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EMS_Adapter.xml
xOKHSkSxKVsQxGQTxMmyvzJW1odNDJqolRljICS1jDUZZDsouV5kLQMI3gdotX9uSvRAIo/7HoajqpyoFDMbNqpN0ekfy1yHBacIepjT7GfISaEfl3tti9AhsJBjSLpku6qci2WWPbvKBoj9GXRPiKEGUeibd5DnI4TcBthMuvMJLy791D+rK0zSXzvnaDbX3dojXAlXfrPmNEUFt87Zw44LRDy0boN3vyPlZjv8K850ikqDDhvrlVxtqjqXpd+1asvf7AmlKZfssHKWjp78QRZsFF//VNmGDbpYwa9FUYYwEjR+dPcVC+Qv8aRqvY7BnBbgAwcQ6o4p+K7RDRFBJmtJ/MlnvPV5SIUmu74RMvkEhjuTZNOdFBNN1vqfG7Ws+3dT+vX/fytf0feIbmMAN7IIba+B2X6WiQpbybtv2S9Id74L/OoSVCFMOTOoLHsUJ96wOXIO/y0/WDrtp63jWEgLTlWP26dz4DuuzxQWdsw3WMXaygTZav9Xih/LvOuLx8hpjP3N/X4oz6ezrTarz1V01vd8/4gp5OeRZuoMy37SI1fZIld8Jizmjj4yd6+KyLVNbdPYVGl1ggwE5LsOyAUpJIUqXUQMwTXNHqxFFX4C0bI5Xa8maBlLZPbOcwpMqFyfoH4zrphbxDRyffvnJNt4
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EMS_Adapter.xml
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EPJ9_web.pdf
54, 54, 54, 54, 54, 54, 54, 54, 54, 54, 54, 54, 54, 54, 54, 54, 54, 54, 54, 54, 54, 59, 63, 66, 70, 74, 77, 80, 82, 84, 85, 85, 85, 85, 84, 82, 80, 77, 74, 70, 65, 59, 54, 54, 54, 54, 54, 54, 54, 54, 54}; //Variablen volatile uint8 _ t zeiger; // zum Auslesen des Arrays volatile uint8 _ t zaehler = 3;
in „Embedded Projects Journal: 9. Ausgabe erschienen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ws2812b.c
47, 48, 49, 50, 50, 51, 52, 54, 55, 56, 57, 58, 59, 60, 61, 62, 63, 64, 66, 67, 68, 69, 70, 72, 73, 74, 75, 77, 78, 79, 81, 82, 83, 85, 86, 87, 89, 90, 92, 93, 95, 96, 98, 99,101,102,104,105,107,109,110,112,114, 115,117,119,120,122,124,126,127,129,131,133,135,137,138,140,142, 144,146,148,150,152,154,156,158,160,162,164,167,169,171,173,175
in „WS2812B mit Lib von Martin Hubáček auf F103“ · Mikrocontroller und Digitale Elektronik ·
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rd70hvf1c.pdf
mobile radio sets. RoHS COMPLIANT RD70HVF1C-501 is a RoHS compliant products. ABSOLUTE MAXIMUM RATINGS (Tc=25 °C UNLESS OTHERWISE NOTED) SYMBOL PARAMETER CONDITIONS RATINGS UNIT V DSS Drain to source voltage Vgs=0V 30 V V GSS Gate to source voltage Vds=0V -5/+10 V Pch Channel dissipation Tc=25 °C 150 W Pin
in „HF Transistoren“ · Analoge Elektronik und Schaltungstechnik ·
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fit_app0.pdf
used in every output. # (data) & load; count.ar = reset; count.ck = clock; count.oe = out_enable; tc.d = cnt0 & cnt1 & cnt2 & cnt3; 55 tc.ck = clock; tc.ar = reset; tc.ap = preset; . "Intermediate expressions “These expresions are defined as soft buffer nodes load = (a_data == b_data); “Simplified expression
in „CPLD ATF1504 sporadisch seltsames Verhalten nach Einschalten“ · FPGA, VHDL & Co. ·
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AD623.pdf
Error = V +V /G OSI OSO Input OffsetOSI 25 200 200 500 25 100 V Over Temperature 350 650 160 V Average TC 0.1 2 0.1 2 0.1 1 V/°C Output OffsetOSO 200 1000 500 2000 200 500 V Over Temperature 1500 2600 1100 V Average TC 2.5 10 2.5 10 2.5 10 V/°C Offset Referred to the Input vs. Supply (PSR) G=1 80 100 80
