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SSD1309.c
uint8_t page = 0x00; if(pixel != OFF) { pixel = 0xFF; } else { pixel = 0x00; } for(page = 0; page < y_max; page++) { OLED_gotoxy(x_min, page); for(x_pos = x_min; x_pos < x_max; x_pos++) { OLED_write((*bmp++ ^ pixel), DAT); } } } void OLED_draw_bitmap(uint8_t xb, uint8_t yb, uint8_t xe, uint8_t ye, uint8
in „Oled ansteuern SSD1309“ · Mikrocontroller und Digitale Elektronik ·
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OK.pdf
T1000 A G G A P 300 P O R F− 16 mA (TPLH) P P − 200 − p RL= 1.9 K (TPHLRL= 1.9 K (TPLH) F = 16 mA P T 100 VCC= 5 V T VCC= 5 V TA= 25_C IF− 10 mA (TPLH) 0 100 −60 −40 −20 0 20 40 60 80 100 1 10 TA− TEMPERATURE (_C) RL= LOAD RESISTANCE (k ) Figure 7. Propagation Delay vs. Temperature Figure 8. Propagation
in „Defekte Analoge Strom-Ausgangskarte 0/4-20 mA Bauteilsuche“ · Analoge Elektronik und Schaltungstechnik ·
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IC_74HC132.pdf
CIRCUIT TEST CIRCUIT I CC (Opr.) 4/9 M54/M74HC132 Plastic DIP14 MECHANICAL DATA mm inch DIM. MIN. TYP. MAX. MIN. TYP. MAX. a1 0.51 0.020 B 1.39 1.65 0.055 0.065 b 0.5 0.020 b1 0.25 0.010 D 20 0.787 E 8.5 0.335 e 2.54 0.100 e3 15.24 0.600 F 7.1 0.280 I 5.1 0.201 L 3.3 0.130 Z 1.27 2.54 0.050 0.100 P001A 5
in „Kann diese Schaltung den 74HC132 killen?“ · Analoge Elektronik und Schaltungstechnik ·
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HCPL7800.pdf
0.380 (0.015) 0.635 (0.025) 1.19 (0.047) 1.78 (0.070) 1.780 9.65 ± 0.25 (0.070) (0.380 ± 0.010) 1.19 MAX. (0.047) 7.62 ± 0.25 MAX. (0.300 ± 0.010) 0.20 (0.008) 4.19 MAX. 0.33 (0.013) (0.165) 1.080 ± 0.320 0.635 ± 0.25 (0.043 ± 0.013) (0.025 ± 0.010) 2.540 0.51 ± 0.130 12° NOM. (0.100) (0.020 ± 0.005) BSC
in „Galvanisch getrennten 1-10V Ausgang regeln“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
HCPL7800.pdf
0.380 (0.015) 0.635 (0.025) 1.19 (0.047) 1.78 (0.070) 1.780 9.65 ± 0.25 (0.070) (0.380 ± 0.010) 1.19 MAX. (0.047) 7.62 ± 0.25 MAX. (0.300 ± 0.010) 0.20 (0.008) 4.19 MAX. 0.33 (0.013) (0.165) 1.080 ± 0.320 0.635 ± 0.25 (0.043 ± 0.013) (0.025 ± 0.010) 2.540 0.51 ± 0.130 12° NOM. (0.100) (0.020 ± 0.005) BSC
in „8fach Trennverstärker 0..10V - wie realisieren?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
IOR__IRFR6215.pdf
to 1.5 watts are possible in typical surface mount applications. Absolute Maximum Ratings Parameter Max. Units D @ TC= 25°C Continuous Drain CurrentGS@ 10V -13 D @ TC= 100°C Continuous Drain CurrentGS@ 10V -9.0 A DM Pulsed Drain Current -44 PD@T C 25°C Power Dissipation 110 W Linear Derating Factor 0.71
in „wie 24V-Busspannung mit 3,3V schalten?“ · Mikrocontroller und Digitale Elektronik ·
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DS_HLG240H.pdf
110.1 -V(Black) AC/L(Brown) 3 6 +V(Red) AC/N(Blue) SJTW 18AWG 3C 4 SJTW 14AWG 2C . 3 9 4.2 4PL T case: Max. Case Temperature. 8 8 3 IP67 rated. Timer dimming function, contact MEAN WELLfor details. Block Diagram Fosc : 100KHz EMI FILTER POWER RECTIFIERS I/P & PFC & +V CIRCUIT SWITCHING -V RECTIFIERS FILTER
