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NTC.html
+CiAgPC9nPgo8L3N2Zz4K); --jp-icon-check: url(data:image/svg+xml;base64,PHN2ZyB4bWxucz0iaHR0cDovL3d3dy53My5vcmcvMjAwMC9zdmciIHdpZHRoPSIxNiIgdmlld0JveD0iMCAwIDI0IDI0Ij4KICA8ZyBjbGFzcz0ianAtaWNvbjMiIGZpbGw9IiM2MTYxNjEiPgogICAgPHBhdGggZD0iTTkgMTYuMTdMNC44MyAxMmwtMS40MiAxLjQxTDkgMTkgMjEgN2wtMS40MS0xLjQxeiIvPgogIDwvZz4KPC9zdmc+Cg==); --jp-icon-circle-empty: url(data:image/svg+xml;base64,PHN2ZyB4bWxucz0iaHR0cDovL3d3dy53My5vcmcvMjAwMC9zdmciIHdpZHRoPSIxNiIgdmlld0JveD0iMCAwIDI0IDI0Ij4KICA8ZyBjbGFzcz0ianAtaWNvbjMiIGZpbGw9IiM2MTYxNjEiPgogICAgPHBhdGggZD0iTTEyIDJDNi40NyAyIDIgNi40NyAyIDEyczQuNDcgMTAgMTAgMTAgMTAtNC40NyAxMC0xMFMxNy41MyAyIDEyIDJ6bTAgMThjLTQuNDEgMC04LTMuNTktOC04czMuNTktOCA4LTggOCAzLjU5IDggOC0zLjU5IDgtOCA4eiIvPgogIDwvZz4KPC9zdmc
in „NTC auto kalibrierung - Matheformel“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM7001.pdf
Allowable power dissipation Pd max Ta = 85°C: LM7001JM (MFP20) 180 mW Operating temperature Topr –40 to +85 °C Storage temperature Tstg –55 to +125 °C Allowable Operating Ranges at Ta = –40 to +85°C, V SS = 0 V Parameter Symbol Conditions Ratings Unit V 1 V 1, PLL circuit operating 4.5 to 6.5 V Supply
in „PLL per Software“ · Mikrocontroller und Digitale Elektronik ·
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PDF
astable.pdf
SECTION 2 MULTIVIBRATORS ASTABLE Tr1 Collector TrlBase Tr2 Collector Tr2 Base Astable. Figure 2.1. Basic Typical component values: Rl = R2 — 15kQ R3 = R4 = 1km = = CI C2 0-047//.F Trl = Tr2 = ZTX300 + V co= 5volts Oscilloscope trace (a)— Trl collector (
in „Astabiler Multivibrator“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ET101_An_Introduction_To_Envelope_Tracking_RF_Amplifiers__1.0_.pdf
enables GSM PAs, handset and modem applications. operating on constant envelope signals, to achieve Base stations and mobile devices do not always efficiencies of the order 65%. transmit at their maximum power levels. Messages But, in the world of 3G and LTE, variable envelope are exchanged between base
in „Envelope-Tracking frage zum AP des Transistors“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Mixer_Musings.pdf
additional pair of when the diodes are turned ON (conducting) BAS-54S diodes was added between the LO and signal present when they are turned OFF input terminal and the primary windings of T1 (nonconducting). Comparingthetwotraces,it and T3, as shown in Fig. 12, and
in „Ladderfilter berechnen und bauen“ · HF, Funk und Felder ·
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PDF
Trask_Mixer_Musings.pdf
additional pair of when the diodes are turned ON (conducting) BAS-54S diodes was added between the LO and signal present when they are turned OFF input terminal and the primary windings of T1 (nonconducting). Comparingthetwotraces,it and T3, as shown in Fig. 12, and
in „Mischer selber bauen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Trask_Mixer_Musings.pdf
additional pair of when the diodes are turned ON (conducting) BAS-54S diodes was added between the LO and signal present when they are turned OFF input terminal and the primary windings of T1 (nonconducting). Comparingthetwotraces,it and T3, as shown in Fig. 12, and
