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A100-BC327_28_BC337_38.pdf
Collector Emitter Voltage VCEO C =10mA,IB=0 >45 >60 >25 V VCES C =100uA,E =0 >50 >60 >30 V Emitter Base Voltage VEBO E =10uA, C =0 >5.0 V Collector-Cut off Current ICBO VCB =20V, E =0 <100 nA O TJ=150 C VCB =20V , E =0 <5.0 µA Emitter cut off Current IEBO VEB =5V, C =0 <10 µA DC Current Gain hFE C =500mA
in „Tansistor brechnen allgemein“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
0001-Revert-use-GtkFileChooserNative-wherever-possible.patch
switch(type) { case ObjectType::UNIT : - chooser->set_current_folder(Glib::build_filename(pool->get_base_path(), "units")); + fc.set_current_folder(Glib::build_filename(pool->get_base_path(), "units")); break; case ObjectType::ENTITY : - chooser->set_current_folder(Glib::build_filename(pool->get_base_path
in „Horizon EDA [War: Neues, halbfertiges Elektronik-CAD-Programm]“ · Projekte & Code ·
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Datei
PWM.txt
GPIO_STRENGTH_8MA, GPIO_PIN_TYPE_STD); GPIOPinConfigure(GPIO_PB0_PWM2); GPIOPinTypePWM(GPIO_PORTB_BASE, GPIO_PIN_0); PWMGenConfigure(PWM_BASE, PWM_GEN_1, PWM_GEN_MODE_DOWN | PWM_GEN_MODE_NO_SYNC); PWMGenPeriodSet(PWM_BASE, PWM_GEN_1, 2500); //20ms = 50Hz PWMGenIntTrigEnable(PWM_BASE, PWM_GEN_1, PWM_INT_CNT_ZERO); IntEnable(INT_PWM2); PWMIntEnable(PWM_BASE,PWM_INT_GEN_1); PWMOutputState(PWM_BASE, PWM_OUT_2_BIT, true); PWMGenEnable(PWM_BASE, PWM_GEN_1); } void ButtonInterrupt(void) { iVal=GPIOPinIntStatus(GPIO_PORTE_BASE,true); if(iVal == 4) { t=1; //
in „Servozittern bei PWM“ · Mikrocontroller und Digitale Elektronik ·
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PDF
XPort_DS.pdf
Programmable I/O 3 PIO pins (software selectable) sink or source 4mA max. Network Interface RJ45 Ethernet 10BASE-T or 100BASE-TX (auto-sensing) Compatibility Ethernet: Version 2.0/IEEE 802.3 Protocols Supported ARP, UDP/IP, TCP/IP, Telnet, ICMP, SNMP, DHCP, BOOTP, TFTP, Auto IP, and HTTP LEDs 10BASE-T & 100BASE-TX
in „LANTRONIX XP100200K-03“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2SD2118.pdf
inch M J Collector 2 REF. MillimeterREF. Millimeter Min. Max. Min. Max. A 6.35 6.8 J 2.30 REF. 1 B 5.20 5.50 K 0.64 0.90 Base C 2.15 2.40 M 0.50 1.1 E 6.85 7.58 O 009 0.15 F 2.40 3.0 P 0.43 0.58 3 G 5.40 6.25 Emitter H 0.64 1.20 ABSOLUTE MAXIMUM RATINGS (T A25°C unless otherwise specified) Parameter Symbol Ratings Unit Collector to Base Voltage V 50 V CBO Collector to Emitter Voltage V CEO 20 V Emitter to Base Voltage V EBO 6 V Collector Current -Continuous C 5 A Collector Power Dissipation P C 1 W Junction and Storage Temperature
in „Transistor durchgebrannt woher neuen?“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
w5500_v1_code.txt
0x0025, 0x0C); //W5500: Transfer Data for (uint16_t i = 0; i < len; i++) { w5500_write(W5500_TXBUF_BASE + i, 0x14, data[i]); } //W5500: Data length w5500_write(W5500_SOCKET0_BASE + 0x20, 0x0C, (len >> 8) & 0xFF); w5500_write(W5500_SOCKET0_BASE + 0x21, 0x0C, len & 0xFF); //W5500: Send Command w5500_write(W5500_SOCKET0_BASE + 0x01, 0x0C, 0x20); //W5500: Wait while (!(w5500_read(W5500_SOCKET0_BASE + 0x02, 0x0C) & 0x10)); //W5500: Clear w5500_write(W5500_SOCKET0_BASE + 0x02, 0x0C, 0x10); //I/O PIN P1OUT |= BIT0; P1DIR |=
