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DS_K4B4G1646D-BC_I_P_Rev102.pdf
Setting RTT_Wr Setting V [V] V [V] NOTE Parameter SW1 SW2 R ZQ/4 NA 0.05 0.10 tAON R /12 NA 0.10 0.20 ZQ R ZQ/4 NA 0.05 0.10 tAONPD RZQ/12 NA 0.10 0.20 tAOF R ZQ/4 NA 0.05 0.10 R /12 NA 0.10 0.20 ZQ R ZQ/4 NA 0.05 0.10 tAOFPD RZQ/12 NA 0.10 0.20 tADC R /12 R /2 0.20 0.30 ZQ ZQ - 26 - Rev. 1.02 K4B4G1646D
in „DDR3 RAM Datenleitung beliebig anschliessen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
core_cm3.h
Monitor Control Register */ } CoreDebug_Type; /* Memory mapping of Cortex-M3 Hardware */ #define SCS_BASE (0xE000E000) /*!< System Control Space Base Address */ #define ITM_BASE (0xE0000000) /*!< ITM Base Address */ #define CoreDebug_BASE (0xE000EDF0) /*!< Core Debug Base Address */ #define SysTick_BASE (SCS_BASE + 0x0010) /*!< SysTick Base Address */ #define NVIC_BASE (SCS_BASE + 0x0100) /*!< NVIC Base Address */ #define SCB_BASE (SCS_BASE + 0x0D00) /*!< System Control Block Base Address */ #define InterruptType
in „Welcher Cortex M3?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Example_2802xEPwmDeadBand.c
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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Datei
n5110.c
n5110.h * Âîçâðàùàåìîå çíà÷åíèå : ñìîòðè âîçâðàùàåìîå çíà÷åíèå â n5110lcd.h */ byte Lcd_rect ( byte baseX, byte baseY, byte height, byte width, LcdPixelMode mode ) { byte tmpIdxX,tmpIdxY,tmp; byte response; // Ïðîâåðêà ãðàíèö if ( ( baseX >= LCD_X_RES) || ( baseY >= LCD_Y_RES) ) return OUT_OF_BORDER; if ( height > baseY ) tmp = 0; else tmp = baseY - height + 1; // Ðèñîâàíèå ëèíèé for ( tmpIdxY = tmp; tmpIdxY <= baseY; tmpIdxY++ ) { for ( tmpIdxX = baseX; tmpIdxX < (baseX + width); tmpIdxX++ ) { response = Lcd_pixel
in „Atxmega 128a1“ · Mikrocontroller und Digitale Elektronik ·
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PDF
sht4x.pdf
ordering information, kindly refer to Table 12. www.sensirion.com / D1 Version 6.4 – November 2023 20 / 24 10 Ordering Information Material Description Material Number Details Quantity (pcs) SHT40-AD1B-R2 3.000.465 base RH&T acc., 0x44 I2C addr. 2’500 SHT40-AD1B-R3 3.000.353 base RH&T acc., 0x44 I2C
in „Trockenschrank für Elektronik wie funktioniert es?“ · Mechanik, Gehäuse, Werkzeug ·
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PDF
sht4x.pdf
ordering information, kindly refer to Table 12. www.sensirion.com / D1 Version 6.4 – November 2023 20 / 24 10 Ordering Information Material Description Material Number Details Quantity (pcs) SHT40-AD1B-R2 3.000.465 base RH&T acc., 0x44 I2C addr. 2’500 SHT40-AD1B-R3 3.000.353 base RH&T acc., 0x44 I2C
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pdf-generaltechnicalinformation.pdf
mounted on a heat sink in order to ensure optimal heat transfer from the heat generation area via the base of the case to the heat sink. Please read Important notes Page 20 of 39 and Cautions and warnings. General technical information Screw terminal capacitors The special design comprises: In general, winding
in „BEHRINGER EURODESK MX 8000 Netzteil Schaltplan / Daten“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DM6852HR_BDM610010026C.pdf
