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PDF
cd0603-b.pdf
Diodes offer a repetitive peak reverse voltage of 40 V with a choice of forward current of 200 mA and 300 mA. Absolute Maximum Ratings (@ T =A25 °C Unless Otherwise Noted) CD0603- Parameter Symbol Unit B0240R B0340R Maximum Repetitive Peak Reverse Voltage V 40 V RRM Maximum Average Forward Rectified CurrenA (T = 55 °C) F(AV) 200 300 mA Peak Forward Surge Current 8.3 ms Single Half Sine-Wave I 2 A Superimposed on Rated Load (JEDEC Method) FSM Operating Temperature Range TJ -40 to +125 °C Storage Temperature Range T -40 to +125 °
in „Fein MultiTalent AFMT 12 QSL - Bauteil identifizieren“ · Mechanik, Gehäuse, Werkzeug ·
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PDF
tda8444.pdf
MAX= 1 V − − 10 A Pins SDA and SCL VI input voltage 0 − 5.5 V V LOW-level input voltage − − 1.0 V IL VIH HIGH-level input voltage 3.0 − − V IL LOW-level input current V SDA= VSCL= −0.3 V − − −10 A IH HIGH-level input current V SDA= VSCL= 6 V − − ±10 A PINSDA VOL LOW-level output voltage IL= 3 mA − −
in „Verzweifle an TWI Code Mega8-TDA 8444“ · Mikrocontroller und Digitale Elektronik ·
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PDF
8444_TDA8444.pdf
MAX= 1 V − − 10 A Pins SDA and SCL VI input voltage 0 − 5.5 V V LOW-level input voltage − − 1.0 V IL VIH HIGH-level input voltage 3.0 − − V IL LOW-level input current V SDA= VSCL= −0.3 V − − −10 A IH HIGH-level input current V SDA= VSCL= 6 V − − ±10 A PINSDA VOL LOW-level output voltage IL= 3 mA − −
in „TDA8444 kurze Verständnisfrage“ · Mikrocontroller und Digitale Elektronik ·
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PDF
EcoFlow_DELTA_mini_Multi-language_User_Manual.pdf
di riscaldamento. 2. Evitare il contatto con i liquidi. Non immergere il prodotto in acqua o bagnarlo. Non utilizzare il prodotto in ambienti umidi o in presenza di pioggia. 3. Non utilizzare il prodotto in ambienti con forti campi
in „Ecoflow Wechselrichter Eingänge in Reihe schalten?“ · Haus & Smart Home ·
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PDF
LT3757_Boost-Sepic-Flyback-Invert.pdf
CL= 3300pF 30 ) 100 ( 25 C N 80 U A20 Ω E ( (100 F 60 I15 R D I A 40 10 M O N 20 5 0 10 0 0 100 200 300 400 500 600 700 800 9001000 0 100 200 300 400 500 600 700 800 9001000 –0.8 –0.4 0 0.4 0.8 1.2 1.6 SWITCHING FREQUENCY (KHz) SWITCHING FREQUENCY (KHz) FBX VOLTAGE (V) 3757 G04 3757 G05 3757 G06 Switching
in „Datenblätter von Linear Technologies“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
PL_Series_Instruction_Manual_-_Iss_12.pdf
seul un technicien compétent au courant des risques encourus doit effectuer ce genre de travaux. S'il est évident que l'instrument est défectueux, qu'il a été soumis à des dégâts mécaniques, à une humidité excessive ou à une corrosion chimique, la protection de sécurité sera amoindrie et il faut retirer
in „Bedeutung blinkender Punkte in Stromanzeige“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IL74.pdf
