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A_Design_of_High_Speed_and_Real-time_DSO_Based_on_FPGA.pdf
&(A lt!!~& ,111fi.;(R Ail9.:J"-'f~7'1i.ntißMI!l1lMIT j&;!;:((;tit 7,';;, t:'IJ!*l~f(.JIfISO'l~lj:~Iw. *xfr!!t;~iil*fiß*j:lGHz, 7tl!lI*'j;J 8BitHz J&tI>HilJ.l:Y, 200M 1f~Jli.;il';f!ifJ1JJj~*1ij;l7f,ttittIlT RM!WfiJil';JX *1J~.rAJ6xH~!<iI~H'<J%dtI'~
in „Oszilloskop - SoC“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LM124.pdf
L M August 2000 1 4 L M 2 LM124/LM224/LM324/LM2902 2 Low Power Quad Operational Amplifiers 4 L General Description Advantages M 2 The LM124 series consists of four independent, high gain,liminates need
in „positiver Addierer“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DAC7552.pdf
SLAS442C–JANUARY 2005–REVISED DECEMBER 2005 ELECTRICAL CHARACTERISTICS V DD= 2.7 V to 5.5 V, VREF = VDD R =L2 k to GND; C L 200 pF to GND; all specifications –40°C to 105°C, unless otherwise specified PARAMETER TEST CONDITIONS MIN TYP MAX UNITS STATIC PERFORMANCE (1) Resolution 12 Bits Relative accuracy ±0.35
in „Problem mit DAC7552“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LT3757_Boost-Sepic-Flyback-Invert.pdf
Dropout Voltage Gate Drive Rise CC INTV CC Line Regulation vs Current, Temperature and Fall Time vs C L 7.30 700 90 INTVCC= 7.2V 125°C 80 600 7.25 V 70 ( ( 500 75°C E G 60 A T 400 25°C s RISE TIME FALL TIME L O ( 50 V 7.20 V M C U 300 0°C T 40 T P I O 200 –50°C 30 7.15 D 20 100 10 7.10 0 0 0 5 10 15 20
in „Datenblätter von Linear Technologies“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DM00109015.pdf
OA4MPA V = 3.3 V with V = 0 V, V = V /2, T = 25 °C, and R = 10 k connected to V /2 CC+ CC- icm CC L CC (unless otherwise specified) Table 5. Electrical characteristics Symbol Parameter Conditions Min. Typ. Max. Unit DC performance T = 25 °C 200 V io Input offset voltage -40 °C < T< 85 °C 850 V -40
in „Frage zu OpAmp dual supply“ · Analoge Elektronik und Schaltungstechnik ·
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k3020p.pdf
otherwise specified) Axis Title 400 10000 1000 Total ) W Output A m 300 t 100 n n t 1000 r e p e e u l s l l C 10 d D 200 s n r 2 e 1 2 w w 100 o P Input F 1 - 100 -F d I P 0.1 0 10 0 0.4 0.8 1.2 1.6 2.0 -60 -40 -20 0 20 40 60 80 100 120 V - Forward Voltage (V) F T amb Ambient Temperature (°C) Fig. 1
in „12VAC Klingelgong mit ESP32 und Optokoppler schalten“ · Analoge Elektronik und Schaltungstechnik ·
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NE602-Philips.pdf
ceramic filters 18dB of gain at 45MHz. The oscillator • SA602 meets cellular radio will operate to 200MHz. It can be config specifications ured as a crystal oscillator, a tuned tankAPPLICATIONS oscillator, or a buffer for an external L.O. The noise figure at 45MHz is typically • Cellular radio mixer/
in „3rd-OT-Oszillator mit NE602 (an Pin 6 und 7)“ · HF, Funk und Felder ·