manual after the Appendices. The following table shows the address jumper setting (base address 0x300 shown in the inset image). Base Address jumper settings DM6652HR Base Address Jumper Settings Base Address Jumper Settings Hex/(Decimal) Address Hex / (Decimal) A4 A5 A6 A7 A8 A4 A5 A6
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BJTBasics_Georgia_Inst..pdf
Equations Figure 1 shows the circuit symbols for the npn and pnp BJTs. In the active mode, the collector-base junction is reverse biased and the base-emitter junction is forward biased. For the npn device, the active-mode collector and base currents are given by µ ¶ i = I exp vBE i = iC (1) C S VT B β where
in „Anfänger frage: Wiederstand in Transitor schaltung warum?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LAN9354_Fail_Report_2022-03-17_14-03-19.pdf
Base-TX, UTP Signal Amplitude Symmetry -928 m -130.0 % 980 m < |VALUE| < 1.020 0 1 100 Base-TX, +Vout Overshoot 1.5 % 70.0 % VALUE < 5.0 % 0 1 100 Base-TX, -Vout Overshoot 900 m% 82.0 % VALUE < 5.0 % 1 1 100 Base-TX, UTP AOI Template 9.453000 k -945E+03 No Mask Failures % 0 1 100 Base-TX, AOI +Vout Rise Time 4.254 ns 37.3 % 3.000 ns < VALUE < 5.000 ns 0 1 100 Base-TX, AOI +Vout Fall Time 4.144 ns 42.8 % 3.000
in „Ethernet Compliance Test failLAN9354“ · Mikrocontroller und Digitale Elektronik ·
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Datei
sheeva-boot.txt
buffer coherency: ok NET: Registered protocol family 16 CPU Interface ------------- SDRAM_CS0 ....base 00000000, size 256MB SDRAM_CS1 ....base 10000000, size 256MB SDRAM_CS2 ....disable SDRAM_CS3 ....disable PEX0_MEM ....base e8000000, size 128MB PEX0_IO ....base f2000000, size 1MB INTER_REGS ....base f1000000, size 1MB NFLASH_CS ....base fa000000, size 2MB SPI_CS ....base f4000000, size 16MB BOOT_ROM_CS ....no such DEV_BOOTCS ....no such CRYPT_ENG ....base f0000000, size 2MB Marvell Development Board (LSP Version KW_LSP_4.2.7_patch2
in „Sheevaplug brauche eine Einführung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
avr.h
ADDR) \ { \ if (legitimate_address_p (mode, operand, 0)) \ goto ADDR; \ } #endif #define REG_OK_FOR_BASE_NOSTRICT_P(X) \ (REGNO (X) >= FIRST_PSEUDO_REGISTER || REG_OK_FOR_BASE_STRICT_P(X)) #define REG_OK_FOR_BASE_STRICT_P(X) REGNO_OK_FOR_BASE_P (REGNO (X)) #ifdef REG_OK_STRICT # define REG_OK_FOR_BASE_P(X) REG_OK_FOR_BASE_STRICT_P (X) #else # define REG_OK_FOR_BASE_P(X) REG_OK_FOR_BASE_NOSTRICT_P (X) #endif #define REG_OK_FOR_INDEX_P(X) 0 #define LEGITIMIZE_ADDRESS(X, OLDX, MODE, WIN) \ { \ (X) = legitimize_address (
in „ATtiny24 - ISR wird nie gerufen __vectors> fehlt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MMS8550.pdf
25CUnlessOtherwiseSpecified C Symbol Parameter Min Max Units C B OFFCHARACTERISTICS V(BR)CBO Collector-Base Breakdown Voltage 40 --- Vdc (C =100uAdc, E =0) B E F E V(BR)CEO Collector-Emitter Breakdown Voltage 25 --- Vdc (C =0.1mAdc, B =0) V Emitter-Base Breakdown Voltage 5.0 --- Vdc (BR)EBO (E =100uAdc, C
in „Transistor Schalter“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BC337-D.PDF
NPN Silicon Features http://onsemi.com • These are Pb−Free Devices COLLECTOR 1 MAXIMUM RATINGS 2 BASE Rating Symbol Value Unit Collector − Emitter Voltage V CEO 45 Vdc 3 Collector − Base Voltage V CBO 50 Vdc EMITTER Emitter − Base Voltage V EBO 5.0 Vdc Collector Current − Continuous C 800 mAdc Total