in „PWM-Signal 24V 500Hz wandeln in 10V PWM“ · Haus & Smart Home ·
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mXrqqxz.pdf
THERMAL DATA Symbol Parameter PowerSO20 Multiwatt15 Unit Rth j-case Thermal Resistance Junction-case Max. – 3 ⋅C/W Rth j-amb Thermal Resistance Junction-ambient Max. 13 (*) 35 ⋅C/W (*) Mounted on aluminumsubstrate 2/13 L298 PIN FUNCTIONS (referto the blockdiagram) MW.15 PowerSO Name Function 1;15 2;19
in „Steuerung für Gleichstrommotor“ · Analoge Elektronik und Schaltungstechnik ·
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L298.pdf
THERMAL DATA Symbol Parameter PowerSO20 Multiwatt15 Unit Rth j-case Thermal Resistance Junction-case Max. – 3 ⋅C/W Rth j-amb Thermal Resistance Junction-ambient Max. 13 (*) 35 ⋅C/W (*) Mounted on aluminumsubstrate 2/13 L298 PIN FUNCTIONS (referto the blockdiagram) MW.15 PowerSO Name Function 1;15 2;19
in „Motortreiber“ · Analoge Elektronik und Schaltungstechnik ·
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STM.pdf
THERMAL DATA Symbol Parameter PowerSO20 Multiwatt15 Unit Rth j-case Thermal Resistance Junction-case Max. – 3 ⋅C/W Rth j-amb Thermal Resistance Junction-ambient Max. 13 (*) 35 ⋅C/W (*) Mounted on aluminumsubstrate 2/13 L298 PIN FUNCTIONS (referto the blockdiagram) MW.15 PowerSO Name Function 1;15 2;19
in „Motor mit automatischer Drehzahlanpassung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
recipe1.txt
*VERSION 1* #include <stdio.h> #include <stdlib.h> #include <string.h> #define MAX 30 #define MAX_LEN 1000 struct index { int idxnmbr; char idxname[MAX]; } inhaltsverzeichnis[100]; void input_idx(int i) { FILE *fp = fopen("database.txt", "a+"); inhaltsverzeichnis[i].idxnmbr++; printf
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LD274.pdf
Symbol Value Unit 1) LD 274 LD 274-2 LD 274-3 Strahlstärke I 50 50 80 mW/sr e min Radiant intensity e max — 100 — mW/sr IF= 100 mA, tp= 20 ms Strahlstärke Radiant intensity IF= 1 A, tp= 100 s e typ. 350 600 800 mW/sr 1) Nur auf Anfrage lieferbar. 1) Available only on request. 2000-08-30 4 LD 274 Ι Relative Spectral Emission Radiant Intensity e = f(IF ) Max. Permissible Forward Current Ιe 100 mA Ιrel= f (λ) IF = f(T A ) Single pulse, tp = 20 s 100 OHRD1938 2 OHR01038 120 OHR00883 Ιe 10 % IF mA Ιe(100mA) rel 100 80 1 80 10 60 R thjA50K/W 60 40 0 10 40 20
in „IR-Ausleuchtung - Reichweiten von IR“ · Mikrocontroller und Digitale Elektronik ·
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LD274.pdf
Symbol Value Unit 1) LD 274 LD 274-2 LD 274-3 Strahlstärke I 50 50 80 mW/sr e min Radiant intensity e max — 100 — mW/sr IF= 100 mA, tp= 20 ms Strahlstärke Radiant intensity IF= 1 A, tp= 100 s e typ. 350 600 800 mW/sr 1) Nur auf Anfrage lieferbar. 1) Available only on request. 2000-08-30 4 LD 274 Ι Relative Spectral Emission Radiant Intensity e = f(IF ) Max. Permissible Forward Current Ιe 100 mA Ιrel= f (λ) IF = f(T A ) Single pulse, tp = 20 s 100 OHRD1938 2 OHR01038 120 OHR00883 Ιe 10 % IF mA Ιe(100mA) rel 100 80 1 80 10 60 R thjA50K/W 60 40 0 10 40 20