in „Op - Messbereich - Strom - ACS 750LCA-050“ · Mikrocontroller und Digitale Elektronik ·
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bq24072.pdf
’72, ’73, ’75, '79) 6.4 6.6 6.8 V Input overvoltage protection threshold IN V OVP VIN 5 V → 11 V (’74) 10.2 10.5 10.8 VIN 7 V → 5V (’72, ’73, ’75, '79) 110 Vhys Hysteresis on OVP mV VIN 11 V → 5 V (’74) 175 DGL(OVP) Input overvoltage blanking time (OVP fault deglitch) 50 μs t Input overvoltage recovery
in „[V] 3St TI LiIon Lade/ Batterie-Management Chips: BQ24725RG und BQ24072RG“ · Markt ·
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top2008.pdf
, X2816B, X28C16, X28C16A, X28C16B, X2817A, X28C17, X2864A, X28C64, X28HC64, X28C256, X28HC256, X28TC256, X28VC256, X28C64*32PIN, X28HC64*32PIN, X28C256*32PIN, X28HC256*32PIN, X28TC256*32PIN, X28VC256*32PIN, X28C010, X28HT010, X28C020, X28HT020, ____EEPROM-LINKSMART LST28001, LST28002, LST28004, ____
in „[V] Top 853 Universal Programmer + 74er Tester“ · Markt ·
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Magazin_Bauteile.pdf
14-SOIC Texas Instruments Digikey 296-9173-5-ND 0,950 0,95 4 8 2 1 5 SN74HC595N Schieberegister 16 PDIP Texas Instruments Digikey 296-1600-5-ND 0,410 2,05 3 MC74HCT595ADR2G Schieberegister 16-SOIC ONSEMI Digikey MC74HCT595ADR2GOSCT-ND 0,410 1,23 2 5 SN74LS165AN Schieberegister 16 DIP Texas Instruments Digikey 296-14885-5-ND 0,920 4,60 3 CD74HCT165MT Schieberegister 16-SOIC Texas Instruments Digikey 296-CD74HCT165MTCT-ND 0,920 2,76 X 4 8 3 5 74HC04N Hex Inverter DIP14 NXP Segor 0,500 2,50 5 74HC126N Quad 3-St Bus Buffer DIP14 Texas Instruments
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Datei
armbian_modules.txt
msp3400 rj54n1cb0c adv7180 cs5345 et8ek8 tvp5150 ml86v7667 vpx3220 tvaudio ov7251 saa717x ir-kbd-i2c tc358743 lm3560 ov5695 video-i2c tlv320aic23b ak7375 bt819 ths8200 adv7343 upd64031a tda9840 adv7175 bt866 tda7432 cx25840 ths7303 adv7604 tvp7002 dw9807-vcm tvp514x ov772x ak881x uda1342 ov2680 saa7185
in „Samba auf Banana Pi Pro installieren“ · PC Hard- und Software ·
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Datei
par.txt
T15;3;0.00;0.00;1.00;0.10;;0.00;0;0;0;Regler tc_k_z; T16;3;1.50;1.00;1.90;0.10;;1.50;0;0;0;Regler tc_k_xw_exp; T17;3;1.00;0.00;9.90;0.10;;1.00;0;0;0;Regler tc_ag_kp; T18;3;250.00;0.00;990.00;10.00;Sek;250.00;0;0;0;Regler tc_ag_Tn; T19;3;2.00;0.00;
in „Hargassner Pelletheizung Betriebsdatenerfassung“ · Haus & Smart Home ·
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PDF
MPX4100.PDF
specified range, when this pressure is cycled to and from the minimum or maximum rated pressure, at 25⋅C. TcSpan: Output deviation over the temperature range of 0 to 85⋅C, relative to 25⋅C. TcOffset: Output deviation with minimum rated pressure applied, over the temperature range of 0 to 85⋅C, relative to 25