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PDF
PDTA143E-Series.pdf
SYMBOL AND PINNING PINNING TYPE NUMBER SIMPLIFIED OUTLINE AND SYMBOL PIN DESCRIPTION PDTA143ES 1 base 2 collector handbook, halfpage 2 R1 3 emitter 1 1 2 3 R2 3 MAM338 PDTA143EE 1 base PDTA143EEF 2 emitter handbook, half3age PDTA143EK R1 3 3 collector PDTA143ET 1 PDTA143EU R2 1 2 2 Top view MDB271 PDTA143EM
in „Transistor Freecom HDD Gehäuse“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
ediptft43.c
GENEVA10 = 4 # Gut fuer Text // CHICAGO14 = 5 // SWISS30B = 6 // BIGZIF50 = 7 // BIGZIF100 = 8 // LCD40 = 9 # Nur Grossbuchstaben und Zahlen // SWISS40 = 10 // TIMES20 = 11 # Ev. // TIMES26 = 12 # Ev. // FONT8x8 = 13 # Ev. //*********************************************************************/ #include
in „EA eDIPTFT43-ATP per RS-232 an Atmega32“ · Mikrocontroller und Digitale Elektronik ·
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Datei
dma.h
uint8_t dma_channel_number); void (*transfer_error) (uint8_t dma_channel_number); uint32_t PeripheralBaseAddr; /*!< Specifies the peripheral base address for DMAy Channelx. */ uint8_t DIR; /*!< Specifies if the peripheral is the source or destination. This parameter can be a value of @ref DMA_data_transfer_direction
in „STM32L1xx DMA+SPI: 2 Bugs“ · Mikrocontroller und Digitale Elektronik ·
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Datei
twi_lib.c
regardless of Debug Level setting. SrvS.DebugLevel = cDebugOnUARTinAnyCase; switch( twi1.Addr_SLA_Base ) { case DS1631_BaseAdr: strMessage = (char *) strP_Err_DS1631; break; case PCF8574_BaseAdr: strMessage = (char *) strP_Err_PCF8574; break; case PCF8574A_BaseAdr: strMessage = (char *) strP_Err_PCF8574A
in „TWI MUX per SW an einem Port“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TEKTDS1000B_2000B.PDF
all models Input Coupling AC, DC, GND on all models Input Impedance 1 MΩ in parallel with 20pF Time Base 5 ns to 5 ns to 5 ns to 5 ns to 5 ns to 5 ns to 5 ns to 2.5 ns to 2.5 ns to Range 50 sec/div 50 sec/div 50 sec/div 50 sec/div 50 sec/div 50 sec/div 50 sec/div 50 sec/div 50 sec/div Time Base 50 ppm
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PDF
bc547.pdf
BC546, CEO=65V 9 Low Noise: BC549, BC550 5 Complement to BC556 ... BC560 5 0 1 TO-92 1. Collector 2. Base 3. Emitter NPN Epitaxial Silicon Transistor Absolute Maximum Ratings T a25°C unless otherwise noted Symbol Parameter Value Units VCBO Collector-Base Voltage: BC546 80 V : BC547/550 50 V : BC548/549
in „Mikrocontrollerboard: Funktioniert das?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
bc547.pdf
BC546, CEO=65V 9 Low Noise: BC549, BC550 5 Complement to BC556 ... BC560 5 0 1 TO-92 1. Collector 2. Base 3. Emitter NPN Epitaxial Silicon Transistor Absolute Maximum Ratings T a25°C unless otherwise noted Symbol Parameter Value Units VCBO Collector-Base Voltage: BC546 80 V : BC547/550 50 V : BC548/549
in „Mikrocontrollerboard: Funktioniert das?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
bc547.pdf
