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Einstellungen für 3D-Drucker G-Code Parameter
Filament settings (Disabled): M200 S0 D1.75 #; Steps per unit: M92 X80.00 Y80.00 Z400.00 E96.00 #; Max feedrates (units/s): M203 C X300.00 Y300.00 Z5.00 E25.00 #; Max Acceleration (units/s2): M201 C X800.00 Y800.00 Z50.00 E500.00 #; Acceleration (units/s2 (P<print-accel> R<retract-accel> T<travel-accel>): M204 C P800.00 R500.00 T500.00 #; Advanced (B<min_segment_time> S<min_feedrate> T<min_travel_feedrate> J<junc_dev>): M205 C B20000.00 S0.00 T0.00 J0.01 #; Home offset: M206 C X0.00 Y0.00 Z0.00 #; Material heatup parameters
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IXFB100N50P_NMOS_TO-264_500_V_100_A.pdf
500 V DSS J G VDGR TJ= 25C to 150C, R GS = 1M 500 V D S VGSS Continuous 30 V Tab VGSM Transient 40 V G = Gate D = Drain ID25 TC= 25C 100 A S = Source Tab = Drain I T = 25C, Pulse Width Limited by
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AC-202A.pdf
EL2 AMPIRE CO., LTD. 8 8 TIMING CHARACTERISTICS Write Operation Item Symbol VDD=5V VDD=3.3V Unit Min Max Min Max Enable cycle time tcycE 500 -- 1000 -- ns Enable pulse width PW EH 230 -- 450 -- Enable rise/fall time Er,tEf -- 20 -- 25 Address set-up time tAS 40 -- 60 -- (RS, R/W to E) Address hold time
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JW1501ABr0.4_C371169.pdf
Demagnetization Comparator VFB=DEM º5 mV Threshold Minimum OFF time Toff=min (Note 4) º us Maximum OFF time Toff=max (Note 4) 2.6 4 4.5 ms Maximum Cable Drop ICable=max 48 52 58 uA compensation current Current Sense Input Section (CS Pin) CS Input Leading Edge Blanking TLEB 500 ns Time Current limiting threshold Vcs(max) 4°0 500 510 mV Over Current Detection TD=OCP 100 ns and Control Delay Power MOSFET Section (Drain Pin) Breakdown JW1501A 600 V V Voltage JW1501B BR 650 JW1501A 2.2 MOS Rdson Rdson ohm JW1501B º.5 JW1501A
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MOC3083M-D.pdf
H Holding Current, Either Direction All 500 mA 3. All devices are guaranteed to trigger aF an I value less than or equalFTo max I . Therefore, recommended oFerating I lies betFTen max I (15 mA for MOC3081M, 10 mA for MOC3082M, 5 mA for MOC3083M
in „Alte Triacschaltung umbauen“ · Mikrocontroller und Digitale Elektronik ·
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74ABT573A_philips_Latch_3_state.pdf
CHARACTERISTICS LIMITS T = –40⋅C SYMBOL PARAMETER TEST CONDITIONS Tamb = +25⋅C ato +85⋅C UNIT Min Typ Max Min Max V IK Input clamp voltage VCC = 4.5V; IK= –18mA –0.9 –1.2 –1.2 V VCC = 4.5V; OH = –3mA; V I V IL V IH 2.5 2.9 2.5 V VOH High-level output voltage VCC = 5.0V; OH = –3mA; V I V IL V IH 3.0 3.4
in „Latch, aber welches?“ · Mikrocontroller und Digitale Elektronik ·
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DS_LTV8X6.pdf
) Fig.9 Collector Dark Current vs. Fig.10 Response Time vs. Load Ambient Temperature Resistance -5 500 10 VCE 20V VCE 2V ) -6 200 Ic= 2mA (10 Ta= 25 C E )100 t -7 s 50 tr n10 e r -8 i 20 tf c10 e 10 r n td d -9 o 5 o10 s ts c R 2 l -10 1 C10 -11 0.5 10 0.2 -25 0 25 50 75 100 125 0.05 0.1 0.2 0.5 1 2
in „Problem mit Optokoppler“ · Mikrocontroller und Digitale Elektronik ·
