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PDF
78f9116.pdf
Preliminary Product Information PD78F9116 (4) Call instructions/ branch instructions CALL, CALLT, BR, BC, BNC, BZ, BNZ, BT, BF, DBNZ 2nd operand AX !addr16 [addr5] $addr16 1st operand Basic instruction BR CALL CALLT BR BR BC BNC BZ BNZ Complex instruction DBNZ (5) Other instructions RET, RETI, NOP,
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Datei
main.c
Paritybit, LSB zuerst senden/empfangen UCA1CTL1 |= UCSSEL1; // SMCLK als Taktquelle auswählen UCA1BR0 = 109; // Lowbyte, Baudrate einstellen entsprechend // Tabelle aus dem UserGuide UCA1BR1 = 0; // Highbyte, Baudrate einstellen entsprechend // Tabelle aus dem UserGuide UCA1MCTL |= UCBRS1; // Modulator
in „MSP430 F5529 Wobbel-Generator“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Proxxon_FKS-E_SCH.PDF
1 5 1 2 2 2 2 K 3 8 1 0 8 K 9 2 7 , 1N4005 K 1 1 R 3 R 1 R 1 R 1 , R C 1 8 1 1 1 5 1 2 J2 2 T U3p 100nF 4 100 1 5 7 2 1 2 1 AC R3 TR230V/12V SW2-1 C3 1 A2 A1 SW2-1 2 1 e 2 n 1 W PH1 TR1TRIAC 3 e S G O 1A1 A26 R2 2 1 2K1 K24 1 2 1 h VR1-1 2 T TLP561 10K 1 - 3 VR1-1 4 3 2 1 S X i i i B R P P P S B 2 K
in „PROXXON FKS/E Tischkreissäge reparieren“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
stb6nk60z.pdf
30 V GS (1) ID Drain current (continuous) Ct T = 25 °C 6 6 A ID Drain current (continuous) Ct T = 100 °C 3.8 3.8 (1) A IDM (2) Drain current (pulsed) 24 24(1) A P Total dissipation at T = 25 °C 110 30 W TOT C Derating factor 0.88 0.24 W/°C V G-S ESD (HBM C=100 pF, R=1.5 kΩ) 3500 V ESD(G-S) (3) dv/dt
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PDF
stb6nk60z.pdf
30 V GS (1) ID Drain current (continuous) Ct T = 25 °C 6 6 A ID Drain current (continuous) Ct T = 100 °C 3.8 3.8 (1) A IDM (2) Drain current (pulsed) 24 24(1) A P Total dissipation at T = 25 °C 110 30 W TOT C Derating factor 0.88 0.24 W/°C V G-S ESD (HBM C=100 pF, R=1.5 kΩ) 3500 V ESD(G-S) (3) dv/dt
in „Unterschiedliche Power MOSFET kompatibel?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TLP293_4_datasheet_en_20190520.pdf
condition Marking of Classification (Note 1) C / F Min Max Blank 50 600 Blank F = 5 mA, CE = 5 V GB 100 600 GB LA (Note2) 50 600 LA F = 0.5 mA, CE = 5 V LGB (Note2) 100 600 LB Note1: Specify both the part number and a rank in this format when ordering. Example: rank GB: TLP293-4(GB,E For safety standard
in „Optokoppler TLP293-4 - Datenblatt lesen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Heiz702.pdf
Sonnenintensitätsmesser Bit 4 = 1 Anschluss Drucksensor Bit 3 = 0 Pumpe P_DT1 PWM-Ausgabe 0%, 25%, 50%, 75% und 100% Bit 3 = 1 Pumpe P_DT1 läuft immer mit 100 % Bit 3 = 0 Pumpe P_SK PWM-Ausgabe 0%, 25%, 50%, 75% und 100% Bit 3 = 1 Pumpe P_SK läuft immer mit 100 % Bit 1 = 0 Pumpe P6 PWM-Ausgabe 50%, 75% und 100 %