.335 (8.50) • D E VDE Approvals #0884 (Optional with Option 1, Add -X001 Suffix) .343 (8.70) .039 .300 (7.62) (1.00) typ. DESCRIPTION min. .130 (3.30) The IL74 is an optically coupled pair with a Gal- .150 (3.81) lium Arsenide infrared LED and a silicon NPN 4° 18° typ. typ. .110 (2.79) phototransistor
in „Hilfe für Schaltung gesucht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IL74_ILD74_ILQ74_SIE.pdf
.335 (8.50) • D E VDE Approvals #0884 (Optional with Option 1, Add -X001 Suffix) .343 (8.70) .039 .300 (7.62) (1.00) typ. DESCRIPTION min. .130 (3.30) The IL74 is an optically coupled pair with a Gal- .150 (3.81) lium Arsenide infrared LED and a silicon NPN 4° 18° typ. typ. .110 (2.79) phototransistor
in „Eingänge über Optokoppler abfragen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DometicColdMachine50-54-55-84-85-86-94-95-96-CS-NC15_IOM_4445100001_EMEA16_20xx-xx-xx.book.pdf
il mento non può muoversi liberamente(è componente dall’ostruzione controla parete) Corpo estraneo incastrato tra il gruppo Eliminare il corpo estraneo refrigerante e la parete Rumore della ventola (se
in „Schaltsymbol“ · Fahrzeugelektronik ·
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PDF
doepke_5962009_allstromfibel_web_de.pdf
t t N PE Zweipulsbrückenschaltung IL IF IL L 5 N t t F PE Zweipulsbrückenschaltung halbgesteuert I I IL L F 6 L N t t F PE IF1 Frequenzumrichter mit Zweipulsbrückenschaltung t IL IL ~ L 7 N M t IF2 = IF1 IF2 PE t Auslöse
in „Bohrmaschine Drehstrohm mit Frequenzumrichter“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LT1963.pdf
) TEST POINTS 450 V 450 (500 400 G )400 V T TJ≤ 125°C V ( 350 TJ= 125°C O400 (350 E V G L = 1.5A A 300 U TJ≤ 25°C T300 L P L V 250 O300 V250 T 200 TJ= 25°C D U200 L = 0.5A O D O O 150 E200 O150 D N D 100 R 100 IL= 100mA U100 50 G 50 IL= 1mA 0 0 0 0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 0 0.2 0.4 0.6 0.8 1.0
in „LT1963 puffern 2,5A“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LT1963.pdf
) TEST POINTS 450 V 450 (500 400 G )400 V T TJ≤ 125°C V ( 350 TJ= 125°C O400 (350 E V G L = 1.5A A 300 U TJ≤ 25°C T300 L P L V 250 O300 V250 T 200 TJ= 25°C D U200 L = 0.5A O D O O 150 E200 O150 D N D 100 R 100 IL= 100mA U100 50 G 50 IL= 1mA 0 0 0 0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 0 0.2 0.4 0.6 0.8 1.0
in „Widerstände für Spannungsregler ergeben nicht gewünschte Spannung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lt1963es8.pdf
) TEST POINTS 450 V 450 (500 400 G )400 V T TJ≤ 125°C V ( 350 TJ= 125°C O400 (350 E V G L = 1.5A A 300 U TJ≤ 25°C T300 L P L V 250 O300 V250 T 200 TJ= 25°C D U200 L = 0.5A O D O O 150 E200 O150 D N D 100 R 100 IL= 100mA U100 50 G 50 IL= 1mA 0 0 0 0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 0 0.2 0.4 0.6 0.8 1.0
in „LT1963 SHDN (shutdown) Pin Potenzialfrei ansteuern“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BTS6143D_20030925.pdf
resistor in V line R -- 100 150 Ω bb bb 11) Inverse Operation Output voltage drop (pin 1,5 to pin 3) 8) IL= -7.5 A, R =IS kΩ, Tj25 °C: - VON(inv) -- 700 -- mV I = -7.5 A, R = 1 kΩ, T=150 °C: -- 300 -- L IS j Turn-on delay after inverse operation; I > LA 8) V INnv) = V (INd) = 0 V d(inv) -- 1 -- ms 7) VbIN