in „Infrarot Led m. erhöhtem Wirkungsgrad gesucht“ · Mikrocontroller und Digitale Elektronik ·
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lm324-n_OPV.pdf
V = 5.0 V, (1, unless otherwise stated LM124A LM224A LM324A PARAMETER TEST CONDITIONS UNIT MIN TYP MAX MIN TYP MAX MIN TYP MAX (2) Input Offset Voltage TA= 25°C 1 2 1 3 2 3 mV Input Bias Current IN(+)r IN(−)CM = 0 V, 20 50 40 80 45 100 nA TA= 25°C Input Offset Current IN(+)r IN(−)CM = 0 V, 2 10 2 15
in „Schwebende Magnetkugel - Simulation“ · Mikrocontroller und Digitale Elektronik ·
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MCP2021.pdf
specified for: DC Specifications VBB = 6.0V to 18.0V TA= -40°C to +125°C Parameter Sym. Min. Typ. Max. Units Conditions Power VBB Quiescent Operating IBBQ — — 200 µA IOUT = 0 mA, Current LBUS recessive V = 5.0V REG — — 200 µA IOUT = 0 mA, LBUS recessive VREG = 3.3V VBB READY Current BBRD — — 100 µA
in „MCP2021 -> Welcher ESD Level wird erreicht“ · Mikrocontroller und Digitale Elektronik ·
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CS20N60.pdf
j = 25°C -- 658 ns dF /dt=100A/us, Qrr Reverse Recovery Charge VGS=0V -- 7.4 µC Pulse width tp≤380µs,δ≤2% Symbol Parameter Typ. Units R Junction-to-Case 0.45 ℃/W θJC R θ Junction-to-Ambient 40 ℃/W JA Gate-source Zenerdiode Symbol
in „Suche nach Bauteil“ · Offtopic ·
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stgp10nc60k.pdf
voltage VCE= VGE, C = 250 µA 4.5 6.5 V Collector cut-off current = Max Rating,T = 25°C CES CE C 150 µA (VGE= 0) VCE=Max Rating,TC= 125°C 1 mA Gate-emitter leakage GES VGE= ±20V, CE = 0 ±100 nA current CE = 0) gfs Forward transconductanceVCE = 15V, C= 5A 15 S Table 4. Dynamic
in „Suche IGBT MOSFET ohne Bodydiode“ · Analoge Elektronik und Schaltungstechnik ·
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B154EW04_VB.pdf
display area VE ) 800 800 800 line - Front porch (VF) 1 4 line ( Horizontal ) Item(symbol) Min. Typ. Max. Unit Remark - - μs Hsync cycle (THA 20.44 Negative 1380 1408 1428 clock Blanking period (THB 100 128 - clock Sync pulse width (HC) 16 32 - clock Back porch (THD 68 75 - clock Sync pulse width + Back
in „Notebookdisplay als "normalen" Bildschirm verwenden“ · PC Hard- und Software ·
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FDP060AN08A0.pdf
MAX RATED N J o TC= 25 C 0 0.1 1 8 1 10 100 0.01 0.1 1 10 100 A V DS, DRAIN TO SOURCE VOLTAGE (V) tAV TIME IN AVALANCHE (ms) 0 — Figure 5. Forward Bias Safe Operating Area NOTE: Refer to Fairchild Application
in „Simulation IR2183 Halbbrückentreiber“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
Functions.ino
minMotorDelay = (1000000/((maxspeed*steps)/60))/2; float halfWay = abs(long(numOfSteps/2)); float maxMotorDelay=((1000000/((maxspeed*steps)/60))*100)/2; float motorDelay=maxMotorDelay; float motorDelayAdjust=((maxMotorDelay-minMotorDelay)*(maxMotorDelay-minMotorDelay))/(Accel*1000000); float numberOfStepsToReachMinFromMax
