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PDF
aqh3213.pdf
soldering lead) appearance, and characteristics. The following storage conditions are recommended: t3 Temperature: 0 to 45 °C T3 T1 = 150 to 180°C Humidity: Max. 70%RH T2 T2 = 230°C Atmosphere: No harmful gasses such as sulfurous acid gas, T3 = 240 to 250°C minimal dust. T1 t1 = 60 to 120 s t2 = Within
in „230V LED-Lampe (kleiner Strom) schalten (SSR, Optotriac,.)?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
rudi_____RX-V4A_TSR-400.pdf
models 3 RX-V4A/TSR-400 T model B, G, F models K model V model A model P, S models 4 RX-V4A/TSR-400 n REMOTE CONTROL PANEL TSR-400 G model RAV574 T model 5 RX-V4A/TSR-400 n SPECIFICATIONS n Audio Section Frequency Response
in „Test in der Schaltung STR3A400“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BRO_EM_GER.pdf
Modul für VMU-E Beschreibung Kommunikations- und Ausgangsmodul für VMU-E Abmessungen (mm, H x B x T) 90 x 18 (mit Stecker 25 mm) x 63 mm (1TE) Anzeige (durch LED´s) Grüne LED Versorgung Busanschluss Modbus RTU RS485, 2-Draht, bidirektional Schraubklemmen 1,5 mm² Baudrate 9.600, 18.200, 38.400 und 115.200
in „Strommessung Hall-Sensor 30A 40A“ · Mikrocontroller und Digitale Elektronik ·
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Datei
unixtime_utc_to_german.c
uint32_t TAGE_IN_100_JAHREN = 36524ul; /* 100*365 + 25 - 1 */ const uint32_t TAGE_IN_400_JAHREN = 146097ul; /* 400*365 + 100 - 4 + 1 */ const uint32_t TAGN_AD_1970_01_01 = 719468ul; /* Tagnummer bezogen auf den
in „Unixtime zu Localtime OHNE Library“ · Softwareentwicklung ·
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PDF
Bavaria_Electric_Katalog_EC_LOG.pdf
Max. Belasting Gehäuse maße Artikelnummer Zuleitung Hauptschalter schalter Motorabgang in Ampere B-H-T EC41HS02R02A-FE 1 1 02 02 max. 6 A 400x500x210 mm EC41HS02R04A-FE 1 1 02 04 max. 12 A 400x500x210 mm EC-Control inkl. Reparaturschutzschalter im Stahlblechgehäuse IP 65 RAL 7035 Reparatur- Max. Belasting in Gehäuse maße Artikelnummer Zuleitung Hauptschalter schalter Motorabgang Ampere B-H-T EC41HS03R03A-FE 1 1 03 03 max. 9 A 400x500x210 mm EC41HS03R06A-FE 1 1 03 06 max. 18 A 400x500x210 mm Copyright © 2008 BAVARIA Electric GmbH &Co. KG Seite 60 EC Motor Control IP 65 im Stahlblechgehäuse
in „Drezahlregelung EC-Motor“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Spezifikation.pdf
devices STANDARD-MODE FAST-MODE PARAMETER SYMBOL UNIT MIN. MAX. MIN. MAX. SCL clock frequency f 0 100 0 400 kHz SCL Hold time (repeated) START condition. tHD;STA 4.0 – 0.6 − s After this period, the first clock pulse is generated LOW period of the SCL clock t 4.7 – 1.3 – s LOW HIGH period of the SCL clock
in „SPI, ISP, USI, TWI, I2C“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Spezifikation.pdf
devices STANDARD-MODE FAST-MODE PARAMETER SYMBOL UNIT MIN. MAX. MIN. MAX. SCL clock frequency f 0 100 0 400 kHz SCL Hold time (repeated) START condition. tHD;STA 4.0 – 0.6 − s After this period, the first clock pulse is generated LOW period of the SCL clock t 4.7 – 1.3 – s LOW HIGH period of the SCL clock