in „MOSFET Treiber und galvanische Trennung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
datasheet.pdf
1Rx/1Tx @Pcl0 240 mA 270 mA VBATT Average 1Rx/1Tx @Pcl3 150 mA 180 mA VBATT Average Idle mode 100 µA 300 µA VBATT Average GPRS Cl 10 480 mA 540 mA (3Rx/2Tx) @Pcl0 VBATT Average GPRS Cl 10 300 mA 360 mA (3Rx/2Tx) @Pcl3 VDD Average Idle mode 2,2 mA 3 mA Power Control Level : Pcl0=1W typ. ; Pcl3=0,25W typ
in „[Hinweis] Kostenlose Datenverbindung fürs Handy“ · Markt ·
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PDF
KM416C1204C.pdf
current, Average power supply current, Battery back-up mode Input high voltagIH)=VCC-0.2V, Input low voltIL)=0.2V, UCAS, LCAS=0.2V, DQ=Don′t care, RC=31.25us(4K/L-ver), 125us(1K/L-ver) TRAS=T RASmin~300ns CCS : Self Refresh Current RAS=UCAS=LCAS=V I, W=OE=A0 ~ A11=V CC-0.2V or 0.2V, DQ0 ~ DQ15=V CC-0.2V, 0.2V
in „Suche DRAM Chips“ · Mikrocontroller und Digitale Elektronik ·
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PDF
CY7C1399L.PDF
Voltage 2.2 V CC 2.2 VCC 2.2 VCC V +0.3V +0.3V +0.3V V Input LOW Voltage –0.3 0.8 –0.3 0.8 –0.3 0.8 V IL IIX Input Load Current –1 +1 –1 +1 –1 +1 A IOZ Output Leakage GND ≤ V I V CC, –5 +5 –5 +5 –5 +5 A Current Output Disabled IOS Output Short V CC=Max., VOUT =GND –300 –300 –300 mA Circuit Current] ICC
in „Logikanalzyer mit FT232BL“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SI1865DL_Load_Switch_with_Level-Shift.pdf
Variation R2 at V = 4.5 V, R1 = 300 kΩ IN R2 at V IN= 2.5 V, R1 = 300 kΩ www.vishay.com Document Number: 71297 4 S-60551–Rev. C, 3-Apr-06 Si1865DL New Product Vishay Siliconix TYPICAL CHARACTERISTICS 25 °C, unless noted 120 tf 90 t ) d(off) S ( IL= 1 A e 60 VON/OFF = 3 V m Ci= 10 µF T C = 1 µF o td(on) tr 30 0 0 20 40 60 80 R2 (kΩ) Switching Variation R2 at V IN = 1.8 V, R1 = 300 kΩ 2 1 Duty Cycle = 0.5 n i n c r n 0.2 T d Notes: i p c I 0.1 P
in „Mit einem Taster aus/ein + Mode an µC“ · Mikrocontroller und Digitale Elektronik ·
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MC1488.pdf
C, unless otherwise noted.) Characteristic Symbol Min Typ Max Unit Input Current – Low Logic State IL= 0) IL – 1.0 1.6 mA Input Current – High Logic StateIHV= 5.0 V) IH – – 10 A Output Voltage – High Logic State V Vdc OH (VIL= 0.8 Vdc, RL= 3.0 k , VCC = + 9.0 Vdc, VEE = – 9.0 Vdc) + 6.0 +7.0 – (VIL=
in „Suche "echten" Pegelwandler 3.3V <-> RS232“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MCP1802.pdf
Characteristics Input Operating Voltage VIN 2.0 — 10.0 V Note 1 Input Quiescent Current Iq — 25 50 µA IL= 0 mA Shutdown Current SHDN — 0.01 0.10 µA SHDN = 0V Maximum Output Current I 300 — — mA V 2V, V = V +1.0V OUT_mA R IN R 300 — — 1.5V VR 2.0V, IN=3.0V 260 — — 1.0V VR 1.5V, IN= VR+1.5V 260
in „Spannungsregler LDO - Ausgangs-Spannung schaltet nicht 100% ab“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
28c64.pdf
- 85°C V CCPower Supply 5V ± 10% 5V ± 10% 5V ± 10% Operating Modes Mode CE OE WE I/O Read V V V D IL IL IH OUT Write(2) V V V D IL IH IL IN Standby/Write Inhibit V X (1) X High Z IH Write Inhibit X X V IH Write Inhibit X V X IL Output Disable X V X High Z IH Chip Erase V V (3) V High Z IL H IL Notes