in „Heliostatensteuerung mit Arduino Uno“ · Mikrocontroller und Digitale Elektronik ·
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max232.pdf
L ≤ 2500pF 30V/µs Driver Output Short-Circuit Current, Max 100mA Transition Rate on Driver Output V.28 1ms or 3% of the period EIA/TIA-232E 4% of the period Driver Output Resistance -2V < V < +2V 300Ω OUT ____________________________________________________
in „ATMega8L an USB per max232“ · Mikrocontroller und Digitale Elektronik ·
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MAX232.pdf
L ≤ 2500pF 30V/µs Driver Output Short-Circuit Current, Max 100mA Transition Rate on Driver Output V.28 1ms or 3% of the period EIA/TIA-232E 4% of the period Driver Output Resistance -2V < V < +2V 300Ω OUT ____________________________________________________
in „Mikrocontrollerboard: Funktioniert das?“ · Mikrocontroller und Digitale Elektronik ·
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MAX232_MAX.pdf
L ≤ 2500pF 30V/µs Driver Output Short-Circuit Current, Max 100mA Transition Rate on Driver Output V.28 1ms or 3% of the period EIA/TIA-232E 4% of the period Driver Output Resistance -2V < V < +2V 300Ω OUT ____________________________________________________
in „AVR an Handy C35“ · Mikrocontroller und Digitale Elektronik ·
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C5353-Toshiba.pdf
Ta 10 30 10 ms* (1) Tc = TaInfinite heat sink C max (pulsed)* ) I max (continuous) ( (1) (2) No heat sink C 1 ms* 100 μs* C P 20 1 i a ) i ( 100 ms* i d I e w n p 10 r 0.1 DC operation o u c r Tc = 25°C l t o (2) e C o C 0 0 40 80 120 160 200 0.01 *:
in „WAN NIEN Netzteil Bauteilkunde :)“ · Analoge Elektronik und Schaltungstechnik ·
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VOLTCRAFT_VC_870_DMM.pdf
Frequenzbereich 45 – 1 kHz; Überlastschutz 750 V; Impedanz: 10 MΩ TrueRMS im Messbereich von 10 – 100%: Scheitelfaktor (Crest Factor): max. 3,0 (bei 750V max. 1,5) 30 Gleichstrom Bereich Genauigkeit Auflösung 400 µA 0,01 µA 4000 µA ±(0,7% + 15) 0,1 µA 40 mA 0,001 mA 400 mA ±(1,0% + 13) 0,01 mA 10 A
in „Welches Tisch Multimeter ?“ · Analoge Elektronik und Schaltungstechnik ·
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167622-da-01-en-bd_243b_243c_244b_244c.pdf
amplifier and switching applications. BD244B Collector – Emitter Saturation Voltage — V CE(sat)= 1.5 Vdc (Max) @ C = 6.0 Adc * Collector Emitter Sustaining Voltage — BD244C V CEO(sus) = 80 Vdc (Min) — BD243B, BD244B V CEO(sus) = 100 Vdc (Min) — BD243C, BD244C *Motorola Preferred Device High Current Gain Bandwidth
in „Lüfter mit Wiederstand regeln“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Widertandsberechnung.html
const arr = []; for (let k = 0; k < 48; k++) { const v = 10 ** (k / 48); const r = Math.round(v * 100) / 100; if (!arr.includes(r)) arr.push(r); } return arr; })(), E96: (function () { const arr = []; for (let k = 0; k < 96; k++) { const v = 10 ** (k / 96); const r = Math.round(v * 100) / 100; if (!