in „Grundlagenproblem Transistor?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Oszilloskop_9254A.pdf
Series performance characteristics Horizontal Channel-to-channel skew (digital) 2 ns typical Main time base range ≥ 2.0 ns Horizontal position range 5 ps/div to 20 s/div Delayed sweep range 1 ps/div to current main time base setting Resolution 1 ps Modes Main, delayed, roll (200 ms to 20 sec) Reference positions
in „Genauigkeit eines Oszilloskop“ · Mikrocontroller und Digitale Elektronik ·
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Datei
br-61xx.c
[6] __initdata = { 0x41, 0x42, 0x44, 0x48, 0x50, 0x00 }; /* SPI specific part CS GPIO_21 SCLK GPIO_20 MOSI GPIO_18 MISO GPIO_17 */ static struct mcp251x_platform_data mcp251x_info = { .oscillator_frequency = 16000000, .board_specific_setup = NULL, .irq_flags = IRQF_TRIGGER_LOW, .power_enable = NULL,
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PDF
datasheet_FLEX003__v1_03.07.2008_.pdf
GND Pin 60 GND Pin 13 DSP Pin 14 SS2/CN11/RG9 MCLR Pin 61 Vout Pin 62 V out Pin 15 TMS/RA0 Pin 16 AN20/FLTA/INT1/RE8 Pin 63 GND out Pin 64 GND out Pin 17 AN21/FLTB/INT2/RE9 Pin 18 AN5/QEB/CN7/CN7/RB5 Pin 19 AN4/QEA/CN6/RB4 Pin 20 AN3/INDX/CN5/RB3 CON3 for Piggybacking (PIC18F2550) Pin 21 AN2/SS1/CN4/RB2
in „LED blinken lassen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
749196101.pdf
Testbedingungen / Wert / value Einheit / unit tol. test conditions Induktivität / L inductance 10 kHz / 0,1 V base 198,6 µH typ. 1,5 Sättigungsstrom / saturation current |∆L/L|<10% Isat base 0,01 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
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Datei
main.c
include <util/delay.h> // // Der Prescaler muss so gewählt werden, dass der Ausdruck // für MILLISEC_BASE einen Wert kleiner als 128 ergibt // MILLISEC_BASE ist der Timerwert, der 1 Millisekunde Zeitdauer ergeben // soll. // #define PRESCALER 8 #define PRESCALER_BITS (1<<CS01) #define MILLISEC_BASE ( F_CPU / PRESCALER / 1000 ) #define MILLISEC_INT ( SignalDauer - MILLISEC_BASE ) #define CENTER ( MILLISEC_BASE / 2 ) // links = 0 / CENTER = 62,5 / rechts = 125 // // Konfiguration der Servoleitungen // #define NR_SERVOS 8 #define SERVO_DDR DDRD #define SERVO_PORT PORTD uint8
in „Servo Delay Modul (Atmega8)“ · 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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Datei
main.c
//Mode is same. GPIO_Init(GPIOB, &GPIO_InitStructure); /* The timer shall run at 50Hz -> Period of 20ms at 25MHz this are 500000 ticks per period. We want to have 1000us to 2000us to be adjustable at a resolution of 9bit double resolution of our input. So the period needs to have a size of 20*512 -->
in „STM32F100 - Timer2_Channel3“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2SA1494-ISC.pdf
Complement to type 2SC3858 APPLICATIONS ¡⁄Audio and general purpose PINNING(see Fig.2) PIN DESCRIPTION 1 Base 2 Collector;connected to mounting base Fig.1 simplified outline (MT-200) and symbol 3 Emitter Absolute maximum ratings (Ta=25) SYMBOL PARAMETER CONDITIONS VALUE UNIT 电 半 T O R V CBO Collector-base voltage Open emitter D U C -200 V O N V CEO Collector-emitter voltage OEen baseC -200 V G E S V EBO Emitter-HasA voltage Open collector -6 V I N C C Collector current -17 A B Base current -5 A P Collectorl power dissipationT =25¡æ 200 W C C j Junction temperature 150 ¡æ Tstg Storage
