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Datei
lcd1.asm
execute a command. ; ; Connections: ; LCD data bus(pins #14-#7) connected to Port A of a 8255 with 00h base address ; LCD Enable pin(#6) connected to Port C bit #7 ; LCD R/W pin(#5) connected to Port C bit #6 ; LCD RS pin(#4) connected to Port C bit #5 ;8255 port address(base 00h): paadr equ 00h ; Address
in „HD61830 an Z80 ?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
GLCD.c
SystemCoreClock / 1000000) - 1; /* Êä³öƵÂÊ=ʱÖÓ/(ARR+1)£¬ËùÒÔœ«Êä³öÒ»žö 1Mhz/(999 + 1 )=1kHz ƵÂÊ */ TIM_TimeBaseStructure.TIM_ClockDivision = 0; /* ʹÓÃϵͳ»ùŽ¡Ê±ÖÓ */ TIM_TimeBaseStructure.TIM_CounterMode = TIM_CounterMode_Up; TIM_TimeBaseStructure.TIM_RepetitionCounter = 0; TIM_TimeBaseStructure.TIM_Prescaler = TimerPeriod; /* ʱÖÓÔ€·ÖƵ */ TIM_TimeBaseStructure.TIM_Period = 999; /* TIM3 ARR Register */ TIM_TimeBaseInit(TIM3, &TIM_TimeBaseStructure); /* TIM_PulseÓÃÀŽ¿ØÖÆÕŒ¿Õ±È£¬ËûʵŒÊÓ°ÏìTIMµÄCCR2ŒÄŽæÆ÷£¬³ÌÐòÖпÉËæÊ±žüžÄžÃŒÄŽæÆ÷µÄÖµ£¬¿ÉËæÊ±žüžÄÕŒ¿Õ
in „STM32 24Bit Bmp nach 565RGB Format“ · Mikrocontroller und Digitale Elektronik ·
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Datei
GLCD.c
SystemCoreClock / 1000000) - 1; /* Êä³öƵÂÊ=ʱÖÓ/(ARR+1)£¬ËùÒÔœ«Êä³öÒ»žö 1Mhz/(999 + 1 )=1kHz ƵÂÊ */ TIM_TimeBaseStructure.TIM_ClockDivision = 0; /* ʹÓÃϵͳ»ùŽ¡Ê±ÖÓ */ TIM_TimeBaseStructure.TIM_CounterMode = TIM_CounterMode_Up; TIM_TimeBaseStructure.TIM_RepetitionCounter = 0; TIM_TimeBaseStructure.TIM_Prescaler = TimerPeriod; /* ʱÖÓÔ€·ÖƵ */ TIM_TimeBaseStructure.TIM_Period = 999; /* TIM3 ARR Register */ TIM_TimeBaseInit(TIM3, &TIM_TimeBaseStructure); /* TIM_PulseÓÃÀŽ¿ØÖÆÕŒ¿Õ±È£¬ËûʵŒÊÓ°ÏìTIMµÄCCR2ŒÄŽæÆ÷£¬³ÌÐòÖпÉËæÊ±žüžÄžÃŒÄŽæÆ÷µÄÖµ£¬¿ÉËæÊ±žüžÄÕŒ¿Õ
in „STM32 24Bit Bmp nach 565RGB Format“ · Mikrocontroller und Digitale Elektronik ·
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Datei
GLCD.c
SystemCoreClock / 1000000) - 1; /* Êä³öƵÂÊ=ʱÖÓ/(ARR+1)£¬ËùÒÔœ«Êä³öÒ»žö 1Mhz/(999 + 1 )=1kHz ƵÂÊ */ TIM_TimeBaseStructure.TIM_ClockDivision = 0; /* ʹÓÃϵͳ»ùŽ¡Ê±ÖÓ */ TIM_TimeBaseStructure.TIM_CounterMode = TIM_CounterMode_Up; TIM_TimeBaseStructure.TIM_RepetitionCounter = 0; TIM_TimeBaseStructure.TIM_Prescaler = TimerPeriod; /* ʱÖÓÔ€·ÖƵ */ TIM_TimeBaseStructure.TIM_Period = 999; /* TIM3 ARR Register */ TIM_TimeBaseInit(TIM3, &TIM_TimeBaseStructure); /* TIM_PulseÓÃÀŽ¿ØÖÆÕŒ¿Õ±È£¬ËûʵŒÊÓ°ÏìTIMµÄCCR2ŒÄŽæÆ÷£¬³ÌÐòÖпÉËæÊ±žüžÄžÃŒÄŽæÆ÷µÄÖµ£¬¿ÉËæÊ±žüžÄÕŒ¿Õ
in „STM32 24Bit Bmp nach 565RGB Format“ · Mikrocontroller und Digitale Elektronik ·
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PDF
XLampXT-E.pdf
temperature °C 150 Flux Characteristics - White (T = 85 °C) J The following table provides several base order codes for XLamp XT-E White LEDs. It is important to note that the base order codes listed here are a subset of the total available order codes for the product family. For more order codes, as
in „Verkaufe Restbestände Cree LEDs XT-E XTEAWT-00-0000-00000BFE4“ · Markt ·