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igrid_ss_3kw_plus.pdf
frequency range 59.3~ 60.5Hz(60Hz) AC input frequency comeback 47.6/50.1 Hz(50Hz) value 59.4/60.4Hz(60Hz) Max. AC Input current 20Amp PV input data Max. DC Power 3200W Nominal DC voltage 360Vdc Max. Input voltage (Maximum PV open voltage) 500Vdc System start-up voltage 116V 10V whether PV establish control power Initial feeding voltage 150V 5% 100(5%) ~ 500 Vdc Which is the DC voltage range that Working voltage range (-5%+0%) inverter can feed power to grid 1).Max Pinput=13*Vinput when Vin<250Vdc MPPT voltage range 250 ~ 450Vdc 2).Max Pinput=30200-60*Vinput
in „PV Wechselrichter startet nicht mehr und verursacht Kurzschluss bzw. hohen Strom“ · Analoge Elektronik und Schaltungstechnik ·
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Fluke190.pdf
20 MHz Serie 120 mit einer Bandbreite Maximale Echtzeit-Abtastrate 2,5 GS/s 1 GS/s 2,5 GS/s 1 GS/s 500 MS/s 25 MS/s von 20 oder 40 MHz und Eingangsempfindlichkeit 2 mV bis 100 V/div 5 mV bis 100 V/div 5mV-500V/div Zeitbasisbereiche 5 ns/div bis 2 min/div 10 ns/div bis 10 ns/div bis 20 ns/div bis Connect-and-View
in „[V] ScopeMeter Fluke 196B (100 MHz, 1 GS/s) + SCC190“ · Markt ·
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LM3570.pdf
LEDs, n Very small solution size r and additional current fromOUT. The switching frequency is n 1µA(max) shutdown current S set at 500kHz. (typ.) to keep the conducted noise spectrum n 500kHz switching frequency (typ.) s away from sensitive frequencies within portable RF devices. n Linear regulation generates
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HM8631_HM8632_HM8634__1_.pdf
0.016 0.029 θ 0° 8° 0° 8° SO-8 A A2 Dimensions Dimensions D A1 Symbol In Millimeters In Inches Min Max Min Max b e A 1.370 1.670 0.056 0.068 A1 0.070 0.170 0.003 0.007 L A2 1.300 1.500 0.053 0.061 b 0.306 0.506 0.013 0.021 C 0.203 typ. 0.008 typ. D 4.700 5.100 0.192 0.208 E 3.820 4.020 0.156 0.164 E1
in „Identifizierung 8 pin SMD Bauteil aus BLDC Controller“ · Analoge Elektronik und Schaltungstechnik ·
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HT75xx-1.pdf
exposure to extreme conditionsmAy affect device reliability. Thermal Information Symbol Parameter Package Max. Unit SOT23-5 500 °C/W Thermal Resistance (Junction to Ambient) θJA (Assume no ambient airflow, no heat sink) SOT89 200 °C/W TO92 200 °C/W SOT23-5 0.20 W PD Power Dissipation SOT89 0.50 W TO92 0.50
in „2xAA + Elektronik -> Batterielebensdauer“ · Analoge Elektronik und Schaltungstechnik ·
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AN_106f.pdf
CONVERSION 1%ERROR 3dB ERROR ERROR GAIN ERROR BANDWIDTH BANDWIDTH SUPPLY VOLTAGE SUPPLY PART NUMBER TYP/MAX (%) TYP/MAX (%) (kHz) (kHz) MIN(V) MAX(V) MAX (µA) LTC1966 0.02/0.15 0.1/0.3 6 800 2.7 ±5 170 LTC1967 0.02/0.15 0.1/0.3 200 4MHz 4.5 5.5 390 LTC1968 0.02/0.15 0.1/0.3 500 15MHz 4.5 5.5 2.3mA Figure
in „Netzspannung messen.“ · Mikrocontroller und Digitale Elektronik ·
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stm32f103.cpp
quanta per bit are: * Bitrate Optimal Maximum * 1000 kbps 8 10 * 500 kbps 16 17 * 250 kbps 16 17 * 125 kbps 16 17 */ const uint8_t max_quanta_per_bit = (uint8_t)((target_bitrate >= 1000000) ? 10 : 17); // NOLINT // assert(max_quanta_per_bit <= (MaxBS1 + MaxBS2)); static
