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myfirst168.s
GPIOB_BASE + 0x00 @<<<<< .equ GPIOB_AFRL , GPIOB_BASE + 0x20 @<<<<< .equ GPIOB_AFRH , GPIOB_BASE + 0x24 .equ GPIOA_BASE , 0x40020000 .equ GPIOA_MODER , GPIOA_BASE + 0x00 .equ GPIOA_OTYPER , GPIOA_BASE + 0x04 .
in „Break auf 0xfffffffe in STM32CubeIDE“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2sc4132.pdf
Hightransitionfrequency.(f =80MHz) T . . ( )2 . . 4)Complementsthe2SB1236. 3 0 (3) 1 4 1 0 1 . (1)Base(Gate) 0 (2)Collector(Drain) ROHM : MPT3 (3)Emitter(Source) z Absolutemaximumratings (Ta=25°C) EIAJ : SC-62 Parameter Symbol Limits Unit Collector-base voltage V CBO 120 V Collector-emitter voltage V
in „Ersatztyp für 2SD1857 gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
myfirst168.s
GPIOB_BASE + 0x00 @<<<<< .equ GPIOB_AFRL , GPIOB_BASE + 0x20 @<<<<< .equ GPIOB_AFRH , GPIOB_BASE + 0x24 .equ GPIOA_BASE , 0x40020000 .equ GPIOA_MODER , GPIOA_BASE + 0x00 .equ GPIOA_OTYPER , GPIOA_BASE + 0x04 .
in „STM32CubeIDE - kann man dem gdb server einen Schalter mitgeben?“ · Mikrocontroller und Digitale Elektronik ·
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NCP380-D.PDF
(on) Static Drain-source On-state VIN= 5 V –40°C < T J 125°C − 55 75 mW Resistance DFN Package 2.5 V < V < 5.5 V –40°C < T < 125°C − − 110 IN J TSOP Package V = 5 V –40°C < T < 125°C − 70 95 mW IN J 2.5 V < VIN< 5.5 V –40°C < T J 125°C − − 135 TR
in „5V USB 500mA Begrenzung“ · Analoge Elektronik und Schaltungstechnik ·
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bs1Appnotes.pdf
' The tunes. Not necessarily music. Tune0: sound 0,(100,10,110,100): goto main Tune1: sound 0,(98,40,110,10,100,40): goto main Tune2: sound 0,(100,10,80,100): goto main Tune3: sound 0,(100,10,110,50,98,10): goto main Tune4: sound 0,(98,40,100,10,110,40): goto main ' Listing 2: NO_BTN.BAS (Demonstration
in „Smartcard-Kode-Schloss mit PIC16F84“ · Mikrocontroller und Digitale Elektronik ·
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BD140_Datenblatt.pdf
Voltage : BD136 - 45 V : BD138 - 60 V : BD140 - 80 V V EBO Emitter-Base Voltage - 5 V I Collector Current (DC) - 1.5 A C CP Collector Current (Pulse) - 3.0 A IB Base Current - 0.5 A P C Collector DissipatioC (T =25°C) 12.5 W PC Collector Dissipatioa (T =25°C) 1.25 W TJ
in „Audioverstärker“ · Analoge Elektronik und Schaltungstechnik ·
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read_it_first.txt
U/min, einer Aufloesung von 1° und einer Taktfrequenz von 16 MHz gilt: => 1500 U/min = 25 U/s ---> 40 ms/Umdrehung => 40 ms / 360 = 111 us ---> Zeit zwischen zwei Rotorpositionen => 16 MHz = 0,0625 us ---> 111 us / 0,0625 us = 1776 Maschinenzyklen D.h. bei Verwendung von nur 1-zyklischen Befehlen kann
in „Rotor-Display oder Propeller-Clock“ · Mikrocontroller und Digitale Elektronik ·
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4N38.pdf
U T T IF= 10 mA U U 1 - - R R E E IF= 5 mA I I D D Z 0.1 Z L L A A M M R R N N 0.01 0.1 1 10 -60 -40 -20 0 20 40 60 80 100 IF- LED INPUT CURRENT (mA) TA- AMBIENT TEMPERATURE (˚C) Fig.5 Normalized Dark Current vs. AmbientTemperature Normalized Collector-Base Current vs.Temperature T E 10 Normalized to