in „Aus einem Verstärker mehr Leistung rausholen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SS855.pdf
to SS8050 与 SS8050 互补 ■最大額定值 (Ta=25℃) CHARACTERISTIC Symbol Rating Unit 特性參數 符號 額定值 單位 Collector-Base Voltage 集電極-基極電壓 VCBO -40 Vdc Collect-Emitter Voltage VCEO -20 Vdc 集電極-發射極電壓 Emitter-Base Voltage VEBO -5.0 Vdc 發射極 基極電壓 Collector Current 集電極電流 Ic -1500 mAdc Collector Power Dissipation PC 300 mW 集電極耗散功率
in „STM32 Boot0 via Button / Inverter“ · Mikrocontroller und Digitale Elektronik ·
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Datei
fritzbox_7590_log.txt
chained_irq 100 irq_base 101 [ 0.666759][ T1] dma-grx500 1c100000.dma: Init done - rev: a, ports: 1, channels: 16 [ 0.675241][ T1] dma-grx500 1c200000.dma: dma2rx base address bc200000 chained_irq 117 irq_base 118 [ 0.686584
in „FritzBox 7590 Boot Loop“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
100 = 840 kHz nach Prescaler TIM_TimeBaseInitStructure.TIM_Period = 84 - 1; // 840khz / 84 = 10.000 Hz endgültige Updaterate des Timers TIM_TimeBaseInitStructure.TIM_RepetitionCounter = 0; TIM_TimeBaseInit(TIM2, &TIM_TimeBaseInitStructure);
in „STM32F4 DISCOVERY und SainSmart 3.2″ Display“ · Mikrocontroller und Digitale Elektronik ·
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PDF
FIL_EMI_PICOR_QPI-5.pdf
Input to output current, continuous @ 25°C T A 14 Adc Input to output current, 10 seconds @ 25°C T 20 Adc (2) A Power dissipation, @ 65°C T A 14 A 2.3 W Operating temperature - T A -40 to 125 °C Thermal resistance - R J-A using PCB layout in Figure 22 20 °C/W (2) Thermal resistance - R J-PCB 8 °C/W Storage temperature, JEDEC Standard J-STD-033B -55 to 125 °C Reflow temperature, 20 s exposure 245 °C ESD, Human body model (HBM) -2000 to 2000 V Electrical Characteristics – Parameter limits apply over the operating temp. range, unless otherwise noted. Parameter Notes (2) Min Typ Max
in „Sind aktive EMI-Filter eine Alternative?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
dumpDBGMCU.c
uint32_t*)(UID_BASE + 0x00)) #define UID1 (*(volatile uint32_t*)(UID_BASE + 0x04)) #define UID2 (*(volatile uint32_t*)(UID_BASE + 0x08)) // RCC Register (NUR EINMAL definiert!) ✅ #define RCC_BASE 0x40021000 #define RCC_CR
in „Programmieren mit KI“ · Offtopic ·
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PDF
Modeling_BJTs_in_Multisim.pdf
flicker noise exponent 1.0 BF ideal maximum forward beta 100.0 BR ideal maximum reverse beta 1.0 CJC base-collector zero-bias p-n capacitance farad 0.0 CJE base-emitter zero-bias p-n capacitance farad 0.0 CJS (CCS) substrate zero-bias p-n capacitance farad 0.0 CN quasi-saturation temperature coefficient
in „Frage zu LTspice, Bauteile selber erstellen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
lcd.c
switch (by) { case 's': ptr = va_arg(ap,char *); while(*ptr) {lcd_write(*ptr++,1); } break; case 'b': Base = 2; goto ConversionLoop; case 'c': //Int to char format_flag = va_arg(ap,int); lcd_write (format_flag++,1); break; case 'i': Base = 10; goto ConversionLoop; case 'o': Base = 8; goto ConversionLoop; case 'x': Base = 16; //**************************** ConversionLoop: //**************************** itoa(va_arg(ap,int),str_buffer,Base); int b=0; while (str_buffer[b++] != 0){}; b--; if (b<move) { move -=b; for (tmp
