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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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ADIS16209-246154.pdf
0.2 0.1 ) 0.1 ) e e 0 r r e e ( 0 ( –0.1 R O O R R –0.2 E –0.1 E –0.3 –0.2 –0.4 –0.3 1 –0.5 0 –60 –40 –20 0 20 40 60 80 100 6 –60 –40 –20 0 20 40 60 80 100 9 7 TEMPERATURE (°C) 7 TEMPERATURE (°C) 0 0 Figure8.MaximumInclineErrorOvera±30°InclineRange(EightParts)Over Figure11.VerticalModeError(EightParts
in „Neigungswinkelinkelmessung beweglicher Teile“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
F2013_touchpad.c
for the 8 key sensing lines */ const key_line_config_data_t key_line_config[NUM_LINES] = { {1, BIT0, 40}, {1, BIT1, 40}, {1, BIT2, 40}, {1, BIT3, 40}, {1, BIT4, 40}, {1, BIT5, 40}, {2, BIT6, 40}, {2, BIT7, 40}, }; /* The key sequence mapping to the 8 sense lines */ const uint8_t map_key_to_sense[NUM_KEYS
in „Touchpad Eval Board mit MSP430“ · Mikrocontroller und Digitale Elektronik ·
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DM8603EP.pdf
Support 1b 1 = 100BASE-TX full duplex is supported by the local device 0 = 100BASE-TX full duplex is not supported 7 TX_HDX RW 100BASE-TX Support 1b 1 = 100BASE-TX half duplex is supported by the local device 0 = 100BASE-TX
in „2 Port Switch IC wie in IP telefonen?“ · Mikrocontroller und Digitale Elektronik ·
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DM8603EP.pdf
Support 1b 1 = 100BASE-TX full duplex is supported by the local device 0 = 100BASE-TX full duplex is not supported 7 TX_HDX RW 100BASE-TX Support 1b 1 = 100BASE-TX half duplex is supported by the local device 0 = 100BASE-TX
in „[V] DM8203 & DM8603“ · Markt ·
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PDF
BC549-550.pdf
MAXIMUM RATINGS Rating Symbol BC549 BC550 Unit Collector–Emitter Voltage V CEO 30 45 Vdc Collector–Base Voltage V CBO 30 50 Vdc Emitter–Base Voltage V EBO 5.0 Vdc Collector Current — Continuous C 100 mAdc Total Device Dissipation @ T = 25⋅C P 625 mW 1 A D 2 Derate above 25⋅C 5.0 mW/⋅C 3 Total Device DissipationC
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BCR191-INF.pdf
Characteristics Collector-emitter breakdown voltage V(BR)CEO 50 - - V I = 100 µA, I = 0 C B Collector-base breakdown voltage V(BR)CBO 50 - - IC= 10 µA, IE= 0 Collector-base cutoff current ICBO - - 100 nA VCB = 40 V, E = 0 Emitter-base cutoff current IEBO - - 350 µA VEB = 10 V, C = 0 DC current gain2) h 50
in „Comparator LM393 to uC“ · Analoge Elektronik und Schaltungstechnik ·
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AEAT_6010_6012.pdf
Resolution(bit) OperatingTemperature(°C) OutputCommunication DCSupplyVoltage(V),V DD AEAT-6012-A06 12 -40 to +125 Serial +5.0 AEAT-6010-A06 10 -40 to +125 Serial +5.0 Notes: 1. For other options of Magnetic Encoder, please refer to factory. Table1. AbsoluteMaximumRatings [2,3] Parameter Symbol Limits Units
in „10bit Resolver spuckt über SPI 16 bits aus!“ · Mikrocontroller und Digitale Elektronik ·
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Digital_IO_Operating_Guide_100804_.pdf
control on PMIO_4D[4] 3 EPIA-PD’s Digital I/O Function Operation Guide VT8235 Power Management I/O Base – Offset 8B-88 31 - 16 Reserved………………………always reads 0 15 - 7 Power Management I/O Register BaseAddress PortAddress for the base of the 128-byte Power Management I/O Register Block, corresponding toAD
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A100_bc546_48.pdf
