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PDF
BC846BDNPN.PDF
T 1.6 I = F ib I C C = ( M ) 10 mA I = IC= 100 mA E − ( C 50 mA N R E1.2 20 mA A O G I C T A C ob E L0.8 P L V C O , , C C 0.4 V 10.1 1 10 100 0.01 0.1 1 10 100 VR, REVERSE VOLTAGE (V) B , BASE CURRENT (mA) Figure 20. Capacitances Figure 21. Collector Saturation Region T −0.2
in „Leckströme für NPN Transistor“ · Analoge Elektronik und Schaltungstechnik ·
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HM303-5_Service_Manual.pdf
25mV/100Hz squarewave signal via 50Ω cable and 50Ω through terminator to input channel II. Set time base to 2ms/div. Check that DC input coupling is selected. Adjust R439 (19) for flat top. (20) R434: 100Hz Squarewave 1mV/div CH II. Locate and identify R434 (20) in CH II section of the YPA-Board. Connect
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bc557.pdf
1.2 F M O - C 2.0 R IC= C = -50 mA IC= -200 mA R T -0.8 -10 mA T E R 2.4 L C = -100 mA P C -0.4 C = -20 mA M ,E T 2.8 C ,B V θV 0 -0.02 -0.1 -1.0 -10 -20 -0.2 -1.0 -10 -100 IB, BASE CURRENT (mA) C , COLLECTOR CURRENT (mA) Figure 3. Collector Saturation Region Figure 4. Base–Emitter Temperature Coefficient
in „bc557 kennlinie im datenblatt“ · Mikrocontroller und Digitale Elektronik ·
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TUA6100.pdf
impedance Pin 19, 20 (Ohm) . . . . . . . . . . . . . . . . . . . . . . . . . .39 Base band output inductance Pin 19, 20 (Henry) . . . . . . . . . . . . . . . . . . . . . . . . .40 13.8 Base band Input Impedance (filtered
in „Pollin - Receiver-Mainboard mit Twin DVB-[T,C] Tuner, NXP PNX8950EH“ · Mikrocontroller und Digitale Elektronik ·
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moxa-eds-508a-series-datasheet.pdf
2 km Standards IEEE 802.3 for 10BaseT IEEE 802.3u for 100BaseT(X) and 100BaseFX IEEE 802.1X for authentication IEEE 802.1D-2004 for Spanning Tree Protocol IEEE 802.1w for Rapid Spanning Tree Protocol IEEE 802.1s for Multiple Spanning Tree
in „[V] Diverse Moxa Industrie Switche und Access Points“ · Markt ·
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Optokoppler_4N27.PDF
DIP Optocoupler DEVICETYPES Dimensions in Inches (mm) Part No. CTR, % Min. Part No. CTR % Min. 4N25 20 MCT2 20 3 2 1 pin one ID 4N26 20 MCT2E 20 Anode 1 6 Base 4N27 10 MCT270 50 .256 (6.50) 4N28 10 MCT271 45–90 Cathode2 5 Collector 4N35 100 MCT272 75–150 4 5 6 NC 3 4 Emitter 4N36 100 MCT273 125–250 4N37
in „Ansteuerung Opto 4N27“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
lpc111x.h
+ 0x174) #define STARTAPRP0 REGISTER_32(SYSCON_BASE + 0x200) #define STARTERP0 REGISTER_32(SYSCON_BASE + 0x204) #define STARTRSRP0CLR REGISTER_32(SYSCON_BASE + 0x208) #define STARTSRP0 REGISTER_32(SYSCON_BASE + 0x20c) #define PDSLEEPCFG REGISTER_32(SYSCON_BASE
in „LPC1114FN28 und GPIO“ · Mikrocontroller und Digitale Elektronik ·
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Vorlage_100x75.pdf