in „Serielles Display“ · Mikrocontroller und Digitale Elektronik ·
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Datei
lcd.c
switch (by) { case 's': ptr = va_arg(ap,char *); while(*ptr) {lcd_write(*ptr++,1); } break; case 'b': Base = 2; goto ConversionLoop; case 'c': //Int to char format_flag = va_arg(ap,int); lcd_write (format_flag++,1); break; case 'i': Base = 10; goto ConversionLoop; case 'o': Base = 8; goto ConversionLoop; case 'x': Base = 16; //**************************** ConversionLoop: //**************************** itoa(va_arg(ap,int),str_buffer,Base); int b=0; while (str_buffer[b++] != 0){}; b--; if (b<move) { move -=b; for (tmp
in „Serielles Display“ · Mikrocontroller und Digitale Elektronik ·
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PDF
datenblatt_transistor.pdf
otherwise specified) Symbol Parameter Test Conditions Min. Typ. Max. Unit CBO Collector Cut-off VCB = 20 V 100 nA Current (I = 0) V = 20 V T = 150 C o 5 A E CB C EBO Emitter Cut-off Current VEB = 5 V 100 nA (C = 0) V(BR)CBO Collector-Base C = 10 A 50 V Breakdown Voltage (E = 0) V (BR)CEO Collector-Emitter C = 10 mA 45 V Breakdown Voltage (B = 0) V(BR)EBO Emitter-Base E = 10 A 5 V Breakdown Voltage (I = 0) C VCE(sat) Collector-Emitter C = 500 mA IB= 50 mA 0.7 V Saturation Voltage VBE(on) Base-Emitter On C = 500 mA V CE= 1 V 1.2 V Voltage hFE∗ DC Current Gain C =
in „PWM und Transistor“ · 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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PDF
Components_alphabetic_order.pdf
dependent) Cje 0 base-emitter zero-bias depletion capacitance Vje 0.75 base-emitter junction built-in potential Mje 0.33 base-emitter junction exponential factor Cjc 0 base-collector zero-bias depletion capacitance Vjc 0.75 base-collector junction built-in potential Mjc 0.33 base-collector junction exponential factor Xcjc 1.0 fraction of Cjc that goes to internal base pin Cjs 0 zero-bias collector-substrate capacitance Vjs
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PDF
Figaro_TGS_Serien.pdf
is mounted on the tube. Electrode Heater coil Sintered SnO2 Ceramic tube Structure R type : resin base + resin cover C type : ceramic base + metal cover unit : mm unit : mm Basic measuring circuit M type : resin base / ceramic base + TGS metal cover a i Vc RL Vout t p u ( V H Circuit conditions Circuit
in „Auswertung Figaro Gassensoren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
C4106-Sanyo.pdf
V 500 V CBO Collector-to-Emitter Voltage V CEO 400 V Emitter-to-Base Voltage V EBO 7 V Collector Current C 7 A Collector Current (Pulse) ICP PW 300 s, duty cycle 10% 14 A Base Current I 3 A B Collector Dissipation PC 1.75 W Tc=25˚C 50 W Junction Temperature Tj 150 ˚C
in „WAN NIEN Netzteil Bauteilkunde :)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
HDS200_Series_SCPI_Protocol.pdf