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BUV48AFI_STMicroelectronics.pdf
(SUS)∗ Collector-Emitter Sustaining IC= 200 mA L= 25mH Voltage (B = 0) for BUX48 400 V for BUX48A/V48A/V48AFI 450 V V Emitter-Base Voltage I = 50 mA 7 30 V EBO E (C = 0) V ∗ Collector-Emitter Saturation for BUX48 CE(sat) Voltage IC= 10 A IB=
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SN75468D.pdf
0.25 (( (( CC 0 EE V 0 100 200 300 400 500 600 700 800 VC 0 0 100 200 300 400 500 600 700 800 IC– Collector Current – mA IC(tot) Total Collector Current – mA Figure 11 Figure 12 COLLECTOR CURRENT vs INPUT CURRENT 500 R = 10 450 L TA= 25⋅C A 400 m – VS= 10 V n 350 r VS= 8 V u 300 r t 250 e l C 200 – II 150 100 50 0 0 25 50 75 100 125 150 175 200 I – Input Current – mA I Figure 13 3–6 POST OFFICE BOX 655DALLAS, TEXAS 75265 SN75468, SN75469 DARLINGTON TRANSISTORARRAYS SLRS023B – DECEMBER 1976
in „SPDIF/PCM über 3W Luxeon LED -> Treiber für MOSFET gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
WCU_Kilobot_Schematic.txt
0 U B 0 U C 0 U B E C OPA4376AIPWR ANA 4 2 0 0 TIMESTAMP 2016.02.26.19.21.13 GATE 1 3 1 OPAMP 2 0 L 3 0 L 1 0 S GATE 1 3 1 OPAMP 6 0 L 5 0 L 7 0 S GATE 1 3 1 OPAMP 9 0 L 10 0 L 8 0 S GATE 1 3 1 OPAMP 13 0 L 12 0 L 14 0 S SIGPIN 4 VCC SIGPIN 11 GND TEMD7100X01 DIO 1 0 0 0 TIMESTAMP 2016.02.26.19.22.55
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21425b.pdf
single output only). 60 60 VDD = 18 V V = 18 V 2 MHz DD 2200 pF 50 1 MHz 50 1000 pF A 40 ) 40 m A Y ( L 30 L 30 P 500 kHz P I U 20 20 I 100 pF 10 200 kHz 10 20 kHz 100 1000 10,000 0 10 100 1000 10,000 C LOAD (pF) FREQUENCY (kHz) FIGURE 2-13: Supply Current vs. FIGURE 2-16: Supply Current vs. Capacitive Load. Frequency. 60 60 V DD= 12 V 2 MHz 2200 pF VDD = 12 V 50 50 ) 40 ) 40 A A ( 1 MHz ( 1000 pF L 30 L 30 P P U U I 20 500 kHz I 20 10 200 kHz 10 100 pF 20 kHz 0 10,000 0 100 1000 10 100 1000 10,000 CLOAD (pF) FREQUENCY (kHz) FIGURE 2-14: Supply Current vs. FIGURE 2-17: Supply Current vs. Capacitive
in „Problem mit dem TC4469“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TFTNY263PN-TO-TNY268GN_E.pdf
Pin. Resistor (2 MΩ) Connected to EN/UV Pin. G 6 4/05 TNY263-268 C8 680 pF Y1 Safety Shield T1 D5 L2 1N5819 3.3 µH 1 8 + 5 V C5 C6 500 mA 2.2 nF 330 µF 100 µF R2 16 V 35 V D1 200 kΩ 4 5 RTN 1N4005 D2 1N4005 270 Ω D6 1N4937 C1 C2 U2 3.3 µF 3.3 µF LTV817 R7 8VAC65 400 V 400 V 100 Ω RF1 U1 D EN/UV 8.2
in „Neff Steuerplatine Leiterbahnen abgerissen.“ · Platinen ·
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e-pm.pdf
size Impedance (Ω MAX.) Rated ripple (mA rms) Case size Impedance (Ω MAX.) Rated ripple (mA rms) Cd D L 10kHz~ D L 10kHz~ Cap.(µF) e (mm) 20°C / 100kHz –10°C/100kHz5°C/200kHz105°C / 120Hz (mm) 20°C / 100kHz –10°C/100kHz5°C/200kHz105°C / 120Hz 10 100 ..5 11 1.06 2.12 135 67 12 120 ..5 11 0.93 1.86 145 72
in „LOW ESR Elkos“ · Mikrocontroller und Digitale Elektronik ·