in „A4N38 Optokoppler SMD Gehäuse ?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
CppTest.cpp
namespace Peripheral { using reg32_t =uint32_t; using reg16_t =uint16_t; constexpr reg32_t PERIPH_BASE = 0x40000000U; constexpr reg32_t APB1PERIPH_BASE = PERIPH_BASE; constexpr reg32_t APB2PERIPH_BASE = PERIPH_BASE + 0x00010000UL; constexpr reg32_t AHB1PERIPH_BASE = PERIPH_BASE + 0x00020000UL; constexpr
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M500_Askoll__No_Variations__2018-12-02.PDF
PI21 P2 P0 PI3 P20 P0 P1 PI32 PR0 PQ R45 C C8 68R Q1 C11 68R Q4 CO18 68R Q6 4k7 C PI2 D2 P0 D5 P1 D7 R40 PI PD0 PIPIQ11 PI5 PDPQ40 PI7K PDPI601 P0 PR2 PIP2 PI U5 BAS16T U6 BAS16T U8 BAS16T R38 CQ8 560R C26 R46 3 8 C9 3 8 C13 3 8 CO20 PR0 PPI81 BC846T P2 1k VCC PI53VCC VBOOTPI7 PC2PI91 P3 VCC PU3VCC VBOOT
in „RX und TX Schaltung beim Askoll M505“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
myfirst.s
.equ GPIOA_ODR , GPIOA_BASE + 0x14 .equ GPIOA_BSRR , GPIOA_BASE + 0x18 .equ GPIOA_LCKR , GPIOA_BASE + 0x1C .equ GPIOA_AFRL , GPIOA_BASE + 0x20 .equ GPIOA_AFRH , GPIOA_BASE + 0x24 .equ RCC_BASE , 0x40023800 .equ RCC_CR , RCC_BASE + 0x00 .equ RCC_CFGR , RCC_BASE + 0x08 .equ RCC_AHB1ENR , RCC_BASE + 0x30 .equ RCC_APB1ENR , RCC_BASE + 0x40 .equ HSERDY , BIT17 .equ HSEON , BIT16 .equ Terminal_USART_SR, Terminal_USART_Base + 0x00 .equ Terminal_USART_DR, Terminal_USART_Base
in „mein erstes STM32F4 .asm/ .s Program stürzt ab im gdb“ · Mikrocontroller und Digitale Elektronik ·
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4N27-M.pdf
N F D o I 0.2 u L VCE= 5.0 V p 0.4 Normalized to M 0.1 l IF= 10 mA R e TA = 25°C N 0.0 s 0.2 -60 -40 -20 0 20 40 60 80 100 10 100 1000 T - AMBIENT TEMPERATURE (°C) RBE- BASE RESISTANCE (kΩ) A Fig. 6 Collector-Emitter SaturationVoltage Fig. 5 CTR vs. RBE (Saturated) vs. Collector Current 1.0 100 ) E
in „Wechselspannungs Fragen :(“ · Analoge Elektronik und Schaltungstechnik ·
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Oszilloskop_9254A.pdf
/s 20 Mpts/40Mpts 4 - MSO9254A 2.5 GHz 10 GSa/s/20 GSa/s 20 Mpts/40Mpts 4 16 DSO9404A 4 GHz 10 GSa/s/20 GSa/s 20 Mpts/40Mpts 4 - MSO9404A 4 GHz 10 GSa/s/20 GSa/s 20 Mpts/40Mpts 4 16 03 | Keysight | Ininiium 9000 Series
in „Genauigkeit eines Oszilloskop“ · Mikrocontroller und Digitale Elektronik ·
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Datei
panel-simple.c
struct drm_display_mode auo_b116xw03_mode = { .clock = 70589, .hdisplay = 1366, .hsync_start = 1366 + 40, .hsync_end = 1366 + 40 + 40, .htotal = 1366 + 40 + 40 + 32, .vdisplay = 768, .vsync_start = 768 + 10, .vsync_end = 768 + 10 + 12, .vtotal = 768 + 10 + 12 + 6, .vrefresh = 60, }; static const struct
in „Linux RPI VC4 Driver - DRM NullPointer Exception“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
, daher den Timer mit dem maximalen Wert (2^16 - 1) vorladen TimerLoadSet(TIMER0_BASE, TIMER_A, 0xFFFF); // Timer0A starten TimerEnable(TIMER0_BASE, TIMER_A); // Interrupt Typ konfigurieren und freischalten TimerIntEnable(TIMER0_BASE, TIMER_CAPA_EVENT); // Eventuell anstehende Interrupts