BC546, CEO=65V 9 Low Noise: BC549, BC550 5 Complement to BC556 ... BC560 5 0 1 TO-92 1. Collector 2. Base 3. Emitter NPN Epitaxial Silicon Transistor Absolute Maximum Ratings T a25°C unless otherwise noted Symbol Parameter Value Units VCBO Collector-Base Voltage: BC546 80 V : BC547/550 50 V : BC548/549
in „Displaybeleuchtung mit PWM dimmen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
18481_BC547_data.pdf
CEO=65V 9 • Low Noise: BC549, BC550 5 • Complement to BC556 ... BC560 5 0 1 TO-92 1. Collector 2. Base 3. Emitter NPN Epitaxial Silicon Transistor Absolute Maximum Ratings T a25°C unless otherwise noted Symbol Parameter Value Units VCBO Collector-Base Voltage: BC546 80 V : BC547/550 50 V : BC548/549
in „NPN Transistor Kennlinie verstehen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BC547.pdf
CEO=65V 9 • Low Noise: BC549, BC550 5 • Complement to BC556 ... BC560 5 0 1 TO-92 1. Collector 2. Base 3. Emitter NPN Epitaxial Silicon Transistor Absolute Maximum Ratings T a25°C unless otherwise noted Symbol Parameter Value Units VCBO Collector-Base Voltage: BC546 80 V : BC547/550 50 V : BC548/549
in „Arduino. Transistor schaltet nicht richtig“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BC547B.pdf
CEO=65V 9 • Low Noise: BC549, BC550 5 • Complement to BC556 ... BC560 5 0 1 TO-92 1. Collector 2. Base 3. Emitter NPN Epitaxial Silicon Transistor Absolute Maximum Ratings T a25°C unless otherwise noted Symbol Parameter Value Units VCBO Collector-Base Voltage: BC546 80 V : BC547/550 50 V : BC548/549
in „Basiswiderstand richtig berechnet?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BC547_datasheet.pdf
CEO=65V 9 • Low Noise: BC549, BC550 5 • Complement to BC556 ... BC560 5 0 1 TO-92 1. Collector 2. Base 3. Emitter NPN Epitaxial Silicon Transistor Absolute Maximum Ratings T a25°C unless otherwise noted Symbol Parameter Value Units VCBO Collector-Base Voltage: BC546 80 V : BC547/550 50 V : BC548/549
in „Frage zur Berechnung von Basiswiderstand BC547B mit Motor 5V“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
main.c
to enable SWD debug pins, set to 0 for power consumption measurement*/ #define FACTORY_TSCALIB_MD_BASE ((uint32_t)0x1FF80078) /*!< Calibration Data Bytes base address for medium density devices*/ #define FACTORY_TSCALIB_MDP_BASE ((uint32_t)0x1FF800F8) /*!< Calibration Data Bytes base address for medium density plus devices*/ #define FACTORY_TSCALIB_MD_DATA ((TSCALIB_TypeDef *) FACTORY_TSCALIB_MD_BASE) #define FACTORY_TSCALIB_MDP_DATA ((TSCALIB_TypeDef *) FACTORY_TSCALIB_MDP_BASE) #define USER_CALIB_BASE ((uint32_t)0x08080000) /*!< USER Calibration Data Bytes base address */ #define USER_CALIB_DATA
in „STM32L1 + Makefile. Linkerproblem?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AV02-1132EN_DS_HEDS-9x40_2014-03-17__3_.pdf
StateWidth Error ∆S 5 50 °e Phase Error ∆φ 2 15 °e Position Error ∆Θ 2 20 min. of arc Index PulseWidth PO 40 90 140 °e CH. I rise after CH. B or CH. A f-40°C to +100°C t1 10 450 1500 ns CH. I fall after CH. A or CH. B r-40°C to +100°C t 10 250 1500 ns 2 Note: 1. Module mounted on tolerance circle of ±0.13 mm
