino“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LTC2945.pdf
(4) *Set Bit A4 before writing to ADC and MIN/MAX ADC Registers Table 8. ADC, ADC MIN/MAX, MIN/MAX THRESHOLD Register Data Format: LSB Bytes-Read/Write* BIT (7) BIT (6) BIT (5) BIT (4) BIT (3) BIT (2) BIT (1) BIT (0) Data (3) Data (2) Data (1) Data (0) Reserved** Reserved** Reserved** Reserved** * Set Bit A4 before writing to ADC and MIN/MAX ADC Registers ** Read as ‘0’ Table 9. POWER, MIN/MAX POWER, MIN/MAX POWER THRESHOLD Register Data Format: MSB2 Bytes- Read/Write* BIT (7) BIT (6) BIT (5) BIT (4) BIT (3) BIT (2) BIT (1) BIT (0) Data
in „U/I/P Metrer für Netzteile“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2945f.pdf
(4) *Set Bit A4 before writing to ADC and MIN/MAX ADC Registers Table 8. ADC, ADC MIN/MAX, MIN/MAX THRESHOLD Register Data Format: LSB Bytes-Read/Write* BIT (7) BIT (6) BIT (5) BIT (4) BIT (3) BIT (2) BIT (1) BIT (0) Data (3) Data (2) Data (1) Data (0) Reserved** Reserved** Reserved** Reserved** * Set Bit A4 before writing to ADC and MIN/MAX ADC Registers ** Read as ‘0’ Table 9. POWER, MIN/MAX POWER, MIN/MAX POWER THRESHOLD Register Data Format: MSB2 Bytes- Read/Write* BIT (7) BIT (6) BIT (5) BIT (4) BIT (3) BIT (2) BIT (1) BIT (0) Data
in „I2C mit Bascom Fehlersuche bei LTC2945“ · Mikrocontroller und Digitale Elektronik ·
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PDF
primayside.pdf
þÿPrimärseite U_max-Sperrspann=(230V* sqrt(+)235,77V* 1,= 729,35V P_max-Verl=s0,5* 0,05* 0,36m* 70kH* (0,7A)=20,3087W U_ref-s=k(60V+ 0,048+1,7)* (63/16,5)= 235,77V V H TR201 C Transformator_15WDigitalLED D P S D202 D204
in „Flyback Snubber Energie beträgt vielfaches der Streuinduktivität“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DBLS201G_DBLS209G_TSC.pdf
PREFERRED P/N PART NO. PACKING CODE PACKING CODE DESCRIPTION SUFFIX SUFFIX AEC-Q101 qualified DBLS207GHRDG DBLS207G H RD G Green compound RATINGS AND CHARACTERISTICS CURVES (TA=25°C unless otherwise noted) FIG.1 FORWARD CURRENT DERATING CURVE FIG. 2 TYPICAL REVERSE CHARACTERISTICS 100 2.5 A A T ( N
in „Datenblatt Brückengleichrichter“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
main.c
55,61,67,73,80,87,94,102,110,118,127,135,144,153,162,171,180,188,197,205,212,220,226,232,238,243,247,250,252,254,254,254,253,251,248,245,240,235,229,223,216,209,201,192,184,175,166,158,149,140,131,123,114,106,98,91,83,76,70,64,58,52,47,42,38,34,30,26,23,20,17,15,13,11,9,7,6,4,3,2,1,1,2,3,5,6,8,10,12,14,16,19,22,25,28,32,36,40,45,50}, {96,104,112,120,129,138,146,155,164,173,182,190,199,207,214,221,228,234,239,244,248,251,253,254,254,254,253,251,248,244,239,234,228,221,214,207,199,190,182,173,164,155,146,138,129,120,112,104,96,89,82,75,68,62,56,51,46,41,37,33,29,26,22,19,17,14,12,10,8,7,5,4,3,1,0,1,3,4,5,7,8,10,12,14,17,19,22,26,29,33,37,41,46,51,56,62,68,75,82,89
in „Soft-PWM Version 3: Probleme beim Anpassen des Programms“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
wird im Interrupt gesetzt while(pwm_sync==0); // Zeiger tauschen cli(); tausche_zeiger(); pwm_cnt_max = k; sei(); } // Timer 1 Output COMPARE A Interrupt ISR(TIMER1_COMPA_vect) { static uint8_t pwm_cnt; // ändern auf uint16_t für mehr als 8 Bit Auflösung uint16_t tmp; // ändern uint16_t oder uint32_