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PDF
Spezifikation.pdf
devices STANDARD-MODE FAST-MODE PARAMETER SYMBOL UNIT MIN. MAX. MIN. MAX. SCL clock frequency f 0 100 0 400 kHz SCL Hold time (repeated) START condition. tHD;STA 4.0 – 0.6 − s After this period, the first clock pulse is generated LOW period of the SCL clock t 4.7 – 1.3 – s LOW HIGH period of the SCL clock
in „I²c mit Bascom und ATmega“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Spezifikation.pdf
devices STANDARD-MODE FAST-MODE PARAMETER SYMBOL UNIT MIN. MAX. MIN. MAX. SCL clock frequency f 0 100 0 400 kHz SCL Hold time (repeated) START condition. tHD;STA 4.0 – 0.6 − s After this period, the first clock pulse is generated LOW period of the SCL clock t 4.7 – 1.3 – s LOW HIGH period of the SCL clock
in „Reset auf I2C-Bus“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Philips_Semiconductors_-_I2C_Bus_Specification_v2.1.pdf
devices STANDARD-MODE FAST-MODE PARAMETER SYMBOL UNIT MIN. MAX. MIN. MAX. SCL clock frequency f 0 100 0 400 kHz SCL Hold time (repeated) START condition. tHD;STA 4.0 – 0.6 − s After this period, the first clock pulse is generated LOW period of the SCL clock t 4.7 – 1.3 – s LOW HIGH period of the SCL clock
in „GND-Fäche sinnvoll???“ · Platinen ·
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PDF
Spezifikation.pdf
devices STANDARD-MODE FAST-MODE PARAMETER SYMBOL UNIT MIN. MAX. MIN. MAX. SCL clock frequency f 0 100 0 400 kHz SCL Hold time (repeated) START condition. tHD;STA 4.0 – 0.6 − s After this period, the first clock pulse is generated LOW period of the SCL clock t 4.7 – 1.3 – s LOW HIGH period of the SCL clock
in „i2c und Takt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Spezifikation.pdf
devices STANDARD-MODE FAST-MODE PARAMETER SYMBOL UNIT MIN. MAX. MIN. MAX. SCL clock frequency f 0 100 0 400 kHz SCL Hold time (repeated) START condition. tHD;STA 4.0 – 0.6 − s After this period, the first clock pulse is generated LOW period of the SCL clock t 4.7 – 1.3 – s LOW HIGH period of the SCL clock
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PDF
Spezifikation.pdf
devices STANDARD-MODE FAST-MODE PARAMETER SYMBOL UNIT MIN. MAX. MIN. MAX. SCL clock frequency f 0 100 0 400 kHz SCL Hold time (repeated) START condition. tHD;STA 4.0 – 0.6 − s After this period, the first clock pulse is generated LOW period of the SCL clock t 4.7 – 1.3 – s LOW HIGH period of the SCL clock
in „I2C Speicher HotSwap?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Spezifikation.pdf
devices STANDARD-MODE FAST-MODE PARAMETER SYMBOL UNIT MIN. MAX. MIN. MAX. SCL clock frequency f 0 100 0 400 kHz SCL Hold time (repeated) START condition. tHD;STA 4.0 – 0.6 − s After this period, the first clock pulse is generated LOW period of the SCL clock t 4.7 – 1.3 – s LOW HIGH period of the SCL clock
in „I²C Bus Schnittstelle extern ?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