in „Heizungssteuerung elektor“ · Mikrocontroller und Digitale Elektronik ·
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Datei
buildroot-2011.02-Mini2440-linux-2.6.39.patch
22.000000000 +0100 +++ configs/mini2440_defconfig 2011-05-31 15:59:33.000000000 +0200 @@ -15,7 +15,7 @@ BR2_TARGET_ROOTFS_TAR=y # Bootloader -BR2_TARGET_UBOOT=y +BR2_TARGET_UBOOT=n BR2_TARGET_UBOOT_BOARDNAME="mini2440" BR2_TARGET_UBOOT_CUSTOM_TARBALL=y BR2_TARGET_UBOOT_CUSTOM_TARBALL_LOCATION="http://repo.or.cz
in „mini2440 Odyssee“ · Mikrocontroller und Digitale Elektronik ·
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Datei
buildroot-2011.02-Mini2440-linux-2.6.39.patch
22.000000000 +0100 +++ configs/mini2440_defconfig 2011-05-31 15:59:33.000000000 +0200 @@ -15,7 +15,7 @@ BR2_TARGET_ROOTFS_TAR=y # Bootloader -BR2_TARGET_UBOOT=y +BR2_TARGET_UBOOT=n BR2_TARGET_UBOOT_BOARDNAME="mini2440" BR2_TARGET_UBOOT_CUSTOM_TARBALL=y BR2_TARGET_UBOOT_CUSTOM_TARBALL_LOCATION="http://repo.or.cz
in „mini2440 Odyssee“ · Mikrocontroller und Digitale Elektronik ·
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Bild
Schaltplan eines SW Power PCB Netzteils
POWER PCB, JKP1, AC MAILE, L101, C3, 470pF/250VAC(Y), L102, C4, 1nF/250VAC(Y), R1, 470K 1W, L104, 100H, C2, 0.33uF/250VAC(Y), J103, J102, +28.4V, L103, 120uH-AUE, 18V, C11, 10uF/25, R2, 2.7K 0.5W, C1, 470pF/250VAC(Y), A3, D4, 1N4007, C12, 0.33uF/250VAC(X), R3, 33K 1W, KTC1, 1N4007-0DS 6A, F1, 120VAC
in „Phonic Nexus540 Aktive Speaker 400W defekt“ · Analoge Elektronik und Schaltungstechnik · · Schaltpläne
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Schaltplan eines Schaltnetzteils
BR1 DF085 800V, RT1 1A, L1 330uH, C5 22uF 50V, R3 2M@ 1%, R4 1.8M@ 1%, C4 1000uF 630V, R8 200k@ 1%, R22 68@, D1 DFLR1600-7 600V, C10 470pF 250VAC, FL1, R24 0.2@ 1/8W 200V, Q2 AO4486, C19 680uF 16V, R30 100@ 1/10W, R27 1.2M@ 1/16W, Q1 OA6420, C18 560uF 6.3V, R20 100@ 1/10W, R16 133k@ 1% 1/16W, C2 2.2uF 50V, R13 33.2k@ 1% 1/16W, C12 2.2uF 25V, R12 0.02@ 1% 0.2A, C14 2.2uF 25V, VB, GND, U1 INN3672C-H062,
in „Fritz Repeater 2400“ · Analoge Elektronik und Schaltungstechnik · · Schaltpläne
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Datei
1wire_irq.c.txt
to the Free Software Foundation, /// Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA <br><br> /// Die Bibliothek ist freie Software; Sie dürfen sie unter den Bedingungen der /// GNU Lesser General Public License, wie von der Free Software Foundation /// veröffentlicht, weiterverteilen und
in „Mit MSP430 einen IC( bq2023) programmieren“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Bit_Time_Calculations_for_the_Microchip_CAN.htm