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BKA-130.pdf
330P 9 AUX+12V R601 1K 11 4 R506 C517 16 C520 12 3 5.6K 474 IC1 183 22R C413 13 2 R419 TDA8920BTH L5 CON102 14IC403 1 11 33uH 104 HEF4013 10K C517A 1 C417 C418 MMBT5551 474 L6 2 C 100u/25V 104 Q403 2 3 C 33uH 4 21 5 R510 4P-3.96 R508 22R R402 C404 R409 C519 22 C521 4.7R C531 200K AUX+12V 104 R406 R407
in „Schaltnetzteil im Audioverstärker defekt?“ · Analoge Elektronik und Schaltungstechnik ·
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P26-27-Power-thermistor.pdf
200 4830 3360 990 840 24.0 15D2-13 15.0 3050 3.0 0.48 55 25 - 50 to 200 4830 3360 990 840 24.0 16D2-13 16.0 3050 3.0 0.51 55 26 - 50 to 200 4830 3360 990 840 24.0 2D2-14 2.0 2800 5.0 0.15 90 36 - 40 to
in „Auf Fehlersuche bei Nichicon-Netzteil (aus RICOH SP C250SF)“ · Analoge Elektronik und Schaltungstechnik ·
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INA125.pdf
TURN-ON TIME vs TEMPERATURE 100 550 80 A500 ) ( 450 µ 60 G = 100 n ( e400 +Q g 40 u350 a C C 20 e300 e 0 l250 a S –I ±SLEEP o –20 n200 Q V t150 e –40 e V SLEEP 100mV +ISLEEP f s 100 O –60 i 50 V SLEEP 0V u –80 Q 0 –I –100 –50 SLEEP 0 50 100 150 200 250 –75 –50 –25 0 25 50 75 100 125 Time From Turn-On (µs)
in „Signal einer Wägezelle auswerten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
INA125.pdf
TURN-ON TIME vs TEMPERATURE 100 550 80 A500 ) ( 450 µ 60 G = 100 n ( e400 +Q g 40 u350 a C C 20 e300 e 0 l250 a S –I ±SLEEP o –20 n200 Q V t150 e –40 e V SLEEP 100mV +ISLEEP f s 100 O –60 i 50 V SLEEP 0V u –80 Q 0 –I –100 –50 SLEEP 0 50 100 150 200 250 –75 –50 –25 0 25 50 75 100 125 Time From Turn-On (µs)
in „Verstärker für Messbrücke“ · Analoge Elektronik und Schaltungstechnik ·
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Nokia_2-mm_DC_Charging_Interface_Specification_v1_2_en.pdf
load change situation (see Section 2.3, “Maximum voltage and current values"). . 10 9.3 9 8 7 e g 5.7 l 5.54 V o V 5 4 3 2 1 1.0 V 90 100 200 300 400 500 600 700 800 9009501000 1100 1200 Current mA Figure 5:Charging current/voltage window for constant current type chargers 3.2 U/I corner point The U/I
in „Nokia über USB laden“ · Offtopic ·
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PDF
Nokia_2-mm_DC_Charging_Interface_Specification_v1_2_en.pdf
load change situation (see Section 2.3, “Maximum voltage and current values"). . 10 9.3 9 8 7 e g 5.7 l 5.54 V o V 5 4 3 2 1 1.0 V 90 100 200 300 400 500 600 700 800 9009501000 1100 1200 Current mA Figure 5:Charging current/voltage window for constant current type chargers 3.2 U/I corner point The U/I
in „Handy mit "Falscher" Spannungshohe laden.“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
main.cpp
anhängen } void AddControls(HWND hWnd) { // Different Information and Inputs hData = CreateWindowW(L"edit", NULL, WS_VISIBLE | WS_CHILD | WS_BORDER | ES_MULTILINE | ES_AUTOVSCROLL | ES_AUTOHSCROLL, 10, 35, 200, 350, hWnd, NULL, NULL, NULL); hDepth = CreateWindowW(L"edit", L"0.5", WS_VISIBLE | WS_CHILD