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Datei
setup.c
> #include <mach/portmux.h> #include <linux/fb.h> #include <video/atmel_lcdc.h> #define PB_EXTINT_BASE 25 #define TS_IRQ 0 #define PIN_TS_EXTINT GPIO_PIN_PB(PB_EXTINT_BASE+TS_IRQ) /* Sharp LQ043T3DX0x (or compatible) panel */ static struct fb_videomode __initdata lcd_fb_modes[] = { { .name = "480x272
in „Probleme mit ADS7846 beim NGW100“ · Mikrocontroller und Digitale Elektronik ·
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Datei
setup.c
> #include <mach/portmux.h> #include <linux/fb.h> #include <video/atmel_lcdc.h> #define PB_EXTINT_BASE 25 #define TS_IRQ 0 #define PIN_TS_EXTINT GPIO_PIN_PB(PB_EXTINT_BASE+TS_IRQ) /* Sharp LQ043T3DX0x (or compatible) panel */ static struct fb_videomode __initdata lcd_fb_modes[] = { { .name = "480x272
in „Probleme mit ADS7846 beim NGW100“ · Mikrocontroller und Digitale Elektronik ·
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Datei
PLC-LOX.txt
100) 13 1st DS2438 Vsens (value multiplied by 100) - 39 DS2438 values (up to 10 sensors) 40-50 DS18B20 Temperature (up to 10 sensors) (value multiplied by 100) Combination of 1wire sensors must be up to 10pcs maximum (DS18B20 or DS2438) using RS485 the UDP syntax must have newline \n symbol at the end
in „1 Wire auf 2 GPIO pins“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Colpitts_OT_XO.pdf
Colpitts Oscilla or 225 1 1 1 1 = − − C3 20pF 113.7pF 113.7pF ∴C3 = 30.86 pF To finish our problem, we need to find an S-parameter model for the transistor that is closest to our bias condition. Let us assume that we found such a model for the
in „3rd-OT-Oszillator mit NE602 (an Pin 6 und 7)“ · HF, Funk und Felder ·
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PDF
Vishay-GL41.pdf
molded epoxy over glass body IFSM 30 A Molding compound meets UL 94 V-0 flammability rating IR 10 μA Base P/N-E3 - RoHS-compliant, commercial grade Base P/NHE3 - RoHS-compliant, AEC-Q101 qualified EAS 5 mJ VF 1.1 V, 1.2 V Terminals: Matte tin plated leads, solderable per J-STD-002 and JESD 22-B102 TJmax
in „Citroen XM Y3 Wegfahrsperre Wiederstand“ · Fahrzeugelektronik ·
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Datei
main.c
include "lcd.h" #include "board.h" #include "bits.h" #include "gps.h" volatile AT91PS_PIO mPIOB = AT91C_BASE_PIOB; volatile AT91PS_PMC mPMC = AT91C_BASE_PMC; AT91PS_PIO v_pPioA = AT91C_BASE_PIOA; extern void LowLevelInit(void); void config_switch(void); void blink_if_char_(); char *gga_msg1, ch1; nmea_GGA_tp
in „Data aus USART vom SAM7-EX256 lesen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
90000866_C.pdf
Gain Application* Required Cable-loss N/A A24-C1 Surface Mount integral chip -1.5 dBi Fixed/Mobile 20 cm A24-F2NF Omni-directional (Fiberglass base station) 2.1 dBi Fixed/Mobile 20 cm N/A A24-F3NF Omni-directional (Fiberglass base station) 3.0 dBi Fixed/Mobile 20 cm N/A N/A A24-F5NF Omni-directional