in „Arduino Blue Pill & CAN mit SN65HVD230“ · Mikrocontroller und Digitale Elektronik ·
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Timer_-_AVR-AN130.pdf
⁄ PVal) CK fLED = - - - - = - - - - - -= -- - - - - - - - - - - MaxVal 2 • MaxVal 2(PVal • MaxVal) A system consisting of an 8-bit timer (MaxVal = 256) and a system clock of CK = 3.69 MHz which is divided by a prescaler value of PVal = 1024, will cause the LEDs to blink
in „Timererklärung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
us+(us/128)*14; us-=11; while(us--); } void timer0(void) interrupt 1 { TR0 = 0; // stop timer0 } // max 16383 us void StartTimer(uint16_t us) { EA=0; TR0=0; //TCON=0; CKCON |= 0x08; //TMOD &= ~0x0F; //TMOD |= 0x01; // 16 bit timer // us = 0xFFFF-((us-5)<<2)+3; // us = 0x8F00; // us = 0xFFDB; // us*4 =
in „CY7C68013A Programm verhält sich merkwürdig“ · Mikrocontroller und Digitale Elektronik ·
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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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A500_ETV570G2DHU.pdf
DIRECTIONS 3 TIMES EACH CORROSIVE GAS NOT ACCEPTABLE NOT ACCEPTABLE NOTE ( 1 ) : Ta AT -°0 C : 48HRS MAX . 80°C : 168HRS MAX . NOTE ( 2 ) : BACKGROUND COLOR CHANGES SLIGHTLY DEPENDING ON AMBIENT TEMPERATURE THIS PHENOMENON IS REVERSIBLE. NOTE ( 3 ) : T≤60°C : 90%RH MAX (96HRS MAX). Ta > °0 C : ABSOLUTE
in „VGA Grafikkarte mit AVR und 8MB SDRAM“ · Projekte & Code ·
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UB084S01-2.pdf
signal are shown in Fig 2. (1). Timing characteristics of input signals DE mode Item Symbol Min. Typ. Max. Unit Remark Clock frequency Fck 38 40 42 MHz Horizontal blanking Thb1 235 256 500 Clk Horizontal display period Thd - 800 - Clk Horizontal sync. period Th 1035 1056 1300 Clk Vertical blanking Tvb1
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LMC662.pdf
LMC662AI LMC662C Units (Note 4) Limit Limit (Note 4) (Note 4) Input Offset Voltage 1 3 6 mV 3.3 6.3 max Input Offset Voltage 1.3 µV/˚C Average Drift Input Bias Current 0.002 pA 4 2 max Input Offset Current 0.001 pA 2 1 max Input Resistance >1 TeraΩ Common Mode 0V ≤ V ≤ 12.0V 83 70 63 dB CM Rejection Ratio
in „Alternative zum LMC6041“ · Analoge Elektronik und Schaltungstechnik ·
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datenblatt-pam8403.pdf
.5V % 1 % 1 0.5 0.5 0.2 0.2 V =5V 0.1 0.1 DD 0.05 V DDV 0.05 0.02 0.02 0.01 0.01 20m 50m 100m 200m 500m 1 2 4 20m 50m 100m 200m 500m 1 2 4 W W V =DD, R =4 , Gain L 18.5dB V =5V, R =8 , Gain = 18.5ΩB DD L 3. THD+N vs Output Power 4. THD+N vs Output Power 100 100 50 50 20 20 10 10 5 5 2 2 f=1KHz f=100Hz
in „PAM8403 Stereo (Kopfhörer) zu Mono (Lautsprecher) - wie?“ · Analoge Elektronik und Schaltungstechnik ·
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Siglent_SDG800_Series_DataSheet_V1.0.pdf
1.6ks Duty Cycle 0.1%Resolution Overshoot <5% Jitt(pk-pk) 500ps + 0.001% of period 4 SDG800 Series DataSheet Arbitrary Wave Waveform length 16kpoints Vertical resolution 14bits Sample rate 125MSa/s Min. Rise/Fall time 8ns(typical) Jittepk-pk) 8ns(typical) Storage