UNITS Collector Emitter Voltage VCEO 65 45 30 V Collector Emitter Voltage VCES 80 50 30 V Collector Base Voltage V 80 50 30 V CBO Emitter Base Voltage VEBO 6 6 5 V Collector Current Continuous IC 100 mA Collector Current Peak CM 200 mA Base Current Peak IBM 200 mA Emitter Current Peak IEM 200 mA Power
in „Hallo möchte Schaltung nachbauen.“ · Mikrocontroller und Digitale Elektronik ·
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Transistor_BC547C_NPN_TO-92_45V_0_1A_0_5W.pdf
UNITS Collector Emitter Voltage VCEO 65 45 30 V Collector Emitter Voltage VCES 80 50 30 V Collector Base Voltage V 80 50 30 V CBO Emitter Base Voltage VEBO 6 6 5 V Collector Current Continuous IC 100 mA Collector Current Peak CM 200 mA Base Current Peak IBM 200 mA Emitter Current Peak IEM 200 mA Power
in „Hilfe bei transistor auswahl/suche“ · Analoge Elektronik und Schaltungstechnik ·
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BC546_48-CDIL.pdf
UNITS Collector Emitter Voltage VCEO 65 45 30 V Collector Emitter Voltage VCES 80 50 30 V Collector Base Voltage V 80 50 30 V CBO Emitter Base Voltage VEBO 6 6 5 V Collector Current Continuous IC 100 mA Collector Current Peak CM 200 mA Base Current Peak IBM 200 mA Emitter Current Peak IEM 200 mA Power
in „Defekt an elektronischer Bremse einer Kreissäge.“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
main.c
= GPIO_Speed_50MHz; GPIO_Init(GPIOA, &GPIO_InitStructure); //Initialisierung der Timer 2 TIM_TimeBase_InitStructure.TIM_ClockDivision = TIM_CKD_DIV1; TIM_TimeBase_InitStructure.TIM_CounterMode = TIM_CounterMode_Up; TIM_TimeBase_InitStructure.TIM_Period = 99; TIM_TimeBase_InitStructure.TIM_Prescaler = 23; TIM_TimeBaseInit(TIM2, &TIM_TimeBase_InitStructure); //Outputcompare einstellen TIM_OC_InitStructure.TIM_OCMode = TIM_OCMode_PWM1; TIM_OC_InitStructure.TIM_OCIdleState = TIM_OCIdleState_Reset; TIM_OC_InitStructure.TIM_OCPolarity
in „Sinuswerte für PWM berechnen“ · Mikrocontroller und Digitale Elektronik ·
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2n3906.pdf
ratings ) 2 Grenzwerte ) 2 2N3906 Collector-Emitter-voltage - Kollektor-Emitter-Spannung E open - VCBO 40 V Collector-Emitter-voltage - Kollektor-Emitter-Spannung B open - VCEO 40 V Emitter-Base-voltage - Emitter-Basis-Spannung C open - VEBO 5 V Power dissipation – Verlustleistung Ptot 625 mW ) 3 Collector
in „LED Ansteuerung für Lazertag Projekt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2N3442_Audiopower_NPN.PDF
MAXIMUM RATINGS (Note 1) Rating Symbol Value Unit Collector−Emitter Voltage V 140 Vdc CEO Collector−Base Voltage VCB 160 Vdc Emitter−Base Voltage VEB 7.0 Vdc Collector Current− Continuous C 10 Adc − Peak 15 TO−204AA (TO−3) CASE 1−07 Base Current − Continuous B 7.0 Adc − Peak − STYLE 1 Total Device Dissipation
in „BJT-2N3442 von ON -ist der echt ?“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
main.c
init_Timer(); while(1) { } return 0; } void SysTick_Handler(void) { } void init_Timer(void) { TIM_TimeBaseInitTypeDef TIM_TimeBase_InitStructure; //Takt für Timer 14 einschalten RCC_APB1PeriphClockCmd(RCC_APB1Periph_TIM14, ENABLE); //Timer 14 konfigurieren TIM_TimeBase_InitStructure.TIM_ClockDivision = TIM_CKD_DIV1; TIM_TimeBase_InitStructure.TIM_CounterMode = TIM_CounterMode_Up; TIM_TimeBase_InitStructure.TIM_Period = 100; //Perioden 4/100=> 40kHz TIM_TimeBase_InitStructure.TIM_Prescaler = 12; //Vorteiler 48/12 => 4MHz TIM_TimeBase_InitStructure.TIM_RepetitionCounter
in „stm32f030f4p6 PWM“ · Mikrocontroller und Digitale Elektronik ·
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Datei