in „PlungeToRamp. Gcode von oben in Material fahren verhindern“ · Projekte & Code ·
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PDF
LT1734.pdf
RPROG = 7.5k PNP = FCX589 TA= 25°C PNP = FCX589 PNP = FCX589 RPROG = 2100Ω 51 ( ( E E ) A A A O4.20 L4.200 (150 V V A V = 4.55V AND 8V A A IB CC F V CC= 8V F VCC= 4.55V 49 4.19 4.199 48 –50 –25 0 25 50 75 100 125 0 25 50 75 100 125 150 175 –50 –25 0 25 50 75 100 125 TEMPERATURE (°C) I (mA) TEMPERATURE
in „akku mit solar aufladen, kommt das IC: LT1734L dafür in Frage?“ · Analoge Elektronik und Schaltungstechnik ·
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PA94U_M.pdf
2.2pF Y = =8 (O00 4 .2 , P TC TC V 7 pF I80 P E C F A CC = 4.7pF S24 25°C G C= G60 M = A 2 P O T C L200 2p O CC = 22 pF R16 –55° O F L40 P TC= V O T E R P100 P20 D 8 T O G U A O 0 L 4 50 10 100 1K 10K100K1M 10M20M O 0 20 40 60 80 100 10K 100K 1M 2M FREQUENCY, F (Hz) V OUTPUT CURRENT, I O(mA) FREQUENCY, F (Hz) ) CURRENT LIMIT ) SAFE OPERATING AREA z INPUT NOISE A250 /0 200 ( V ) S 1 ( A –150 00m N5 (120 R 0 S V I00 O100 D 0m E IL V C, S G0 T 70 + 50 DC TC= A I M ,T 25 L7 I 50 O DC C=8 C O L F 25 ,T 5°C V N 30 T C= 1 E5 E E 25 I R R 15 °C O U 20 U 10 N C C PULSE CURVES
in „Netzstrom-Verzerrungen sichtbar machen“ · Analoge Elektronik und Schaltungstechnik ·
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Schaltplan.pdf
X 125mW % 1 C 1 C 0805 01R10 2 250VDC 3 200V 3R3 X Z C28 82 R75II C30 0 0805 R 282C 2X3C 1 2 M C 10nF A C32 3 100V 7 1 2 0805 5 A Â 2Z3C Z 2Z2L E µ 1 OUT_B 35 N 2 L 2 1 L C Z 2 b 1 C 2 33nF C26 6 100V 2X2C0805 BST_B 43 X N Last Saved: 02.08.2025
in „TPA3255, Fehler LED nach 1s“ · Analoge Elektronik und Schaltungstechnik ·
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sed1335f.pdf
1 Parameter IV = 1 IV = 0 IV = 1 IV = 0 C/R C/R C/R C/R C/R TC/R TC/R TC/R (see note 1) TC/R TC/R L/F L/F L/F L/F L/F SL1 00H to L/F 00H to L/F + 1 (L/F) / 2 (L/F) / 2 (see note 2) SL2 00H to L/F 00H to L/F + 1 (L/F) / 2 (L/F) / 2 (see note 2) SAD1 First screen block First screen block First screen
in „SP14Q002-A1 aus eBay - Erfahrungsaustausch“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SED1330.pdf
1 Parameter IV = 1 IV = 0 IV = 1 IV = 0 C/R C/R C/R C/R C/R TC/R TC/R TC/R (see note 1) TC/R TC/R L/F L/F L/F L/F L/F SL1 00H to L/F 00H to L/F + 1 (L/F) / 2 (L/F) / 2 (see note 2) SL2 00H to L/F 00H to L/F + 1 (L/F) / 2 (L/F) / 2 (see note 2) SAD1 First screen block First screen block First screen
in „Hilfe ! Problem mit Minigrafikdisplay und AT90S8535“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SED1335F.pdf
1 Parameter IV = 1 IV = 0 IV = 1 IV = 0 C/R C/R C/R C/R C/R TC/R TC/R TC/R (see note 1) TC/R TC/R L/F L/F L/F L/F L/F SL1 00H to L/F 00H to L/F + 1 (L/F) / 2 (L/F) / 2 (see note 2) SL2 00H to L/F 00H to L/F + 1 (L/F) / 2 (L/F) / 2 (see note 2) SAD1 First screen block First screen block First screen