Microchip CAN Bit Calculator"> </head> <body> <table border="0" cellpadding="0" cellspacing="0" width="100%"> <tbody><tr> <td bgcolor="#000000" width="100%"><p align="right"><font color="#FFFFFF" face="Verdana" size="3"><strong>Bit Time Calculations for the Microchip CAN</strong></font></p></td> </tr> </tbody></table> <p> </p> <table border="0" cellpadding="0" cellspacing="0" width="100%"> <tbody><tr> <td bgcolor="#0000A0" width="100%"><font color="#FFFFFF" face="Verdana" size="2"><strong><em>Setup Criteria</em></strong></font></td> </tr> </tbody></table> <table border="0" width="100%
in „ATMEGA328P - CAN“ · Mikrocontroller und Digitale Elektronik ·
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Datei
CAN.htm
Microchip CAN Bit Calculator"> </head> <body> <table border="0" cellpadding="0" cellspacing="0" width="100%"> <tbody><tr> <td bgcolor="#000000" width="100%"><p align="right"><font color="#FFFFFF" face="Verdana" size="3"><strong>Bit Time Calculations for the Microchip CAN</strong></font></p></td> </tr> </tbody></table> <p> </p> <table border="0" cellpadding="0" cellspacing="0" width="100%"> <tbody><tr> <td bgcolor="#0000A0" width="100%"><font color="#FFFFFF" face="Verdana" size="2"><strong><em>Setup Criteria</em></strong></font></td> </tr> </tbody></table> <table border="0" width="100%
in „MCP2515 CNF 1-3 Berechnung / Einstellen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tps61046.pdf
Reference Voltage vs Temperature 150 150 140 140 ) ) A130 A 130 ( ( n120 n 120 r r u u t110 t 110 e e s100 s 100 i i Q 90 Q 90 80 80 70 70 -40 -20 0 20 40 60 80 100 120 1.8 2.4 3 3.6 4.2 4.8 5.4 6 Temperature(°C) Input Voltage (V) D001 D001 V IN= 3.6 V, VOUT = 12 V, No switching V IN= 1.8 V ~ 6 V, VOUT =
in „Ruhestrom Spannungswandler DC DC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BTS_100_High_Side.pdf
Thermal resistance K/W Chip-case Rth JC ≤ 3.1 Chip-ambient Rth JA ≤ 75 Semiconductor Group 1 04.96 BTS 100 Electrical Characteristics atTj= 25 °C, unless otherwise specified. Parameter Symbol Values Unit min. typ. max. Static Characteristics Drain-source breakdown voltage V (BR)DSS V VGS = 0, D = — 0.25
in „Motorsteuerung mit kollektorschaltung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
bts100.pdf
Thermal resistance K/W Chip-case Rth JC ≤ 3.1 Chip-ambient Rth JA ≤ 75 Semiconductor Group 1 04.96 BTS 100 Electrical Characteristics atTj= 25 °C, unless otherwise specified. Parameter Symbol Values Unit min. typ. max. Static Characteristics Drain-source breakdown voltage V (BR)DSS V VGS = 0, D = — 0.25
in „BTS 100 Ersastzlösung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
19230ds.pdf
+ Logic 0: 1 TTL load, 1.6 mA at 0.4 V max. Logic 1; 10 TTL loads, = 0.4 mA at 2.8 V min. Logic 0; 100 mV max. driving CMOS Logic 1; +5 V supply minus 100 mV min. driving CMOS High Z; 10 µA || 5 pF max. (Note 8) Parallel Data (1-16) (see note 14) 10, 12, 14, or 16 parallel lines; natural binary angle