DSO_SFR.h
+ 4*5) #define EXTTRIGGERSRCADDR (DSO_SFR_BASE_ADDR+ 4*6) #define EXTTRIGGERPWMADDR (DSO_SFR_BASE_ADDR+ 4*7) #define INPUTCH0ADDR (DSO_SFR_BASE_ADDR+ 4*8) #define INPUTCH1ADDR (DSO_SFR_BASE_ADDR+ 4*9) #define INPUTCH2ADDR (DSO_SFR_BASE_ADDR+ 4*10
in „Wittig(welec) DSO W20xxA Open Source Firmware (Teil2)“ · Mikrocontroller und Digitale Elektronik ·
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PSMN8R7-80PS_MOSFET.pdf
avalanche energy Vsup≤ 80 V; RGS = 50 Ω; unclamped 003aad363 03aa16 100 120 D (A) Pder 80 (%) 80 60 40 40 20 0 0 0 50 100 150 200 0 50 100 150 200 Tmb( C) Tmb (°C) Fig 1. Continuous drain current as a function of Fig 2. Normalized total power dissipation as a mounting base temperature function of mounting
in „Motoransteuerung Pi und PWM“ · Mikrocontroller und Digitale Elektronik ·
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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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moxa-awk-1137c-series-datasheet.pdf
; measuredTyp. -70 dBm @ MCS7 20 MHz at 2.437 GHz) Typ. -70 dBm @ MCS15 20 MHz Typ. -64 dBm @ MCS7 40 MHz Typ. -65 dBm @ MCS15 40 MHz WLAN Operation Mode Client Client-Router Slave Sniffer Antenna External, 2/2 dBi Omni-directional Antenna Connectors 2 RP-SMA female Ethernet Interface 10/100BaseT(X)
in „[V] Diverse Moxa Industrie Switche und Access Points“ · Markt ·
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ZX5T851A.pdf
NOVEMBER 2003 1 SEMICONDUCTORS ZX5T851A ABSOLUTE MAXIMUM RATINGS PARAMETER SYMBOL LIMIT UNIT Collector-base voltage BVCBO 150 V Collector-emitter voltage BV 60 V CEO Emitter-base voltage BVEBO 7 V (a) Continuous collector current C 4.5 A Peak pulse current CM 15 A Practical power dissipationa) P 1.0 W D Linear
in „Ersatz für MPSA06 Transistor gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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KSH13007A_datasheet.pdf
Maximum Ratings TC=25℃ unless otherwise noted 80 Watts CHARACTERISTICS SYMBOL RATING UNIT TO-220 1. Base Collector-Base Voltage V 700 V 2. Collector CBO 3. Emitter Collector-Emitter Voltage VCEO 400 V Emitter-Base Voltage VEBO 9 V Collector Current(DC) IC 8 A Collector Current(Pulse) I 16 A CP Base Current
in „Molch-Cooler mit Frustration!“ · Mikrocontroller und Digitale Elektronik ·
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Datei
kicad-gdb-error-bt.txt
::TryHereOnly(wxEvent&) () at /usr/local/lib64/libwx_baseu-3.0.so.0 #75 0x00000000004d056f in EDA_BASE_FRAME::ProcessEvent(wxEvent&) (this=0x911df0, aEvent=...) at xxxxxx/kicad-source-mirror-master-20190222/common/eda_base_frame.cpp:173 #76 0x00007ffff6554e83 in wxEvtHandler::DoTryChain(wxEvent&) ()
in „KiCad 5.0.2 - Absturz beim Footprint-Editor Aufruf“ · Platinen ·
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MJE13009-D.PDF
1 Collector−Emitter Voltage VCEO(sus) 400 Vdc 2 3 Collector−Emitter Voltage V CEV 700 Vdc Emitter−Base Voltage V 9 Vdc EBO MARKING DIAGRAM Collector Current− Continuous C 12 Adc − Peak (Note 1) ICM 24 Base Current − Continuous B 6 Adc − Peak (Note 1) IBM 12 MJE13009G Emitter Current − Continuous E 18
in „Elektronischen Halogen-Trafo auf LED-Betrieb umrüsten“ · Analoge Elektronik und Schaltungstechnik ·
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BUK7514-55A.pdf
p ID% Normalised Current Derating Zth/(K/W) 120 1 110 0.5 100 90 0.2 80 0.1 0.1 70 60 0.05 50 0.02 40 0.01 30 0 20 10 0.001 0 0 20 40 60 80 100 120 140 160 180 1E-07 1E-05 t/s 1E-03 1E-01 1E+01 Tmb / C Fig.2. Normalised continuous drain current. Fig.4. Transient thermal impedance. ID% = 100⋅I /ID D 25