in „Z80/UA880D mit 28C64 startet nicht“ · Mikrocontroller und Digitale Elektronik ·
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LH1505.pdf
voltage R ≤ 10 µA VR 8.0 V DC or peak AC load voltage I ≤ 50 µA V 250 V L L Continuous DC load current , IL 130 mA one pole operating Continuous DC load current , IL 120 mA two poles operating 2) Peak load current (single shot),t = 100 ms IP Form B Ambient operating temperature T - 40 to + 85 °C amb range
in „Wechselspannung mit uC schalten“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MBI5016.pdf
Switching Characteristics CHRACTERISTIC SYMBOL CONDITION MIN. TYP. MAX. UNIT CLK - OUTn tpLH1 - 200 300 ns Propagation /LE - OUTn tpLH2 - 200 300 ns Delay Time (“L” to “H”) /OE - OUTn tpLH3 - 200 300 ns CLK - SDO tpLH 20 50 70 ns CLK - OUTn tpHL1 - 200 300 ns Propagation /LE - OUTn tpHL2 V =5.0V - 200 300 ns Delay Time DD (“H” to “L”) /OE - OUTn tpHL3 VCE0.8V - 200 300 ns VIHV DD CLK - SDO tpHL V =GND 20 50 70 ns IL CLK tw(CLK) Rext= 865 Ω 15 - - ns Pulse Width VL=3.4V /LE tw(L) R L65 Ω 20 - - ns Set-up
in „Treiber für 12-stellige 7-Segment-LED-Anzeige (ohne Mux!)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2331212.pdf
CODE CASE CODE PROFILE FEATURES 0810 TO 1012 1213 TO 1216 1616 TO 1821 Max. time from 25 °C to T Peak 300 s 300 s 300 s Max. ramp-up rate to 150 °C 3 K/s 3 K/s 3 K/s Max. time from 150 °C to 200 °C (t1) 150 s 150 s 150 s Max. time from 190 °C to 200 °C (t2) 110 s 110 s 110 s Ramp up rate from 200 °C to
in „[V] 80St. Aluminium-Elektrolytkondensatoren, SMD, Becher, radial - SMD, 100 µF, 50 V, Baureihe 146 C“ · Markt ·
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PDF
Spannungsregler_LP2980-adj_50mA_LDO.pdf
Regulation Legacy Chip 15.0 mV 2.5V ≤ VIN ≤ 16V, –40°C ≤ T ≤ 125°C New Chip J 4.25 Legacy Chip 1 3 IL= 0mA New Chip 1 3.5 Legacy Chip 5 IL= 0mA, –40°C ≤ T J 125°C New Chip 5.5 Legacy Chip 7 10 IL= 1mA New Chip 10.5 15.5 Legacy Chip 15 IL= 1mA, –40°C ≤ T J 125°C V IN- New Chip 18.5 V Dropout voltage mV
in „Geregelte negative Spannung mit LM2664 und LP2980 - geht das überhaupt?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
RT8298E-02.pdf
current surge during start-up. The Stable with Ceramic Capacitors Synchronous External Clock : 300kHz to 1.5MHz RT8298E is synchronizable to an external clock with frequency ranging from 300kHz to 1.5MHz. Cycle-by-Cycle Current Limit Input Under Voltage Lockout The RT8298E is available in WDFN
in „Schaltregler - maximaler Spulenstrom“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
RT8298E-02.pdf
current surge during start-up. The Stable with Ceramic Capacitors Synchronous External Clock : 300kHz to 1.5MHz RT8298E is synchronizable to an external clock with frequency ranging from 300kHz to 1.5MHz. Cycle-by-Cycle Current Limit Input Under Voltage Lockout The RT8298E is available in WDFN
in „Wahl des SynchrongleichrichterMOSFETs für Buck Converter“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
RT8298E-02.pdf