in „Temperatur - Luftdruckmessung“ · Mikrocontroller und Digitale Elektronik ·
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RequiresAcrobat6-5.pdf
Absolute Maximum Ratings Parameter Max. Units I @ T = 25°C Continuous Drain Current, @ 10V 30 D C GS D @ TC= 100°C Continuous Drain CurrenGS @ 10V 21 A DM Pulsed Drain Current 120 PD@T =C25°C Power Dissipation 94 W Linear Derating Factor 0.63 W/°C VGS Gate-to-Source Voltage ± 16 V EAS Single Pulse Avalanche
in „Power Mosfet Hexfet wie ansteuern ?“ · Analoge Elektronik und Schaltungstechnik ·
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irfh4210pbf.pdf
VGS = -20V gfs Forward Transconductance 251 ––– ––– S VDS= 10V, ID= 50A Q g Total Gate Charge ––– 74 ––– nC VGS = 10V, VDS= 13V, D = 50A Q g Total Gate Charge ––– 36 54 Qgs1 Pre-Vth Gate-to-Source Charge ––– 9.4 ––– VDS= 13V Qgs2 Post-Vth Gate-to-Source Charge ––– 4.6 ––– nC VGS = 4.5V Q Gate-to-Drain
in „Akkubohrschrauber 10,8V von Makita und Metabo“ · Mechanik, Gehäuse, Werkzeug ·
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PHI.pdf
3.02 480 495 510 ±3.02 −50 −58 0.98 495 510 524 ±2.92 505 520 535 ±2.92 −40 −40 0.96 547 562 576 ±2.74 558 573 588 ±2.74 −30 −22 0.93 603 617 632 ±2.55 615 630 645 ±2.55 −20 −4 0.91 662 677 691 ±2.35 676 690 705 ±2.35 −10 14 0.88 726 740 754 ±2.14 741 755 769 ±2.14 0 32 0.85 794 807 820 ±1.91 810 823
in „Genauere Messung der Temperatur“ · Mikrocontroller und Digitale Elektronik ·
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KTY81-2_PHI.pdf
990 1020 ±3.02 −50 −58 0.98 990 1019 1049 ±2.92 1010 1040 1070 ±2.92 −40 −40 0.96 1094 1123 1153 ±2.74 1116 1146 1176 ±2.74 −30 −22 0.93 1205 1235 1264 ±2.55 1230 1260 1290 ±2.55 −20 −4 0.91 1325 1354 1382 ±2.35 1352 1381 1410 ±2.35 −10 14 0.88 1452 1480 1508 ±2.14 1481 1510 1538 ±2.14 0 32 0.85 1587
in „KTY 81 110 an Mega“ · Mikrocontroller und Digitale Elektronik ·
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PHI.pdf
990 1020 ±3.02 −50 −58 0.98 990 1019 1049 ±2.92 1010 1040 1070 ±2.92 −40 −40 0.96 1094 1123 1153 ±2.74 1116 1146 1176 ±2.74 −30 −22 0.93 1205 1235 1264 ±2.55 1230 1260 1290 ±2.55 −20 −4 0.91 1325 1354 1382 ±2.35 1352 1381 1410 ±2.35 −10 14 0.88 1452 1480 1508 ±2.14 1481 1510 1538 ±2.14 0 32 0.85 1587
in „Kurze Frage zwecks Vorwiderstand für Sensor.“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MITSUBISHI_CV-0MW7B51.pdf
2.4 A typ 1 A typ VCC 5 0.1V RA S Q R VS 7 8 RESET RB 1.25V typ S Q R S Q 0.2V CK 3 Generator R 1 4 TC GND 8 IC331 AK7732VT 64 63 62 61 59 58 57 56,54 ADC REF 60,53 5,46 7,13,23,40,45 SDATA_AD 6,12,24,41,44 SWAD_N SWIRPT SWQ5 22 SDIN5 SDOUT5 SWG1 OUT5E_N 33 SDOUT4 OUT4E_N SWQ4 21 SDIN4 SWG0 SWQ334 20
in „Verstärker reparieren“ · Analoge Elektronik und Schaltungstechnik ·
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LM10.PDF