in „Tool zur Berechnung optimaler Widerstandskombinationen (E6–E96)“ · Projekte & Code ·
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IRLR7843C.pdf
IRLU7843CPbF l Fully Characterized Avalanche Voltage and Current Absolute Maximum Ratings Parameter Max. Units VDS Drain-to-Source Voltage 30 V VGS Gate-to-Source Voltage ± 20 I @ T = 25°C Continuous Drain Current@ 10V 161 D C GS D @ TC= 100°C Continuous Drain CurreGS@ 10V 113 A DM Pulsed Drain Current
in „H-Brücke - 30A - MOSFET“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
153157-da-01-en-TRANSISTOR_AF_BC847_B_SOT_23__INF.pdf
I CBO = ƒ(T )A IC = ƒ(V BEsat), hFE = 20 VCB = 30 V 102 EHP00364 104 EHP00415 nA ΙC mA ΙCB0 100 C max 25 C 103 -50C 101 5 5 typ 102 5 100 101 5 5 10 -1 100 0 0.2 0.4 0.6 0.8 V 1.2 0 50 100 ˚C 150 V BEsat TA 5 2011-09-09 BC847...-BC850... Transition frequency f = ƒ(I )T C Collector-base capacitance
in „Check Transistorschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TX09D70VM1CDA.pdf
2704- 4.1 ELECTRICAL ABSOLUTE MAXIMUM RATINGS OF LCD TX09D70VM1CDA-2 Revised PAGE 4-1/2 ITEM SYMBOL MAX. Forward Current IF 25 LED Pulse Forward Current IFP 80 ↓ ITEM SYMBOL MAX. Forward Current IF 35 LED Pulse Forward Current IFP 100 Note 4 : 30 m25 A 50 I F n 20 n 40 a 6mA(85 ℃ ) r 30 8.5mA (85 ℃ )
in „TFT Anschluss mit FPGA / CPLD / AVR“ · FPGA, VHDL & Co. ·
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TDA7293.pdf
∪ TDA7293 120V - 100W DMOS AUDIO AMPLIFIER WITH MUTE/ST-BY VERY HIGH OPERATING VOLTAGE RANGE MULTIPOWER BCD TECHNOLOGY (〉 50V) DMOS POWERSTAGE HIGH OUTPUT POWER (100W @ THD = 10%, R L = 8 , V S = 〉0V) MUTING/STAND-BY FUNCTIONS
in „Kann mir jemand helfen. Wer ist der Hersteller der Audio Boards "YUANJING"“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MAS1016B.PDF
receiver off 2 (10) DA1016B.001 27 January, 2004 ABSOLUTE MAXIMUM RATINGS Parameter Symbol Conditions Min Max Unit Supply Voltage VDDV SS -0.3 5.0 V Input Voltage VIN V SS.3 V DD.3 V Power Dissipation P MAX 100 mW o Operating Temperature TOP -20 70 C Storage Temperature TST -40 120 oC ELECTRICAL CHARACTERISTICS Operating Conditions: VDD = 1.4V, Temperature = 25°C Parameter Symbol Conditions Min Typ Max Unit Operating Voltage VDD 1.10 3.60 V Current Consumption IDD 50 100 µA Stand-By Current DDoff 0.1 µA Input Frequency Range IN 40 100 kHz Minimum Input Voltage VIN min 0.5 1 µVrms Maximum Input Voltage
in „DCF77 Signal bricht zusammen wenn ein serieller Monitor gestartet wird.“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAS1016B.PDF