I2C_BUS_SPECIFICATION_3.pdf
devices STANDARD-MODE FAST-MODE PARAMETER SYMBOL UNIT MIN. MAX. MIN. MAX. SCL clock frequency f 0 100 0 400 kHz SCL Hold time (repeated) START condition. tHD;STA 4.0 – 0.6 − s After this period, the first clock pulse is generated LOW period of the SCL clock t 4.7 – 1.3 – s LOW HIGH period of the SCL clock
in „SPI oder TWI“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Spezifikation.pdf
devices STANDARD-MODE FAST-MODE PARAMETER SYMBOL UNIT MIN. MAX. MIN. MAX. SCL clock frequency f 0 100 0 400 kHz SCL Hold time (repeated) START condition. tHD;STA 4.0 – 0.6 − s After this period, the first clock pulse is generated LOW period of the SCL clock t 4.7 – 1.3 – s LOW HIGH period of the SCL clock
in „Unterschied Defintion I²C und SPI“ · Mikrocontroller und Digitale Elektronik ·
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PDF
i2c_bus_specification_3.pdf
devices STANDARD-MODE FAST-MODE PARAMETER SYMBOL UNIT MIN. MAX. MIN. MAX. SCL clock frequency f 0 100 0 400 kHz SCL Hold time (repeated) START condition. tHD;STA 4.0 – 0.6 − s After this period, the first clock pulse is generated LOW period of the SCL clock t 4.7 – 1.3 – s LOW HIGH period of the SCL clock
in „IIC-Bus Verständnisfrage“ · Mikrocontroller und Digitale Elektronik ·
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PDF
I2C_SPEC.pdf
devices STANDARD-MODE FAST-MODE PARAMETER SYMBOL UNIT MIN. MAX. MIN. MAX. SCL clock frequency f 0 100 0 400 kHz SCL Hold time (repeated) START condition. tHD;STA 4.0 – 0.6 − s After this period, the first clock pulse is generated LOW period of the SCL clock t 4.7 – 1.3 – s LOW HIGH period of the SCL clock
in „I2C abstrakt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
I2C_SPEC.pdf
devices STANDARD-MODE FAST-MODE PARAMETER SYMBOL UNIT MIN. MAX. MIN. MAX. SCL clock frequency f 0 100 0 400 kHz SCL Hold time (repeated) START condition. tHD;STA 4.0 – 0.6 − s After this period, the first clock pulse is generated LOW period of the SCL clock t 4.7 – 1.3 – s LOW HIGH period of the SCL clock
in „I2C programmieren lernen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
39340011.pdf
devices STANDARD-MODE FAST-MODE PARAMETER SYMBOL UNIT MIN. MAX. MIN. MAX. SCL clock frequency f 0 100 0 400 kHz SCL Hold time (repeated) START condition. tHD;STA 4.0 – 0.6 − s After this period, the first clock pulse is generated LOW period of the SCL clock t 4.7 – 1.3 – s LOW HIGH period of the SCL clock
in „Problem mit I²C-Device“ · Mikrocontroller und Digitale Elektronik ·
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PDF
I2C_SPEC.pdf
devices STANDARD-MODE FAST-MODE PARAMETER SYMBOL UNIT MIN. MAX. MIN. MAX. SCL clock frequency f 0 100 0 400 kHz SCL Hold time (repeated) START condition. tHD;STA 4.0 – 0.6 − s After this period, the first clock pulse is generated LOW period of the SCL clock t 4.7 – 1.3 – s LOW HIGH period of the SCL clock
in „was bedeutet acknowleges bei SPI“ · Mikrocontroller und Digitale Elektronik ·
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PDF