1 2 3 4 5 6 7 8 A A BAS16 +5V U$1 +12V 100nF U$2 C21 0 2 +5V BAS16 C22 1 R K 1 6 PKD3001D 100nF U$11 PMD3001D 1 R R 1 U$16 1 R18 10E PH20100S 10E BAS40 D R 1 U$5 N D D3 PH20100S BAS214 U$21 D6 G G 1 K 1 P1.28-MCOA2 3V6 U$20
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moxa-eds-405a-series-datasheet.pdf
Simplified Chinese 1 x quick installation guide 1 x warranty card Dimensions Ordering Information 100BaseFX 100BaseFX 100BaseFX Total No. of 10/100BaseT(X) Ports Ports Ports Model Name Layer Ports Operating Temp. Ports RJ45 Connector Multi-Mode SC Multi-Mode ST Single-Mode SC Connector Connector Connector
in „[V] Diverse Moxa Industrie Switche und Access Points“ · Markt ·
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Datei
myfirst.s
BIT29, 0x20000000 .equ BIT30, 0x40000000 .equ BIT31, 0x80000000 .equ GPIOA_BASE , 0x40020000 .equ GPIOA_MODER , GPIOA_BASE + 0x00 .equ GPIOA_OTYPER , GPIOA_BASE + 0x04 .equ GPIOA_OSPEEDR , GPIOA_BASE + 0x08 .equ GPIOA_PUPDR , GPIOA_BASE + 0x0C .equ GPIOA_IDR , GPIOA_BASE + 0x10 .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
in „mein erstes STM32F4 .asm/ .s Program stürzt ab im gdb“ · Mikrocontroller und Digitale Elektronik ·
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Datei
enet_io.c
I2C1_MASTER_BASE)){ }; I2CMasterSlaveAddrSet(I2C1_MASTER_BASE, 0x60, false); I2CMasterDataPut(I2C1_MASTER_BASE,0x13); I2CMasterControl(I2C1_MASTER_BASE,I2C_MASTER_CMD_BURST_SEND_START); while(I2CMasterBusy(I2C1_MASTER_BASE
in „I2C Problem bei DK LM3S9b96 TI Cortex M3“ · Mikrocontroller und Digitale Elektronik ·
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Micrel_phy.pdf
. . . . . . . . 29 Table 22. RN13 [0d19, 0x13]: 100Base-TX control register. . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 30 Table 23. RN14 [0d20, 0x14]: Receiver mode control register. . . . . . . . . . . . . . . . . . . . . . . . . . .
in „Ethernet PHY für STM32F107“ · Mikrocontroller und Digitale Elektronik ·
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Datei
UART_Test.txt
AT91C_PIO_PB1, AT91C_PIO_PB2 }; volatile int i = 0, length = 0, my_flag = 0, y = 0; char transmit_buffer[20]; char receive_buffer[20]; //------------------------------------------------------------------------------- __irq void UART_Handler (void) { if(AT91C_BASE_US1-> US_CSR & AT91C_US_RXRDY) // Receive Complete
in „UART Interrupt ATRM9200“ · Mikrocontroller und Digitale Elektronik ·
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APPCHP7.pdf
Power Semiconductor Applications Philips Semiconductors Ptotmax / W 100 90 80 70 60 47.5 50 40 30 20 10 0 0 20 40 60 80 100 120 140 160 180 Tmb / C Fig. 3 Example of the determination of maximum power dissipation Fig. 2 Maximum d.c. power dissipation in a transistor as a function of the mounting-base
in „2N3055 , was sind aktuelle Alternativen ?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
APPCHP7.pdf
Power Semiconductor Applications Philips Semiconductors Ptotmax / W 100 90 80 70 60 47.5 50 40 30 20 10 0 0 20 40 60 80 100 120 140 160 180 Tmb / C Fig. 3 Example of the determination of maximum power dissipation Fig. 2 Maximum d.c. power dissipation in a transistor as a function of the mounting-base