in „XBee pro Funkmodul mit ATMega8515“ · HF, Funk und Felder ·
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PDF
hp-6236B.pdf
remains high, check Q3, CR29, (more than 1% greater loop by shorting Q13 and Q13 for short. than +20V supply in emitter-to-base. b. If output falls to near zero, remove short from Q13 and fixed tracking ratio proceed to step (2). mode). 2. Measure voltage at out put of OR-gate (TP5) a. If voltage at
in „Problem mit Simulation von HP/Agilent Tracking LNG“ · Mikrocontroller und Digitale Elektronik ·
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PDF
FPGA_EM9.pdf
instance number (one module can be instantiated more than one time), the interrupt routing and the base address of the module are stored. At initialization time, the CPU has to read the configuration table to get the information of the base addresses of the included modules. Note that with regard to the
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PDF
LeibRamp.pdf
Multiplication 4. Implementation Aryeh Eiderman <leib@eiderman.com> The given parameters are: v 0 base speed, 1. Cinematic basics v - slew speed, a - acceleration, F - timer frequency The linear acceleration (ramping) formulas are: and the calculated parameters are: S = v .t + a t / 2 [1], 0 . S - acceleration
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PDF
6n136.pdf
Immunity • Bandwidth 2 MHz Dimensions in inches (mm) • Open-Collector Output 4 3 2 1 Pin • External BaseWiring Possible One I.D. NC 1 8 (Vt)ode • Field-Effect Stable byTRIOS* Base • Underwriters Lab File #E52744 .268 (6.81) Anode 2 7 (B ) .255 (6.48) 3 6 Collector DESCRIPTION Cathode (O ) NC 4 5 Emitter
in „High-speed Optokoppler“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
temp_frac; int temperature; uint32_t rawIRValue; uint32_t rawRedValue; const int avgAmount=64; int baseValue=0; int x=0; int16_t an_x[100]; int32_t n_denom; /* int16_t IR_AC_Max=20; int16_t IR_AC_Min=-20; int16_t IR_AC_Signal_Current = 0; int16_t IR_AC_Signal_Previous = 0; int16_t IR_AC_Signal_min = 0
in „MAX30102 programmierung“ · Mikrocontroller und Digitale Elektronik ·
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NTC.html
150px; max-width: 1000px; max-height: 500px; box-sizing: border-box; box-shadow: var(--jp-elevation-z20); word-wrap: break-word; border-radius: var(--jp-border-radius); /* This is needed so that all font sizing of children done in ems is * relative to this base size */ font-size: var(--jp-ui-font-size1
in „NTC auto kalibrierung - Matheformel“ · Mikrocontroller und Digitale Elektronik ·
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Datei
nrf_flash_loader.cpp
collection[0]: Configuration of GPIO pins */ } NRF_GPIO_Type; /*!< Size = 1920 (0x780) */ #define NRF_NVMC_BASE 0x4001E000UL #define NRF_BPROT_BASE 0x40000000UL #define NRF_P0_BASE 0x50000000UL #define NRF_NVMC ((NRF_NVMC_Type*) NRF_NVMC_BASE) #define NRF_BPROT ((NRF_BPROT_Type*) NRF_BPROT_BASE) #define NRF_P0 ((NRF_GPIO_Type*) NRF_P0_BASE) #define NRF_GPIO ((NRF_GPIO_Type*) NRF_P0_BASE) /* Register: GPIO_PIN_CNF */ /* Description: Description collection[0]: Configuration of GPIO pins */ /* Bits 17..16 : Pin sensing mechanism */ #define