current surge during start-up. The Stable with Ceramic Capacitors Synchronous External Clock : 300kHz to 1.5MHz RT8298E is synchronizable to an external clock with frequency ranging from 300kHz to 1.5MHz. Cycle-by-Cycle Current Limit Input Under Voltage Lockout The RT8298E is available in WDFN
in „Woher Eingangsschwingung am Buck“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
mic2950.pdf
mV MIC2951-4.8 (±1%),LI = 100µA, Note 12 40 80 mV 140 mV MIC2951-4.8 (±1%),LI = 100mA, Note 12 250 300 mV MIC2951-4.8 (±1%),LI = 150mA, Note 12 300 450 mV 600 mV Ground Current MIC295x-02/-03/-05/-06L I100µA 120 180 µA 300 µA MIC295x-02/-03/-05/-06L I = 100mA 1.7 2.5 mA 3.5 mA MIC295x-02/-03/-05/-06,
in „Spannungsstabilisieren“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
2302221001_Texas-Instruments-TS5A22364DRCR_C2673434.pdf
IN) (2) VIH Input logic high 2.4 5.5 Full V VIL Input logic low 0.8 Input leakage 25°C –250 250 IH, IL current VIN= VCC or 0 5.5 V nA Full –250 250 DYNAMIC 25°C 5 V 27 80 VCOM = VCC, C L 35 pF, ON Turnon time R = 300 Ω, see Figure 17 4.5 V to ns L Full 5.5 V 80 25°C 5 V 13 70 VCOM = VCC, C L 35 pF, OFF
in „Analog Audio Switch Beschaltung (TS5A22364)?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
62256.pdf
mA CS = V IL,ers = V IHVIL HM62256B-5 I CC1 — — 60 HM62256B-7 I CC1 — 33 60 HM62256B-8 I CC1 — 29 50 ICC2 — 5 15 mA Cycle time = 1 s, I/O 0 mA CS = V V = V , V = 0 IL,IH CC IL Standby power I — 0.3 2 mA CS = V SB
in „IC P51256Sl-10 SRAM“ · Mikrocontroller und Digitale Elektronik ·
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PDF
085cs.pdf
double-) wave soldering. values 4 MGB102 andbook, full pagewidthre soldering C0 ∗ 0 C C – 4 (%) – 8 I 300 L IL0 (%) 200 without voltage applied ∗ I 100 L0 with rated voltage applied 0 tan δ 300 tan δ 0 200 (%) ∗ tan δ 100 0 0 Z 300 Z 0 200 (%) 100 ∗ Z 0 0 8 minutes 1 hour 10 hours 100 hours soldering &
in „Tantal vs Kerko“ · 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 Turn on time* Ton VL = 10 V Typical 5.64 ms 5.65 ms 2.57 ms 3.88 ms IF = 5 mA Switching IL= 100 mA speed Maximum 10.0 ms VL = 10 V Typical 0.22 ms 0.21 ms 0.10 ms 0.08 ms IF = 5 mA or 10 mA Turn off time* Toff IL= 100 mA Transfer Maximum 3.0 ms characteristics VL = 10 V Typical 0.8 pF f =
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 Turn on time* Ton VL = 10 V Typical 5.64 ms 5.65 ms 2.57 ms 3.88 ms IF = 5 mA Switching IL= 100 mA speed Maximum 10.0 ms VL = 10 V Typical 0.22 ms 0.21 ms 0.10 ms 0.08 ms IF = 5 mA or 10 mA Turn off time* Toff IL= 100 mA Transfer Maximum 3.0 ms characteristics VL = 10 V Typical 0.8 pF f =
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 Turn on time* Ton VL = 10 V Typical 5.64 ms 5.65 ms 2.57 ms 3.88 ms IF = 5 mA Switching IL= 100 mA speed Maximum 10.0 ms VL = 10 V Typical 0.22 ms 0.21 ms 0.10 ms 0.08 ms IF = 5 mA or 10 mA Turn off time* Toff IL= 100 mA Transfer Maximum 3.0 ms characteristics VL = 10 V Typical 0.8 pF f =
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 Turn on time* Ton VL = 10 V Typical 5.64 ms 5.65 ms 2.57 ms 3.88 ms IF = 5 mA Switching IL= 100 mA speed Maximum 10.0 ms VL = 10 V Typical 0.22 ms 0.21 ms 0.10 ms 0.08 ms IF = 5 mA or 10 mA Turn off time* Toff IL= 100 mA Transfer Maximum 3.0 ms characteristics VL = 10 V Typical 0.8 pF f =