in „Probleme mit Goertzel Algorithmus und Festkommaarithmetik“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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PDF
bc847_p.pdf
Pinning information Table 3: Pinning Pin Description Simplified outline Symbol SOT23, SOT323, SOT416 1 base 2 emitter 3 3 3 collector 1 2 1 2 006aaa144 sym021 SOT883 1 base 2 emitter 1 3 3 3 collector 2 1 Transparent top view 2 sym021 SOT54 1 emitter 3 2 base 3 collector 1 2 2 3 001aab347 1 sym026 SOT54A
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167606-da-01-en-Transistor__BD243_B_C.pdf
ABSOLUTE MAXIMUM RATINGS Symbol Parameter Value Unit NPN BD243B BD243C PNP BD244B BD244C VCBO Collector-Base Voltage EI = 0) 80 100 V VCEO Collector-Emitter VoltageB(I = 0) 80 100 V VEBO Emitter-Base Voltage CI = 0) 5 V IC Collector Current 6 A ICM Collector Peak Current 10 A IB Base Current 2 A P tot Total
in „Lüftersteuerung mit AVR über PWM ?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
readme.txt
folgende Verzeichnissstruktur: basict ---------- Makefile sendbas57600 compile_sendbas tbasic.c laufl.bas testinput.bas testprog.bas fakul.bas include --------- stm8s.h stm8_init.h stm8_gpio.h stm8_systimer.h src ------------- stm8_systimer.c stm8_init makefile.mk stm8unlock stm8unlock.bin stm8lock stm8lock.bin
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Aluminum_Electrolytic_Capacitors_EPCOS.pdf
can-type capacitors produced by EPCOS have a thermal bridge between the capacitor winding and the base. As a large amount of heat is dissipated through the base of the case, the use of a heat sink connected to the capacitor base is the most efficient cooling method. In order to ensure an optimal heat
in „Wie lange halten sich verpackte Elkos?“ · Analoge Elektronik und Schaltungstechnik ·
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Vorlage_100x75.pdf
VDDIO_2 0 + GND 8 n C 1 C C 1 N VBAT C VDDIO_1 G D D 1 2 3 4 5 6 1 2 3 4 5 6 +12V D2 T1 D4 T3 D7 T5 BAS21 FET-TO247 BAS21 FET-TO247 BAS21 FET-TO247 A R5 R39 R41 A IC2-HI 10 IC3-HI 10 IC4-HI 10 HO 7 HO 7 HO 7 C36 VB 5 VB 5 C34 VB 5 100nF VS C31 VS VS IR2010 IR2010 100nF IR2010 100nF PHASEA PHASEB PHASEC B B D1 D5 BAS21 T2 BAS21 T4 BAS21 T6 FET-TO247 FET-TO247 FET-TO247 +C25 R6 R40 R42 10µF IC2-LO 10 IC3-LO 10 IC4-LO 10 LO 1 LO 1 LO 1 VCC 3 C32 VCC 3 C35 VCC 3 C37 +C29 COM 2 COM 2 COM 2 100nF 100nF 0.1µF IR2010 IR2010
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A100-BC327_28_BC337_38.pdf
BC338 Collector Emitter Voltage V CEO 45 60 25 V Collector Emitter Voltage VCES 50 60 30 V Emitter Base Voltage V EBO 5.0 V Collector Current Continuous C 800 mA Peak I 1.0 A CM Emitter Current Peak IE M 1.0 A I Base Current Continuous B 100 mA Base Current Peak IBM 200 mA Power Dissipation @ Ta=25°C
in „Tansistor brechnen allgemein“ · Analoge Elektronik und Schaltungstechnik ·
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bux87.pdf
VCES Collector-emitter voltagBE= 0) 1000 V VCEO Collector-emitter voltaBe (I = 0) 450 V VEBO Emitter-base voltageC(I = 0) 5 V IC Collector current 0.5 A ICM Collector peak currenp (t ≤ 5ms) 1 A IB Base current 0.3 A I Base peak current (t ≤ 5ms) 0.6 A BM p P Total power dissipation at T = 25 °C 40 W TOT