in „[NRF] Flashvorgang per SWD“ · Mikrocontroller und Digitale Elektronik ·
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PDF
CAN_Bus_Elektor_Optimized.pdf
(1%) 1 Mbit/s at 40 m 2 40 - 300 m <60 mΩ/m 0.34 - 0.6 mm 127 Ω (1%) 500 Kbit/s at 100 m AWG22, AWG20 See also: 300 - 600 m <40 mΩ/m 0.5 - 0.6 mm 150 Ω to 300 Ω 100 Kbit/s at 500 m ‘CAN – the Controller Area Network’ AWG20 in the September 1992 issue (p. 56) of 0.75 - 0.8 mm Elektor Electronics. 600
in „CAN mir das einer mal erklären?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IHH_Bauelementebroschuere_dt_01.pdf
Beispiele: Cu-Draht 0,3 mm, 10 mm Länge Rcu= 2,4 mOhm Cu-Leiterbahn 4 mm*0,2 mm*35 μm Rcu= 10 mOhm 06 dR/R20 in % Watt P/P Nom 1,0 5 1,25 0,8 0,6 4 1 0,4 0,2 3 0,75 0 −0,2 2 0,5 −0,4 −0,6 1 0,25 −0,8 −1,0 0 0 −40 −20 0 20 40 60 80 100 120 140 160 0805 1206 2010 2512 2817 0 20 40 60 80 100 120 140 160 180 Temperatur
in „Leistungs-Shunt 8,5kW kaufen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
IHH_Bauelementebroschuere_dt_01.pdf
Beispiele: Cu-Draht 0,3 mm, 10 mm Länge Rcu= 2,4 mOhm Cu-Leiterbahn 4 mm*0,2 mm*35 μm Rcu= 10 mOhm 06 dR/R20 in % Watt P/P Nom 1,0 5 1,25 0,8 0,6 4 1 0,4 0,2 3 0,75 0 −0,2 2 0,5 −0,4 −0,6 1 0,25 −0,8 −1,0 0 0 −40 −20 0 20 40 60 80 100 120 140 160 0805 1206 2010 2512 2817 0 20 40 60 80 100 120 140 160 180 Temperatur
in „bidirektionale Strommessung Frage“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
instructions until it clears the timer in the interrupt routine #define PWM_MAX 254 #define ACCEL_DECEL_BASE 19 // Value for Timer2 to count 1ms @ 20Mhz // DCC TIMMING CONSTANTS #define _1UPPER_LIMIT 88//35 //88 // 70 us #define _1LOWER_LIMIT 50//20 //50 // 40 us #define _0LOWER_LIMIT 115//46 //115 // 93 us
in „DCC Lokdecoder PIC16F628“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Stochino_Power_Amp_300V_us_power.pdf
conditions as Table 1. V oud Vpp ) Basic nsa1 design Fig. 1 Fig. 2 for thd atIkHz. The differences at 20kHz can 1kHz 20kHz 1kHz 20kHz 1kHz 20kHz be explained by layout problems in the exper 20 0.0018 % 0.0240% 0.0008 % 0.0140% 0.0006% 0.012 0 % imental prototype and/or by the influence of 80 0.0090 % 0.0380%
in „Audio-Endestufe - bitte um Erklärung der Funktion einer Teilschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BCR191-INF.pdf
request Maximum Ratings Parameter Symbol Value Unit 50 V Collector-emitter voltage VCEO Collector-base voltage V 50 CBO Input forward voltage Vi(fwd) 60 Input reverse voltage Vi(rev) 10 Collector current IC 100 mA mW Total power dissipation- Ptot BCR191, T ≤ 102°C 200 S BCR191F, TS≤ 128°C 250 BCR191W
in „Comparator LM393 to uC“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