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 Turn on time* Ton VL = 10 V Typical 5.64 ms 5.65 ms 2.57 ms 3.88 ms IF = 5 mA Switching IL= 100 mA speed Maximum 10.0 ms VL = 10 V Typical 0.22 ms 0.21 ms 0.10 ms 0.08 ms IF = 5 mA or 10 mA Turn off time* Toff IL= 100 mA Transfer Maximum 3.0 ms characteristics VL = 10 V Typical 0.8 pF f =
in „CD4066 als Relaisersatz?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
OP196_296_496_empfehlung_aus_AAN_105-03_.pdf
Grade, Note 2 2 µV/°C OUTPUT CHARACTERISTICS Output Voltage Swing High V I = –100 µA 4.85 4.92 V OH L IL= 1 mA 4.30 4.56 V IL= 2 mA 4.1 V Output Voltage Swing Low V OL IL= –1 mA 36 70 mV IL= –1 mA 350 550 mV I = –2 mA 750 mV L Output Current IOUT ±4 mA POWER SUPPLY Power Supply Rejection Ratio PSRR ±2.5
in „OPV: Invertierer mit dual Supply?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
at27c512.pdf
Ai D IN (1) PGM Inhibit V IH V PP X High Z (3) A9 =V H Product Identification4) VIL VIL A0 = VIHr V IL Identification Code A1 - A15 = V IL Notes: 1. X can be V or V . IL IH 2. Refer to Programming Characteristics. 3. V H = 12.0 ± 0.5V. 4. Two identifier bytes may be selected. All Ai inputs are held low
in „Eprom Vergleichstyp“ · Mikrocontroller und Digitale Elektronik ·
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PDF
fdc.pdf
J P P O0.2 TJ= 25°C O D D V V 0.2 0.1 0.1 VIN = 12V VIN = 5V VON/OFF= 1.5- 8V VON/OFF= 1.5- 8V PW =300us, ≤ 2% PW =300us, ≤ 2% 0 0 0 1 2 3 4 5 0 1 2 3 4 5 IL, (A) L , (A) Figure 1. Conduction Voltage Drop Figure 2. Conduction Voltage Drop Variation with Load Current. Variation with Load Current. 0.25 IL = 1A V ON/OFF= 1.5 - 8V PW=300us, D 2% 0.2 ≤ ) h0.15 ( , N TJ= 125°C ( 0.1 R 0.05 TJ= 25°C 0 2 4 6 8 10 12 VIN , (V) Figure 3. On-Resistance Variation with Input Voltage. 1 C N E T 0.5 D = 0.5 I I R
in „fet schalten“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ITS4142N_Smart_Switch.pdf
Typ. on-state resistance R ON = f(T j ; V bb = 15 V ; V =inigh R ON = f(V bb ); L = 0.5A ; V = ingh 300 300 mΩ mΩ 125°C N 200 N 200 O O R R 150 150 25°C 100 100 -40°C 50 50 0 0 -40 -20 0 20 40 60 80 100 °C 140 0 5 10 15 20 25 30 35 40 V 50 T V j bb 2006-03-09 Page 12 ITS 4142N Typ. turn on time Typ. turn
in „Smart Power Switch galvanisch entkoppelt ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TS3A24159.pdf
0.5 V V COM I/OK Analog port diode current VNC , NO, VCOM < 0 –50 50 mA NC ON-state switch current –300 300 NO (6) VNC , NO, VCOM = 0 to V+ mA COM ON-state peak switch current –500 500 VI Digital input voltage range –0.5 3.6 V I Digital input clamp current(4) V < 0 –50 mA IK I I+ Continuous current through
in „ANALOG SWITCH Problem“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IKSdrehzahl_IL8190_datasheet.pdf