in „Lineares Netzteil“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
KSZ8061MNX_MNG.pdf
Condition Min. Typ. Max. Units Supply Current for AVDDH No link, attempting to auto negotiate 15.2 mA 100BASE TX full duplex at 100% utilization 20.4 mA 100BASE TX link up, no traffic 20.4 mA 10BASE T full duplex at 100% utilization 25.3 mA 10BASE T link up, no traffic 11.7 mA Energy Efficient Ethernet (EEE
in „supply current komplett?“ · Mikrocontroller und Digitale Elektronik ·
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HT1621.pdf
48-pin SSOP package · Built-in time base generator and WDT HT1621B: 48-pin DIP/SSOP/LQFP package · Time base or WDT overflow output HT1621D: 28-pin SKDIP package · 8 kinds of time base/WDT clock sources HT1621G: Gold bumped chip · 32´4 LCD
in „Picomite und LCD Display PC-6749-UUW von Densitron“ · Mikrocontroller und Digitale Elektronik ·
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83c185.pdf
1 100BASE-TX Operation 100BASE-TX /w traffic 261 66 20 132 40 63 19 Idle 245 50 15 132 40 63 19 Energy Detect Power Down 45 17 5 24 7 4 1 AN General Power Down 45 17 5 24 7 4 1 Non-AN Gen Power Down 22 17 5 0.66
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83c185.pdf
1 100BASE-TX Operation 100BASE-TX /w traffic 261 66 20 132 40 63 19 Idle 245 50 15 132 40 63 19 Energy Detect Power Down 45 17 5 24 7 4 1 AN General Power Down 45 17 5 24 7 4 1 Non-AN Gen Power Down 22 17 5 0.66
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Micrel-Phy.pdf
(TXEN) is high for more than 20 ms (jabbering), the 10Base-T transmitter is disabled and COL is asserted high. If TXEN is then driven low for more than 250 ms, the 10Base- T transmitter is re-enabled and COL is de-asserted (returns
in „Ethernet PHY für STM32F107“ · Mikrocontroller und Digitale Elektronik ·
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88E1111_DS.pdf
...........231 4.14.18 1000BASE-T to TgI Neceive Latency Timing..u.............................................................233 4.14.20 1000BASE-T to 1TBI Receive Latency Timing .................................................
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Datei
simple.s
GPIOD_BASE + 0x00 @ pp. 287 of DM00031020.pdf .equ GPIOD_OTYPER , GPIOD_BASE + 0x04 .equ GPIOD_ODR , GPIOD_BASE + 0x14 .equ GPIOB_BASE , 0x40020400 .equ GPIOB_MODER , GPIOB_BASE + 0x00 .equ GPIOB_OTYPER , GPIOB_BASE
in „STM32CubeIDE Debug View, Threads, Breakpoints“ · Mikrocontroller und Digitale Elektronik ·
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DTC114.pdf
PIN 1. SOURCE PIN 1. DRAIN PIN 1. BASE 1 PIN 1. CATHODE 2. SOURCE & SUBSTRATE 2. DRAIN 2. GATE 2. EMITTER 2. GATE 3. DRAIN 3. GATE 3. SOURCE & SUBSTRATE 3. BASE 2 3. ANODE STYLE 11: STYLE 12: STYLE 13: STYLE 14: STYLE 15: PIN 1. ANODE PIN