90 90 dB Offset voltage drift 2.0 5.0 µV/˚C Offset current drift 2.0 5.0 pA/˚C Bias current drift TC< 100˚C 60 90 pA/˚C Line regulation 1.2V (1.3V) ≤V ≤40V 0.001 0.003 0.001 0.008 % /V S 0≤IREF≤1.0 mA, REF=200 mV 0.006 0.01 % /V www.national.com 2 Electrical Characteristics (Continued) T =25˚C, T ≤T
in „Suche Batteriewächter“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
intTest.lst
****** 33: ; F I X & D E R I V. C O N S T 34: ; ********************************** 35: ; 36: .equ cTc0Clk = clock / 256 ; Define from clock 37: ; 38: ; ********************************** 39: ; R E G I S T E R S 40: ; ********************************** 41: ; 42: ; free: R0 to R14 43: .def rSreg = R15
in „attiny85 interrupt-behandlung“ · Mikrocontroller und Digitale Elektronik ·
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SO-14.pdf
Dim Min Max E H Gauge Plane A 1.47 1.73 A1 0.10 0.25 L A2 1.45 Typ B 0.33 0.51 Detail “A” D 8.53 8.74 E 3.80 3.99 D A2 e 1.27 Typ 7°4 A H 5.80 6.20 x) L 0.38 1.27 0 8 All Dimensions in mm B e A1 Detail “A” Suggested Pad Layout SO-14 X Dimensions Value (in mm) X 0.60 C1 Y 1.50 C1 5.4 C2 1.27 C2 Y
in „Adapter SO14/16 auf DIP in IC Breite (7,5mm) gesucht“ · Mikrocontroller und Digitale Elektronik ·
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LNK.pdf
m ath EFFIIENCY ( ser stmate) 0.7 0.72 C alulatd,orenterM easurd Efiiency) EFFICIENCY(Calculated 0.74 C alulatd% EfiiencyEsti at 0.77 Estmate) 10 CI 3.30 uF InputF tliCapacitr 3.0 11 Ipu t tgeR esitance 0.00 ohm s InputStageR esitnce,Fuse& Fli rng 0.00 12 AmbientTem perature 50 degC O peratngAm bin t
in „Trockner defekt“ · Offtopic ·
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LP171W01-A4K3.pdf
062-9499 Rev. A Video Timing Data Signal Parameter Symbol Min Typ Max Unit Note D CLK Clock Period TC 10.39 ns 1 Clock Frequency fC 96.21 MHz 1/TC Duty Ratio (% High) K 40 50 60 % T /T dr Ch C Rise Time T R CLK 4.42 ns Fall Time T F CLK 4.42 ns DE DE Setup Time Tse 4 - - ns (Data Enable Data Setup Time Tsd 4 - - ns Only) Data Hold Time Thd 2 - - ns (DTMG) Horizontal Period TH 1648 1760 TC 2 Data Horizontal Blank Period Tha 208 320 TC Vertical Period TV 905 912 TH fV=59.94 Hz, 3 Vertical Blank Period T wvb 5 12 TH H sync H syncack Porch Hbp 176 224 TC H Pulse Width T 16 32 T sync WH C
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OnlinePotentiometerHandbook-1.pdf
by at least 25°C. A!low suf Comparison of the formulas for TC and RTC will show that RTC is simply a percentage ficient time foremperature stabilization at each change (parts per hundred) in total resistance. temperature. For the same measurement conditions, TC is Then: RTC expressed in parts per million - per degree Celsius. TC = ~T~R';c-~TR~,~ X 106 TR,(T2 - T,) RESOLUTION TC = Temperature coefficient in PPMr C There are three types of resolution. Each is TR, = TR at ambient temperature T, a measure of the incremental changes