in „16 Kanal Software-PWM, Bitte um Hilfe“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
wird im Interrupt gesetzt while(pwm_sync==0); // Zeiger tauschen cli(); tausche_zeiger(); pwm_cnt_max = k; sei(); } void countpwm(void) { // ----Neue Funktion n++; // n = Anzahl der PWM Durchläufe if (n >= 20) { n = 0; flag = 1; // flag = 1 --> neue Werte setzen } } // Timer 1 Output COMPARE A Interrupt
in „Soft-PWM Version 3: Probleme beim Anpassen des Programms“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TMC5240-EVAL_V10_-_Schematic_Drawing.pdf
2 2 1 3 31 32 IN OUTPUT SPI_SCK SPI_MOSI 5 4 29 30 SHDN FB NC SPI_CS_DRV GND GND GND GND 6 27 28 C207 POK NC C208 NC NC 1uF/16V GND 4.7uF/6.3V 25 26 0603 0603 NC NC 2 MAX8881EUT33 23 24 SOT23-6 CLK NC 21 22 UART_TX DIAG1/UART_RX Motor Connector GND GND GND 19 20 SLEEP UART_EN 17 18 REFL_INT REFR_INT
in „TMC5240 antwortet nicht im Single Wire Uart“ · Mikrocontroller und Digitale Elektronik ·
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Datei
2x1024x8_10.txt
188,189,189,190,191,191,192,193,193,194,195,195,196,197,197,198 .db 199,199,200,201,201,202,202,203,204,204,205,206,206,207,207,208 .db 209,209,210,211,211,212,212,213,213,214,215,215,216,216,217,217 .db 218,219,219,220,220,221,221,222,222,223,223,224,224,225,225,226 .db 226,227,227,228,228,229,229,230,230,231,231,232,232,233,233,233
in „DDS normal ?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Beispiel_ESP32_ledc.ino
(pin, frequency, resolution); } constexpr unsigned ledList [] {D2, D3, D4, D5, D6}; // max. 5 Leds // --------------------------------------------------------------------------------------------------------- void setup (void) { Serial.begin(115200); for (unsigned i=D2; i<D13; i++) { pinMode
in „Arduino-ESP32 LEDC API ledcAttach() resolution“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Motorola_tech_info.pdf
Ground, 6–V (Style 5) CC Threshold Threshold Current On Current Off IF(off) F(on) VCC tr ft Device mA Max mA Min Min Max Min Max s Typ H11L1 1.6 0.3 0.5 0.9 3 15 0.1 H11L2 10 0.3 0.5 0.9 3 15 0.1 MOC5007 1.6 0.3 0.5 0.9 3 15 0.1 MOC5008 4 0.3 0.5 0.9 3 15 0.1 MOC5009 10 0.3 0.5 0.9 3 15 0.1 Devices listed
in „Isolationsspannung zwischen Doppel-FETs in einem SO8-Gehäuse“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
mon.txt
$00100208; 0010025C: 46FC2000 MOVE.W #$2000,SR; 00100260: 203C55AA55AA MOVE.L #$55AA55AA,D0; 00100266: 207C00000000 MOVEA.L #$00000000,A0; 0010026C: B090 CMP.L (A0),D0; 0010026E: 6604 BNE.B $00100274; 00100270: 4EA80004 JSR $0004(A0); 00100274: 207C00008000 MOVEA.L #$00008000,A0; 0010027A: B090 CMP.L (A0),D0; 0010027C: 6604 BNE.B $00100282; 0010027E: 4EA80004 JSR $0004(A0); 00100282: 207C00004000 MOVEA.L #$00004000,A0; 00100288: B090 CMP.L (A0),D0; 0010028A: 6604 BNE.B $00100290; 0010028C: 4EA80004 JSR $0004(A0); 00100290: 207C00002000 MOVEA.L #$00002000,A0; 00100296: B090 CMP.L (A0
in „MiniComputer 68k2.0 (MC68HC001)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Touch-Statistik.xml
="2014-03-04_03-00-20"> <TouchStats count="453" x="40" y="40" z="0" nc="off"> <X mean="215,0" min="207" max="223" stdDev="1,3" /> <Y mean="287,3" min="286" max="288" stdDev="0,4" /> <Zx mean="1862,7" min="1858" max="1866" stdDev="1,3" /> <Zy mean="946,3" min="928" max="966" stdDev="3,9" /> </TouchStats