in „Suche günstigen Signalgenerator“ · Analoge Elektronik und Schaltungstechnik ·
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INFINEON-IKW50N65F5-DS-V02_01-EN.pdf
1.0 Y 17 E R V V O 0.9 O 15 E C R 0.8 R E 13 S S E 0.7 R V V 11 E 0.6 E , , r I 9 Q 0.5 0.4 7 0.3 5 500 700 900 1100 1300 1500 500 700 900 1100 1300 1500 diF/dt, DIODE CURRENT SLOPE [A/µs] diF/dt, DIODE CURRENT SLOPE [A/µs] Figure 21. Typical reverse recovery charge as a Figure 22. Typical reverse recovery
in „SGT40n60NPFD vs IKW50N65F5“ · Analoge Elektronik und Schaltungstechnik ·
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STM8S105.pdf
0.3622 104/127 DocID14771 Rev 10 STM8S105xx Package information Dim. mm inches (1) Min Typ Max Min Typ Max D1 6.800 7.000 7.200 0.2677 0.2756 0.2835 D3 5.500 0.2165 E 8.800 9.000 9.200 0.3465 0.3543 0.3622 E1 6.800 7.000 7.200 0.2677 0.2756 0.2835 E3 5.500 0.2165 e 0.500 0.0197 L 0.450 0.600
in „Handbuch STM8S Discovery“ · Mikrocontroller und Digitale Elektronik ·
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tps61046.pdf
zero ESR, the minimum capacitance needed for a given ripple can be calculated by: I K D C OUT OUT MAX SW K VRIPPLE (5) Where: D MAX = maximum switching duty cycle V RIPPLE= peak to peak output voltage ripple The ESR impact on the output ripple must be considered if tantalum or aluminum electrolytic
in „Ruhestrom Spannungswandler DC DC“ · Mikrocontroller und Digitale Elektronik ·
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DG-16080.pdf
0.39 (mm) Dot Pitch : 0.42 x 0.42 (mm) ABSOLUTE MAXIMUM RATINGS Standard Value Item Symbol Min Typ. Max. Unit Supply Voltage for Logic VddVss 0 -- 7.0 V Supply Voltage for LCD DriveVddVee 0 -- 19.0 V Input Voltage VI Vss -- Vdd V Operation Temperature Topr 0 -- 50 ℃ Storage Temperature Tstg -20 -- 70
in „Pollin 16080 Touch mit ATMEGA32 und BASCOM“ · Mikrocontroller und Digitale Elektronik ·
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iso-tech.pdf
±(1%+2dgt) 6A ±(1.5%+5dgt) 10A 50Hz~500Hz 2V max Overload Protection: 10A/600V for μA input 600V rms for A input Resistance Range Accuracy 600.0Ω 6.000KΩ 60.00KΩ ±(0.7%+2dgt) 600.0KΩ 6.000MΩ ±(1%+2dgt) Heading/ Language Heading 60.00MΩ ±(
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__Manual-Somfy_Outdoor-Camera.pdf
disjoncteur différentiel30mA|Alimentationpar filsde1,5 Stromversorgung 110-230 V AC, 50- 60 Hz, 4,8 A max | mm minimum Puissancemaximum del’éclairage:500W(Halogène)ou100W Überstromschutzeinrichtung 10 A oder 16 A und ein Differenzstrom2 (LED)Taille / Poids 150x 150x 85mm / 512g Températurede fonction- Schutzschalter
in „Videoüberwachung im Eingangsbereich“ · Haus & Smart Home ·
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LMD18200.pdf
Conditions Typ Limit Units RDS (ON) Switch ON Resistance Output Current = 3A (Note 6) 0.33 0.4/0.6 (max) R (ON) Switch ON Resistance Output Current = 6A (Note 6) 0.33 0.4/0.6 (max) DS VCLAMP Clamp Diode Forward Drop Clamp Current = 3A (Note 6) 1.2 1.5 V (max) VIL Logic Low Input Voltage Pins 3, 4, 5 −0.1 V (min) 0.8 V (max) IIL Logic Low Input Current V IN= −0.1V, Pins= 3, 4, 5 −10 µA (max) VIH Logic High Input Voltage Pins 3, 4, 5 2 V (min) 12 V (max) IIH Logic High Input Current V IN= 12V, Pins = 3, 4, 5 10 µA (max)