in „Unterschied zwischen Präsizionstrimmer und Spindeltrimmer“ · Analoge Elektronik und Schaltungstechnik ·
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LTC1859.pdf
25pF 25pF (A) Hi-Z TOHVAND VOL TO OH (B) Hi-Z TOLAND VOH TO VOL (A) OH TO Hi-Z (B) OLTO Hi-Z 1859 TC01 1859 TC02 185789f 8 LTC1857/LTC1858/LTC1859 WU W TI I G DIAGRA S t2(CONVST to BUSY Delay) 2 2.4V t1 (For Short Pulse Mode) CONVST t1 CONVST 50% 50% BUSY 0.4V 1859 TD02 1859 TD01 t6(Delay Time, SCK↓
in „LTC1859 merkwürdige Messwerte“ · Mikrocontroller und Digitale Elektronik ·
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PAL-SNES_Schematic.pdf
73 VAA3 VAA12 2 A12 22 /VRD 4 TOUMEI EXT3 72 VDB3 15 19 46 93 CA0 /VAWR 78 74 VAA2 VAA11 23 OE 50 71 VDB2 G Q5 VA NTSC/PAL 470 76 IRQ CA0 68 /PARD /PARD 3 VAWR VAA2 75 VAA1 VAA10 21 A11 20 /PARD 7 OVER2 EXT2 70 VDB1 2 B852K R26 14 VB SW 4 +5V R38 ABORT PARD PARD VAA1 A10 CE PARD
in „Umrüstung von AC zu DC (SNES 1995, 1 Chip Konsole)?“ · Mikrocontroller und Digitale Elektronik ·
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Beiers_Quarze1957.pdf
rund qriinlich nlich Leucht- 3DPll.A** Q I.]ARZ E stoff- l>lu lich farbe cr'.vstirls Hersteller I'e T'TC ETC Qualtz Nac/l- *' rritt.nl rnittt'lrI liHa pr1t,r ** lut hten kurz nl Scfti7 70 75 75 mtn I?L 268 310 mm U1 4 6r3 6,3 0,6 0,6 A It I ual 275 575 400.'.680 ua2 2000 2000 2000 Uag 1.000 uflr.p... 40
in „NARVA Quarz Datenblatt“ · Analoge Elektronik und Schaltungstechnik ·
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KTY81.pdf
990 1020 ±3.02 −50 −58 0.98 990 1019 1049 ±2.92 1010 1040 1070 ±2.92 −40 −40 0.96 1094 1123 1153 ±2.74 1116 1146 1176 ±2.74 −30 −22 0.93 1205 1235 1264 ±2.55 1230 1260 1290 ±2.55 −20 −4 0.91 1325 1354 1382 ±2.35 1352 1381 1410 ±2.35 −10 14 0.88 1452 1480 1508 ±2.14 1481 1510 1538 ±2.14 0 32 0.85 1587
in „Spannungsquelle für KTY - gegeneinander entkoppeln?“ · Analoge Elektronik und Schaltungstechnik ·
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Osram_Lx_T67F_20mA_bunt.pdf
0.2 μA Reverse current (max.) IR 10 10 10 10 10 μA VR = 12 V Temperaturkoeffizient vonλ peak (typ.) TC λpeak 0.15 0.14 0.14 0.12 0.12 nm/K Temperature coefficient ofλpeak IF= 20 mA; –10°C ≤ T ≤ 100°C Temperaturkoeffizient vonλ (typ.) TC 0.05 0.07 0.08 0.08 0.10 nm/K dom λdom Temperature coefficient ofλdom IF= 20 mA; –10°C ≤ T ≤ 100°C Temperaturkoeffizient vonV F (typ.) TC V -2.5 -2.5 -2.5 -2.5 -2.5 mV/K Temperature coefficient ofVF IF= 20 mA; –10°C ≤ T ≤ 100°C Optischer Wirkungsgrad (typ.) η opt 47 65 85 85 60 lm/W Optical efficiency IF= 20 mA 2009-06-09 4 LS T67F, LR
in „LED Statistik“ · Analoge Elektronik und Schaltungstechnik ·
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1n5822.pdf