U13843EU3V0AN00.pdf
panel_read_out(void) { int k01,index1; print (" LCD Panel Registers Read out!"); crlf(); for(k01=0; k01 < 0x20 ; k01+=2) // print index array in short 16 bit format { putnum((unsigned short *)(CC_BASE+k01)); print(" -> "); putnum(*((unsigned short*)(CC_BASE+(k01)))); crlf(); } return(1); } int generic_register_out(unsigned short *BASE_PTR, long count) { int k01,index1; for(k01=0; k01 < (count<<1) ; k01+=2) // print index array in short 16 bit format half word addresses { putnum((unsigned short *)(BASE_PTR+k01)); print(" -> "); putnum
in „Controller für Graphik LCD“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Manuel-1.pdf
15, default value: 4. (5) Width setting Press ‘L’ ‘R’ to set back light compensation area’s width, base on the left, to set P4 from 0-15, default value: 3 (6) L/R adjust Press ‘L’ ‘R’ to set back light compensation area’s up/ down, base on the top, to set from 0-15, default value: 3 (7) UP/Down adjust
in „CCD Cam mit nur 1 RS485 pin antstuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TransistorTester_eng_094k.pdf
, Base and Collector and xyz means the sequence of the corresponding pin numbers. 10. The measurement for bipolar transistors is also done with common collector (emitter follower). The hFE value of High Power
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Datei
Touch_LCD.txt
B11111111 'all pull-up-Resistors turned on Enable Urxc Enable Interrupts $include Init21_display3000.bas '############################################################################################ 'Main program, demo program Bluebild: V1 = 0 Orientation = Landscape Call Lcd_box(0 , 0 , 175 , 131 , Blue
in „nach Print Aufruf, Programm läuft in Zeitlupe!“ · Mikrocontroller und Digitale Elektronik ·
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PDF
NTS4409N-D.pdf
O A 1.6 ( − M E O R 1.4 N 60 − N V = 4.5 V A C iss I ( GS I A C 1.2 A R N P 40 ) T C ( I 1 , S S C 20 Coss R R 0.8 C rss 0.6 0 −50 −25 0 25 50 75 100 125 150 0 5 10 15 20 25 TJ, JUNCTION TEMPERATURE (°C) DRAIN−TO−SOURCE VOLTAGE (VOLTS) Figure 5. On−Resistance Variation with Figure 6. Capacitance Variation
in „SMD Identifizieren“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Beiers_Quarze1957.pdf
BaprloB: : qu Quarz; Quartz crystal; I{eapq Q 1...: Sockelschalttrild der euarzeam Schluß desl(apitels; Base diagrams of quartz crystalsat end of section; Cxerua qo«onfl r{BaprloB rroxo3arraB HoHrIe rJraBbr Il( : Temperatur-Koeffizient; Temperature coefficient; Hoa{rr.rqlrerr reMneparypbr 549 Quarzc Quarze
in „NARVA Quarz Datenblatt“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
spru790_QEP_Reference_Manual_ACHTUNG_nur_F280X.pdf
. . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 39 19. eQEP Unit Time Base . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 40 20. EQEP Interrupt Generation . . . . . . . . . . . . . . . . . . . . . . . . .