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PDF
vishayHVTantal.pdf
Wet Tantalum Capacitors Vishay Cylindrical Body, Hermetically Sealed DIMENSIONS AND STANDARD RATINGS MAX. MAX. DCL AT MAX. MAX. % CAP. MAX. RIPPLE SIZE CAP. WORKING TYPICAL MAX. WVDC Z CHANGE FROM APPROX 120 Hz RMS D H VOLTAGE ESR IN µA - 55 °C ROOM TEMP. WEIGHT - 55 °C TO + + PART + 175 °C 0.031 0.062
in „Tantal für 400V“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Hardware.pdf
4 1 2 ILD207 4 k D LL 3 4 ILD207 5 k D LL 3 4 GND R 1 GND R 1 22-27-2051-05 J5-5 J6-5 J6-1 V V + + 22-27-2051-05 5 k 5 k J7-1 R 4 OK3A LGR971 R 4 OK3B LGR971 J7-2 8 1 R53 6 3 R54 22-27-2051-05 E4 J7-3 E5 J8-3 J8-1 D20 8 1k2 D21 81k2 J8-2 7 2 2 1 5 4 3 1 J8-4 5 2 2 L 6 2 2 L J8-5 ILD207 R 1 D L ILD207 R 1 D L J7-4 GND GND J7-5 GND GND F 3 V 7 0 3 1 IC12 C 2 L2 + + 3 VIN BOOST 6 1 2 1 /SHDN SW 5 744778133 + C28 C29 BIAS 7 C30 47µF 100nF 4 GND FB 8 22pF 7 k C31 C32 C33 5 9 R 1 100nF
in „74HCT595 + ULN2003 an 5V und 12V problem“ · Mikrocontroller und Digitale Elektronik ·
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Datei
PWM_Frequenzhochlauf.c
ISR für Overflowinterrupt { if((stepsizecnt/10000)<(stepsizemax)) // Erhöhe Schrittweite, solange max. { // Schrittweite nicht erreicht ist stepsizecnt+=varx; stepsizecntx=(uint16_t)(stepsizecnt/10000); } else { stepsizecntx=stepsizemax; } if(phaseaccu==0) // Neuer Anlauf des Phasenaccu { cnt++; cntx
in „PWM Frequenzhochlauf - Endschrittweite wird nicht erreicht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
1-5KE_TVS_Dioden.pdf
temperature coefficient V Forward voltage drop I F PP Types RM @ V RM VBR @ R VCL @ PP V CL@ IPP αT C max min nom max max max max typ note2 10/1000 s 8/20 s note3 note4 -4 Unidirectional Bidirectional A V V V V mA V A V A 10 / °C pF 5.8 6.45 6.8 7.14 10 10.5 143 13.4 746 5.7 9500 1.5KE6V8A 1.5KE6V8CA 1000
in „Verstärker TAS5630“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
PSP108_datenblatt_Co2_.pdf
reset (power up and power down) Absolute max voltage range (Note 1) G0 - 0.3V to DVCC_out + 0.5V Internal pull up to DVCC_out resistor 120k Output low level (Note 1) 0.75 VDC max at 10mA sink Output high level (Note 1) 2.4 VDC at 2mA source UART_RxD
in „MSP430 MODBUS“ · Mikrocontroller und Digitale Elektronik ·
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Datei
I2C.asm
93h ; LED6 -> PORTD,5 -> 6cm = 3,528 V => 180,65 => 181= B5h ; LED7 -> PORTD,6 -> 7cm = 4,049 V => 207,32 => 207= CFh ; LED8 -> PORTD,7 -> 8cm = 4,444 V => 227,55 => 228= E4h ; ********************************************************** list p=16F887 #include <p16f887.inc> ; .inc Datei des PIC16F887 ;
in „PIC16F887 - LCD Toshiba 20x4 Zeichen - Assembler“ · Mikrocontroller und Digitale Elektronik ·
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Datei
160gb-defekt.txt
://smartmontools.sourceforge.net/ === START OF INFORMATION SECTION === Model Family: Maxtor DiamondMax Plus 9 family Device Model: Maxtor 6Y160P0 Serial Number: Y44JBXME Firmware Version: YAR41BW0 User Capacity: 163.928.604.672 bytes Device is: In smartctl database [for details use: -P show] ATA Version
in „Zeigt her eure S.M.A.R.T.-Werte!“ · PC Hard- und Software ·
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Datei
stm8s.h