in „Stimulierung des Resolvers RD-19230“ · Mikrocontroller und Digitale Elektronik ·
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PDF
UA741CP_datasheet.pdf
6 Figure 7 OPEN-LOOP LARGE-SIGNAL DIFFERENTIAL VOLTAGE AMPLIFICATION vs FREQUENCY 110 100 VCC+ = 15 V V = –15 V a 90 CC– n VO = 〉 10 V r B 80 RL= 2 k e d TA= 25⋅C i –n 70 l i n ta 60 i f S p 50 o m L A 40 n g p at 30 O o – V 20 D AV 10 0 –101 10 100 1k 10k 100k 1M 10M f – Frequency – Hz
in „OP Spannung 1,82V bei Min.“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DTC114EP-D.PDF
Min Typ Max Unit OFF CHARACTERISTICS Collector-Base Cutoff Current ICBO nAdc (VCB= 50 V,EI = 0) − − 100 Collector-Emitter Cutoff Current ICEO nAdc (VCE= 50 V,BI = 0) − − 500 Emitter-Base Cutoff Current IEBO mAdc (VEB= 6.0 VC I = 0) − − 0.5 Collector-Base Breakdown Voltage V (BR)CBO Vdc (C= 10 mA,EI =
in „Kollektorschaltung statt KFZ Relais“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
de10-nano_a0.pdf
DIFFIO_RX_B39P IO_4A/CLK3N/DIFFIO_RX_B39N Bank 5B VCCIO = 3.3V SW0 Y24 AB26 GPIO_0_D31 IO_5B/CLK4P,FPLL_BR_FBP/DIFFIO_RX_R23P IO_5B/FPLL_BR_CLKOUT0,FPLL_BR_CLKOUTP,FPLL_BR_FB/DIFFIO_TX_R22P GPIO_0_D33 SW1 W24 IO_5B/CLK4N,FPLL_BR_FBN/DIFFIO_RX_R23N IO_5B/FPLL_BR_CLKOUT1,FPLL_BR_CLKOUTN/DIFFIO_TX_R22N AA26
in „Low Cost Board“ · Mikrocontroller und Digitale Elektronik ·
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Datei
http.cpp
(); http_send ("Done.</B><BR>\r\n"); http_trailer (); http_flush (); } else if (do_reset) { http_send ("<P><B>Resetting STM32, reconnecting in 15 seconds ...</B><BR>\r\n"); http_trailer (); http_flush (); delay (200); stm32_reset
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PDF
bpw43.pdf
Characteristics Tamb = 25_C Parameter Test Conditions Symbol Min Typ Max Unit Breakdown Voltage R = 100 mA, E = 0 V(BR) 32 V Reverse Dark Current VR= 10 V, E = 0 Iro 1 10 nA Diode Capacitance VR= 0 V, f = 1 MHz, E = 0 CD 4 pF VR= 5 V, f = 1 MHz, E = 0 CD 1.5 pF V = 10 V, f = 1 MHz, E = 0 C 1.3 pF R D
in „Frage zu Fotodiode BPW43“ · Mikrocontroller und Digitale Elektronik ·
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PDF
VTB5051UV.pdf
) VTB5051UV SYMBOL CHARACTERISTIC TEST CONDITIONS UNITS Min. Typ. Max. I Short Circuit Current H = 100 fc, 2850 K 85 130 µA SC TC ISC ISC Temperature Coefficient 2850 K .12 .23 %/°C V Open Circuit Voltage H = 100 fc, 2850 K 490 mV OC TC VOC V OCTemperature Coefficient 2850 K -2.0 mV/°C I Dark Current
in „[V] Photodiode plus OPV“ · Markt ·
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PDF
ZLDO1117.pdf
Thermal Shutdown • Good Noise Rejection • Suitable for use with MLCC Capacitors • Qualified to AEC-Q100 Grade 2 (see ‘Ordering Information’) • PPAP capable (Note 4) • -40 to +125°C Junction Temperature Range • Available in TO252 and SOT223 with “Green” Molding Compound (No Br, Sb) Lead-Free Finish; RoHS