in „Hochspannung Regeln für eine Bildverstärker Röhre“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
Example_2802xEPwmDeadBand.c
end // Initialize all the handles needed for this application myClk = CLK_init((void *)CLK_BASE_ADDR, sizeof(CLK_Obj)); myCpu = CPU_init((void *)NULL, sizeof(CPU_Obj)); myFlash = FLASH_init((void *)FLASH_BASE_ADDR, sizeof(FLASH_Obj)); myGpio = GPIO_init((void *)GPIO_BASE_ADDR, sizeof(GPIO_Obj)); myPie = PIE_init((void *)PIE_BASE_ADDR, sizeof(PIE_Obj)); myPll = PLL_init((void *)PLL_BASE_ADDR, sizeof(PLL_Obj)); myPwm1 = PWM_init((void *)PWM_ePWM1_BASE_ADDR, sizeof(PWM_Obj)); myPwm2 = PWM_init((void *)PWM_ePWM2_BASE_ADDR, sizeof
in „Sine-Lookup Tabelle. Wie macht man es richtig?“ · Mikrocontroller und Digitale Elektronik ·
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Firmware_buglist_2.07.1.pdf
every second: The best would be to disable (or let user to choose in options) it. 10. Display / Time base scaling strange behavior with 512k memory depth. Apply e.g. 1kHz signal, chose 512k memory depth, set time base to 80us/DIV and move the waveform to 500us/DIV: When you now change time base to 40uS/
in „Tekway/Hantek/Voltcraft MSO“ · Mikrocontroller und Digitale Elektronik ·
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PDF
FMMT618.pdf
Maximum Ratings (@TA= +25°C, unless otherwise specified.) Characteristic Symbol Value Unit Collector-Base Voltage V CBO 20 V Collector-Emitter Voltage 20 V V CEO Emitter-Base Voltage VEBO 7 V Continuous Collector Current I 2.5 A C Peak Pulse Current ICM 6 A Base Current B 500 mA Thermal Characteristics
in „Maximal Strom von Atmel-MCU erhöhen“ · Mikrocontroller und Digitale Elektronik ·
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LC72130.pdf
V IN AMIN IN3 , SNS = 1 40 1500 mVrms V 4 AMIN f 4 , SNS = 0 40 1500 mVrms IN IN V IN IFIN IN5, IFS = 1 40 1500 mVrms V IN IFIN IN6, IFS = 0 70 1500 mVrms Oscillation-guaranteed Xtal XIN, XOUT * 4.0 8.0 MHz crystal resonator Allowable
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Datei
LPC407x_8x_177x_8x.h
_BASE + 0x18000) #define LPC_I2C0_BASE (LPC_APB0_BASE + 0x1C000) #define LPC_COMPARATOR_BASE (LPC_APB0_BASE + 0x20000) #define LPC_RTC_BASE (LPC_APB0_BASE + 0x24000) #define LPC_GPIOINT_BASE (LPC_APB0_BASE
in „Einstieg LPC4088 QuickStart Board“ · Mikrocontroller und Digitale Elektronik ·
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BD249.pdf
SOT-93 PACKAGE (TOP VIEW) ● 125 W at 25°C Case Temperature B 1 ● 25 A Continuous Collector Current ● 40 A Peak Collector Current C 2 ● Customer-Specified Selections Available E 3 Pin 2 is in electrical contact with the mounting base. MDTRAA absolute maximum ratings at 25°C case temperature (unless otherwise
in „Kühlkörperberechnung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
JRXEWKbQXBFOb1fH.pdf
new base cover. Stick the labels on the new base cover as shown in this figure. b b a 144 T40/T40p, T41/T41p, T42/T42p Removing and replacing a FRU 1270 System board, interposer card, and base cover for 15.0
in „Lenovo T42 Ladeelektronik spielt verrückt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