TA(max) = TR* R θJA F(AV) (3) Step 4. Find A(max) from equation (3). TA(max) = 108 * (0.85) (40) = 74⋅C. Inspection of equations (2) and (3) reveals tRat T is the ambient temperature at which thermal runaway occurs or where J = 125⋅C, **Values given are for the 1N5821. Power is slightly lower for the
in „Batterieschutzschaltung. Murks oder möglich?“ · Analoge Elektronik und Schaltungstechnik ·
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BS170.pdf
S BS170_D26Z TO-92 Tape and Reel FORMING D G S BS170_D27Z TO-92 Tape and Reel FORMING D G S BS170_D74Z TO-92 AMMO FORMING D G S BS170_D75Z TO-92 AMMO FORMING D G S MMBF170 SOT-23 Tape and Reel © 2010 Fairchild Semiconductor Corporation www.fairchildsemi.com BS170 / MMBF170 Rev. E2 2 S 1 Typical Electrical
in „BS170 Wie viel Watt verträgt er?“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
zmodem.cpp
Measurements over RS232 */ #include <stdio.h> #include <string.h> #include "hardware_t.h" #include "tc_vars.h" #include "flash_t.h" #include "display_t.h" #include "zmodem.h" /* * (zm_)crctab calculated by Mark G. Mendel, Network Systems Corporation. * (zm_)updcrc macro derived from article Copyright
in „Wittig(welec) DSO W20xxA Open Source Firmware“ · Mikrocontroller und Digitale Elektronik ·
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MyPC_sch.pdf
+12V 4 , R 5 + C15 7 En 100u L g GND GND IC5 R1 8 DC SWC 1 J1 U$3 7 IS SWE 2 V 3 D1 0.25 6 VCC TC 3 k L2 3 2 1A 1N4004 5 FB GND 4 o 1 +C1 C3 2 c SUPPLY 100u MC34063AD 220pD S 1 0 47u R 6 GND GND 18k GND GND GND R3 + C2 3 2 k D R 1 1000u L g GND GND GND IC3 8 VIN VOUT 1 V 5 78L05SMD GND 100n 2 3 6
in „Bitte Schaltplan&Layout checken“ · Mikrocontroller und Digitale Elektronik ·
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MyPC_sch.pdf
+12V 4 , R 5 + C15 7 D 100u L g GND GND IC5 R1 8 DC SWC 1 J1 U$3 7 IS SWE 2 V 3 D1 0.25 6 VCC TC 3 k L2 . 2 1A 1N4004 5 FB GND 4 o 3 1 +C1 C3 2 c SUPPLY MC34063AD D S 100u 220p 3 0 47u R 6 GND GND 18k GND GND GND R3 + C2 3 2 k D R 1 1000u L g GND GND GND IC3 8 VIN VOUT 1 V 5 78L05SMD 100n GND 100n
in „Bitte Schaltplan&Layout checken“ · Mikrocontroller und Digitale Elektronik ·
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rudi_____RX-V4A_TSR-400.pdf
D9655 WE674800 VARISTOR.C AVRL161A1R1NTB チップバリスタ R6 RD456100 R.CHP 1K Ω 1/16W J チップ抵抗 IC3 YE181A00 IC TC7MBL3257CFK ロジックIC R7 RD458100 R.CHP 100K Ω 1/16W チップ抵抗 IC4 X0199C00 IC 74VHC157FT ロジックIC R8 RD456100 R.CHP 1K Ω 1/16W J チップ抵抗 IC5 YK771A00 IC TLV74118PDQNR 電源IC R9 RD457100 R.CHP 10K Ω 1/16W J チップ抵抗 IC6 X0199C00 IC 74VHC157FT ロジックIC R10-11 RD454220 R.CHP 22 Ω 1/16W J チップ抵抗 IC7 X8394B00 IC TC7WH157FK ロジックIC R12-13 RD457470 R.CHP 47K Ω 1/16W チップ抵抗 IC10 YJ663A00 IC TPS54308 電源IC R14 RD354100 R.CHP 10 Ω 1/16W J チップ抵抗
in „Test in der Schaltung STR3A400“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
hardware_t.cpp
; send_buffer[7] = (tc_serial & 0x0000FF00) >> 8; send_buffer[8] = (tc_serial & 0x00FF0000) >> 16; send_buffer[9] = (tc_serial & 0xFF000000) >> 24; send_buffer[10] = tc_production_lot1 & 0x000000FF; send_buffer[11] = (tc_production_lot1