in „Wärmewiderstandsberechnung FET“ · Analoge Elektronik und Schaltungstechnik ·
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BUK_7514-55.pdf
p ID% Normalised Current Derating Zth/(K/W) 120 1 110 0.5 100 90 0.2 80 0.1 0.1 70 60 0.05 50 0.02 40 0.01 30 0 20 10 0.001 0 0 20 40 60 80 100 120 140 160 180 1E-07 1E-05 t/s 1E-03 1E-01 1E+01 Tmb / C Fig.2. Normalised continuous drain current. Fig.4. Transient thermal impedance. ID% = 100⋅I /ID D 25
in „Brauche Hilfe bei Motoransteuerung“ · Mikrocontroller und Digitale Elektronik ·
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PicoMOD-Startintf_Hardware_eng_Rev100.pdf
connectors): 3 mm Height of parts on bottom side (with PicoMOD): 10 mm Weight: TBD 2.2 Modules Size: 40mm x 40mm (45mm x 40mm for Legacy LCD) PCB thickness: 1.6 ±0.1 mm Height of parts on top side: (without connectors) 2 mm Weight: TBD 7 Technical Data 3 Technical Data Power supply: 5V DC ±5% Interfaces
in „PicoMOD1 - 400 MHz 32MB Ram SBC für 9,95 von Pollin“ · Mikrocontroller und Digitale Elektronik ·
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UMW-SMBJ.pdf
- RoHS-compliant, commercial grade Base P/N-M3 - halogen-free, RoHS-compliant, commercial grade Base P/NHE3 - RoHS-compliant and AEC-Q101 qualified Base P/NHM3 - halogen-free, RoHS-compliant, and PRIMARY CHARACTERISTICS AEC-Q101 qualified
in „TVS Diode gefälscht?“ · Analoge Elektronik und Schaltungstechnik ·
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ttester_eng104k.pdf
With the common Emitter circuit the tester has only two alternative to select the base current: 1. The 680 resistor results to a base current of about 6.1mA. This is too high for low level transistors with high ampli▯cation factor, because the base is saturated. Because the collector
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Datei
main.c
Digital_IN = Digital_IN | 0x40; } if(AT91C_BASE_PIOA->PIO_PDSR & PA27){ Digital_IN = Digital_IN | 0x20; } if(AT91C_BASE_PIOA->PIO_PDSR & PA26){ Digital_IN = Digital_IN | 0x10; } if(AT91C_BASE_PIOA->PIO_PDSR & PA25){ Digital_IN = Digital_IN
in „TWI und AT91SAM7S“ · Mikrocontroller und Digitale Elektronik ·
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hd1750fx.pdf
Collector-Emitter Voltage BE = 0) 1700 V V Collector-Emitter Voltage (I = 0) 800 V CEO B V EBO Emitter-Base Voltage (C = 0) 10 V IC Collector Current 24 A ICM Collector Peak Current pt < 5ms) 36 A IB Base Current 12 A IBM Base Peak Current (tp< 5ms) 18 A o P tot Total Dissipation atCT = 25 C 75 W Vins Insulation
in „Alternativer Bipolarer Transistor“ · Analoge Elektronik und Schaltungstechnik ·
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tsw-965282.pdf
Environmental OPERATING FORCE: See chart below 24 detent - 12 pulses/360˚ OPERATING TEMPERATURE: 0˚C / 40˚C STORAGE TEMPERATURE: -40˚C / 70˚C VIBRA TION RESISTANCE: 10 ~ 55 Hz, displacement 0.75mm (p-p) Specifications 2 SHOCK RESISTANCE: Destruction 1,000 m/s (approx. 100G) max. INITIAL CONTACT RESISTANCE
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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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doc_dpn233_dpn2333_0402_f12.pdf
correspond à un code ASCII compris entre 0 et 255 Dec. La valeur de n à la mise sous tension est n=40 Dec. Une valeur de 0 pour n définit une page de 256 lignes. v ESC N n (1B 4E n Hex=27 78 n Dec) Définition de la marge de bas de page. La longueur de la marge de bas de page est fixée à n lignes de texte