philips_i2c.pdf
devices STANDARD-MODE FAST-MODE PARAMETER SYMBOL UNIT MIN. MAX. MIN. MAX. SCL clock frequency f 0 100 0 400 kHz SCL Hold time (repeated) START condition. tHD;STA 4.0 – 0.6 − s After this period, the first clock pulse is generated LOW period of the SCL clock t 4.7 – 1.3 – s LOW HIGH period of the SCL clock
in „wie sieht ein i2c protokoll aus?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MOC304_MOT.pdf
only. TYPICAL ELECTRICAL CHARACTERISTICS TA= 25⋅C +800 OUTPUTPULSEWIDTH–80 s NORMALIZEDTO A +600 1.5 T =25⋅C ( F =30mA 1.4 A T +400 f=60Hz E TA=25⋅C 1.3 R +200 I1.2 U D E 0 Z1.1 A L 1 S –200 M N –400 O0.9 , N0.8 M–600 IT 0.7 –800 –4 –3 –2 –1 0 1 2 3 4 5 –40 –20 0 20 40 60 80 VTM,ON–STATEVOLTAGE(VOLTS)
in „Solid state Relais“ · Mikrocontroller und Digitale Elektronik ·
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PDF
moc3041.pdf
only. TYPICAL ELECTRICAL CHARACTERISTICS TA= 25⋅C +800 OUTPUTPULSEWIDTH–80 s NORMALIZEDTO A +600 1.5 T =25⋅C ( F =30mA 1.4 A T +400 f=60Hz E TA=25⋅C 1.3 R +200 I1.2 U D E 0 Z1.1 A L 1 S –200 M N –400 O0.9 , N0.8 M–600 IT 0.7 –800 –4 –3 –2 –1 0 1 2 3 4 5 –40 –20 0 20 40 60 80 VTM,ON–STATEVOLTAGE(VOLTS)
in „Optokoppler + Triac = Rauch?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MOC_3043_MOT.pdf
only. TYPICAL ELECTRICAL CHARACTERISTICS TA= 25⋅C +800 OUTPUTPULSEWIDTH–80 s NORMALIZEDTO A +600 1.5 T =25⋅C ( F =30mA 1.4 A T +400 f=60Hz E TA=25⋅C 1.3 R +200 I1.2 U D E 0 Z1.1 A L 1 S –200 M N –400 O0.9 , N0.8 M–600 IT 0.7 –800 –4 –3 –2 –1 0 1 2 3 4 5 –40 –20 0 20 40 60 80 VTM,ON–STATEVOLTAGE(VOLTS)
in „Leistungslos schalten mit Nulldurchgang Erkennung“ · Mikrocontroller und Digitale Elektronik ·
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RJH60F5DPQ.pdf
Characteristics (Typical) (1) Switching Characteristics (Typical) (2) 1000 100000 J VCC = 400 V, GE= 15 V ( Rg = 5 Ω, Tj = 150 s Eon includes the diode recovery ( E10000 t s f s e d(off) o i 100 L 1000 T g n tr e h E Eoff i td(on) g w i 100 S VCC = 400 V, GE= 15 V i Rg = 5 Ω, Tj = 150 w Eon
in „Inverter Elektroden-Schweißgerät abgeraucht -> IGBT defekt“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LUXEON_K2_BLAU_LXK2_PB14_N00.pdf
, based on T JMAX Current Derating Curve for 700 mA Drive Current White 800 A 700 ( t 600 e r 500 u C 400 d RRθJ A0 C/W r 300 Rθ-=30ºC/ a R J-AAo C/W r 200 RRJ-AAo C/W o RRJJ A0ºC/W F RRJJ A5ºC/W - 100 I 0 0 25 50
in „[S] LED aus Feuerwehr Singalleuchte (Blitzlicht)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LCW_CQ7P.CC.pdf
Relativer Lichtstrom 2)Seite 22 Forward Current 2) page 22 Relative Luminous Flux 2) page 22 IF = f(V F);T S = 25 °C Φ V/Φ V(350 mA) = f(IF);T S = 25 °C OHL04578 OHL04571 800 2.0 mA Φ IF V Φ V (350mA) 1.5 600 1.0 400 0.5 200 0 200 400 600 mA 800 2.8 3.0 3.2 3.4 3.6 V 3.8 I VF F 2) Seite 22 Farbortverschiebung
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ADG507A.pdf