IL8190 takes a speed sensor input and generates sine and cosine related output signals to differentially drive an air–core meter. ORDERING INFORMATION IL8190N Plastic DIP IL8190DW SOIC TA= -40 to 105 C ORDERING INFORMATION Operating Temperature FEATURES Device Range Package Packing IL8190N DIP-16 Tube IL8190DW T = -40 to 105 C SOP-20 Tube Direct Sensor Input A High Output Torque IL8190DWT SOP-20 T & R Low Pointer Flutter High Input Impedance Overvoltage Protection Return
in „Brauche Hilfe bei der Suche nach einem IC. Bin kein Fachmann.“ · Fahrzeugelektronik ·
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PDF
AQV257A.pdf
12.4 85 345 5.5 12.4 IF= 5 mA Ron A IL= Max. Maximum 1 1.4 2.5 4 8 16 200 500 8 16 Within 1 s on time Typical 0.3 0.37 0.9 1.4 2.7 6.2 60 345 2.7 6.2 IF= 5 mA t On resistance Ron B IL= Max. t Maximum 0.5 0.7 1.25 2 4 8 100 500 4 8 Within
in „Optokoppler mit möglichst kleinem Eingangsstrom“ · Mikrocontroller und Digitale Elektronik ·
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PDF
FotoMOS.pdf
12.4 85 345 5.5 12.4 IF= 5 mA Ron A IL= Max. Maximum 1 1.4 2.5 4 8 16 200 500 8 16 Within 1 s on time Typical 0.3 0.37 0.9 1.4 2.7 6.2 60 345 2.7 6.2 IF= 5 mA t On resistance Ron B IL= Max. t Maximum 0.5 0.7 1.25 2 4 8 100 500 4 8 Within
in „Transistor, der in beide Richtungen Strom führen kann“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
PhotoMos.pdf
12.4 85 345 5.5 12.4 IF= 5 mA Ron A IL= Max. Maximum 1 1.4 2.5 4 8 16 200 500 8 16 Within 1 s on time Typical 0.3 0.37 0.9 1.4 2.7 6.2 60 345 2.7 6.2 IF= 5 mA t On resistance Ron B IL= Max. t Maximum 0.5 0.7 1.25 2 4 8 100 500 4 8 Within
in „Audio-Signale schalten mit PhotoMOS?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
NAiS_AQV257A.pdf
12.4 85 345 5.5 12.4 IF= 5 mA Ron A IL= Max. Maximum 1 1.4 2.5 4 8 16 200 500 8 16 Within 1 s on time Typical 0.3 0.37 0.9 1.4 2.7 6.2 60 345 2.7 6.2 IF= 5 mA t On resistance Ron B IL= Max. t Maximum 0.5 0.7 1.25 2 4 8 100 500 4 8 Within
in „Isolatoren - Die Bilder“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
top247.pdf
Duty Cycle will be reduced at Low Line. + For RIL 12 kΩ + LIMIT= 100% @ 100 VDC I = 69% LIMIT=63% @ 300 VDC LIMIT R 2.5 MΩ LS For RIL 25 kΩ LIMIT= 43% DC See fig. 55 for other DC Input D resistor valuesILR ) Input D CONTROL Voltage CONTROL C Voltage C S X S X R R IL IL 6 kΩ - - PI-2623-040501 PI-2624-
in „Hilfe bei Reparatur SNT Laderegler“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
top247.pdf
Duty Cycle will be reduced at Low Line. + For RIL 12 kΩ + LIMIT= 100% @ 100 VDC I = 69% LIMIT=63% @ 300 VDC LIMIT R 2.5 MΩ LS For RIL 25 kΩ LIMIT= 43% DC See fig. 55 for other DC Input D resistor valuesILR ) Input D CONTROL Voltage CONTROL C Voltage C S X S X R R IL IL 6 kΩ - - PI-2623-040501 PI-2624-
in „Hilfe bei Reparatur SNT Laderegler“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
MT174_Logger_OPEN.ino
+= "&ul1="; Data += U_L1; Data += "&ul2="; Data += U_L2; Data += "&ul3="; Data += U_L3; Data += "&il1="; Data += I_L1; Data += "&il2="; Data += I_L2; Data += "&il3="; Data += I_L3; Data += "&frq="; Data += Frequency; // Data += "&frq="; Data += SecAdjust; Data += "&ip="; Data += WiFi.localIP().toString
in „Digitale Stromzähler auslesen und in DB speichern“ · Mikrocontroller und Digitale Elektronik ·