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opto.pdf
ratings only. 1 M Symbol Parameter Device Value Unit H TOTAL DEVICE 1 1 TSTG Storage Temperature All -40 to +125 °C D T Operating Temperature All -40 to +100 °C M OPR , TJ Junction Temperature All -40 to +125 ºC M O TSOL Lead Solder Temperature All 260 for 10 seconds °C C Total Device Power DissipatioA
in „Optokoppler - Relais“ · Mikrocontroller und Digitale Elektronik ·
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All03_programming.pdf
to control all I/O registers on the ALL-03 main module. Register name I/O address accesss IDPORT base address+0 Write-only DATAPORT base address+2 read+write The base address is the I/O address of the SAC-201 as defined by DIP switches 1 and 2. These switches allow a choice of 16 possible base addresses
in „HiLo Systems All-03 universal programmer/tester selbst programmieren“ · Projekte & Code ·
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PDF
STC04IE170HV.pdf
maximum ratings Symbol Parameter Value Unit VCS(SS) Collector-source voltageBS= VGS = 0) 1700 V VBS(OS) Base-source voltage CI = 0GSV= 0) 30 V VSB(OS) Source-base voltage CI = 0GSV= 0) 17 V VGS Gate-source voltage ± 17 V IC Collector current 4 A ICM Collector peak currenP (t < 5 ms) 8 A I Base current 4 A B I Base peak current (t < 1 ms) 8 A BM P P Total dissipation at T ≤ 25 °C 178 W tot c Tstg Storage temperature -40 to 150 °C TJ Max. operating junction temperature 150 °C Table 3. Thermal data Symbol Parameter
in „Versorgung über Basis“ · Analoge Elektronik und Schaltungstechnik ·
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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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Datei
Servo.c
#include <avr/io.h> #include <avr/signal.h> #include <avr/interrupt.h> volatile unsigned int TimeBase; volatile unsigned int Servo; SIGNAL( SIG_OVERFLOW0 ) /* wird alle 0.032 ms aufgerufen */ { TimeBase++; if( TimeBase == 625 ) /* fuer 20 ms muss also bis 625 gezaehlt werden */ TimeBase = 0; if( TimeBase
in „Servo am Mikrocontroller“ · Mikrocontroller und Digitale Elektronik ·
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BD249ABC-ISC.PDF
导itter voltage Open base V 电 半 BD249B 80O R 固 BD249C U C 100 BD249 N D 55 IC O V Collector-base voltageD2E9A SOpen base 70 V CBO N GBD249B 90 C H A IN BD249C 115 VEBO Emitter-base voltage Open collector 5 V C Collector current 25 A ICM Collector current-peak 40 A B Base current 5 A P C Collector power dissipation TC=25¡æ 125 W Tj Junction temperature -65~150 ¡æ Tstg Storage temperature -65~150 ¡æ THERMAL CHARACTERISTICS SYMBOL PARAMETER VALUE UNIT Rth j-c Thermal
in „Rippelstromgenerator“ · Analoge Elektronik und Schaltungstechnik ·
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156346062-STi7105.pdf
STi7105 memory space is populated with non-volatile memories, with external peripherals (EMI) at base address 0 (ST40 boots at address 0), and with DDR2-SDRAM devices (LMI) at base address 0x0C00 0000 (128 Mbytes) in 29-bit mode or at base address 0x4000 0000 (1024 Mbytes) in 32-bit mode. The STi7105
in „Motorola Vip19x0 (Big brother of Vip1710)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
T6963c.c
while(*ptr) { T6963cPutCharXY(zeile, spalte, (*ptr++)); }//lcd_write(*ptr++,1); } break; case 'b': Base = 2; goto ConversionLoop; case 'c': //Int to char format_flag = va_arg(ap,int); T6963cPutCharXY(zeile, spalte, (format_flag++));// (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 = 0;tmp<move;tmp++