in „Hilfe beim Initialisieren des SED1335F gesucht“ · Mikrocontroller und Digitale Elektronik ·
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doc4834.pdf
5 Bit 4 Bit 3 Bit 2 Bit 1 Bit 0 (OCS) (HS3) (LS3) (HS2) (LS2) (HS1) (LS1) (SRR) x x H x x x x x x L L L L L L L The following patterns are used to enable internal test modes of the IC. It is not recommended to use these patterns during normal operation. Bit 15 Bit 14 Bit 13 Bit 12 Bit 11 Bit 10 Bit
in „DCC Decoder“ · Projekte & Code ·
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PDF
3GW_22048_1_2009.05.20.09.50.48_14403_EN.pdf
Fixture Opt. L7 Simplified Chinese manual 196-3508-xx Digital Probe Leadset (8 channels) Opt. L8 Traditional Chinese manual 119-7465-xx TekVPI ®External Power Supply Opt. L9 Korean manual Opt. L10 Russian manual SIGEXPTE NI LabVIEW SignalExpress Tektronix Edition Software – Full Version Opt. L99 No m anual TEK-USB-488 GPIB-to-USB adapter * Language options include translated front-panel overlay for the selected language(sACD2000 Soft Transit Case and Front Protective Cover 200-5045-xx Front
in „Tektronix DPO 2012“ · Markt ·
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PDF
3GW_22048_1_2009.05.20.09.50.48_14403_EN.pdf
Fixture Opt. L7 Simplified Chinese manual 196-3508-xx Digital Probe Leadset (8 channels) Opt. L8 Traditional Chinese manual 119-7465-xx TekVPI ®External Power Supply Opt. L9 Korean manual Opt. L10 Russian manual SIGEXPTE NI LabVIEW SignalExpress Tektronix Edition Software – Full Version Opt. L99 No m anual TEK-USB-488 GPIB-to-USB adapter * Language options include translated front-panel overlay for the selected language(sACD2000 Soft Transit Case and Front Protective Cover 200-5045-xx Front
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dtc114ekat146-e.pdf
to be set for operation, making the circuit designeasy. 4) ComplementaryPNP Types: DTA114E series lApplication INVERTER, INTERFACE, DRIVER DTC114EUA DTC114EKA (UMT3) (SMT3) lInner circuit DTC114EM/ DTC114EEB/ DTC114EUB DTC114EE/ DTC114EUA/ DTC114EKA lPackaging specifications Basic Package Taping Reel
in „NPN am STM32L4 ohne Basisvorwiderstand?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SANMOTION_R_M0006890N.pdf
) 06・・・60mm Rated output 003・・・30W 120・・・1.2kW 08・・・80mm 005・・・50W 180・・・1.8kW B8・・・86mm 008・・・80W 200・・・2kW Maximum rotation speed Holding brake 13・・・130mm 010・・・100W 350・・・3.5kW 020・・・200W 450・・・4.5kW B・・・2000min -1 L・・・3000/4000min-1 X・・・No brake 22・・・220mm -1 -1 040・・・400W 500・・・5kW R・・・2500min D
in „Servoregler/Servoverstärker Verständnislücke“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Model_List_for_LiPO_and_Li-ion.pdf