in „Wiznet W5500 Datenübertragung via Ethernet“ · Mikrocontroller und Digitale Elektronik ·
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Datei
xparameters.h
of devices include volatile RAM * devices. */ #define XPAR_ZBT_NUM_INSTANCES 1 #define XPAR_ZBT_0_BASE 0x00000000 #define XPAR_ZBT_0_SIZE 0x00100000 #define XPAR_SRAM_NUM_INSTANCES 1 #define XPAR_SRAM_0_BASE 0x00100000 #define XPAR_SRAM_0_SIZE 0x00200000 #define XPAR_DDR_NUM_INSTANCES 1 #define XPAR_DDR
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S852T_Temic.pdf
input impedance at 945 MHz 1 13 581 94 9280 2 3 Marking: 852 Plastic case (SOT 23) 1 = Collector; 2 = Base; 3 = Emitter Absolute Maximum Ratings Parameters Symbol Value Unit Collector-base voltage V 12 V CBO Collector-emitter voltage VCEO 6 V Emitter-base voltage V 2 V EBO Collector current IC 8 mA Total
in „ISM Empfänger mit kleinstem Standby“ · HF, Funk und Felder ·
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PDF
BFG591.pdf
Absolute Maximum Rating System (IEC 134). SYMBOL PARAMETER CONDITIONS MIN. MAX. UNIT VCBO collector-base voltage open emitter 20 V VCEO collector-emitter voltage open base 15 V VEBO emitter-base voltage open collector 3 V I collector current (DC) 200 mA C Ptot total power dissipation up to s =
in „UKW-Prüfsender: Diverse Fragen!“ · HF, Funk und Felder ·
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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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Datei
t6963c.h
glcd_FONT_WIDTH 6 // pixel width #define glcd_BYTES_PER_ROW 21 // 21 chars per row #define glcd_G_BASE 0x0400 // base address of graphics memory #else // normal font #define glcd_FONT_WIDTH 8 // pixel width #define glcd_BYTES_PER_ROW 16 // 16 chars per row #define glcd_G_BASE 0x0200 // base address of
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Datei
t6963c.h
glcd_FONT_WIDTH 6 // pixel width #define glcd_BYTES_PER_ROW 40 // 40 chars per row #define glcd_G_BASE 0x0400 // base address of graphics memory #else // normal font #define glcd_FONT_WIDTH 8 // pixel width #define glcd_BYTES_PER_ROW 30 // 30 chars per row #define glcd_G_BASE 0x0200 // base address of
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PDF
683405.pdf
= 10 mA s R C i T 1.0 / 0.6 F = 5 mA s C I = 10 mA B o E F RR 0.5 I 0.8 T r A ( 0.4 O M R p O F = 20 mA C 0.3 t N 0.6 D o E 0.2 c L VCE= 5.0 V o A 0.1 u 0.4 M p Normalized to O 0.0 l T== 25°C N e 0.2 A r -60 -40 -20 0 20 40 60 80 100 10 100 1000 s TA- AMBIENT TEMPERATURE (°C) RBE- BASE RESISTANCE (kΩ
in „optokoppler_Eingangsspannung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
readme.txt
----- Makefile sendbas19200 sendbas19200.c compilesendbas readme.txt schaltplan.txt tbasic.c array.bas ascii.bas blink.bas fakul.bas lauflicht.bas include --------- stm8s.h stm8_init.h stm8_gpio.h stm8_systimer.h src ------------- stm8_systimer.c stm8_init serial_demo ----- C-Demoprogramm fuer die serielle
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Datei
t6963c.h
******************** /* ----- Definitions concerning LCD internal memory ------ */ #define glcd_G_BASE 0x0200 // base address of graphics memory #define glcd_T_BASE 0x0000 // base address of text memory #define glcd_BYTES_PER_ROW 30 // how many bytes per row on screen #define glcd_wr_high() glcd_wr_PORT
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Datei