in „Transistor mit Vorwiderstand (Digitaltransistor) in TO92 gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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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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Datei
LPC11Axx.h
(LPC_APB0_BASE + 0x04000) #define LPC_USART_BASE (LPC_APB0_BASE + 0x08000) #define LPC_CT16B0_BASE (LPC_APB0_BASE + 0x0C000) #define LPC_CT16B1_BASE (LPC_APB0_BASE + 0x10000) #define LPC_CT32B0_BASE (LPC_APB0_BASE + 0x14000) #define LPC_CT32B1_BASE (LPC_APB0_BASE + 0x18000) #define LPC_ADC_BASE (LPC_APB0_BASE + 0x1C000) #define LPC_DAC_BASE (LPC_APB0_BASE + 0x24000) #define LPC_CMP_BASE (LPC_APB0_BASE + 0x28000) #define LPC_SSP0_BASE (LPC_APB0
in „constexpr Mikrokontroller Pointer Hartwarezugriff“ · Mikrocontroller und Digitale Elektronik ·
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D130858D.PDF
e i i E m 0.5 25 °C 75 °C t 0.2 E o t c s 0.2 l 0.1 Tc = –25 °C B o C 0.05 0.1 0.2 0.5 1 2 5 10 20 0.1 0.2 0.5 1 2 5 10 20 Collector Current IC (A) Collector Current C (A) Collector to Emitter Saturation Voltage vs. Base Current Fall Time vs. Base Current 10 0.8 g V l ( ICP = 6 A o t fH= 64 kHz n
in „Transistor am Arduino“ · Mikrocontroller und Digitale Elektronik ·
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Datei
18b20.bas
Sub Read1820 ' reads sensor ans calculate ' T for 0.1 C 1wreset ' reset the bus 1wwrite &HCC ' read internal RAM 1wwrite &HBE ' read 9 data bytest Bd(1) = 1wread(9) ' read bytes in array 1wreset ' reset the bus Crcit ' ckeck CRC If Crc = 0 Then ' if is OK, calculate for Tmp = Bd(1) And 1 ' 0.1C precision If Tmp = 1 Then Decr Bd(1) T = Makeint(bd(1) , Bd(2)) T = T * 50 : T = T - 25 : T1 = Bd(8) - Bd(7) : T1 = T1 * 100 T1 = T1 / Bd(8) : T = T + T1 : T = T / 10 End If End Sub '////////////////////////////////////////////////////////////////////////////// Sub Crcit ' calculate 8 bit CRC ' bigger but faster
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Datei
18b20.bas
Sub Read1820 ' reads sensor ans calculate ' T for 0.1 C 1wreset ' reset the bus 1wwrite &HCC ' read internal RAM 1wwrite &HBE ' read 9 data bytest Bd(1) = 1wread(9) ' read bytes in array 1wreset ' reset the bus Crcit ' ckeck CRC If Crc = 0 Then ' if is OK, calculate for Tmp = Bd(1) And 1 ' 0.1C precision If Tmp = 1 Then Decr Bd(1) T = Makeint(bd(1) , Bd(2)) T = T * 50 : T = T - 25 : T1 = Bd(8) - Bd(7) : T1 = T1 * 100 T1 = T1 / Bd(8) : T = T + T1 : T = T / 10 End If End Sub '////////////////////////////////////////////////////////////////////////////// Sub Crcit ' calculate 8 bit CRC ' bigger but faster
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LM394.pdf
sec.) 260 C § Collector-Base Voltage 35V Dual-In-Line Package (10 sec.) 260§C LM394C 20V Small Outline Package Collector-Substrate Voltage 35V Vapor Phase (60 sec.) 215§C Infrared (15 sec.) 220 C LM394C 20V § Collector-Collector
in „gematchte Transistoren“ · Analoge Elektronik und Schaltungstechnik ·
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SMD_Catalog.pdf