3,7 2 两极耳绝缘胶不重叠合 两极耳绝缘胶不重叠、不超出电 8 601235 170 6.0±0.2 12.0±0.8 35.0±0.8 4,2 150↓ 3,7 2 芯宽度 9 601235L 160 5.8±0.2 12.0±0.8 34.5±0.8 4,1 200↓ 3,7 2 两极耳中心距不重叠 两极耳绝缘胶不重叠、不超出电 10 1245 601245 250 6.0±0.2 11.5±0.5 45.0±0.5 5,4 120↓ 3,7 2 芯宽度 11 401430 100 3.9(+0.1 0.2) 13.5±0.8 29.5±0.8 2,4 180↓ 3,7 2 6.0
in „suche LiIon Akku in Wunschmaß (schmaler Streifen)“ · Markt ·
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K4097.pdf
2.55 2.55 SANYO : TO-220FI(LS) Switching Time Test Circuit Avalanche Resistance Test Circuit V V =200V IN DD 10V L 0V ≥50Ω I =5A V R =40Ω RG IN L D VOUT PW=10µs 2SK4097LS D.C.≤0.5% 10V V 0V 50Ω DD G 2SK4097LS P.G R GS=50Ω S No.A0775-2/5 2SK4097LS I -- V I -- V 30 D DS 30 D GS Tc=25°C V DS =20V 25 25
in „MOSFET (K4097) Ersatztyp“ · Analoge Elektronik und Schaltungstechnik ·
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TDA8924.pdf
; VP= ±20 V; THD = 0.5 %; note 2 − 135 − W R = 4 ; V = ±20 V; THD = 10 %; note 2 − 175 − W L P R L 4 ; VP= ±24 V; THD = 0.5 %; note 2 − 200 − W R L 4 ; VP= ±24 V; THD = 10 %; note 2 − 240 − W THD total harmonic distortion P = 1 W; note 3 o fi= 100 Hz − 0.015 − % fi= 1 kHz − 0.015 0.05 % fi=
in „Schaltregler 24V/15A gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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lm3150.pdf
Inductor Required D max = 3.3V / 6V = 0.55 a. ET = (24-3.3) x (3.3/24) x (1000/500) = 5.7 V µs f = 0.137/ 200 ns = 687 kHz b. From the inductor nomograph a 12A load and 5.7 V µs cal- smax D max = VOUT/VIN-MIN culation corresponds to a L44 type of inductor. tOFF= (1-0.55)/687 kHz = 654 ns c. Using the inductor designator L44 in Table 1 the Coilcraft HA3778–AL 1.65 µH inductor is chosen. OFF should meet the following criteria: 5. Determine Output Capacitance OFF > tOFF-MIN+ 200 ns The voltage rating on the output capacitor
in „LM3150 zu geringe Ausgangsspannung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ICL7660.pdf
oscillator frequency I above the audio band and reduces external capacitor No-Load Supply Current: 200µA Max at 5V C size requirements. No External Diode Required for Higher-Voltage The MAX1044/ICL7660 combine low quiescent current L and high efficiency. Oscillator control circuitry and four Operation
in „neg. Spannung mit Z-Diode erzeugen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ICL7660-MAX1044.pdf
oscillator frequency I above the audio band and reduces external capacitor No-Load Supply Current: 200µA Max at 5V C size requirements. No External Diode Required for Higher-Voltage The MAX1044/ICL7660 combine low quiescent current L and high efficiency. Oscillator control circuitry and four Operation
in „OP Spannung 1,82V bei Min.“ · Mikrocontroller und Digitale Elektronik ·
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PDF
T3476-001-Amphenol-datasheet-5402457.pdf
14 Pol. 6,0 12 POLol. 9,0 14 POL 9,0 6, 4,5 3,0 3,0 0,8 3 0,8 7 B C 3 , G 3 H G 3 7 C 3 JH J M F 0 L D 5 8 0 B K M F E 0 0 K N O E , , A E 0 0 A L D 5 8 3 A L D 5 8 7 A L D 5 8 KJ M F N O E 0 0 7 3 , H 3 KJ M F 0 B C 0 B C 5 G 5 H G 0,8 0,8 3,0 3,0 6,0 4,5 9 , 9,0 6,0 *ContactorderforDINEN130-9 Amphenol