Timing.c
(void){ //start millis millis = 0; SysTick_Config (SystemCoreClock / TIMER_FREQUENCY_HZ); TIM_TimeBaseInitTypeDef TIM_TimeBase_InitStructure; NVIC_InitTypeDef NVIC_InitStructure; /* // setup timer2 every 50ms -> 20Hz TIM_TimeBase_InitStructure.TIM_ClockDivision = TIM_CKD_DIV1; TIM_TimeBase_InitStructure.TIM_CounterMode = TIM_CounterMode_Up; TIM_TimeBase_InitStructure.TIM_Period = 1944; TIM_TimeBase_InitStructure.TIM_Prescaler = 1799; TIM_TimeBaseInit(TIM2, &TIM_TimeBase_InitStructure); // enable interrupt TIM_ITConfig(TIM2, TIM_IT_Update, ENABLE);
in „STM32F103 USART1 affects TIM1? TIM1 interrupt frequenz varying“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BUT11AX_1.pdf
voltage peak value VBE= 0 V - 1000 V VCEO Collector-emitter voltage (open base) - 450 V IC Collector current (DC) - 5 A ICM Collector current peak value - 10 A IB Base current (DC) - 2 A IBM Base current peak value - 4 A Ptot Total power dissipation Ths 25 ˚C - 32 W Tstg Storage
in „BUT11AX mit BUT11AF austauschen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
but34rev.pdf
1.3 – 1.9 T 40⋅C S E 1.0 A 1.6 L 25⋅C , 25⋅C O 0.7 B 1.3 , 100⋅C V C 100⋅C V 0.4 1.0 1 2 3 5 7 10 20 30 50 1 2 3 5 7 10 20 30 50 IC,COLLECTORCURRENT(AMPS) C ,COLLECTORCURRENT(AMPS) Figure 3. Collector–Emitter Saturation Voltage Figure 4. Base–Emitter Voltage 1 L 0.7 D=0.5 M 0.5 R ) H E 0.3 T L 0.2 N
in „Leistungs-Transistor Alternative“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
changes.asm
.text:00020F08 loc_20F08 ; CODE XREF: DoFineCountVoltBase+2C .text:00020F08 LDR R3, =dword_20A840 replaced by .text:00020F00 NOP .text:00020F04 B loc_21330 .text:00020F08 ; --------------------------------------------------------------------------- .text:00020F08 .text:00020F08 loc_20F08 ; CODE XREF: DoFineCountVoltBase+2C .text:00020F08 LDR R3, =dword_20A840 in DoFineCountVoltBase : .text:0002132C BL BwLimitWhenVbChange .text:00021330 .text:00021330 loc_21330 ; CODE XREF: DoFineCountVoltBase
in „Tekway/Hantek/Voltcraft MSO“ · Mikrocontroller und Digitale Elektronik ·
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Datei
R-S_CMU_HD-Files.txt
/BASE/BSW/EXE/BASE__LA._US ./R-S_CMU_HD/CMU/B01_V5.21/BASE/BSW/EXE/BASE__CC.DLL ./R-S_CMU_HD/CMU/B01_V5.21/BASE/BSW/EXE/BASE__YB._US ./R-S_CMU_HD/CMU/B01_V5.21/BASE/BSW/EXE/BASE.INI ./R-S_CMU_HD/CMU/B01_V5.21
in „Option B41 bei einer CMU200 nachrüsten.“ · HF, Funk und Felder ·
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PDF
RTL8111B_8168B_Registers_DataSheet_1.0.pdf
back as ‘0’. 14 100Base-TX(full) RO 1 100Base-TX Full Duplex Capable: 1: Device able to perform 100Base-TX in full duplex mode. 0: Device unable to perform 100Base-TX in full duplex mode. 13 100Base-TX(half) RO 1 100Base-TX
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Datei
NanoEveryRegister.h
const uint8_t portCtrl = 0x0A; // Slewrate Bit }; constexpr Offset addrOffset; struct Address // base addresses of registers { uint16_t vport; uint16_t port; uint8_t pinCtrl; uint8_t mask; }; // The index is always the Arduino pin number. constexpr Address baseAddr[] { // | VPORT | PORT | PINn | BIT | // | Base | Base | CTRL | MASK | // BIT | PIN {0x0008, 0x0440, 0x15, 0x20}, // 5 | 0 {0x0008, 0x0440, 0x14, 0x10}, // 4 | 1 {0x0000, 0x0400, 0x10, 0x01}, // 0 | 2 {0x0014, 0x04A0, 0x15, 0x20}, // 5 | 3 {0x0008