bc559.pdf
SEMICONDUCTOR TECHNICAL DATA by BC559/D Low Noise Transistors PNP Silicon BC559, B, C BC560C COLLECTOR 1 2 BASE 3 EMITTER MAXIMUM RATINGS 12 3 Rating Symbol BC559 BC560 Unit Collector–Emitter Voltage VCEO –30 –45 Vdc CASE 29–04, STYLE 17 TO–92 (TO–226AA) Collector–Base Voltage VCBO –30 –50 Vdc Emitter–Base Voltage
in „Transistorfrage: mit Masse 12V leiten?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Firmware_buglist_2.06.3.pdf
to understand issue: with 4k memory when changing position waveform is moving with 40k and above, when moving changing time base position waveform is NOT moving when in RUN mode (but works in STOP mode) 9. In single window mode, sample memory 40k, both channels (ch1, ch2) enabled – while
in „TEKWAY DST1xx2B Oszilloskop“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Firmware_buglist_2.06.3.pdf
to understand issue: with 4k memory when changing position waveform is moving with 40k and above, when moving changing time base position waveform is NOT moving when in RUN mode (but works in STOP mode) 9. In single window mode, sample memory 40k, both channels (ch1, ch2) enabled – while
in „TEKWAY DST1xx2B Oszilloskop“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2N3053-InchangeSemiconductor.pdf
purpose applications. ABSOLUTE MAXIMUM RATINGS(T a=25℃) SYMBOL PARAMETER VALUE UNIT VCBO Collector-Base Voltage 60 V VCEO Collector-Emitter Voltage 40 V VCER Collector – Emitter Sustaining Volt50e V VCEX Collector - Emiiter Voltage 60 V VEBO Emitter-Base Voltage 5 V IC Collector Current-Continuous 0.7
in „[V] kleines Konvolut Transistoren: BSY18 ,BF184A ,2N3053 ,2N5334“ · Markt ·
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PDF
BDX54BTU-datasheetz.pdf
Applications Power Darlington TR Complement to BDX53, BDX53A, BDX53B and BDX53C respectively 1 TO-220 1.Base 2.Collector3.Emitter PNP Epitaxial Silicon Transistor Absolute Maximum Ratings TC=25°C unless otherwise noted Symbol Parameter Value Units V Collector-Base Voltage: BDX54 - 45 V CBO : BDX54A - 60 V
in „Saito Pro Charger Batterieladegerät - Mikrocontroller ATmel ATTINY26L defekt?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BCR562-INF.pdf
Characteristics Collector-emitter breakdown voltage V 50 - - V (BR)CEO IC = 100 µA, B = 0 Collector-base breakdown voltage V (BR)CBO 50 - - I = 10 µA, I = 0 C E Collector-base cutoff current ICBO - - 100 nA VCB = 50 V, E = 0 Emitter-base cutoff current IEBO - - 1.61 mA V = 10 V, I = 0 EB C DC current gain
in „BRC562 direkt an uC“ · Mikrocontroller und Digitale Elektronik ·
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FZT949.pdf
-~,,,”— = —-°C} –, 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 lE=-loo@ Voltage ICBO -50 nA vc~-40v Collector Cut-Off Current -1 @ VCS=40V, T,m&l 00”C .— -50 nA VCS=40V Collector Cut-Off Current lCER R <lkCl -1 LLA Vcs=-nOV, Tam~l OOOC -10 nA VEr-6V Emitter CutOff Current IEBO Collector-Emitter Saturation
in „TFT Inverter“ · Mikrocontroller und Digitale Elektronik ·
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PartNumberBreakdown_ds.pdf