in „Wittig(welec) DSO W20xxA Open Source Firmware“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Datasheet_DM00039193-490390.pdf
U 4 W L F I F U Q L 1 B2 1 - - - VBAT S - - Backup power supply RTC_TAMP1, 2 A2 2 A6 - - PC13 I/O TC (1)(2) - RTC_TS, RTC_OUT, WKUP2 PC14-OSC32_IN (1)(2) 3 A1 3 B6 - - (PC14) I/O TC - OSC32_IN PC15-OSC32_OUT (1)(2) 4 B1 4 C6 - - (PC15) I/O TC - OSC32_OUT PF0-OSC_IN 5 C1 5 B5 2 2 (PF0) I/O FT - - OSC_IN
in „STM32F05 SPI 3 Wire Verbindung mit Accelerometer“ · Mikrocontroller und Digitale Elektronik ·
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U2008-Dimmer.pdf
mit dem Ver- GleichspannunganPin3vonIC1anliegt. Peripherie erfordert. schraubendesKühlkörpersamTriac TC1 DieanPin2liegendeRampenspannung Seine Betriebsspannung von 5 V wird entsprechend Abbildung 2 mit einer wirddurcheineninternenRampengenera- mit IC 5 aus der 24-V-Betriebsspannung Schraube M3 x 6 mm,
in „Verständnisproblem Stromversorgung U2008B“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ASR13_nur_Bus.asm
Interrupts rjmp reset ; Reset vector reti ;INTTaster ; Int0 interrupt vector reti; PCINT0 vector reti ; TC0 overflow vector reti ; Eeprom ready vector reti ; Analog comparator int vector reti ; TC0 CompA vector reti ; TC0 CompB vector rjmp reset ; WDT vector reti ; ADC conversion complete vector reset: ;OSCCAL
in „Hausbus für Meß- und Steueraufgaben mit Attiny“ · Haus & Smart Home ·
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PDF
564746-da-01-en-MOSFET_N_KA_800V_STP4N80K5_TO_220AB_STM.pdf
, repetitive or not- 1 A AR repetitive (pulse width limiteJ by T Single pulse avalanche energy EAS 74.5 mJ (startingJT = 25 °CD I AR, DD = 50 V) dv/dt(3) Peak diode recovery voltage slope 4.5 V/ns dv/dt(4) MOSFET dv/dt ruggedness 50 V/ns Insulation withstand voltage (RMS) from all VISO three leads to
in „Anodenspannungsstabilisierung für Röhrenverstärker mit IRF840 als Längsregler“ · Analoge Elektronik und Schaltungstechnik ·
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ST7735_128x160_SPI_Display.pdf
Extension EXTCTRL 10.2.21 Command 1 ↑ 1 - 0 0 0 0 0 0 0 1 01 Control 0 ↑ 1 - 1 1 1 1 1 1 1 1 (FFh) 1 ↑ 1 - TC2[3]TC2[2]TC2[1] TC2[0] TC1[3] TC1[2] TC1[1] TC1[0] Vcom 4 VCOM4L 10.2.22 Level 1 ↑ 1 - - - - - TC3[3] TC3[2] TC3[1] TC3[0] control 1 ↑ 1 - 0 0 0 1 1 0 1 0 “-“: Don’t care Note 1: E0-E1 registers are
in „ST7735 an MCU“ · Mikrocontroller und Digitale Elektronik ·
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an75f_Low_Power-Design.pdf
1.2V89 0.01 1/2 LTC1441 + LT1389 + 2.5V 0.47 50pF Q2 100k Q3 100Hz TRIM 3M TYP 15k Q4 Q5 Q7 100pF 74COUTPUT Q6 10M 2.7M : HP5082-2810 0.1 : 1N4148 – C2 Q1, Q2, Q8: 2N5089 1/2 LTC1441 ALL OTHER: 2N2222 + AN75 F01 †POLYSTYRENE * 1% METAL FILM GROUND ALL UNUSED 74C14 INPUTS Figure 1. 0.02%, 0Hz to 10kHz