47k + 22k 50V 30mA 76 DTA144WKA Rho N SC59 pnp dtr 47k + 22k 50V 30mA 77s BAS70-07 Sie S SOT143 dual BAS70 77s BAS70-07 Sie S SOT343 dual BAS70 77 MA4CS101E M/A S SOT143 dual MA4CS101A (73) 77 BFQ77 Sie CX SOT173 npn fT 7GHz 15V 20mA 78 MMBT4258 Nat N SOT23 pnp sw fT 700MHz 701
in „Hilfe bei Bauteilsuche für Mainboard“ · PC Hard- und Software ·
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PDF
MAX749.pdf
5V ( -5V Y -5V Y Y N 75 N -24V N I I 72 I 75 I I I V+ = 5V E V+ = 3V E 70 V+ = 3V E RSENSE= 0.25 R BASE= 470 RBASE= 160 70 R SENSE= 0.25 68 70 TRANSISTOR: SMD10P05L RSENSE= 0.25 TRANSISTOR: ZTX750 TRANSISTOR = ZTX750 66 65 64 65 0 10 20 30 40 50 60 0 10 20 30 40 50 60 70 80 90 100 0 5 10 15 20 25 30 35
in „Suche Spannungs Konverter“ · Analoge Elektronik und Schaltungstechnik ·
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MAX749.pdf
5V ( -5V Y -5V Y Y N 75 N -24V N I I 72 I 75 I I I V+ = 5V E V+ = 3V E 70 V+ = 3V E RSENSE= 0.25 R BASE= 470 RBASE= 160 70 R SENSE= 0.25 68 70 TRANSISTOR: SMD10P05L RSENSE= 0.25 TRANSISTOR: ZTX750 TRANSISTOR = ZTX750 66 65 64 65 0 10 20 30 40 50 60 0 10 20 30 40 50 60 70 80 90 100 0 5 10 15 20 25 30 35
in „Transistor für MAX749“ · Analoge Elektronik und Schaltungstechnik ·
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xmega_a1.pdf
base 0x00C DMA_INT_base DMA Controller Interrupt base 0x014 RTC_INT_base Real Time Counter Interrupt base 0x018 TWIC_INT_base Two-Wire Interface on Port C Interrupt base 0x01C TCC0_INT_base Timer/Counter
in „Welchen Wert hat der Pull-up-Widerstand dieses XMega?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
stm8s.h
#define GPIOB_BaseAddress 0x5005 #define GPIOC_BaseAddress 0x500A #define GPIOD_BaseAddress 0x500F #define GPIOE_BaseAddress 0x5014 #define GPIOF_BaseAddress 0x5019 #define GPIOG_BaseAddress 0x501E #define GPIOH_BaseAddress
in „sdcc source code in mehrere Dateien aufteilen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SC18_CHAPTER_5_1.pdf
MGK031 60 47.5 Fig.2 Maximum DC power dissipation in a transistor as a function of the 40 mounting-base temperature. 20 In the second case, T > T : mb mb K 0 0 40 80 120 160 200 P = Tjmax —T mb (4) Tmb (°C) totmax - R thj —mb that is, the power dissipation must be reduced as the Fig.3 Example of the determination
in „Wärmewiderstand Rthg - Rthgk“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
SJA.c
(CAN_BASE + 2) #define CAN_INT *(unsigned char *) (CAN_BASE + 3) #define CAN_AC *(unsigned char *) (CAN_BASE + 4) #define CAN_AM *(unsigned char *) (CAN_BASE + 5) #define CAN_TMG_0 *(unsigned char *) (CAN_BASE
in „SJA1000 ATMega8515“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Driver_Library_user_guide.pdf
APIs in favor of the old ones. 244 October 30, 2008 Stellaris Peripheral Driver Library User’s Guide 20.2.2 Function Documentation 20.2.2.1 UARTBreakCtl Causes a BREAK to be sent. Prototype: void UARTBreakCtl(unsigned long ulBase, tBoolean bBreakState) Parameters: ulBase is the base address of the UART
in „I2C Display Steuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Mitsubishi__PM50CL1B120_e.pdf