Syntax :HORIzontal:SCALe <scale_value> :HORIzontal:SCALe? Description Set the scale of the main time base. Parameter Name Type Range Default Value <scale_value> Discrete Please refer to Explanation ---- Explanation:Default to set the main time base. time base gear: {5.0ns|10.0ns|20.0ns|50.0ns|100ns|200ns|500ns|1.0us|2.0us|5.0us|10us|20us|50us| 100us|200us|500us|1.0ms|2.0ms|5.0ms|10ms|20ms|50ms|100ms|200ms|500ms|1.0s|2.0s| 5.0s|10s|20s|50s|100s|200s|500s|1000s} Return Format The query returns the horizontal scale in character string
in „OWON HDS2102S vers HDS2202S“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BD135_137_139_3.pdf
Absolute Maximum Rating System (IEC 134). SYMBOL PARAMETER CONDITIONS MIN. MAX. UNIT VCBO collector-base voltage open emitter BD135 − 45 V BD137 − 60 V BD139 − 100 V V collector-emitter voltage open base CEO BD135 − 45 V BD137 − 60 V BD139 − 80 V VEBO emitter-base voltage open collector − 5 V I collector
in „Alternative BC327 und 337“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
sja1000-A.c
variable volatile uint8_t active = 0; volatile uint8_t sja_add = 0; txbuf_t txbuf[SJA_NUM]; uint16_t base[] = { BASE_ADDR_0, BASE_ADDR_1 }; // prototype uint8_t _send_message(const can_t *msg); // ----------------------------------------------------------------------------- // Description: Read a register
in „Volatile array element oder struct element?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
velleman_hps5_oscilloscope.pdf
+V6 DGND 8 TP3 47n/200V100 100K BAS45AL RV1 22K NC C38 C39 D8 5 1 R28 18p OS NULL+ ANALOGOUT AGND 1n5/200V 3 IN+ - R30 R41 1K C OUT 6 AD IN 39K-1% 8 RY3 14 BAV99 2 IN- V 1K CV1 +V4 7 1 D3 + R19 IC4 LF357N(8) C43 C29 10K 4 68p 20p R42
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PDF
BD433_42_CDIL.pdf
RATINGS DESCRIPTION SYMBOL BD433 BD435 BD437 BD439 BD441 UNIT BD434 BD436 BD438 BD440 BD442 Collector Base Voltage V CBO 22 32 45 60 80 V Collector Emitter Voltage V CES 22 32 45 60 80 V Collector Emitter Voltage V CEO 22 32 45 60 80 V Emitter Base Voltage V EBO 5.0 V Collector Current C 4.0 A Collector
in „Lichtsteuerung über i2c - ULN2803A - S12-100“ · Mikrocontroller und Digitale Elektronik ·
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PDF
C5353-Toshiba.pdf
: V CEO = 800 V Absolute Maximum Ratings (Tc = 25°C) Characteristics Symbol Rating Unit Collector-base voltage V 900 V CBO Collector-emitter voltage VCEO 800 V Emitter-base voltage VEBO 7 V DC C 3 Collector current A Pulse ICP 5 Base current B 1 A Ta = 25°C 2.0 JEDEC ― Collector power P C W dissipation
in „WAN NIEN Netzteil Bauteilkunde :)“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
lcd.c
switch (by) { case 's': ptr = va_arg(ap,char *); while(*ptr) {lcd_write(*ptr++,1); } break; case 'b': Base = 2; goto ConversionLoop; case 'c': //Int to char format_flag = va_arg(ap,int); lcd_write (format_flag++,1); break; case 'i': Base = 10; goto ConversionLoop; case 'o': Base = 8; goto ConversionLoop; case 'x': Base = 16; //**************************** ConversionLoop: //**************************** itoa(va_arg(ap,int),str_buffer,Base); int b=0; while (str_buffer[b++] != 0){}; b--; if (b<move) { move -=b; for (tmp
in „Serielles Display“ · Mikrocontroller und Digitale Elektronik ·
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Datei
lcd.c