in „Def. Mikrocontroller auf Geschirrspüler-Platine?“ · Haus & Smart Home ·
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PDF
BS108_GS.pdf
temperature unless otherwise specified Symbol Min. Typ. Max. Unit Drain-Source Breakdown Voltage V(BR)DSS 240 250 – V atDI = 100 A, GS= 0 Gate-Body Leakage Current IGSS – – 10 nA at V = 15 V, V = 0 GS DS Drain Cutoff Current at DS = 130 V,GS = 0 IDSS – – 1 A at DS = 70 V,GS = 0.2 V IDSX – – 25 A Gate-Source
in „Wär ganz toll wenn sich einer von euch mal meinen Schaltplan ansehen würde“ · Mikrocontroller und Digitale Elektronik ·
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PDF
FZT949.pdf
, PARAMETER SYMBOL MIN. TYP. MAX. UNIT CONDITIONS. -50 -80 v l&-l OOUA Collector-Base Breakdown ‘( BR)CBO Voltage — -50 -80 v IC=-IKA, RB <Ik!l Collector-Emitter Breakdown ‘( BRICER Voltage -30 -45 v lC-l OmA’ Collector-Emitter Breakdown v(eR)cEo Voltage — -—. v Emitter-Base Breakdown ‘( Mi)EBO -6 -8
in „TFT Inverter“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SBLCDA2_Specification.pdf
7 8 9 10 11 8DP 10DP 11DP A J A PLUS F H K B F B MINUS COLON G M G E Q N C E C P SB DP D D TieBL, BR ANT AU A2 AL AR BL B0 B1 B2 BR A1 A0 AD PL P0 P1 P2 P3 P4 P5 P6 P7 P8 P9 PR SBLCDA2 Segment Mapping PIN COM3 COM2 COM1 COM0 COM3 COM2 COM1 COM0 PIN 1 1A 1B 1C 1D COM3 48 2 1J 1K 1M 1N COM2 47 3 2COL
in „MSP430FG439 mit LCD“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SBLCDA2_Specification.pdf
7 8 9 10 11 8DP 10DP 11DP A J A PLUS F H K B F B MINUS COLON G M G E Q N C E C P SB DP D D TieBL, BR ANT AU A2 AL AR BL B0 B1 B2 BR A1 A0 AD PL P0 P1 P2 P3 P4 P5 P6 P7 P8 P9 PR SBLCDA2 Segment Mapping PIN COM3 COM2 COM1 COM0 COM3 COM2 COM1 COM0 PIN 1 1A 1B 1C 1D COM3 48 2 1J 1K 1M 1N COM2 47 3 2COL
in „MSP430 LCD Controller“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PWM_Motor.PDF
PI 100uF/450V P PC100uF/450V PI PR TPP PT0TP5 P TP6 CR4 150k 27k GND_PWR N_AC_FIL GND_PWR P GND_PWR IXTA10P50P PR Phase i UDSmax = -500V GBU6M GND_PWR ID = -10A PCR7 SBR1U400P1 IfmaxPeak = 175A RDSon = 1.0R
in „PWM HVDC Motor Ansteuerung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
12V_4A8A_4_LED_3steps_charger.pdf
1 2 3 4 C22 C7 30K/3VA TR C12 103 10nF/1KV / 2.2nF/100V R13 R14 8 7 BR1 R5 K A R R 22k1% 2k7 RS405 470K 1M 8 / 6 3 4 D4 3.3uH/12A IC3 0 CF0 R K TL431 C24 2k2 D / 1 3 220nF D u Charger+ C 5 R4 R5' D92M-02 C18 R15 1 470K 1M D2 224 HER308 R R47 C20 Q2 C2-X
in „Schaltnetzteil/Lader“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
neocapacitor_e.pdf
180 645 47 B3 / 3528-12 PSLB30G476M 18.8 0.08 70 1035 68 A / 3216-18 PSLA0G686M 27.2 0.06 180 645 100 A / 3216-18 PSLA0G107M 40 0.08 100 866 4 100 A / 3216-18 PSLA0G107M(45) 40 0.08 45 1291 100 A / 3216-18 PSLA0G107M(35) 40 0.08 35 1464 100 A / 3216-18 PSLA0G107M(25) 40 0.08 25 1732 100 B3 / 3528-12