in „Wie Klassen-Template Objekte in einem Array nutzen (non Template, constexpr, inline)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Fehlerreport_RS232.txt
Loaded Assemblies ************** mscorlib Assembly Version: 1.0.5000.0 Win32 Version: 1.1.4322.573 CodeBase: file:///c:/winnt/microsoft.net/framework/v1.1.4322/mscorlib.dll ---------------------------------------- lastporttest Assembly Version: 1.0.2110.30095 Win32 Version: 1.0.2110.30095 CodeBase: file:///C:/Dokumente%20und%20Einstellungen/bqk_user/Desktop/Temp/lastporttest.exe ---------------------------------------- System.Windows.Forms Assembly Version: 1.0.5000.0 Win32 Version: 1.1.4322.573 CodeBase: file:///c:/winnt
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PDF
MC14538B.PDF
BSC 0.050 BSC J 0.19 0.25 0.008 0.009 C K 0.10 0.25 0.004 0.009 −T− M 0_ 7_ 0_ 7_ SEPLANE P 5.80 6.20 0.229 0.244 M J R 0.25 0.50 0.010 0.019 D 16 PL 0.25 (0.010) M T B S A S STYLE 1: STYLE 2: STYLE 3: STYLE 4: PIN 1. COLLECTOR PIN 1. CATHODE PIN 1. COLLECTOR, DYE #1 PIN 1. COLLECTOR, DYE #1 2. BASE
in „Platine Bedieneinheit mit Oszi durchmessen“ · Platinen ·
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PDF
AN11158_Understanding_MOSFET_data_sheet_parameters__NXP.pdf
Typ Max Unit VDS drain-source voltage Tj 25C; j 175C - - 55 V VDGR drain-gate voltage RGS = 20 k - - 55 V V gate-source voltage 20 - +20 V GS D drain current VGS = 10 V; Tmb= 25C; - - 61.8 A Table 1; Figure 1 VGS = 10 V; Tmb= 100C; - - 43.7 A Table 1 DM peak drain current VGS = 10 V; Tmb
in „Flyback-Wandler Störungen auf Versorgung“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
untitled.c
(GPIO_PORTB_BASE, GPIO_PIN_0, GPIO_STRENGTH_8MA, GPIO_PIN_TYPE_STD); GPIOPinConfigure(GPIO_PB0_PWM2); GPIOPinTypePWM(GPIO_PORTB_BASE, GPIO_PIN_0); PWMGenConfigure(PWM_BASE, PWM_GEN_1, PWM_GEN_MODE_DOWN | PWM_GEN_MODE_NO_SYNC); PWMGenPeriodSet(PWM_BASE, PWM_GEN_1, 20000); //20ms = 50Hz PWMGenIntTrigEnable(PWM_BASE, PWM_GEN_1, PWM_INT_CNT_ZERO); IntEnable(INT_PWM2); PWMIntEnable(PWM_BASE,PWM_INT_GEN_1); PWMOutputState(PWM_BASE, PWM_OUT_2_BIT, true)
in „Servozittern bei PWM“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BD249.pdf
BD249A 60 Collector-emitter voltCge (I mA) VCEO V BD249B 80 BD249C 100 Emitter-base voltage VEBO 5 V Continuous collector current I 25 A C Peak collector current (see Note 1) ICM 40 A Continuous base current I 5 A B Continuous device dissipation at (or below) 25°C case temperature
in „Kühlkörperberechnung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
FMMT620.pdf
FMMT620 Maximum Ratings @T =A25°C unless otherwise specified Characteristic Symbol Value Unit Collector-Base Voltage V CBO 80 V Collector-Emitter Voltage V CEO 80 V Emitter-Base Voltage VEBO 5 V Continuous Collector Current I 1.5 A C Peak Pulse Current ICM 5 A Base Current B 500 mA Thermal Characteristics
in „SMD Transistor für 5V/0,5A mit geringem Spannungsabfall“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
_P168_ThermOLED.ino
thermo.dat")) { fs::File f = SPIFFS.open("thermo.dat", "r"); if (f) { f.read( ((uint8_t *)&UserVar[event->BaseVarIndex] + 0), 16 ); f.close(); } } Plugin_168_lastsavetime = millis(); if (UserVar[event->BaseVarIndex] < 1) { UserVar[event->BaseVarIndex] = 19; // setpoint UserVar[event->BaseVarIndex + 2] = 1; /