in „Incremental Encoder läuft nicht an 2 µC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AND9282-D_AC_Zero_Crossing.pdf
communication over setting. This adjustment allows shifting the sampling clock DC lines. 3.3 V D1 R1 BAS40−04 1M Phase To PLC Modem C1 D1 100p/10% Figure 6. Non-Isolated Zero Crossing Detector www.onsemi.com 3 AND9282/D Delay Adjustment circuit has substantial disadvantages (see Conventional To obtain
in „Nulldurchgangserkennung: Optokoppler sperrt dauerhaft“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
0jedoh4ph3rpg669tyx5u9dy7lky.pdf
VDE0884) Order Information DIN EN 60747-5-5 pending Part Remarks BSI IEC60950 IEC60065 CNY17-1 CTR 40 - 80 %, DIP-6 FIMKO CNY17-2 CTR 63 - 125 %, DIP-6 CNY17-3 CTR 100 - 200 %, DIP-6 Description CNY17-4 CTR 160 - 320 %, DIP-6 The CNY17 is an optically coupled pair consisting of CNY17-1X006 CTR 40 - 80
in „optokoppler frequenzmessung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
netgear-fs108-benutzerhandbuch.pdf
8904FA Model FS102, Model FS104, Model FS108 Fast Ethernt Switch Installation Guide Bridging from 10BASE-T to 100BASE-TX Networks The Model FS108 switch can function as a two-port bridge connecting traditional 10BASE-T Ethernet networks to 100BASE-TX Fast Ethernet networks. Users requiring increased network
in „[V] Netgear 8-fach Switch FS 108 + 18 Stk. Netzwerk-/Patchkabel“ · Markt ·
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Datei
main.c
include "lcd.h" #include "board.h" #include "bits.h" #include "gps.h" volatile AT91PS_PIO mPIOB = AT91C_BASE_PIOB; volatile AT91PS_PMC mPMC = AT91C_BASE_PMC; AT91PS_PIO v_pPioA = AT91C_BASE_PIOA; extern void LowLevelInit(void); void config_switch(void); void blink_if_char_(); char *gps_char, ch3; volatile
in „Data aus USART vom SAM7-EX256 lesen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
1MA98_4E_dB_or_not_dB.pdf
, i.e. W or mW. We won’t obtain the correct result if we just divide 200 by 100. Nowadays, we use base 10 logarithms almost exclusively. The abbreviation for a base 10 logarithm is lg. In older textbooks, you will sometimes see the natural logarithm used, which is the base e logarithm (e = approx. 2.718
in „Wie stehen dBm und Volt zueinander?“ · HF, Funk und Felder ·
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PDF
GA-5486AL.pdf
Load BIOS Defaults F7 : Load Setup Defaults Figure 4.4: CHIPSET FEATURES SETUP • EDO,60nsDR AM or 40MHz CLK The default value is Disabled. Enabled EDO DRAM or 60ns DRAM or 40MHz CLK Present. ¡ ] DX-40, DX2-80, DX4-120¡ ^ Disabled EDO DRAM or 60ns DRAM or 40MHz CLK Absent. ¡ ] DX-40, DX2-80, DX4-120¡
in „Sucher 486er bis DX4 100“ · Markt ·
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Datei
out.txt
` STR r5,[r0,#4] 0x0800330c: 2900 .) CMP r1,#0 0x0800330e: d01d .. BEQ 0x800334c ; _ZN14timer_irq_base4initEPK21timer_irq_base_configP20timer_irq_base_sleepP7pio_set + 72 0x08003310: 6808 .h LDR r0,[r1,#0] 0x08003312: 2800 .( CMP r0,#0 0x08003314: d01a .. BEQ 0x800334c ; _ZN14timer_irq_base4initEPK21timer_irq_base_configP20timer_irq_base_sleepP7pio_set
in „ARM Bootloader mit ELF, Einstieg nicht bei 0x08000000“ · Mikrocontroller und Digitale Elektronik ·