IINLor INH 1 1 1 A max V IN= 0 to DD C INDigital Input Capacitance8 8 8 pF max DYNAMIC CHARACTERISTICS tTRANSITION 200 200 200 ns typ V1 = 10 V, V2 = +10 V; Test Circuit 6 300 400 300 400 300 400 ns max tOPEN1 50 50 50 ns typ Test Circuit 7 25 10 25 10 25 10 ns min 1 tON(EN) 200 200 200 ns typ Test Circuit 8 300 400 300 400 300 400 ns max tOFF(EN)1 200 200 200 ns typ Test Circuit 8 300 400 300 400 300 400 ns max OFF Isolation 68 68 68 dB typ V EN= 0.8 V, L = 1 k ,LC = 15 pF, 50 50 50 dB min V S 7 V rms, f = 100
in „Videopfad - LM1881 -Sync-Problem“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
Kaffeeautomat-5-OK.bas
(T1+T2 offen) 'if WasserKaffee1 > 170 then gosub Fehler1 'Wasser (T1 offen)nicht vorhanden 'if Prog = 3 then goto P3 'Programm Entkalken 'if WasserKaffee1 > 110 then gosub Fehler2 'Kaffee (T2 offen)nicht
in „Eigenbau einer Kaffee- Vollautomaten-Steuerung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
1763fh.pdf
Guaranteed Dropout Voltage Dropout Voltage 500 500 500 ) = TEST POINTS 450 V 450 450 ( L = 500mA ) 400 G 400 )400 IL= 250mA V TJ= 125°C T V ( 350 L 350 T J 125°C (350 L = 100mA G V G T 300 U 300 T300 O O T ≤ 25°C O250 V 250 T = 25°C O 250 J V U 200 J D 200 U200 P D P O 150 E 150 O150 D N D 100 R 100
in „Review: USB→LT1763-3.3 V + SCD41-D-R2 (I²C), Funduino (ATMEGA2560)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IR2130.pdf
vs. Temperature Figure 25B. Low Level Output vs. Voltage 500 500 ) 400 A400 ( ( n n r r C 300 C300 g g k a L L l 200 l200 u u t t s s O100 O100 Max. Max. 0 0 -50 -25 0 25 50 75 100 125 0 100 200 300 400 500 600 Temperature (°C) V Boost Voltage (V) Figure 26A. Offset Supply
in „Shunt Messung mit IR2130 (BLDC Steuerung)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AQV257A.pdf
AQV253(A)AQV254(A)AQV259(A)AQV258(A) AQV253H(A)AQV254H(A) Remarks tion LED forward current IF 50 mA t LED reverse voltage VR 3V p I Peak forward current FP 1 A f = 100 Hz, Duty factor +0.1% Power dissipation Pin 75 mW Load voltage VL 40V 60V 100V 200V 250V 400V 1,000V 1,500V 250V 400V (peak AC) t A 0.5
in „Optokoppler mit möglichst kleinem Eingangsstrom“ · Mikrocontroller und Digitale Elektronik ·
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PDF
FotoMOS.pdf
AQV253(A)AQV254(A)AQV259(A)AQV258(A) AQV253H(A)AQV254H(A) Remarks tion LED forward current IF 50 mA t LED reverse voltage VR 3V p I Peak forward current FP 1 A f = 100 Hz, Duty factor +0.1% Power dissipation Pin 75 mW Load voltage VL 40V 60V 100V 200V 250V 400V 1,000V 1,500V 250V 400V (peak AC) t A 0.5
in „Transistor, der in beide Richtungen Strom führen kann“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
PhotoMos.pdf
AQV253(A)AQV254(A)AQV259(A)AQV258(A) AQV253H(A)AQV254H(A) Remarks tion LED forward current IF 50 mA t LED reverse voltage VR 3V p I Peak forward current FP 1 A f = 100 Hz, Duty factor +0.1% Power dissipation Pin 75 mW Load voltage VL 40V 60V 100V 200V 250V 400V 1,000V 1,500V 250V 400V (peak AC) t A 0.5
in „Audio-Signale schalten mit PhotoMOS?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
NAiS_AQV257A.pdf