in „Wieviel Strom kann der Stecker ab?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
OB2223CPA.pdf
PLOTS UVLO(ON) vs Temperature UVLO(OFF) vs Temperature V 7.4 ) 13.3 O 7.3 O 13.1 L 7.2 L 12.9 ▯ U 7.1 U 12.5 7 -40 -10 20 50 80 110 140 -40 -10 20 50 80 110 140 Temperature( ) Temperature( ) ℃ ℃{ F_max vs Temperature I_startup vs Tomperature 15 t z51 12 l (50 ( 9 i a m49 a 3 t F48
in „SMD IC "G1768A" Datenblatt gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
TLV3201.txt
11 N=1.397 XTI=1.5 .MODEL DD D .MODEL DT D RS=1E1 IS=1E-18 .MODEL DC D IS=1E-18 .MODEL MCC NMOS KP=200U VTO=2 .MODEL MCN NMOS KP=200U VTO=2 .MODEL MCT NMOS KP=200U VTO=1 .MODEL MCP PMOS KP=200U VTO=-2 .MODEL MCNV NMOS KP=2000U VTO=-0.27 .MODEL MCPV PMOS KP=2000U VTO=0.28 .MODEL MCNO NMOS KP=35000U VTO
in „LTSpice - Problem mit neuem Bauteil“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Datenblatt_PR4401_PR4402.pdf
0,8 1 1,2 1,4 1,6 1,8 2 Supply Voltage[ V ] Supply Voltage[V] ]250 A 30 A m 22 µH [ t 25 14.7 µH t200 e e r 20 10 µH r 150 C C n 15 k 100 e e M 10 P 50 22 µH D E L 5 L 10 µH 0 0,8 1 1,2 1,4 1,6 1,8 2 0,8 1 1,2 1,4 1,6 1,8 2 Supply Voltage [V] Supply Voltage [V] 1,1 800 V 22 µH ] 22 µH e H 600 10 µH g 1 10µH [ l y o 0,9 n 400 p u t q a 0,8 r 200 S F 0,7 0 -20 5 30 55 80 0,8 1 1,2 1,4 1,6 1,8 2 Temperature[°C] Supply Voltage[V] 30 ] A t 25 n r u 20 D L1 = 10 µH E n 15 1.00 V 1.25 V a M 1.50 V 1.75 V 10 -30 -20
in „LED-Boost-Converter ohne IC“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
1-SPD30N06S2L-13_1-1.pdf
98%) j 2 0 10 10 0 5 10 15 20 V 30 0 0.4 0.8 1.2 1.6 2 2.4 V 3 V V DS SD Page 6 2003-05-09 SPD30N06S2L-13 13 Typ. avalanche energy 14 Typ. gate charge E AS = f (T j V GS = f (Q Gate ) par.: ID= 30 A , V DD = 25 V, R GS = 25 W parameter: I = D0 A pulsed 260 16 SPD30N06S2L-13 mJ V 220 200 12 180 A S E 160
in „Kuehlkoerper“ · Mikrocontroller und Digitale Elektronik ·
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GAL22V10_LAT.pdf
Delta Tco vs Output Loading 12 12 RISE ) 8 FALL ) 8 RISE s s FALL ( ( d o T 4 T 4 a a l l D D 0 0 -4 -4 0 50 100 150 200 250 300 0 50 100 150 200 250 300 Output Loading (pF) Output Loading (pF) 16 Specifications GAL22V10 GAL22V10D-7/10L (PDIP): Typical AC and DC Characteristic Diagrams
in „Gal & ISP Logik (D-Latch beschreiben)“ · FPGA, VHDL & Co. ·
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AVX_cx7r.pdf
G J J J J J J J 0.22 G J J M J J J J 0.33 M M J J M M 0.47 N M M M M 0.68 N M M 1.0 W N M M Q 1.5 L P 2.2 Q 3.3 T 4.7 10 22 t 47 100 WVDC 16 16 25 50 10 16 25 50 100 10 16 25 50 100 200 10 16 25 50 100 200 500 SIZE 0201 0402 0603 0805 1206 Letter A C E G J K M N P Q X Y Z Max. 0.33 0.56 0.71 0.86 0.94
in „Ist die Kapazität frequenzabhängig?“ · Analoge Elektronik und Schaltungstechnik ·