in „Kennt jemand dieses Bauteil?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
mosfet_K3673.pdf
560V 8 ] 4.5 ) t 4.0 ] S [ G 3.5 S 6 V G 3.0 min. V 2.5 4 2.0 1.5 2 1.0 0.5 0.0 0 -50 -25 0 25 50 75 100 125 150 0 5 10 15 20 25 30 Tch [°C] Qg [nC] Typical Capacitance Typical Forward Characteristics of Reverse Diode 1 C=f(VDS):VGS=0V,f=1MHz 100 IF=f(VSD):80 s pulse test,Tch=25 C ° 10 Ciss 100 10 ] ]
in „Mosfet K3673 01“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
psm712.pdf
VOLTAGE VOLTAGE CURRENT (See Note 2) (See Fig. 2) (See Fig. 2) @ 1mA @ I = 1A @V @0V,1MHz P WM VWM V(BR) VC @8/20µs D C VOLTS VOLTS VOLTS VC@ I PP µA pF Pin 3-1 & 3-2 712 7.0 7.5 11.0 17V @34A 20 75 Pin 1-3 & 2-3 712 12.0 13.3 19.0 30V @ 30A 1 75 Note 1: For 7V, pin 3 is positive. For 12V, pins 1 and 2
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PDF
2SA1943.pdf
MAX. t APPLIED IN A (CONTINUOUS) 10ms , THERMAL LIMITED AREA. (C -10 c (SINGLE NONREPETITIVE t -5 DC 100ms a 1 PULSE) n -3 s r OPERATION s u TC =100 C R r -1 a INFINTE HEAT SINK t -0.5 m e -0.3 **SINGLE NONREPETITIVE e0.1 o PULSE TC = 25 T C CURVES MUST BE t -0.1 DERATED LINEARLY i -0.05 TEMPERATURE.E IN V CEOMAX. s -0.03 r.01 -3 -10 -30 -100 -300 -1000 T 0.001 0.01 0.1 1 10 100 1000 Collector-Emitter Voltage, CE (V) Pulse Width, w (s) UNISONICTECHNOLOGIESCO.,LTD 3 of 4 www.unisonic.com.tw QW-R214-006.D 2SA1943 PNP SILICON TRANSISTOR UTC
in „Gibt es noch brauchbare Transistoren für den Audio-Bereich?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SST5912_Datasheet_Rev_A.pdf
uAless otherwise noted) 1 SST5912 SYMBOL CHARACTERISTCS TYP MIN MAX UNIT TEST CONDITIONS STATIC V(BR)GSS Gate-Source Breakdown Voltage -35 -25 IG= -1mA, VDS = 0V V VGS(OFF) Gate-Source Cut off Voltage -3.5 -1 -5 V DS= 10V, D = 1nA 2 IDSS Saturation Drain Current 15 7 40 mA V DS= 10V, GS = 0V -1 -100
in „Was ist das für ein Bauteil? Bzw welcher Hersteller?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AS5047P_DS000324_2-00-1843440.pdf
pin VSS DC supply voltage at GND pin -0.3 0.3 V V Input pin voltage VDD+0.3 V in I Input current -100 100 mA AEC-Q100-004 scr (latch-up immunity) ESD Electrostatic discharge ±2 kV AEC-Q100-002 Total power dissipation Pt 150 mW (all supplies and outputs) Ta5V0 Ambient temperature 5V0 -40 125 °C In the
in „Bachelorarbeit über Drehwinkelsensor“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ImplementierungEinerFiniteStateMachine.pdf
, MA 02110-1301, USA. 17 */ 18 19 /** 20 * \author Philipp Kaelin 21 * \date created: 2011/12/07 <br> 22 * modified: 2012/01/16 23 * \brief Finite State Machine for the main application 24 * \defgroup Application Application Finite State Machine 25 */ 26 27 #ifndef TOASTER_H_ 28 #define TOASTER_H_ 29