in „ESPEasy Sketch Kompilierungsfehler“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mit_kontrollausgabe.asm
buf[sizeof(buf) - 1]; *str = '\0'; 2f8: 19 a2 std Y+33, r1 ; 0x21 // prevent crash if called with base == 1 if (base < 2) base = 10; 2fa: 42 30 cpi r20, 0x02 ; 2 2fc: 08 f4 brcc .+2 ; 0x300 <Print::printNumber(unsigned long, unsigned char) [clone .constprop.8]+0x28> 2fe: 4a e0 ldi r20, 0x0A ; 10 300:
in „AVR Inline Optimierung kaputt?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mci.c
AT91F_MCI_CfgPIO(); AT91F_MCI_CfgPMC(); // Peripheral Clock Enable AT91F_PMC_EnablePeriphClock(AT91C_BASE_PMC, AT91C_ID_MCI); // Reset MCI AT91F_MCI_SW_Reset(AT91C_BASE_MCI); // Disable MCI AT91F_MCI_Disable(AT91C_BASE_MCI); // Alle Interrupt deaktivieren AT91C_BASE_MCI->MCI_IDR = 0xFFFFFFFF; // MCI konfigurieren
in „MMC/SD Karte geben kein Antwort von sich (ARM)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
usart.c
{ case 's': ptr = va_arg(ap,char *); while (*ptr) { usart_write_char0(*ptr++); } break; case 'b': Base = 2; goto ConversionLoop; case 'c': //Int to char format_flag = va_arg(ap,int); usart_write_char0 (format_flag++); break; case 'i': Base = 10; goto ConversionLoop; case 'o': Base = 8; goto ConversionLoop
in „USART in Funktion“ · Mikrocontroller und Digitale Elektronik ·
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Datei
usart.c
{ case 's': ptr = va_arg(ap,char *); while (*ptr) { usart_write_char0(*ptr++); } break; case 'b': Base = 2; goto ConversionLoop; case 'c': //Int to char format_flag = va_arg(ap,int); usart_write_char0 (format_flag++); break; case 'i': Base = 10; goto ConversionLoop; case 'o': Base = 8; goto ConversionLoop
in „Ethernet - Serielle Verbindung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
A100_BC635-640.pdf
Plastic Package Pin 1: Cathode Pin 3: Anode DIM Min Max DIM Min Max A 4.32 5.33 G 1.14 1.40 B 4.45 5.20 H 1.20 1.80 C 3.18 4.19 K 12.5 D 0.40 0.55 L 1.982 2.082 E 0.30 0.55 M 1.03 1.53 F 5º All Dimensions are in mm Pin 1 Base Collector Pin 2 Pin 3 Emitter BC635_BC640Rev_4 030196E 2N5551 Continental Device
in „LED-Matrix mit Transistoren - Widerstände richtig berechnet?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BFR93AR_1.pdf
wideband transistor mbb252 mcd089 1 8 Cc f (pF) T (GHz) 0.8 6 0.6 4 0.4 2 0.2 0 0 0 4 8 12 (V)16 0 10 20 30 40 V CB C (mA) IE= ie= 0 mA; f = 1 MHz; Tj= 25 °C. VCE = 2 V; f = 500 MHz; j = 25 °C. Fig 4. Collector capacitance as a function of Fig 5. Transition frequency as a function of collector collector-base
in „KiCAD: SOT323 aus libcms scheint defekt zu sein“ · Platinen ·
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PDF
AL5802-DIO.pdf
= 1.0V 70 — — — C = 10mA, VCE= 1.0V 100 — 300 Collector-Emitter Saturation Voltage (Note 9) — — 0.20 V VCE(SAT) C = 10mA, B = 1.0mA VBE(SAT) Base-Emitter Saturation Voltage C = 10mA, B = 1.0mA 0.65 — 0.85 V Electrical Characteristics – NPN Pre-biased Transistor – Q2 (@T = +25°C, unless otherwise specified.) A Symbol Characteristic Test Condition Min Typ Max Unit Collector-Base Breakdown Voltage 30 — — V V (BR)CBO IC= 50μA, E = 0 V (BR)CEO Collector-Emitter Breakdown Voltage (Note 9) IC= 1mA, IB= 0 30 — — V V (BR)EBO Emitter-Base Breakdown Voltage IE= 50μA, C = 0 5.0 — — V