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BC546-D.PDF
10 20 50 100 200 C , COLLECTOR CURRENT (mA) C , COLLECTOR CURRENT (mA) Figure 7. DC Current Gain Figure 8. “On” Voltage ) T 2.0 )-1.0 O ° ( TA= 25°C V E 1.6 (-1.4 A N L 20 mA 50 mA 100 mA 200 mA I V I E 1.2 F-1.8 T O q for V M C VB BE - C = R -55°C to 125°C R 0.8 10 mA T-2.2 T R E P L 0.4 M-2.6 C T ,E B VC θ 0 -3.0 0.02 0.05 0.1 0.2 0.5 1.0 2.0 5.0 10 20 0.2 0.5 1.0 2.0 5.0 10 20 50 100 200 B , BASE CURRENT (mA) C , COLLECTOR CURRENT (mA) Figure 9. Collector Saturation Region Figure
in „5V Solid-State-Relais über 3.3V Logik steuern“ · Mikrocontroller und Digitale Elektronik ·
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Heizleiterlegierungen-Handbuch-GER.pdf
, a t 0 C c e e u W l t r o e F h r c n t - e l . h e r l I KA m 0 KA m r KAa u I m R N p C N p h N g R p O H f u H f e H s O f H A h i A h e A r H h A L l L L l m L c A l L . n g , n n D t L n 0 e e N e e ü m 0 e . L u K
in „Heizelement aus Widerstandsdraht herstellen.“ · Analoge Elektronik und Schaltungstechnik ·
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Optical-Incremental-Encoder-Modules.pdf
OutputVoltage VOH 2.4 Volts IOH -40 µA max. Low Level OutputVoltage VOL 0.4 Volts IOL 3.2 mA RiseTime tr 200 ns C L 25 pF FallTime t 50 ns R = 11 kΩ pull-up f L 4 DeratingCurvesoverExtendedOperatingFrequencies(HEDS-9000/9100) Below are the derating curves for state, duty, phase and V OH over extended operating
in „Inkrementalgeber HEDS 9000, TTL, Impulsmessung“ · Mikrocontroller und Digitale Elektronik ·
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MTE011N10RFP-CystechElectonics.pdf
Temperature Typical Output Characteristics 80 1.4 10V, 9V, 8V c 70 u - e 1.2 A 60 a t t 7V D o e 50 e n 1 u l w C 40 m k a o ea 0.8 D 30 , B ,D 6V D I 20 V 5.5V B 0.6 ID=250μA, 10 VGS=5V VGS=0V 0 0.4 0 2 4 6 8 10 -75 -50 -25 0 25 50 75 100 125 150 175 200 V DS, Drain-Source Voltage(V) Tj, Junction Temperature
in „IC identifizieren“ · Analoge Elektronik und Schaltungstechnik ·
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datasheet.pdf
dimensions: L*W*H=255*170*80mm; General tolerances:± 0.25mm[± 0.010inch] Short tube outer packaging dimensions(with six inner packaging boxes): L*W*H=375*280*270mm; Long tube inner packaging dimensions: L*W*H=580*200*100mm; Long tube outer packaging dimensions(with two inner packaging boxes): L*W*H=600*215*220mm; Long tube outer packaging dimensions(with three inner packaging boxes): L*W*H=600*215*325mm. TEST CONFIGURATIONS
in „Galvanische Trennung von 5 Volt auf 9 Volt“ · Mikrocontroller und Digitale Elektronik ·
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DT-Tensio.pdf
que l’aiguille avec graduation en mm (3d) de (3e) is exactly on zero. If this does not occur, the dial gauge (3) (3e) genau auf Null steht. Ist dies nicht der Fall, muss die l’échelle graduée en mm (3e) soit