in „Halbbrücke für BLDC“ · Mikrocontroller und Digitale Elektronik ·
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ltc4010.pdf
CC, CHARGER ENABLED AND TEMPERATURE OK (OPTIONAL) V CELL 900mV PRECHARGE** CHECK (C/5 FOR BATTERY tMAX/12) 900mV V > 900mV VCELL> VCELL< 900mV CELL NiMH V < 1.22V AT t*/12 TOP-OFF ∆T/∆t CELL MAX CHARGE** FAST CHARGE** OR TIME =MAX FAULT (C/10) (1C) NiCd OR NiMH – ∆V V > 1.95V V < 1.325V OR PWM FAULTS
in „NiMH-Ladeschaltung mit LTC4010 lädt nicht“ · Mikrocontroller und Digitale Elektronik ·
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Datei
KidsMP3Player.ino
); readConfig(); delay(50); player.begin(); initDFPlayer(); for (int i = 0; i < NO_FOLDERS; ++i) { maxTracks[i] = player.getFolderTrackCount(i + 1); if (maxTracks[i] == -1) i--; } if (restartLastTrackOnStart) { readTrackInfo(); if (curFolder != -1 && curTrack != -1) { startTrackAtMs = millis() + PLAY_DELAY_MS
in „Projekt fertiggestellt: MP3 Player für Kinder auf ATTiny-Basis“ · Projekte & Code ·
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Datei
KidsMP3Player.ino
); readConfig(); delay(50); player.begin(); initDFPlayer(); for (int i = 0; i < NO_FOLDERS; ++i) { maxTracks[i] = player.getFolderTrackCount(i + 1); if (maxTracks[i] == -1) i--; } if (restartLastTrackOnStart) { readTrackInfo(); if (curFolder != -1 && curTrack != -1) { startTrackAtMs = millis() + PLAY_DELAY_MS
in „Projekt fertiggestellt: MP3 Player für Kinder auf ATTiny-Basis“ · Projekte & Code ·
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innoswitch3-ep_family_datasheet.pdf
FEEDBACK (FB) + FEEDBACK INH DRIVER - VREF QR CABLE DROP COMPENSATION/ SR FEEDBACK COMPENSATION TsMAX + - IS THRESHOLD t OFF(MIN) OSCILLATOR/ SECINH(MAX) TIMER t SS(RAMP) SECONDARY ISENSE GROUND (IS) (GND) PI-8045l-101619 Figure 4. Secondary Controller Block Diagram. 2 Rev. W 06/24 www.power.com InnoSwitch3
in „Fritz Repeater 2400“ · Analoge Elektronik und Schaltungstechnik ·
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150rmi.pdf
≈ 1.6 1000 500 800 10 x 16 15 0.6 10.5 17.5 5.0 ± 0.5 ≈ 1.9 500 500 800 10 x 20 16 0.6 10.5 22.0 5.0 ± 0.5 ≈ 2.2 500 500 800 12.5 x 20 17 0.6 13.0 22.0 5.0 ± 0.5 ≈ 4.0 500 500 500 12.5 x 25 18 0.6 13.0 27.0 5.0 ±
in „Ersatz für Kondensator im Schaltnetzteil“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ct340_manual.pdf
by an open collector transistor referenced to 0V. VIN (Power) Input supply voltage Vin 10V min. 15V max. (Abs.max. not operational 20V) Supply voltage ripple Vrip Within Vin min. to max. up to 100Hz 250mV pk-pk frequencies > 100Hz Supply rise time Trise 75ms max. Input current Iin 500mA max. VIN is the
in „Münzprüfer Eines Geldspielautomaten umgehen“ · Mikrocontroller und Digitale Elektronik ·
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ds232bv16.pdf
The device used in the example is a Sipex SP213EHCA which is capable of RS232 communication at up to 500K baud. If a lower baud rate is acceptable, then several pin compatible alternatives are available such as Sipex SP213ECA , Maxim MAX213CAI and Analog Devices ADM213E which are good for communication
in „kleiner FET“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