receiver off 2 (10) DA1016B.001 27 January, 2004 ABSOLUTE MAXIMUM RATINGS Parameter Symbol Conditions Min Max Unit Supply Voltage VDDV SS -0.3 5.0 V Input Voltage VIN V SS.3 V DD.3 V Power Dissipation P MAX 100 mW o Operating Temperature TOP -20 70 C Storage Temperature TST -40 120 oC ELECTRICAL CHARACTERISTICS Operating Conditions: VDD = 1.4V, Temperature = 25°C Parameter Symbol Conditions Min Typ Max Unit Operating Voltage VDD 1.10 3.60 V Current Consumption IDD 50 100 µA Stand-By Current DDoff 0.1 µA Input Frequency Range IN 40 100 kHz Minimum Input Voltage VIN min 0.5 1 µVrms Maximum Input Voltage
in „DCF77 - Empfang“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Configuration_adv.h
compensated. //#define PID_EXTRUSION_SCALING #if ENABLED(PID_EXTRUSION_SCALING) #define DEFAULT_Kc (100) //heating power=Kc*(e_speed) #define LPQ_MAX_LEN 50 #endif #endif /** * Automatic Temperature: * The hotend target temperature is calculated by all the buffered lines of gcode. * The maximum buffered
in „Marlin Firmware mit dem ATMEL STUDIO 7 auf das Arduino Mega 2560 Board flashen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
OP07.pdf
UltralowOffsetVoltage a Operational Amplifier OP07 FEATURES PIN CONNECTIONS Low V :OS5 V Max Low V Drift: 1.3 V/ C Max 8-Lead PDIP (P-Suffix) OS 8-Lead SOIC (S-Suffix) Ultrastable vs. Time: 1.5 V/Month Max Low Noise: 0.6 V p-p Max Wide Input Voltage Range: 14 V VOSTRIM 1 OP07 8 VOSTRIM Wide
in „Gleichrichteschaltung mittels op“ · Analoge Elektronik und Schaltungstechnik ·
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7790-Manual-Rev05.pdf
Startfrequenz Modulation intern Modulationsfrequenz 1 kHz Sinus; Modulationsgrad Verstärkerbetrieb 0 % ... 100 %, kontinuierlich einstellbar Verstärkung Modulation extern max. ca. 16,5 dB (TOE 7704, TOE 7706) bzw. Modulationsfrequenz DC ... 500 kHz über Eingang max. ca. 14 dB (alle anderen Modelle) EXT IN; Modulationsgrad
in „[V] Toellner TOE7711A Synthesizer Funktionsgenerator“ · Markt ·
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RK14K12.pdf
RK14K1230A0X 25 10 Without Without 2 RK14K12C0A1S 20 RK14K12C0A0T 25 50 15A For vol. Vertical RK14K1240062 20 100 type RK14K1240036 25 With 10 1B For tone RK14K1240D04 27.5 100 With 4 Dual-unit RK14K1240A4S 32.5 ʢNotapplicable RK14K12D0A1X Flat 10 100 toDCʣ 27.5 RK14K12D0A18 50 15A For vol. Without RK14K12A0A3C
in „Probleme mit Alps Datenblatt“ · Mikrocontroller und Digitale Elektronik ·
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4011fb.pdf
Timing ∆tTIMER Internal Time Base Error l –10 10 % ∆t Programmable Timer Error R = 49.9k l –20 20 % MAX TIMER PowerPath Control VFR INFET Forward Regulation Voltage DCIN – VCC l 15 55 100 mV V Output Voltage Low V – INFET, No Load l 3.75 5.2 7 V OL(INFET) CC VOH(INFET) Output Voltage High VCC – INFET,
in „Ladeabschaltung beim LTC 4011“ · Mikrocontroller und Digitale Elektronik ·
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a8988671.pdf