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PDF
RN-Mega_Board.pdf
oder Applikationsboard nicht unbedingt notwendig RN-Mega2560Modul von robotikhardware.de Seite 3 von 40 Fotos Übliche Lieferumfang (kann sich ändern, gültig sind stets die Angaben im Shop bei der Artikelbeschreibung) RN-Mega2560Modul von robotikhardware.de Seite 4 von 40 Im oberen Bild wurde das Modul
in „ATmega2560 spinnt“ · Mikrocontroller und Digitale Elektronik ·
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Datei
T6963.c
schreiben for (i=0; i<0xFFFF; i++) asm volatile ("nop"); //Write text home address=0x0000 WriteData2(T_BASE,0x40); //Write graphic home address WriteData2(G_BASE,0x42); //Text area column set= Setze Textspalten // WriteData2(BYTES_PER_ROW,0x41); WriteData2(BYTES_PER_ROW,0x41); //Graphics area column set in
in „Display mit T963C“ · Mikrocontroller und Digitale Elektronik ·
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PDF
datasheet.pdf
JEITA:SC-59 JEITA:SC-70 JEDEC:TO-236 resemblance JEDEC:- TERMINAL CONNECTOR TERMINAL CONNECTOR ①:BASE ①:BASE ②:EMITTER ②:EMITTER ③:COLLECTOR ③:COLLECTOR MAXIMUM RATINGS(Ta=25℃) Ratings MARKING Symbol Parameter UNIT ISA1530AC1 ISA1603AM1 V CBO Collector to Base voltage -60 V V Collector to Emitter voltage
in „PNP Transistor Ersatz“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
2SD2420_A_.pdf
Maximum Ratings T =C25°C e ± 1.±0.2 Parameter Symbol Rating Unic 74 D 1.±0.2 ge . 2.±0.1 Collector-base vol2SD2420 V CBO 60 V 1 S d 0±0.1 s t 0.5±0.15 Collector-emitter voltage 2SVCEO0 60 n V 2.5y0.30 (Base open) 2SD2420A a80 e 1 2l3e0±0.50 1: Base Emitter-base voltage (CollecVEBOopen)5 V u duct 3: Emitteror
in „Endstufen Transistoren“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
sd_spi_stm32.c
define CMD10 (0x40+10) /* SEND_CID */ #define CMD12 (0x40+12) /* STOP_TRANSMISSION */ #define ACMD13 (0xC0+13) /* SD_STATUS (SDC) */ #define CMD16 (0x40+16) /* SET_BLOCKLEN */ #define CMD17 (0x40+17) /* READ_SINGLE_BLOCK
in „STM32 - SPI Schnittstelle empfängt mal korrekt und dann wieder nicht“ · Mikrocontroller und Digitale Elektronik ·
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Datei
CH32V003_reg1.asm
SRAM_start = 0x20000000 SRAM_end = 0x20000800 STACK = 0x20000800 TIM2_BASE = 0x40000000 W_WDG_BASE = 0x40002C00 I_WDG_BASE = 0x40003000 I2C_BASE = 0x40005400 PWR_BASE = 0x40007000 AFIO_BASE = 0x40010000 EXTI_BASE = 0x40010400 PORTA_BASE = 0x40010800 PORTC_BASE = 0x40011000 PORTD_BASE = 0x40011400 ADC_BASE = 0x40012400 TIM1_BASE = 0x40012C00 SPI_BASE = 0x40013000 USART_BASE = 0x40013800 DMA_BASE = 0x40020000 RCC_BASE = 0x40021000 FLASH_INTERFACE_BASE = 0x40022000 EXTENDED_MEM_BASE
in „RISCV (CH32V003): GNU Assembler übersetzt "CALL" nicht korrekt (oder bin ich nur zu doof?)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
YAMAICHI_TS-Katalog-2017_01_2.pdf
= Tip-to-Tip SO package orientation C L = Clamshell, OT = Open Top, S = Seperator, FB = Floating Base 0.40MM PITCH Pin IC Body IC Socket IC Socket Package Part Number and Lid Size Tip-to-Tip Dimensions Note Count A B (max.) C D x E Type IC51-0142-2074 14 4.40 5.70 6.40 16.0 x 34.0 SOP CL/FB IC51-0202