datenblatt_von_FT232BL.pdf
The device used in the example is a Sipex SP213EHCA which is capable of RS232 communication at up to 500K baud. If a lower baud rate is acceptable, then several pin compatible alternatives are available such as Sipex SP213ECA , Maxim MAX213CAI and Analog Devices ADM213E which are good for communication
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PDF
A200_FT232BL.pdf
The device used in the example is a Sipex SP213EHCA which is capable of RS232 communication at up to 500K baud. If a lower baud rate is acceptable, then several pin compatible alternatives are available such as Sipex SP213ECA , Maxim MAX213CAI and Analog Devices ADM213E which are good for communication
in „Schaltplan für FT 232BL überprüfen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ths6012.pdf
to 6.4 to -5.6 -6 Differential RL= 50 Ω V V CC = ±15 V 23.6 to - 25 to - 23 24.4 R = 5 Ω, V = ±5 V 500 O Output current2) L CC mA RL= 25 Ω, V CC = ±15 V 400 500 (2) A heat sink is required to keep the junction temperature below absolute maximum when an output is heavily loaded or shorted. See absolute
in „DDS Endstufe DC-50 Mhz“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SUN-M101T2-03_VerA.pdf
clock - 9 Display Format RGB vertical stripe - 10 Luminance (cd/m^2) 200(min) nit 11 Contrast Ratio 500(typ) 12 Surface Treatment Anti-Glare and Hard-coating 3H - 13 Interface LVDS - 14 Backlight White LED - 15 Operation Temperature 0~50 ℃ 16 Storage Temperature -20~60 ℃ 17 Weight 190 (max) g 4/20 VerA
in „LVDS - Keine Ahnung bei Verbindung Board und Display“ · Mikrocontroller und Digitale Elektronik ·
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INA111_BB.pdf
INA111 N A11 1 High Speed FET-Input INSTRUMENTATION AMPLIFIER FEATURES DESCRIPTION FET INPUT: I = 2BpA max The INA111 is a high speed, FET-input instrumenta- HIGH SPEED: T = 4 sS(G = 100, 0.01%) tion amplifier offering excellent performance. LOW OFFSET VOLTAGE: 500 V max The INA111 uses a current-feedback
in „INA111 als Verstärker für Solarzelle?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ml13135_rev0.pdf
Narrowband FM Receiver at 46/49 MHz VCC ML13135 0.1 24 500p 500p 1stLO Varicap 2.7k 100k 1 23 47k 0.68µH 27p 2 1.0 0.001 5.0p 22 0.01 62pF RF 3 21 0.2µH Input VCC1 150pF 5.1k 4 0.01 3.0p 0.1 20 OSC OSC 5 Ceramic 0.1 Out In 2ndLO V 2 Filter 120p 50p 6 CC 10.7MHz
in „[S] ML13135-6P“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ina111.pdf
INA111 N A11 1 High Speed FET-Input INSTRUMENTATION AMPLIFIER FEATURES DESCRIPTION FET INPUT: I = 2BpA max The INA111 is a high speed, FET-input instrumenta- HIGH SPEED: T = 4 sS(G = 100, 0.01%) tion amplifier offering excellent performance. LOW OFFSET VOLTAGE: 500 V max The INA111 uses a current-feedback
in „"Hallsonde für Oszilloskop" im Eigenbau?!“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SG6105A.pdf
Temperature (°C) Figure 7. PWM Output Voltage vs. Temperature Figure 8. Frequency vs. Temperature 89.500 2.600 89.450 89.400 ) 2.550 ( 89.350 ) X 89.300 ( A 2 C 89.250 V D 2.500 89.200 89.150 89.100 2.450 -40 -25 -10 5 20 35 50 65 80 95 110 125 -40 -25 -10 5 20 35 50 65 80 95 110 125 Temperature (°C) Temperature (°C) Figure 9. MAX Duty Cycle vs. Temperature Figure 10. Reference Voltage vs. Temperature © 2008 Fairchild Semiconductor Corporation www.fairchildsemi.com SG6105A • Rev. 1.0.2 9 S G 6 Typical Performance Characteristics