time measurement point example May 2009 5 MITSUBISHI <INTELLIGENT POWER MODULES> PM50CL1B120 FLAT-BASE TYPE INSULATED PACKAGE P 20k≥10µ VUP1 OT → 1.5k Vcc OUT UFo Fo + V D IF UP Si – In U VUPC GND GND ≥0.1µ VVP1 Vcc OT VFo 1.5k Fo OUT V D VP Si In VVPC V GND GND M VWP1 Vcc OT WFo 1.5k OUT V D Fo Si WP In VWPC W GND GND 20k → Vcc OT ≥10µ OUT IF UN Fo Si In N ≥0.1µ GND GND 20k OT → ≥10µ Vcc OUT Fo IF VN Si In GND GND ≥0.1µ 20k VN1 OT → ≥10µ Vcc IF Fo OUT V D WN Si In GND GND NC ≥0.1µ VNC NC 5V 1k Fo 1.5k : Interface which
in „Schablone für Wärmeleitpaste: wie Maße?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
I2C.c
_BASE)) { } //SysCtlDelay(100000); //warte >20ms for dem Lesen I2CMasterSlaveAddrSet(I2C2_BASE,adr,true); //Auslesen I2CMasterControl(I2C2_BASE,I2C_MASTER_CMD_SINGLE_RECEIVE); //SysCtlDelay(500); while (I2CMasterBusy
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hm3036.pdf
Continue with item 6.5. – Check that CH II variable gain knob is set to CAL. positi- on. – Set time base to 0.5 ms/div. 6.5 CH II 20 mV/div (3% accuracy) – Press CH I/II pushbutton (IN position) to select channel II. – Set attenuator CH II to 20 mV/div. – Connect a 100 mV pp (accuracy ± 0.1%), 1 kHz square
in „HM303-6 Schaltpläne“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Hameg_HM303-6_Service_manual.pdf
Continue with item 6.5. – Check that CH II variable gain knob is set to CAL. positi- on. – Set time base to 0.5 ms/div. 6.5 CH II 20 mV/div (3% accuracy) – Press CH I/II pushbutton (IN position) to select channel II. – Set attenuator CH II to 20 mV/div. – Connect a 100 mV pp (accuracy ± 0.1%), 1 kHz square
in „Hameg 303-6 Schaltplan + PCB.“ · Analoge Elektronik und Schaltungstechnik ·
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PHOTOTRANSISTOR_-_OPTOCOUPLER_IL5.pdf
Collector-Emitter Leakage Current ICEO 5 50 nA VCE=10 V Collector-Emitter Saturation Voltage V 0.25 I =1 mA, I =20 A CESAT CE B Base-Emitter Voltage VBE 0.65 V VCE=10 V, B =20 A DC Forward Current Gain HFE 200 650 1800 VCE=10 V, B =20 A Saturated DC Forward Current Gain HFE SAT 120 400 600 VCE=0.4 V,BI =20 A Thermal
in „Merten Dimmaktor (6470 29) keine 0-10V am Ausgang“ · Analoge Elektronik und Schaltungstechnik ·
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plaques-vitro.pdf
-- -- 9000248170 T43D20S0 NE.4I.60.BAS.X.X 9000274564 9000274537 -- 9000231119 PIE601N24E BO.4I.60.TOP.X.FS 9000274564 9000274537 -- 9000236089 T43D40N0 NE.4I.60.BAS.BR.X 9000275525 9000274537 -- 9000231119 PIE611T14E BO.4I
in „induktionsofen Kurzschluss da Sicherungen fliegen“ · Haus & Smart Home ·
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PDF
Induktionsherde_Serviceanleitung.pdf
-- -- 9000248170 T43D20S0 NE.4I.60.BAS.X.X 9000274564 9000274537 -- 9000231119 PIE601N24E BO.4I.60.TOP.X.FS 9000274564 9000274537 -- 9000236089 T43D40N0 NE.4I.60.BAS.BR.X 9000275525 9000274537 -- 9000231119 PIE611T14E BO.4I
in „Induktionskochfeld Bauknecht defekt?“ · Haus & Smart Home ·
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PDF