DISABLE) || ((STATE) == ENABLE)) typedef enum {ERROR = 0, SUCCESS = !ERROR} ErrorStatus; #define U8_MAX (255) #define S8_MAX (127) #define S8_MIN (-128) #define U16_MAX (65535u) #define S16_MAX (32767) #define S16_MIN (-32768) #define U32_MAX (4294967295uL) #define S32_MAX (2147483647) #define S32_MIN
in „sdcc source code in mehrere Dateien aufteilen“ · Mikrocontroller und Digitale Elektronik ·
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Bild
Tabelle mit UBRRn Einstellungen für Baudraten
Rate [bps] fosc = 16.0000MHz U2Xn = 0 U2Xn = 1 UBRRn Error UBRRn Error 2400 416 -0.1% 832 0.0% 4800 207 0.2% 416 -0.1% 9600 103 0.2% 207 0.2% 14.4k 68 0.6% 138 -0.1% 19.2k 51 0.2% 103 0.2% 28.8k 34 -0.8% 68 0.6% 38.4k 25 0.2% 51 0.2% 57.6k 16 2.1% 34 -0.8% 76.8k 12 0.2% 25 0.2% 115.2k 8 -3.5% 16 2.1% 230.4k 3 8.5% 8 -3.5% 250k 3 0.0% 7 0.0% 0.5M 1 0.0% 3 0.0% 1M 0 0.0% 1 0.0% Max.(1) 1Mbps 2Mbps (1) UBRRn = 0, Error = 0.0%
in „Hilfe Datenlogger Openlog“ · Mikrocontroller und Digitale Elektronik · · Screenshots
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Datei
I2C.asm
93h ; LED6 -> PORTD,5 -> 6cm = 3,528 V => 180,65 => 181= B5h ; LED7 -> PORTD,6 -> 7cm = 4,049 V => 207,32 => 207= CFh ; LED8 -> PORTD,7 -> 8cm = 4,444 V => 227,55 => 228= E4h ; ********************************************************** list p=16F887 #include <p16f887.inc> ; .inc Datei des PIC16F887 ;
in „PIC16F887 - LCD Toshiba 20x4 Zeichen - Assembler“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Relais-Carlo-Gavazzi-MZP-R2.pdf
Max. switching voltage (VDE 0435) 380 VAC 380 VAC 380 VAC Max. switching powe3)with resistive load in AC 1250 VA 2500 VA 4000 VA Max. switching power in DC see diagram 3 see diagram 3 see diagram 3 Life ( see diagram 1) Expected life at max. resistive load and repetition at: 1000 cycles /h 3 x 10 5 2 x 10 5 3 x 105 7.5 x 104 10 cycles 500 cycles/h 3.5 x 105 2.5 x 105 3.5 x 105 8 x 104 1.5 x 105 Max. electrical repetition rate 3600 cycles
in „24V Relais ansteuern“ · Analoge Elektronik und Schaltungstechnik ·
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ltn154x3-l06.pdf
Approval 1.2 ELECTRICAL ABSOLUTE RATINGS (1) TFT LCD MODULE VDD=3.3V, VSS= GND = 0V Item Symbol Min. Max. Unit Note Power Supply Voltage VDD V DD– 0.3 V DD+ 0.3 V (1) Logic Input Voltage VDD V DD– 0.3 V DD+ 0.3 V (1) Note (1) Within Ta (25 ± 2 °C ) (2) BACK-LIGHT UNIT Ta = 25 ± 2 °C Item Symbol Min. Max
in „BeagleBoard LVDS Transmitter“ · Mikrocontroller und Digitale Elektronik ·
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DBL_CT_LT-LOETSPITZEN_DBL_DEUTSCH.pdf
Lötkolben WP 80, WSP 80, MPR 80 und FE 75, TCP-Lötkolben Bestell-Nr. Modell Beschreibung Breite A Dicke B max.LängeL T005 44 494 99 LT 1SC Meißelform, (1 Stück) 0,4 mm 0,15 mm 15,0 mm T005 44 494 10 (10 Stück) T005 44 497 99 LT 1SCNW Meißelform, (1 Stück), verchromt 0,3 mm 0,1 mm 15,0 mm T005 44 440 99 LT A
in „Verzweifelte Suche nach einer Lötspitze“ · Mechanik, Gehäuse, Werkzeug ·
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Datei
uiwa03.asm
einstellbare Konstanten: .equ scharf=5 ;Wartezeit vom Einschalten bis zum "scharf sein" ;in Sekunden (max 30) .equ ibmin=70 ;min. erlaubte Impulsbreite in 10µs .equ ibmax=230 ;max. erlaubte Impulsbreite in 10µs .equ iamin=25 ;min. erlaubter Impulsabstand in 0,64ms .equ iamax=38 ;max. erlaubter Impulsabstand