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rgs50tsx2d-e.pdf
Characteristics (at T j 25°C unless otherwise specified) Values Parameter Symbol Conditions Unit Min. Typ. Max. Input Capacitance Cies V CE= 30V - 2095 - Output Capacitance C oes V GE= 0V - 166 - pF Reverse transfer Capacitance Cres f = 1MHz - 12 - Total Gate Charge Q g V CE= 500V - 67 - Gate - Emitter Charge
in „RGS50TSX2D als Ersatz für IHW20N120R3?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
rgs50tsx2d-e.pdf
Characteristics (at T j 25°C unless otherwise specified) Values Parameter Symbol Conditions Unit Min. Typ. Max. Input Capacitance Cies V CE= 30V - 2095 - Output Capacitance C oes V GE= 0V - 166 - pF Reverse transfer Capacitance Cres f = 1MHz - 12 - Total Gate Charge Q g V CE= 500V - 67 - Gate - Emitter Charge
in „Induktions Doppelfeld (stand alone) - eine Seite hinüber.“ · Analoge Elektronik und Schaltungstechnik ·
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Bild
Vergleichstabelle technischer Spezifikationen verschiedener Produktmodelle
Product model LA1010 LA1016 LA2016 LA5016 LA5032 Number of channels 16 16 16 32 Max sampling rate 100M@3CH, 50M@6CH, 32M@9CH, 16M@16CH 100M 200M 500M 500M Measurement bandwidth 20MHz 20MHz 40MHz 80MHz 80MHz Min detectable pulse width 20ns 20ns 12.5ns 6.25ns 6.25ns Hardware memory size -- 1Gbits 1Gbits 2Gbits 4Gbits Hardware sampling depth -- 50MSa 50MSa 100MSa 100MSa Max compression depth 10GSa Input voltage range -50V~+50V Input impedance 220KΩ, 12pF Threshold voltage Range: -4V~+4V, Step: 0.01V Port type USB2.0 Standby current 100mA 130mA 130mA 200mA 350mA Max active
in „Empfehlung Logicanalyzer“ · Mikrocontroller und Digitale Elektronik · · Screenshots
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PDF
542-01945-0-Z86E04.pdf
500 125 ns 1 5.5V 500 125 ns 1 4. TwTinL Timer Input Low Width 4.5V 70 70 ns 1 5.5V 70 70 ns 1 5 TwTinH Timer Input High Width 4.5V 2.5TpC 2.5TpC 1 5.5V 2.5TpC 2.5TpC 1 6 TpTin Timer Input Period 4.5V 4TpC
in „Pollin Ladegerät WCFD0801500IFOON : Rückwärts Ingenieur gesucht !“ · Mikrocontroller und Digitale Elektronik ·
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Datei
reni_v0.67.c
short buff[BUFFLEN0x81]; } g_sInterrupt0x81[MAX_STREAM0x81]; int g_iInterrupt0x81_index_write; // active stream for writing int g_iInterrupt0x81_index_read; // active stream for reading int g_bInterrupt; // switch for interrupt #define MAX_STREAM0x82
in „Schreiben eines USB-Treibers mit libusb-win32“ · Softwareentwicklung ·
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PDF
pt2322.pdf
-30 -40 2 -50 1 -60 0.5 d -70 % B -80 0.2 -90 0.1 -100 -110 0.05 -120 -130 0.02 -140 20 50 100 200 500 1k 2k 5k 10k 20k 0.01 Hz UP : TONE CONTROL (FL/FR) 0.006 BOTTOM : TONE CONTROL OUT (CTR/SUB/SL/SR) 1m 2m 5m 10m 20m 50m 200m 500m 1 2 4 Vrms THD vs Output Level L/R Channel Separation +15 +15 +12.5
in „5.1 Verstärker bauen (paar Fragen und Bauteilalternativen)“ · Analoge Elektronik und Schaltungstechnik ·