Induktionsherde_Serviceanleitung.pdf
-- -- 9000248170 T43D20S0 NE.4I.60.BAS.X.X 9000274564 9000274537 -- 9000231119 PIE601N24E BO.4I.60.TOP.X.FS 9000274564 9000274537 -- 9000236089 T43D40N0 NE.4I.60.BAS.BR.X 9000275525 9000274537 -- 9000231119 PIE611T14E BO.4I
in „Bosch Induktionsherd geht nicht mehr“ · Haus & Smart Home ·
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PDF
Induktionsherde_Serviceanleitung.pdf
-- -- 9000248170 T43D20S0 NE.4I.60.BAS.X.X 9000274564 9000274537 -- 9000231119 PIE601N24E BO.4I.60.TOP.X.FS 9000274564 9000274537 -- 9000236089 T43D40N0 NE.4I.60.BAS.BR.X 9000275525 9000274537 -- 9000231119 PIE611T14E BO.4I
in „Serviceanleitung Induktionsherde Bosch, Siemens, Neff u.a“ · Haus & Smart Home ·
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Datei
ds18b20.c
500); //480usÒÔÉÏ DIR_1WIRE_IN(); delay_nus(310); //15~60us //while(CHECK_IP_1WIRE()); } void DS18B20_init(void) { GPIO_InitTypeDef GPIO_InitStructure; TIM_TimeBaseInitTypeDef TIM_TimeBaseStructure; // PA8-DQ RCC_APB2PeriphClockCmd(RCC_APB2Periph_GPIOC, ENABLE); GPIO_InitStructure.GPIO_Pin = DS18B20_
in „STM32 DS1820“ · Mikrocontroller und Digitale Elektronik ·
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PDF
QEI_Cortex_M3.pdf
QEI phase inputs, and can be set to a specific value by writing to it. QEI Position (QEIPOS) QEI0 base: 0x4002.C000 QEI1 base: 0x4002.D000 Offset 0x008 Type R/W, reset 0x0000.0000 31 30 29 28 27 26 25 24 23 22 21 20 19 18 17 16 Position Type R/W R/W R/W R/W R/W R/W R/W R/W R/W R/W R/W R/W R/W R/W R/W
in „Drehgeber Cortex M3“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ds18b20.c
CHECK_IP_1WIRE()); DIR_1WIRE_OUT(); SET_OP_1WIRE(); delay_nus(100); //60~240us } void Initialize_DS18B20(void) { TIM_TimeBaseInitTypeDef TIM_TimeBaseStructure; GPIO_InitTypeDef GPIO_InitStructure; // PC0-DQ RCC_APB2PeriphClockCmd(RCC_APB2Periph_GPIOC, ENABLE); GPIO_InitStructure.GPIO_Pin = DS18B20_BIT; GPIO_InitStructure.GPIO_Speed = GPIO_Speed_50MHz; GPIO_InitStructure.GPIO_Mode = GPIO_Mode_IN_FLOATING; GPIO_Init(DS18B20_PORT, &GPIO_InitStructure); RCC_APB1PeriphClockCmd(RCC_APB1Periph_TIM4, ENABLE); TIM_TimeBaseStructure.TIM_Period = 1; //×Ô¶¯×°ÔØ TIM_TimeBaseStructure.TIM_Prescaler = 72; //72M·ÖƵÂʵœ1MHz TIM_TimeBaseStructure.TIM_ClockDivision
in „STM32 DS1820“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ds18b20.c
TIMCounter); while (TIMCounter) { TIMCounter = TIM_GetCounter(TIM4); } TIM_Cmd(TIM4, DISABLE); } void DS18B20_port_init(void) { GPIO_InitTypeDef GPIO_InitStructure; TIM_TimeBaseInitTypeDef TIM_TimeBaseStructure; RCC_APB1PeriphClockCmd(RCC_APB1Periph_TIM4, ENABLE); TIM_TimeBaseStructure.TIM_Period = 1; TIM_TimeBaseStructure.TIM_Prescaler = 24; TIM_TimeBaseStructure.TIM_ClockDivision = 0; TIM_TimeBaseStructure.TIM_CounterMode = TIM_CounterMode_Down; TIM_TimeBaseInit(TIM4, &TIM_TimeBaseStructure); RCC_APB2PeriphClockCmd(RCC_APB2Periph_GPIOC, ENABLE); GPIO_InitStructure.GPIO_Pin
in „STM32 DS1820“ · Mikrocontroller und Digitale Elektronik ·