models - 3 - 2. Detailed specification: 2.1 Electrical characteristics (Ta=25+/-5Ċ) ITEM TEST Min. Typ. Max. Unit Notes 1 Input voltage Vin - 11 12 13 V Min DPWM =0% & - 0.1 - VIPWM=5V 2 Input current Iin A Max DPWM=100% & - 2 - VIPWM=0V 3 Input Inrush Current - DPWM=100% & - - 4 Apeak Initial power VIPWM=0V on only. 4 Output Inrush Current - D =50% - - 10 mApeak PWM 5 Total Output Current Iout DPWM=100% & 11 12 13 mA VIPWM=0V Min DPWM =0% & 0 0.5 1 Individual Output VIPWM=5V Low volt side 6 Current IL DPWM=100% & mA of LOAD Max 5.5 6.0 6.5 VIPWM=0V 7 Oscillating Frequency Fw - 50 53 56 KHz 8 Minimum
in „[V] Piezo-Transformer Inverter für 2 CCFL Zippy FC02-12-03“ · Markt ·
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Zippy_FC02-12-03.pdf
models - 3 - 2. Detailed specification: 2.1 Electrical characteristics (Ta=25+/-5Ċ) ITEM TEST Min. Typ. Max. Unit Notes 1 Input voltage Vin - 11 12 13 V Min DPWM =0% & - 0.1 - VIPWM=5V 2 Input current Iin A Max DPWM=100% & - 1 - VIPWM=0V 3 Input Inrush Current - DPWM=100% & - - 2 Apeak Initial power VIPWM=0V on only. 4 Output Inrush Current - D =50% - - 10 mApeak PWM 5 Total Output Current Iout DPWM=100% & 11 12 13 mA VIPWM=0V Min DPWM =0% & 0 0.5 1 Individual Output VIPWM=5V Low volt side 6 Current IL DPWM=100% & mA of LOAD Max 5.5 6.0 6.5 VIPWM=0V 7 Oscillating Frequency Fw - 70 74 80 KHz 8 Minimum
in „[V] Piezo-Transformer Inverter für 2 CCFL Zippy FC02-12-03“ · Markt ·
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PDF
vcs_vfp_csng.pdf
.008) Example 2— Three-chip configuration; heat sink with mounting holes 34.0±0.2 (1.399±.008) 7.3 Max. +0.2 (.287 Max.) 31.8-0.6 ) (1.25+.008) 2.2 Max. . 9 -.024 (.087 Max.) 5 ( 17.81 1 (.701) Ø 3. a. 38 Di (1 (x2) Case 8 2 0 Notes: 0 ± VFR Heatsink ) . 7 V/N# 2 0 1. Leads: Tinned Copper 5 . (Value)
in „Grundlagen: Widerstandstypen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
lt1025_datasheet.pdf
) MAX .015 – .060 (0.381 – 1.524) .008 – .018 (0.203 – 0.457) 0° – 15° .045 – .065 .125 NOTE: LEAD DIMENSIONS APPLY TO SOLDER DIP/PLATE (1.143 – 1.651) OR TIN PLATE LEADS 3.175 .014 – .026 .100 MIN (0.360
in „Abgastemperatursensor mit LT1025“ · Mikrocontroller und Digitale Elektronik ·
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IRFR2307Z.pdf
variety of other applications. D-Pak I-Pak IRFR2307Z IRFU2307Z Absolute Maximum Ratings Parameter Max. Units ID@ T C = 25°C Continuous Drain CurrenGS @ 10V (Silicon Limited) 53 Continuous Drain Current, V 10V ID@ T C = 100°C GS 38 A ID @ TC = 25°C Continuous Drain CurrenGS V 10V (Package Limited) 42
in „MOSFET IRFR2307Z“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ADF4360-4.pdf