switch (by) { case 's': ptr = va_arg(ap,char *); while(*ptr) {lcd_write(*ptr++,1); } break; case 'b': Base = 2; goto ConversionLoop; case 'c': //Int to char format_flag = va_arg(ap,int); lcd_write (format_flag++,1); break; case 'i': Base = 10; goto ConversionLoop; case 'o': Base = 8; goto ConversionLoop; case 'x': Base = 16; //**************************** ConversionLoop: //**************************** itoa(va_arg(ap,int),str_buffer,Base); int b=0; while (str_buffer[b++] != 0){}; b--; if (b<move) { move -=b; for (tmp
in „Serielles Display“ · Mikrocontroller und Digitale Elektronik ·
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PDF
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 ·
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PDF
datasheet.pdf
OFFCHARACTERISTICS V (BR)CEO Collector-Emitter Breakdown Voltage* 60 Vdc (IC=10mAdc, I B0) V Collector-Base Breakdown Voltage 60 Vdc (BR)CBO B (IC=10μAdc, IE=0) V (BR)EBO Emitter-Base Breakdown Voltage 5.0 Vdc (IE=10μAdc, IC=0) IBL Base Cutoff Current 50 nAdc (V CE0Vdc, V =0BEVdc) ICEX Collector Cutoff Current
in „Ersatz für ZTX3704 sowie PN2907A“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BU208A.pdf
A (C = 0) VCEO(sus) Collector-Emitter IC = 100 mA 700 V Sustaining Voltage (B = 0) V EBO Emitter Base Voltage IE= 10 mA 10 V (C = 0) VCE(sat) Collector-Emitter IC= 4.5 A IB= 2 A 1 V Saturation Voltage VBE(sat) Base-Emitter IC= 4.5 A IB= 2 A 1.3 V Saturation Voltage INDUCTIVE LOAD IC = 4.5 A hFE = 2.5
in „Qualität heutiger Transistoren“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
IQmath_Quickstart.pdf
to ReadMe_SampleC.txt <base>\examples\C\projects CCS projects for the C example <base>\examples\C\source Source code for the C example <base>\examples\Cpp C++ code example: Refer to ReadMe_SampleCpp.txt <base>\examples\Cpp\projects
in „PID Regler in Q15 Format“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Blink_Nucleo-F446RE.asm
Nucleo-F446RE: Blink built-in LED at PA5 // Reset Vector at 0x08000004 goes here Reset: // AHB1PERIPH_BASE: 0x40020000 // RCC_BASE: AHB1PERIPH_BASE + 0x3800 // GPIOA_BASE AHB1PERIPH_BASE + 0x0000 MOVS R1, #0x01 MOVS R2, #0x20 // PA5 - %100000 LSLS R3, R2, #25 // 0x40000000 LSLS R4, R2, #12 // 0x00020000 ADDS R4, R4, R3 // GPIOA_BASE MOVS R3, #0xE LSLS R3, R3, #10 // 0x00003800 ADDS R3, R4, R3 // RCC_BASE STR R1, [R3,#0x30] // RCC_AHB1, enable GPIOA // Initial SP Value at 0x08000000 has to be somewhere in SRAM LDR R0, [SP] EORS
in „Blinking a mikrocontroller“ · Mikrocontroller und Digitale Elektronik ·
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PDF
sl11hspec.pdf
TO TRANSFER 128-BYTES OF DATA TO APERIPHERAL: ..................................16 2.3.1 USB Host Base Address [01H] ............................................................................................16 2.3.2 USB Host Base Length [02H] ........................................................
in „[V] SL11H, USS720E ua.“ · Markt ·
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PDF
Ciappa_Selected_failure_mechanisms_of_modern_power_modules.pdf
low-ohmic short circuit of collec- tance degradation due to the reconstruction of the tor, emitter, and base. metalization. Fig. 20b, shows the effect of a latch up Fig. 19 represents the simplified equivalent circuit event, which occurred in an IGBT device during a long- of an IGBT, which takes into account
in „E-Mobilitaet - wie sieht der Antrieb eigentlich technisch aus?“ · Fahrzeugelektronik ·