AQV253(A)AQV254(A)AQV259(A)AQV258(A) AQV253H(A)AQV254H(A) Remarks tion LED forward current IF 50 mA t LED reverse voltage VR 3V p I Peak forward current FP 1 A f = 100 Hz, Duty factor +0.1% Power dissipation Pin 75 mW Load voltage VL 40V 60V 100V 200V 250V 400V 1,000V 1,500V 250V 400V (peak AC) t A 0.5
in „Isolatoren - Die Bilder“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
owx.c
----- //=========================================================================== volatile uint8_t owx_tx_buffer[owx_buffer_len]={0,1,2,3,4,5,6,7,8,9,0,1,2,3,4,5,6,7,8,9}; volatile uint8_t owx_rx_buffer[owx_buffer_len]={'a','b','c','d','e','f','g','h','i','j'}; //int16_t *owx_tx16=(owx_tx_buffer+14
in „Datenbus Fehlerbehebung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
irs2011pbf.pdf
Figure 2B. Turn-OnPropagationDelay vs. Temperature vs. SupplyVoltage s ) (500 n500 y y e400 l400 D e n n t300 i300 g a p a r200 o200 P P Max. f100 f100 - Max. O r Typ. n Typ. T 0 u 0 -50 -25 0 25 50 75 100 125 T 10 12 14 16 18 20 Temperature(C) V BIASupply Voltage(V) Figure 3A. Turn-Off Propagation
in „H-Brücke - 30A - MOSFET“ · Analoge Elektronik und Schaltungstechnik ·
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lm393.pdf
(+) IN(-) I Input bias current in linear range BIAS TA=25⋅C 25 100 25 250 25 250 nA Over temp. 300 400 200 500 nA IN(+) IN(-) I Input offset current T =25⋅C 〉 3.0 〉 25 〉 5.0 〉 50 〉 5 〉 50 nA OS A Over temp. 〉 100 〉 150 〉 50 〉 200 nA V IN(-)VDC , IN(+), OL Output sink current V 01.5VDC 6.0 16 6.0 16 6.0
in „200Khz Signal verstärken“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MAX4249-MAX4257.pdf
-57 T0.376 150 C O RL = 200kΩ 7 7 PER AMPLIFIER 140 4 4 440 A 130 RL= 20kΩ X 120 X ( M RLREFERENCED TO V /DD M ) N 120 VDD = 5V µ E ) RL= 2kΩ T 420 0.375 U ( 110 ) 115 E C V d L A 100 V U 400 P A RL= 100kΩ
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PDF
1933fe.pdf
T = 25°C 600 TA= 25°C A VOUT= 5V VOUT = 3.3V 500 700 700 ) TA= 25°C A A V ( ( L = 22μH ( 400 T L = 33μH T G E E T TA= 85°C R600 R600 O300 TA= –40°C C C L = 15μH V D D C O L = 22μH O I200 L L S 500 500
in „Kann ich eine BAS85 problemslos an Stelle einer 1N4148 verwenden?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
1933fe.pdf
T = 25°C 600 TA= 25°C A VOUT= 5V VOUT = 3.3V 500 700 700 ) TA= 25°C A A V ( ( L = 22μH ( 400 T L = 33μH T G E E T TA= 85°C R600 R600 O300 TA= –40°C C C L = 15μH V D D C O L = 22μH O I200 L L S 500 500
in „LT Spice ein IC von Texas Insturments einbinden“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Sicherungssysteme_TechnikFibel_DE_201601250853045758.pdf
Sicherung (s. Abschnitte 4.1 und 4.3). CU-Schienenabmessungen Dauerstrom bei 35 °C Vorsicherung H/mm x T/mm Betriebsklasse gG 12mm x 5mm 200 A 200 A 12mm x 10mm 360 A 315 A 15mm x 5mm 250 A 250 A 15mm x 10mm 447 A 400 A 20mm x 5mm 320 A 315 A 20mm x 10mm 520 A 500 A 25mm x 5mm 400 A 400 A 25mm x 10mm 580
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PDF
17PM-K.pdf