in „Artikel über Finite State Machines“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SP200_POWER_SUPPLY_SP-PW1-10.pdf
1 2 3 4 5 6 MAINWIRINGBOARDA1 D +50V D C1 C2 120VAC60Hz TR1 TP1 F1 1 TBD 3n3 TBD 5 L 0.5A SB BR1 TBD +50V U1 +12V L2 01MK2LineFilternotshown 4 15 TBD 2 GND 5 CLK/LEB VCC Q1 6 - + 6 RT 13 C16 C11 IRF640 C12 OUTPUT CT VC 0u1 100uF, 16V L1 3 C4 C7 FB1 47n J1 GND VCC 7 RAMP 1 HF1 R1 1000uF, 63V R2
in „METCAL MX-500P-11 Technische Dokumentation“ · Mechanik, Gehäuse, Werkzeug ·
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PDF
SP200_POWER_SUPPLY_SP-PW1-10.pdf
1 2 3 4 5 6 MAINWIRINGBOARDA1 D +50V D C1 C2 120VAC60Hz TR1 TP1 F1 1 TBD 1u0, 250V TBD 5 L 0.5A SB BR1 TBD +50V U1 +12V L2 01MK2LineFilternotshown 4 15 TBD 2 GND 5 CLK/LEB VCC Q1 6 - + 6 RT 13 C16 C11 IRF640 C12 OUTPUT CT VC 0u1 100uF, 16V L1 3 C4 C7 FB1 47n J1 GND VCC 7 RAMP 1 HF1 R1 1000uF, 63V R2
in „METCAL MX-500P-11 Technische Dokumentation“ · Mechanik, Gehäuse, Werkzeug ·
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PDF
SP200_POWER_SUPPLY_SP-PW1-10.pdf
1 2 3 4 5 6 MAINWIRINGBOARDA1 D +50V D C1 C2 120VAC60Hz TR1 TP1 F1 1 TBD 1u0, 250V TBD 5 L 0.5A SB BR1 TBD +50V U1 +12V L2 01MK2LineFilternotshown 4 15 TBD 2 GND 5 CLK/LEB VCC Q1 6 - + 6 RT 13 C16 C11 IRF640 C12 OUTPUT CT VC 0u1 100uF, 16V L1 3 C4 C7 FB1 47n J1 GND VCC 7 RAMP 1 HF1 R1 1000uF, 63V R2
in „METCAL SP200 Loetstation Technische Dokumentation“ · Mechanik, Gehäuse, Werkzeug ·
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PDF
SP200_POWER_SUPPLY_SP-PW1-10_REV2.pdf
5 6 MAINWIRINGBOARDA1 D +50V D C1 C2 120VAC60Hz VCC TR1 TP1 F1 1 TBD 1u0, 250V 0u1 L 0.5A SB 5 R17 BR1 1K TBD +50V U1 +12V L2 01MK2LineFilternotshown 4 15 30uH, 47T GND CLK/LEB VCC R18 Q1 2 5 RT C16 C11 1K C12 6 - + 6 CT VC 13 IRF640 L1 OUTPUT 3 0u1 100uF, 16V J2 GND C4 VCC C7 7 11 FB1 47n R1 1000uF,
in „METCAL SP200 Loetstation Technische Dokumentation“ · Mechanik, Gehäuse, Werkzeug ·
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PDF
SP200_POWER_SUPPLY_SP-PW1-10_REV3.pdf
5 6 MAINWIRINGBOARDA1 D +50V D C1 C2 120VAC60Hz VCC TR1 TP1 F1 1 TBD 1u0, 250V 0u1 L 0.5A SB 5 R17 BR1 1K TBD +50V U1 +12V L2 01MK2LineFilternotshown 4 15 30uH, 47T GND CLK/LEB VCC R18 Q1 2 5 RT C16 C11 1K C12 6 - + 6 CT VC 13 IRF640 L1 OUTPUT 3 0u1 100uF, 16V J2 GND C4 VCC C7 7 11 FB1 47n R1 1000uF,
in „METCAL SP200 Loetstation Technische Dokumentation“ · Mechanik, Gehäuse, Werkzeug ·
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PDF
SVC342.pdf
Ta = 25˚C Parameter Symbol Conditions Ratings Unit Reverse Voltage V 16 V R Junction Temperature Tj 100 ˚C Storage Temperature Tstg –55 to +100 ˚C Electrical Characteristics at Ta = 25˚C Ratings Parameter Symbol Conditions min typ max Unit Breakdown Voltage V(BR) R IR=10µA 16 V Reverse Current I V =9V 100 nA R R Interterminal Capacitance* C1V V R1V, f=1MHz 423.0 503.0 pF C6V V R6V, f=1MHz 46.0 61.0 pF C9V V R9V, f=1MHz 17.5 23.5 pF Quality Factor Q V R1V, f=1MHz 200 Capacitance Ratio CR C /C 19.5 1V