INput Sensitivity 0.7/AVDD V p-p min/max AC-coupled. 0 to AVDD V max CMOS compatible. REF INput Capacitance 5.0 pF max REF INput Current ±100 µA max PHASE DETECTOR Phase Detector Frequency 2 8 MHz max CHARGE PUMP ICPink/Source 3 With R SET
in „SPI-Schnittstelle Befehl: SPI_I2S_SendData(spi2, data)“ · Mikrocontroller und Digitale Elektronik ·
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datasheet-23.pdf
= 1, RL= 2 kΩ, unless otherwise noted. Table 1. A Grade B Grade Parameter Test Conditions Min Typ Max Min Typ Max Unit COMMON-MODE REJECTION RATIO (CMRR) CMRR DC to 60 Hz with 1 kΩ VCM= ±10 V Source Imbalance G = 1 78 86 dB G = 10 94 100 dB G = 100 94 100 dB G = 1000 94 100 dB CMRR at 5 kHz VCM= ±10
in „Puls von EKG ableiten und weiterverarbeiten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
VND830SP.pdf
Normal operation; STAT = 5 V 10 µA C STAT Status pin input capacitance Normal operation; STAT = 5 V 100 pF Doc ID 10879 Rev 3 8/28 VND830SP-E Electrical specifications Table 8. Status pin (continued) Symbol Parameter Test conditions Min. Typ. Max. Unit I = 1 mA 6 6.8 8 V V Status clamp voltage STAT SCL
in „[V] Highside-Schalter“ · Markt ·
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PDF
tl072.pdf
Characteristics: TL07xC, TL07xAC, TL07xBC, TL07xI VCC± = ±15 V, TA= 25°C PARAMETER TEST CONDITIONS MIN TYP MAX UNIT V = 10 V R = 2 kΩ SR Slew rate at unity gain I L 8 13 V/μs C L 100 pF See Figure 7-1 t Rise-time overshoot factor VI= 20 V RL= 2 kΩ 0.1 μs r C L 100 pF See Figure 7-1 20% f = 1 kHz 18 nV/√Hz V
in „Verstärkerschaltung läuft nicht wie gewollt“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
lm35_Temp.pdf
± ± ± Accuracy, T A=+25˚C 0.4 1.0 0.4 1.0 ˚C LM35, LM35C T A−10˚C ±0.5 ±0.5 ± 1.5 ˚C (Note 7) T AT MAX ±0.8 ±1.5 ±0.8 ± 1.5 ˚C T =T ±0.8 ±1.5 ±0.8 ± 2.0 ˚C A MIN Accuracy, LM35D T A+25˚C ±0.6 ± 1.5 ˚C (Note 7) TA=T MAX ±0.9 ± 2.0 ˚C T =T ±0.9 ± 2.0 ˚C A MIN Nonlinearity T MIN≤TA≤T MAX ±0.3 ±0.5 ±0.2
in „Temperatursensor LM35 DZ will nicht funktionieren“ · Mikrocontroller und Digitale Elektronik ·
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DS_FT232R_v102.pdf
Pin #1 FTDI 0 (Laser Marked) . 5 YYXX-A FT232RQ 8 17 9 16 5.000 BOTTOM 25 26 27 28 29 30 31 32 0.150 Max 24 1 Pin #1 ID 0.500 23 2 22 3 0 . 21 4 / + 0.250 20 5 0 +/-0.050 19 6 . 3 18 7 17 8 0.200 Min 16 15 14 13 12 11 10 9 0.500 3.200 +/-0.100 +/ -0.050 SIDE +/-0.050 0.200 0.050 0.900 +/0.100 Figure 7
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133821700AD736_d.pdf
inches and (millimeters) Dimensions shown in millimeters and (inches) 0.005 (0.13) 0.055 (1.40) MIN MAX ) 5.00(0.1968) ( 4.80(0.1890) 8 5 0 1 8 5 0.310 (7.87) – 4.00 (0.1574) 6.20 (0.2440) PIN 1 0.220 (5.59) 0 3.80 (0.1497) 1 4 5.80 (0.2284) 1 4 4 3 0.100 (2.54) BSC 0 0.320 (8.13) 0 1.27 (0.0500) 0.50
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