in „TSOP-66 Sockel zum testen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
AT91SAM7S256.h
) // (RSTC) Base Address #define AT91C_BASE_RTTC ((AT91PS_RTTC) 0xFFFFFD20) // (RTTC) Base Address #define AT91C_BASE_PITC ((AT91PS_PITC) 0xFFFFFD30) // (PITC) Base Address #define AT91C_BASE_WDTC ((AT91PS_WDTC) 0xFFFFFD40
in „C Datein werden in Eclipse nicht kompiliert“ · Mikrocontroller und Digitale Elektronik ·
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Datei
AT91SAM7S256.h
) // (RSTC) Base Address #define AT91C_BASE_RTTC ((AT91PS_RTTC) 0xFFFFFD20) // (RTTC) Base Address #define AT91C_BASE_PITC ((AT91PS_PITC) 0xFFFFFD30) // (PITC) Base Address #define AT91C_BASE_WDTC ((AT91PS_WDTC) 0xFFFFFD40
in „AT91SAM7S256 Timer Counter PWM“ · Mikrocontroller und Digitale Elektronik ·
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Datei
AT91SAM7.h
) // (RSTC) Base Address #define AT91C_BASE_RTTC ((AT91PS_RTTC) 0xFFFFFD20) // (RTTC) Base Address #define AT91C_BASE_PITC ((AT91PS_PITC) 0xFFFFFD30) // (PITC) Base Address #define AT91C_BASE_WDTC ((AT91PS_WDTC) 0xFFFFFD40
in „arm-elf-ld problem, undefined reference to `__gccmain'“ · µC & Digital Electronics ·
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Datei
AT91SAM7S64.h
) // (RSTC) Base Address #define AT91C_BASE_RTTC ((AT91PS_RTTC) 0xFFFFFD20) // (RTTC) Base Address #define AT91C_BASE_PITC ((AT91PS_PITC) 0xFFFFFD30) // (PITC) Base Address #define AT91C_BASE_WDTC ((AT91PS_WDTC) 0xFFFFFD40
in „arm-elf-ld problem, undefined reference to `__gccmain'“ · µC & Digital Electronics ·
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Datei
stm32f10x.h
0x1000) #define TIM7_BASE (APB1PERIPH_BASE + 0x1400) #define TIM12_BASE (APB1PERIPH_BASE + 0x1800) #define TIM13_BASE (APB1PERIPH_BASE + 0x1C00) #define TIM14_BASE (APB1PERIPH_BASE + 0x2000) #define RTC_BASE (APB1PERIPH_BASE
in „STM32 - Eclipse, ARM GCC - Funktionsaufruf geht nicht :-(“ · Mikrocontroller und Digitale Elektronik ·
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Datei
stm32f10x.h
0x1000) #define TIM7_BASE (APB1PERIPH_BASE + 0x1400) #define TIM12_BASE (APB1PERIPH_BASE + 0x1800) #define TIM13_BASE (APB1PERIPH_BASE + 0x1C00) #define TIM14_BASE (APB1PERIPH_BASE + 0x2000) #define RTC_BASE (APB1PERIPH_BASE
in „C-Libs for USB and OLED-Display“ · Mikrocontroller und Digitale Elektronik ·
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Datei
stm32f10x.h
define TIM4_BASE (APB1PERIPH_BASE + 0x0800) #define TIM5_BASE (APB1PERIPH_BASE + 0x0C00) #define TIM6_BASE (APB1PERIPH_BASE + 0x1000) #define TIM7_BASE (APB1PERIPH_BASE + 0x1400) #define RTC_BASE (APB1PERIPH_BASE +
in „COIDE 2.7.0 und STMF103C8T6 (china board), startprobleme“ · Mikrocontroller und Digitale Elektronik ·
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Datei
LED_CUBE.txt
0x09, 0x19, 0x29, 0x46, 0x46, 0x49, 0x49, 0x49, 0x31, // RS 0x01, 0x01, 0x7f, 0x01, 0x01, 0x3f, 0x40, 0x40, 0x40, 0x3f, // TU 0x1f, 0x20, 0x40, 0x20, 0x1f, 0x3f, 0x40, 0x38, 0x40, 0x3f, // VW 0x63, 0x14, 0x08, 0x14, 0x63, 0x07, 0x08, 0x70, 0x08, 0x07, // XY 0x61, 0x51, 0x49, 0x45, 0x43, 0x00, 0x7f,