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PDF
KOSO_RX2N_China_Fake__2_.pdf
gn/ge rt/bl sw/gn ge/rt ge/ws ws pink gn/bl gelb rt/gn mint/rt orange blau grün grün hellblau bl/ws br/sw rot schwarz Blinker Fern- Blinker Dreh- Batterie Zündung Funktion 1.Gang 2.Gang 3.Gang 4.Gang 5.Gang 5V EFI Temp. Benzin Neutral 1.Gang Links licht Masse Masse Rechts zahl Tacho + + 1 2 3 4 5 5V DP
in „5V Signal auf 12V verstärken.“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
tpa3244.pdf
Figure 4. Output Power vs Supply Voltage Figure 3. Total Harmonic Distortion + Noise vs Output Power 100 100 4: 4: 8: 8: 80 - e w 60 - P c u e 10 t i O 40 E - P 20 THD+N = 1% TA= 25qC T A 25qC 0 1 10 15 20 25 30 33 10m 100m 1 10 100 300 PVDD - Supply Voltage - V 2 Channel Output Power - W D005 D006 R L
in „Class-D Verstärker TPA3244“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
marshall_mg100rcd_sch.pdf
A M224 2.7K 22K Q1 33K - 2 5 J202 C47 IC2A R77 R78 - NJM4558DD 7 + M223 R74 R61 B 47K 6 - 33K 47K 100K 4 1 VR10 -15V + C45 A1M C51 C53 C39 SW4 10/50V 101P CPS-2254 M473 VR12 M223 C55 LED6 C48 B100K M104 C38 KLR124 M223 M473 VR11 R75 LED5 VR13 B20K 470K C150 KLR124 R67 R68 R69 R70 A100K M104 1M 3.9K
in „Marshall G100R CD“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SNT7000_v3.3.pdf
Einstellung 2 2 2 1 4k7 1 CA3140 1 2 IC1 LM7805 2 STROBE R17 R18 BAL 2 D21 2 Re3 1 10µF 10V K10 I_out R14 100k 8 100k 100k BAL 1 R29 1 I_in 1 2 3 + 1 1 5 - 2 UEinstellung 4k7 0 C16 1 4 1 1 + 5 6 6 1 2 1 2 2 - -5Vref + 3 1 2 D2 1N4001 2 R15 100k 1 BAL IC7 8 2 D19 2 1D20 2 R28 100k 10µF 10V BAL R26 8 8 R27 2
in „Suche Schaltplan für ELV SNT7000“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
Ein_kleiner_Auszug_aus_Bootloader_3.txt
,0 seg000:CD86 aBd db 'bd',0 seg000:CD89 aSectorCountDes db 'sector [count [dest]]',0 seg000:CD9F aBr db 'br',0 seg000:CDA2 aPortVal db 'port val',0 seg000:CDAB aO db 'o',0 seg000:CDAD aPort db 'port',0 seg000:CDB2 aI db 'i',0 seg000:CDB4 aSourceDestBloc db 'source dest [blocks]',0 seg000:CDC9 aWf db
in „Pollin Netbox“ · Mikrocontroller und Digitale Elektronik ·
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PDF
bq2060a.pdf
host (read) 32 — — µs DSU Data setup time — — 50 µs DSUB Data setup time — — 50 µs DH Data hold time 100 — — µs DV Data valid time 80 — — µs SSU Stop setup time — — 145 µs SSUB Stop setup time — — 145 µs RSPS Response time, bq2060A to host 190 — 320 µs t Break time 190 — — µs ] BR Break recovery time 40
in „Verstehe dieses Datenblatt nicht (BQ2060A)“ · Mikrocontroller und Digitale Elektronik ·