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XPort_EDGE_PB_A4-2065555.pdf
firmware Faster Time updates, secure connections, data-at-rest protection for keys and To Market ower TC configuration and role-based access control. uickest etwork & Robust Data Connectivity Integration IoT ffload Reliably and securely communicate your device data with one or Highlights: more applications
in „[V] 1St. neu Netzwerkmodul Lantronix XPort-Edge RS232/TTL 3V“ · Markt ·
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PDF
Powermeter.pdf
(74HC4066). C1 R11 R12 R13 R2 RS VCC I/O0 R4 C2 I/O1 R3 Calculating the Gain The gain of the inverting amplifier is as follows: Equation 7. Gain Of Inverting Amplifier. R2 A = − R1 Here R1 consists of the
in „230V Leistung erfassen mit ATmega128“ · Mikrocontroller und Digitale Elektronik ·
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PDF
volt230.pdf
(74HC4066). C1 R11 R12 R13 R2 RS VCC I/O0 R4 C2 I/O1 R3 Calculating the Gain The gain of the inverting amplifier is as follows: Equation 7. Gain Of Inverting Amplifier. R2 A = − R1 Here R1 consists of the
in „Netzteil ohne Trafo“ · Mikrocontroller und Digitale Elektronik ·
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energymeter.pdf
(74HC4066). C1 R11 R12 R13 R2 RS VCC I/O0 R4 C2 I/O1 R3 Calculating the Gain The gain of the inverting amplifier is as follows: Equation 7. Gain Of Inverting Amplifier. R2 A = − R1 Here R1 consists of the
in „Leistungsmessung über Shunt?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
doc2566.pdf
(74HC4066). C1 R11 R12 R13 R2 RS VCC I/O0 R4 C2 I/O1 R3 Calculating the Gain The gain of the inverting amplifier is as follows: Equation 7. Gain Of Inverting Amplifier. R2 A = − R1 Here R1 consists of the
in „Cadsoft Eagle“ · Platinen ·
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Alto_D1__D2__D3__D4_Power_Amp_Service_Manual.pdf
-0.5Cu ѥ0056 HK07782 PC board P-D4 FAN POWER ѨΓѥ0001 HB02301 PCB-RS D4 FAN POWER_VER060915 ѨΓѥ0002 TC00382 transformer-RS PT-LFB4185_115/230V(EI-41) PT1 ѨΓѥ0003 SD00032 integrated circuit LM317T(TO220)/(ST) U1 ѨΓѥ0004 SA00167 bridge rectifier 2A W2-04 D3 ѨΓѥ0005 SA00098 rectifier diode 1A/400V IN4004
in „Endstufe reparieren, Bauteil identifizieren“ · Analoge Elektronik und Schaltungstechnik ·
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bluenrg-2.pdf
(VOL = 0.4 V) 11.2 mA IOL (high drive strength) TC1 (VOL= 0.42 V) 13.2 mA TC2 (VOL =0.45 V) 6 mA TC (VOL = 0.4 V) 16.9 mA IOL (Very high drive strength) TC1 (VOL= 0.42 V) 19.9 mA TC2 (VOL =0.45 V) 9.2 mA TC (VOH =2.4 V) 10.6 mA IOH (low drive strength) TC1 (VOH = 1.72 V) 7.2 mA TC2 (VOH = 1.35 V) 3 mA TC (VOH = 2.4 V) 19.2 mA IOH (high drive strength) TC1 (VOH = 1.72 V) 12.9 mA TC2 (VOH = 1.35 V) 5.5 mA TC (VOH = 2.4 V) 29.4 mA IOH (very high drive strength
in „DC/DC-Wandler im ST BlueNRG-2 - Wofür?“ · Mikrocontroller und Digitale Elektronik ·