in „Dimensionierung von LED-Dimm-Schaltung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
lnix-s-a0001298418-1.pdf
Programmable I/O 3 PIO pins (software selectable) sink or source 4mA max. Network Interface RJ45 Ethernet 10BASE-T or 100BASE-TX (auto-sensing) Compatibility Ethernet: Version 2.0/IEEE 802.3 Protocols Supported ARP, UDP/IP, TCP/IP, Telnet, ICMP, SNMP, DHCP, BOOTP, TFTP, Auto IP, and HTTP LEDs 10BASE-T & 100BASE-TX
in „[V] 1Stück gebrauchtes XPORT-EDGE_Seriell- LAN Modul (12€)“ · Markt ·
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PDF
lnix-s-a0001298418-1.pdf
Programmable I/O 3 PIO pins (software selectable) sink or source 4mA max. Network Interface RJ45 Ethernet 10BASE-T or 100BASE-TX (auto-sensing) Compatibility Ethernet: Version 2.0/IEEE 802.3 Protocols Supported ARP, UDP/IP, TCP/IP, Telnet, ICMP, SNMP, DHCP, BOOTP, TFTP, Auto IP, and HTTP LEDs 10BASE-T & 100BASE-TX
in „[V] 1Stück neues Lantronix_XPORT_Seriell- LAN Modul (18€)“ · Markt ·
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Datei
Daten.txt
C (82°F) [0x38] (AUXTIN) Fan 1 2312 RPM [0x49] (CPUFANIN0) Hardware registers Register space LPC, base address = 0x0290 bank 0 00 01 02 03 04 05 06 07 08 09 0A 0B 0C 0D 0E 0F 00 04 FF 04 7F 10 00 37 20 01 7F 01 FF 3C 3C 0A 0A 10 04 FF 10 00 00 01 01 3C 43 07 00 00 27 FF FF C6 20 A3 20 CC CC CB D8 E8
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Datei
AVR1.txt
, Port D */ #define PIND (*(volatile unsigned char *)(0x10 + 0x20)) /* Input Pins, Port D */ #define SREG (*(volatile unsigned char *)(0x3F + 0x20)) /* Status Register */ #define GIMSK (*(volatile unsigned char *)(0x3B + 0x20)) /* General Interrupt Mask Register */ #define TIMSK (*(volatile unsigned char *)(0x39 + 0x20)) /* Timer/Counter Interrupt Mask Register */ #define MCUCR (*(volatile unsigned char *)(0x35 + 0x20)) /* MCU General Control Register */ #define TCCR1B (*(volatile unsigned char *)(0x2E + 0x20)) /*
in „Problem C-Zeiger“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Linvill_Feedback_Amplifier.pdf
vbes exagerated for clarity. performance. Augmentation of the Input Characteristics of the Common-BaseAmplifier Common-BaseAmplifier In reality, the finite nonlinear emitter input In the common-base amplifier shown in resistance reof Eq. 3 disturbs the emitter signal Fig. 1, the base-emitter voltage
in „Richtwirkung einer Loopantenne erhöhen“ · HF, Funk und Felder ·
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PDF
74980111211-1723921.pdf
release Kunde / customer : Artikelnummer / part number : 74980111211 LAN-Übertrager WE-RJ45LAN 10/100BaseT Bezeichnung : description : LAN-Transformer WE-RJ45LAN 10/100BaseT DATUM / DATE : 2012-09-24 A Mechanische Abmessungen / dimensions : B Lötpad / soldering spec. : C Elektrische Eigenschaften / electrical
in „Suche Distributor für Notebook RJ45 Steckverbinder“ · Markt ·
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PDF
749196111.pdf
Testbedingungen / Wert / value Einheit / unit tol. test conditions Induktivität / L inductance 10 kHz / 0,1 V base 27,4 µH ±20% 1,5 Sättigungsstrom / saturation current |∆L/L|<10% Isat base 0,22 A typ. Nennstrom / ∆T=40 K Irms base 0,55 A typ. rated current DC-Widerstand / R , , DC-resistance @ 20°C DC base 344,0