Driver: Chopper Dual Driver: Chopper Dual Supply Voltage: 24.0 (Volt) Supply Voltage: 24.0 (Volt) 400 600 K442U-1.4A K448B-1.5A K449U-1.0A K442B-0.9A 350 500 300 m m 400 N 250 N ( ( E E U 200 U 300 Q Q R 150 R T T 200 100 100 50 0 0 100 1000 10000 100 1000 10000 FREQUENCY (Hz) FREQUENCY (Hz) 100 200
in „Pollin NEMA17 Stepper 34Ncm für 3€ : Kann das sein?“ · Mechanik, Gehäuse, Werkzeug ·
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PDF
1.5KE400CA.pdf
Rev. 9 - 2 2 of 3 1.5KE6V8(C)A - 1.5KE400(C)A www.diodes.com 10,000 )p Ip Measured at ( 100 Peak Valpp I Zero Bias T F N ( R E R C 1000 U A C Half Valpp I /2 I S A L P U 50 C Measured at P ,T Stand-off Voltage A C E 100 , IP p 10 X 1000 Waveform
in „Ersatztypen für Diode“ · Mikrocontroller und Digitale Elektronik ·
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EEPROM_s_93Cxx.pdf
Time (relative to S) 100 100 ns CLSH SKS tDVCH DIS Data In Set-up Time 100 100 ns tCHDX DIH Data In Hold Time 100 100 ns tCHQL PD0 Delay to Output Low 400 400 ns tCHQV PD1 Delay to Output Valid 400 400 ns tCLSL tCSH Chip Select Hold Time 0 0 ns tSLCH Chip Select Low to Clock High 250 250 ns tSLSH(1) tCS Chip Select Low to Chip Select High 250 250 ns tSHQV tSV Chip Select to Ready/Busy Status 400 400 ns tSLQZ tDF Chip Select Low to Output Hi-Z
in „EEPROM 93C86 ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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Datei
regler_sensor_lcd.c
************ /* CS22 CS21 CS20 Description 0 0 0 No clock source (Timer/Counter stopped). 0 0 1 clkT2S/(No prescaling) 0 1 0 clkT2S/8 (From prescaler) 0 1 1 clkT2S/32 (From prescaler) 1 0 0 clkT2S/64 (From prescaler) 1 0 1 clkT2S/128 (From prescaler) 1 1 0 clkT2S/256 (From prescaler) 1 1 1 clkT2S/1024
in „LCD Display funktioniert bei Zusammenstellung nicht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SA07.pdf
) ( 103 ( 0.6 0 7 TYPICAL EXAMPLE 0 TYPICAL EXAMPLE 1 1 0.5 5 ) 4 ) 0.4 )C 5 3 MAIN THYRISTOR ) ° t 2 SA01,07 t 2 0.3 j j 2 = = AUX THYRISTOR (T ( AUX THYRISTOR T T 0.2 T T 2 (E E E E 10 G G 0.1 R R 7 T T U U SA02,04 L L 0 C C 5 AUX THYRISTOR V V MAIN THYRISTOR E E 4 R R –0.1 G G 3 G G I I I I –0.2
in „Hilfe bei Vergleichstyp SA07“ · 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
Input reverse voltage VRIN 5 V Power dissipation P in 300 mW Load voltage (DC) V L 60 V 100 V 200 V 400 V Continuous load current (DC) I 3.6 A 2.3 A 1.1 A 0.6 A Output Peak load current Ieak 9.0 A 6.0 A 3.0 A 1.5 A 100 ms (1 shot), VL= DC Power dissipation Pout 1.35 W Total power dissipation P T 1.35
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PDF
505399-panasonic-aqz204d-photomos-relais-1-st-1-schliesser-400-vdc-400-vac-450-ma-polzahl-4.pdf
Input reverse voltage VRIN 5 V Power dissipation P in 300 mW Load voltage (DC) V L 60 V 100 V 200 V 400 V Continuous load current (DC) I 3.6 A 2.3 A 1.1 A 0.6 A Output Peak load current Ieak 9.0 A 6.0 A 3.0 A 1.5 A 100 ms (1 shot), VL= DC Power dissipation Pout 1.35 W Total power dissipation P T 1.35
in „Relais ansteuern“ · Mikrocontroller und Digitale Elektronik ·