Numbers for Proprietary Parts Most Maxim parts use our own part numbering system which consists of a base part number followed by a suffix, plus optional additional designators. Example: (A) Base Part Number The base part number identifies the product type, independent of package, temperature, and other
in „SMD Bauteil identifizieren "4313"“ · Mikrocontroller und Digitale Elektronik ·
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PDF
manual_en_2015-10-27.pdf
-0000) Searchlight base should be mounted on level, flat surface. Using the light base mounting template Select a location near the helm which will allow for convenient operation of control. enclosed, drill three (3) mounting
in „LED Ersatz für Sealed Beam H9405 gesucht“ · Fahrzeugelektronik ·
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2N3055-TOSH.pdf
Operatings MAXIMUM RATINGS (Ta=25 C) ~) 30.2±0.2 CHARACTERISTIC SYMBOL RATING UNIT * 100 V Collcetor-Base Voltage VCBO * Collector-Emitter Sustaining (Rp =100 £1) VCER(SUS) 70 V Voltaee F * Collector-Emitter Sustaining 60 V Vol tage VCEO(SUS) * Emitter-Base Voltage 7 V vebo * Collector Current ic 15 A * Base Current IB 7 A 1.BASE 2.EMITTER * Collector Power Dissipation PC 115 W COLLECTOR (CASE) (Tc=25°C) Derate Linearly 0.66 w °c / JEDEC T0-2 4MA/TO— * Junction Temperature T 200 °c i EIAJ TC—3 ,TB— * Storage
in „2N3055 , was sind aktuelle Alternativen ?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BC856BDW1T1-D.PDF
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 3. Collector Saturation Region Figure 4. Base−Emitter Temperature Coefficient 40 T C D VCE= -5.0 V TJ= 25°C R 500 P F 20 Cib T ( I C D 200 N N I 10 B 100
in „SunLike LEDs mit TRI-R-Technologie ( Seoul Semiconductors )“ · Analoge Elektronik und Schaltungstechnik ·
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CNW82.pdf
CNW84/85) C CEO 80 100 — Emitter-Collector Breakdown Voltage (E = 0.1 mA) BV ECO 7 10 — V Collector-Base Breakdown Voltag(CNW83) 70 100 — (C = 0.1 mA) BV CBO V (CNW85) 120 140 — (T = 25°C) — 1 50 nA Collector-Emitter Dark Current A (V = 10 V, I = 0) I (TA= 70°C) CE F CEO — 0.1 10 µA Collector-Base Cut-off
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Bild
Diagramm zu Bandbreite und Kabellänge von Ethernet-Standards
Automation bandwidth 25 GBit/s 2.5 G / 5 G & 10 GBit/s 1 GBit/s 100 MBit/s 10 MBit/s 25GBASE-T1 MG-BASE-T1 1000BASE-T1 1000BASE-T1 100BASE-T1L point to IEEE 802.3dg 100BASE-T1 10BASE-T1S/M multidrop IEEE 802.3da 10BASE-T1L point to 10BASE-T1S multidrop shielded unshielded under development cable length in meter 15 40 50 100 500 1000
in „EmbeddedWorld 2026, Catch-All – Bauteile, Stromversorgungen, Meshnetze uvam“ · Mikrocontroller und Digitale Elektronik · · Fotos
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Datei
myfirst.s
GPIOB_BASE + 0x00 .equ GPIOB_OTYPER , GPIOB_BASE + 0x04 .equ GPIOB_OSPEEDR , GPIOB_BASE + 0x08 .equ GPIOB_PUPDR , GPIOB_BASE + 0x0C .equ GPIOB_IDR , GPIOB_BASE + 0x10 .equ GPIOB_ODR , GPIOB_BASE + 0x14 .equ GPIOB_BSRR
in „Assemblerprogramm zur Ausgabe eines Zeichens auf UART3“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PEHandbuch.pdf