in „Wirkungsgrad beim Schaltreger mit galv. Trennung (Flyback)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
t6963c.txt
******************* /* ----- Definitions concerning LCD internal memory ------ */ #define glcd1_G_BASE 0x0200 // base address of graphics memory #define glcd1_T_BASE 0x0000 // base address of text memory #define glcd1_BYTES_PER_ROW 30 // how many bytes per row on screen #define glcd1_wr_high() glcd1_
in „Halbkreisformel verstehe ich nicht!“ · Mikrocontroller und Digitale Elektronik ·
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Datei
t6963c.h
******************* /* ----- Definitions concerning LCD internal memory ------ */ #define glcd1_G_BASE 0x0200 // base address of graphics memory #define glcd1_T_BASE 0x0000 // base address of text memory #define glcd1_BYTES_PER_ROW 30 // how many bytes per row on screen #define glcd1_wr_high() glcd1_
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PDF
BC320-Motorola.pdf
BC320, A, B Rating Symbol BC BC BC Unit BC321, A, B 320 321 322 Collector-EmitteVoltage VCEO 45 30 20 Vdc BC322, B Collector-BaseVoltage VCBO 50 40 30 Vdc Emitter-BaseVoltage VEBO 6.0 5.0 5.0 Vdc CollectorCurrent- Continuous ic 150 mAdc CASE 29-02, STYLE 1 TotalDevice Dissipatio@Ta = 25°C PD 625 mW TO
in „[V] ca. 250-280St 2N3702 (PNP TO92) und 128St. BC320 (PNP TO92)“ · Markt ·
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PDF
BC320-Motorola.pdf
BC320, A, B Rating Symbol BC BC BC Unit BC321, A, B 320 321 322 Collector-EmitteVoltage VCEO 45 30 20 Vdc BC322, B Collector-BaseVoltage VCBO 50 40 30 Vdc Emitter-BaseVoltage VEBO 6.0 5.0 5.0 Vdc CollectorCurrent- Continuous ic 150 mAdc CASE 29-02, STYLE 1 TotalDevice Dissipatio@Ta = 25°C PD 625 mW TO
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Datei
strace.txt
(4, {msg_name={sa_family=AF_NETLINK, nl_pid=0, nl_groups=00000000}, msg_namelen=12, msg_iov=[{iov_base=[{{len=20, type=NLMSG_DONE, flags=NLM_F_MULTI, seq=1555679995, pid=406}, "\0\0\0\0"}, {{len=1, type=0x14 /* NLMSG_??? */, flags=NLM_F_REQUEST, seq=0, pid=0}}], iov_len=4096}], msg_iovlen=1, msg_controllen
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Bild
Fehlermeldung eines DOS-Programms mit Speicherabbild
error (2001): exception 06h (invalid opcode) at 200:D000160 TSF32: prev_tsf32 90C8 208 DS 208 ES 0 GS 20 SS EAX 33A0F8 EBX 3 ECX 0 EDX 32D66C ESI 33A0F8 EDI 43D6A4 ESP 32D668 CS: IP 200:D000160 ID 06 COD 33A0F8 FLG 10202 CS= 200, USE32, page granular, limit FFFFFFFF, base 0, acc CF9B SS= 208, USE32, page granular, limit FFFFFFFF, base 0, acc CF93 DS= 208, USE32, page granular, limit FFFFFFFF, base 0, acc CF93 ES= 208, USE32, page granular, limit FFFFFFFF, base 0, acc CF93 FS= 0, USE16, byte granular, limit 0, base 16, acc 0 GS= 20
in „Wie Festplatte wieder in Neuzustand versetzen“ · PC Hard- und Software · · Screenshots
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NXP_BC846_BC546_Series.pdf
10 0 10−1 1 10 102 103 10−1 1 10 102 103 I (mA) I (mA) C C IC B = 20 IC B = 10 (1) T = 150 °C (1) T = −55 °C amb amb (2) T amb= 25 °C (2) T amb= 25 °C (3) T amb= −55 °C (3) T amb= 150 °C Fig 3. Selection A: Collector-emitter saturation Fig 4. Selection A: Base-emitter
in „Und wieder eine kleine lustige Teilesucherei Mosfet“ · Analoge Elektronik und Schaltungstechnik ·