in „PWM für Modellservos“ · Mikrocontroller und Digitale Elektronik ·
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A200-DATASHEET_MAX756_757.pdf
2.7V to 5.5V. Typical full-load efficiencies M for the MAX756/MAX757 are greater than 87%. 500kHz Maximum Switching Frequency A ±1.5% Reference Tolerance Over Temperature The MAX756/MAX757 provide three improvements over X previous devices. Physical size is
in „MAX756-Schlechter Wirkungsgrad“ · Analoge Elektronik und Schaltungstechnik ·
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A200-DATASHEET_MAX756_757.pdf
2.7V to 5.5V. Typical full-load efficiencies M for the MAX756/MAX757 are greater than 87%. 500kHz Maximum Switching Frequency A ±1.5% Reference Tolerance Over Temperature The MAX756/MAX757 provide three improvements over X previous devices. Physical size is
in „Step-Up Wandler MAX756“ · Analoge Elektronik und Schaltungstechnik ·
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bom-v1-0.pdf
€ Q100, Q101, Q102, Q103 4BC 817, SMD, NPN, 0.5A BC 817-25 SMD 0,02 € 0,08 € R20 13,9Ohm, 1W, MELF207 VIT ZC207 3,9R 0,16 € 0,16 € R31, R36 2100Ohm, 0805 SMD-0805 100 0,03 € 0,06 € R35, R37 2150Ohm, 0805 SMD-0805 150 0,03 € 0,06 € R52, R53, R66, R68, R70, R71, R121, R130 8180Ohm, 0805 SMD-0805 180 0,03
in „Universalplatine für STM32, grobe Fehler vor der Herstellung?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
171,171,172,172,173,173,174,175,175,176,176,177,178,178,179,179,180,181,181,182,182,183,183,184,185,185,186,186,187,188,188,189,189,190,191,191,192,192,193,194,194,195,195,196,196,197,198,198,199,199,200,201,201,202,202,203,204,204,205,205,206,207,207,208,208,209,210,210,211,211,212,213,213,214,214,215,216,216,217,217,218,219,219,220,220,221,222,222,223,223,224,225,225,226,227,227,228,228,229,230,230,231,231,232,233,233,234,234,235,236,236,237,237,238,239,239,240,241,241,242,242,243,244,244,245,246,246,247,247,248,249,249,250,250,251,252,252,253,254,254,255,255,256,257,257,258,259,259,260,260,261,262,262,263,264,264,265,266,266,267,267,268,269,269,270,271,271,272,273,273,274,274,275,276,276,277,278,278,279,280,280,281,282,282,283,283,284,285,285,286,287,287,288,289,289,290,291,291,292,293,293,294,295,295,296,297,297,298,299,299,300,301,301,302,303,303,304,305,305,306,307,307,308,309,309,310,311,311,312,313,313,314,315,315,316,317,318,318,319,320,320,321,322,322,323,324,324,325
in „HSV RGB Led Dimmer, C Code & Video & Doku“ · Projekte & Code ·
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LAN9214_V10_neutr_Sch.pdf
1 2 1 SMAJ15 100n 10n 33u10V ~1 1D209 60V/1.1A SS36 blau P221 2 ~2 U221 24V L205 LM1117 +3V 5,2V 1D207 2 R221 3 2 KLEMM2 1 1 IN OUT 3.3Vdig PSI201 D202 U201 LM2676 200uH C206 0.1R SET R229 P201 1 2 2 1 1205 1 C208 SS36 1 C224 1 24V +24V 2 7 Vin Out-Vsw6 1,21V 3.3k 100n 1 C222 1k ~1 60V/0.75A S1D C202
in „LAN9514 schematic“ · Mikrocontroller und Digitale Elektronik ·
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Carel-NTC.pdf
NTC 10K@25°C ß 3435 Temp. Valeur de résistance Temp. Valeur de résistance Temp. Valeur de résistance Max. Typique Min. Max. Typique Min. Max. Typique Min. °C KΩ KΩ KΩ °C KΩ KΩ KΩ °C KΩ KΩ KΩ -50 344,60 329,50 314,90 1 26,65 26,13 25,62 56 3,50 3,43 3,35 -49 325,00 310,90 297,30 2 25,52 25,03 24,55 57 3,39