== BaseAdr + 0x36 EOUTPORT8 == BaseAdr + 0x37 EINPORT1 == BaseAdr + 0x38 ; Rettungszellen für Eingabeerweiterung EINPORT2 == BaseAdr + 0x39 EINPORT3 == BaseAdr + 0x3A EINPORT4 == BaseAdr + 0x3B EINPORT5 == BaseAdr + 0x3C EINPORT6 == BaseAdr + 0x3D EINPORT7 == BaseAdr + 0x3E EINPORT8 == BaseAdr + 0x3F RETR0 == BaseAdr + 0x70 ; Rettungszelle Register 0 RETR1 == BaseAdr + 0x71 ; Rettungszelle Register 1 RETR2
in „UART auf Linux“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PEHandbuch.pdf
== BaseAdr + 0x36 EOUTPORT8 == BaseAdr + 0x37 EINPORT1 == BaseAdr + 0x38 ; Rettungszellen für Eingabeerweiterung EINPORT2 == BaseAdr + 0x39 EINPORT3 == BaseAdr + 0x3A EINPORT4 == BaseAdr + 0x3B EINPORT5 == BaseAdr + 0x3C EINPORT6 == BaseAdr + 0x3D EINPORT7 == BaseAdr + 0x3E EINPORT8 == BaseAdr + 0x3F RETR0 == BaseAdr + 0x70 ; Rettungszelle Register 0 RETR1 == BaseAdr + 0x71 ; Rettungszelle Register 1 RETR2
in „MC68HC908AZ60A programmieren mit OpenSource“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PEHandbuch.pdf
== BaseAdr + 0x36 EOUTPORT8 == BaseAdr + 0x37 EINPORT1 == BaseAdr + 0x38 ; Rettungszellen für Eingabeerweiterung EINPORT2 == BaseAdr + 0x39 EINPORT3 == BaseAdr + 0x3A EINPORT4 == BaseAdr + 0x3B EINPORT5 == BaseAdr + 0x3C EINPORT6 == BaseAdr + 0x3D EINPORT7 == BaseAdr + 0x3E EINPORT8 == BaseAdr + 0x3F RETR0 == BaseAdr + 0x70 ; Rettungszelle Register 0 RETR1 == BaseAdr + 0x71 ; Rettungszelle Register 1 RETR2
in „Programm zum erstellen eines Handbuches“ · PC Hard- und Software ·
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PDF
FMMT620.pdf
JUNE 2006 1 SEMICONDUCTORS FMMT620 ABSOLUTE MAXIMUM RATINGS PARAMETER SYMBOL LIMIT UNIT Collector-Base Voltage VCBO 80 V Collector-Emitter Voltage V 80 V CEO Emitter-Base Voltage VEBO 5 V Peak Pulse Current ICM 5 A Continuous Collector Current IC 1.5 A Base Current I 500 mA B Power Dissipation at TA=
in „"intelligenter" Open-Kollektor?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
FMMT620.pdf
JUNE 2006 1 SEMICONDUCTORS FMMT620 ABSOLUTE MAXIMUM RATINGS PARAMETER SYMBOL LIMIT UNIT Collector-Base Voltage VCBO 80 V Collector-Emitter Voltage V 80 V CEO Emitter-Base Voltage VEBO 5 V Peak Pulse Current ICM 5 A Continuous Collector Current IC 1.5 A Base Current I 500 mA B Power Dissipation at TA=
in „Suche Transistoren mit kleinerem Spannungsübergang“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
A100_BC549x_BC550x.pdf
(T =25ºC)a DESCRIPTION SYMBOL BC549 BC550 UNITS Collector Emitter Voltage VCEO 30 45 V Collector Base Voltage VCBO 30 50 V Emitter Base Voltage VEBO 5.0 V Collector Current Continuous IC 100 mA Power Dissipation at Ta=25ºC PD 625 mW Derate Above 25ºC 5.0 mW/ºC Power Dissipation at Tc=25ºC PD 1.5 W Derate
in „Rätselhafter Transistor“ · Mikrocontroller und Digitale Elektronik ·
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BC517.pdf
gain at currents to 1.0A. g • Sourced from process 05. o n T r a s i t o r 1 TO-92 1. Collector 2. Base 3. Emitter Absolute Maximum Ratings * a = 25°C unless otherwise noted Symbol Parameter Value Units VCEO Collector-Emitter Voltage 30 V VCBO Collector-Base Voltage 40 V V Emitter-Base Voltage 10 V EBO
in „Widerstand Transistor“ · Analoge Elektronik und Schaltungstechnik ·