in „AVR für wenig Geld im LAN“ · Mikrocontroller und Digitale Elektronik ·
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Datei
T6963c.c
va_arg(ap,char *); while(*ptr) { T6963cPutChar(*ptr++); }//lcd_write(*ptr++,1); } break; case 'b': Base = 2; goto ConversionLoop; case 'c': //Int to char format_flag = va_arg(ap,int); T6963cPutChar(format_flag++);// (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 = 0;tmp<move;tmp++) { str_null_buffer[tmp] = '0'; } //tmp +
in „AVR für wenig Geld im LAN“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PSMN3R7-100BSE.pdf
of gate-source voltage; typical values 100 aaa-028871 160 aaa-028872 g I fs D (S) (A) 80 120 60 80 40 40 20 175°C Tj= 25°C 0 0 0 20 40 60 80 100 0 1 2 3 4 5 6 7 8 D (A) V GS(V) T = 25 °C; V = 8 V V = 8 V j DS DS Fig. 8. Forward transconductance as a function of Fig. 9. Transfer characteristics; drain
in „Mysteriöser Mosfet-Tod und der Spirito-Effekt“ · Analoge Elektronik und Schaltungstechnik ·
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1_AMD_BKDG_Family__15h_Mod_00h-0Fh_BKDG.pdf
3 D18F1x60 Range 4 D18F1x68 Range 5 D18F1x70 Range 6 D18F1x78 Range 7 Bits Description 31:16 DramBase[39:24]: DRAM base address register bits[39:24]. DramBase[47:24] = {D18F1x[178,170,168,160,158,150,148,140][DramBase[47:40]], D18F1x[78,70,68,60,58,50,48,40][DramBase[39:24]]}. 15:11 Reserved. 10:8 IntlvEn
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Ciappa_Selected_failure_mechanisms_of_modern_power_modules.pdf
Si, b–c: Si– solder, c–d: solder–Cu, d–e: Cu–ceramic, e–f: ceramic–Cu, f–g: Cu–solder, g–h: solder–base plate. (b) Temperature at the interfaces for a dissipated power of 100 W and a heat sink temperature of 40 °C (black: type A, white: type B). Table 2 Differential elongation at the conditions of Fig.
in „E-Mobilitaet - wie sieht der Antrieb eigentlich technisch aus?“ · Fahrzeugelektronik ·
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Datei
myfirst.s
GPIOB_BASE + 0x00 @<<<<< .equ GPIOB_AFRL , GPIOB_BASE + 0x20 @<<<<< .equ GPIOB_AFRH , GPIOB_BASE + 0x24 .equ GPIOA_BASE , 0x40020000 .equ GPIOA_MODER , GPIOA_BASE + 0x00 .equ GPIOA_OTYPER , GPIOA_BASE + 0x04 .
in „STM32CubeIDE - kann man dem gdb server einen Schalter mitgeben?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
myfirst168.s
GPIOB_BASE + 0x00 @<<<<< .equ GPIOB_AFRL , GPIOB_BASE + 0x20 @<<<<< .equ GPIOB_AFRH , GPIOB_BASE + 0x24 .equ GPIOA_BASE , 0x40020000 .equ GPIOA_MODER , GPIOA_BASE + 0x00 .equ GPIOA_OTYPER , GPIOA_BASE + 0x04 .
in „STM32CubeIDE - kann man dem gdb server einen Schalter mitgeben?“ · Mikrocontroller und Digitale Elektronik ·
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CD4528.PDF
5. COLLECTOR, #3 6. BASE 6. NO CONNECTION 6. BASE, #2 6. COLLECTOR, #3 7. COLLECTOR 7. ANODE 7. EMITTER, #2 7. COLLECTOR, #4 8. COLLECTOR 8. CATHODE 8. COLLECTOR, #2 8. COLLECTOR, #4 9. BASE 9. CATHODE 9. COLLECTOR, #3 9. BASE
in „Unterschied CD4528 zu CD4538 ?“ · Mikrocontroller und Digitale Elektronik ·
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HFBR-14XX_Optolink.pdf
Configuration. 11 N T 0 60 E ) E ) B R 0 60 A R 0 60 A ( ) U -1 OVERDRIVE WORST CASE 50 ( U 50 ( N -1 50 m C -40 ˚C, +85 ˚C T C -1 WORST CASE T R WORST CASE – E -2 UNDERDRIVE 40 E E -2 OVERDRIVE -40 ˚C, +85 ˚C 40 E U -40˚C, +85˚C T I R T UNDERDRIVE R R -2 UNDERDRIVE TYPICAL 26˚C 40 R M -3 30 U M -3 30 U T UNDERDRIVE
in „Debuggen bei EMV-Tests“ · Mikrocontroller und Digitale Elektronik ·