in „LED-Cube Effekte weiter per Knopfdruck“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Cube_Gro_.ino
0x09, 0x19, 0x29, 0x46, 0x46, 0x49, 0x49, 0x49, 0x31, // RS 0x01, 0x01, 0x7f, 0x01, 0x01, 0x3f, 0x40, 0x40, 0x40, 0x3f, // TU 0x1f, 0x20, 0x40, 0x20, 0x1f, 0x3f, 0x40, 0x38, 0x40, 0x3f, // VW 0x63, 0x14, 0x08, 0x14, 0x63, 0x07, 0x08, 0x70, 0x08, 0x07, // XY 0x61, 0x51, 0x49, 0x45, 0x43, 0x00, 0x7f,
in „LED-Cube Effekte weiter per Knopfdruck“ · Mikrocontroller und Digitale Elektronik ·
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PDF
optokoppler-siemens-datasheet.pdf
OPTOCOUPLER FEATURES Dimensions in inches (mm) • High CurrentTransfer Ratios Pin One ID SFH601-1, 40 to 80% 3 2 1 SFH601-2, 63 to 125% Anode 1 6 Base SFH601-3 ,100 to 200% .248 (6.30) SFH601-4, 160 to 320% .256 (6.50) Cathode 2 5 Collector • IsolationTestVoltage (1 Sec.), 5300VAC RMS • VCEsat 0.25 (
in „welches relais fuer mega16?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
User_guide_-_Driver.pdf
(ADC0_BASE, 0); // // Wait until the sample sequence has completed. // while(!ADCIntStatus(ADC0_BASE, 0, false)) { } // // Read the value from the ADC. // ADCSequenceDataGet(ADC0_BASE, 0, &ulValue); 40 March 19
in „PCF8574 mit LM3S8938 per I2C auslesen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
1n441s.pdf
JEITA:- ISAHAYA:T-USM JEDEC:- JEDEC:- Terminal Connector Terminal Connector Terminal Connector ①:Base ①:Base ①:Emitter ②:Emitter ②:Emitter ②:Collector ③:Collector ③:Collector ③:Base ISAHAYA ELECTRONICS CORPORATION 〈Transistor〉 RT1N441X SERIES Transistor With Resistor For Switching Application Silicon
in „Info zu Bauteil N44, Transistor? gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BTA316B-600C.pdf
power - 5 W GM P G(AV) average gate power over any 20 ms period - 0.5 W T stg storage temperature -40 150 °C T j junction temperature - 125 °C 003aab685 003aab684 60 20 T(RMS) T(RMS) (A) (A) 50 16 40 12 30 8 20 10 4 0 0 10-2 10-1 1 10 -50 0 50 100 150 surge duration (s) T mb(°C) f = 50 Hz; Tmb = 101
in „Gibt es einen Triac der zwischen zwei Ausgängen wechseln kann?“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
servo1.c
buf=0; continue; case 'S': case 's': ptr = va_arg(ap,char *); strcat(buf, ptr); continue; case 'o': base = 8; *buf = '0'; buf++; *buf=0; goto CONVERSION_LOOP; case 'i': if (((int)u_val) < 0){ u_val = - u_val; *buf = '-'; buf++; *buf=0; } /* no break -> run into next case */ case 'u': base = 10; goto CONVERSION_LOOP; case 'x': base = 16; CONVERSION_LOOP: u_val = va_arg(ap,int); ptr = scratch + SCRATCH; *--ptr = 0; do { char ch = u_val % base + '0'; if (ch > '9') ch += 'a' - '9' - 1; *--ptr = ch; u_val /= base; } while (u_val);
in „code für Servo Signal Fehler“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Infineon-BFQ790-DS-v02_00-EN.pdf
Values Unit Noteor TestCondition Min. Max. Collector emitter voltage VCE – 6.1 V TA=25°C – 5.1 T =40°C A Collector base voltage VCB – 18 V – Instantaneous total base emitter VBE -2.0 – V DC +RFswing reverse voltage Instantaneous total collectorcurrentCi – 600 mA DC+ RFswing DC collector current IC –
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