in „QEP 32-Bit mit tms320f2812“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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Datei
AN_111.bas
' DS18B20_two_thermo.bas for Atmel AVR vith BASCOM - AVR and Dallas semiconductors DS18B20 temperature sensors - NO extra hardware ' Program "DUAL DS Thermo" ' Messures and displays temperature in 1/10 celcius
in „ds18s20 mit Bascom unter Proteus“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2sa1216.pdf
6.00.2 VCBO –180 V VCBO VCB =–180V –100 max A 24.40.2 2.1 VCEO –180 V EBO V EB=–5V –100 max A 2-ø3.20.1 9 VEBO –5 V V(BR)CEO IC=–25mA –180 min V 7 C –17 hFE VCE =–4V, I C=–8A 30 min ±. A 1 a B VCE (sat) 2 b –5 A I =–8A, I B=–0.8A –2.0 max V PC 200(Tc=25°C) W T VCE =–12V, I E=2A 40 typ MHz 2 m a Tj 150
in „Türstopper oder bald ein (doppel) Netzteil?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
RJLB-239TC1-A1_RJPLB-203TC1-replacement_20100805.pdf
NUMBER:RD-SD-RJLB-239TC1(PU) DATE : 2010/08/05 R(REV:A1) Single 10/100 BASE-TX Filtered Connector Module MODELNO. : RJLB-239TC1 Features: ◎ RoHS Compliant ◎ Fully shielded magnetics protect data from internally generated digital noise ◎ Reduces the overall length of the signal
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PDF
JLX12864G-378.pdf
delay(40);; } /*LCD 模块初始化*/ void initial_lcd() { lcd_cs1=0; Rom_CS = 1; lcd_reset=0; /*低电平复位*/ delay(20); lcd_reset=1; /*复位完毕*/ delay(20); transfer_command_lcd(0xe2); /*软复位*/ delay(5); transfer_command_lcd(0x2c); /*升压步聚 1*/ delay(5); transfer_command_lcd(0x2e); /*升压步聚 2*/ delay(5); transfer_command_lcd
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380Compiler.pdf
double strtod( const char *nptr, char **endptr ); long strtol( const char *nptr, char **endptr, int base ); unsigned long strtoul( const char *nptr, char **endptr, int base ) Parameter Description nptr String to convert endptr Pointer to character that stops scan base Number base to use The strtod, strtol
in „Z80 Mikrocomputer Bastelei“ · Mikrocontroller und Digitale Elektronik ·
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Datei
out.lst
ldi r26, 0x02 ; 2 41e: b0 e0 ldi r27, 0x00 ; 0 420: ea 0e add r14, r26 422: fb 1e adc r15, r27 424: 20 81 ld r18, Z 426: 31 81 ldd r19, Z+1 ; 0x01 UartWriteBuf (ptr, -1); 428: 45 c0 rjmp .+138 ; 0x4b4 continue; case 'o': base = 8; 42a: 48 e0 ldi r20, 0x08 ; 8 42c: c4 2e mov r12, r20 42e: d1 2c mov r13
in „Multiplikation ist zu schnell...“ · Mikrocontroller und Digitale Elektronik ·
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PDF
RP40_E.pdf
9. See application notes for EMI-filtering. Package Style and Pinning (mm) 3rd angle projection 76.20 66.00 10.20 dia. 8.00 1.0 7.6 63.50 Pin Connections 10.20 Pin # Single Dual Triple 3.3V / 5V 17.80 10 1 CTRL CTRL CTRL CTRL 2 +Vin +Vin +Vin +Vin 10.20 4 3 -Vin -Vin -Vin -Vin 10.20 9 4 SYNC SYNC SYNC
in „Dualer +- Spannungsregler?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
dimplex_la17-26ps_fd9202_de-gb-fr.pdf
water flow/return flow 1 °C / °C Up to 65 / above 18 Up to 65 / above 18 Up to 65 / above 18 Air °C -20 to +35 -20 to +35 -20 to +35 n g 3.2 Temperature spread 9.3 5.0 9.5 5.0 9.4 5.0 l of heating water at A7 / W35 s 2 3 h 3.3 Heat output / COP at A-7 / W35 kW / --- 6.7 / 2.5 6.4 / 2.4 7.7 / 2.4 7.5 /
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Datei
sketch.ino
NAND chip void readIDNAND(); // read data void readDATANAND(); // reads data bus int readDataBus(int base); // sets data bus for output void setDataBusOut(); // sets data bus for input void setDataBusIn(); // write address to databus void putDataBus(int i); // get chip ready for command void prepChip();
in „Bluepill TSOP48 NAND Dump Tool Problemchen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
an-948.pdf
100 RL= 8 OHM The following troubleshooting O checklist is offered as a guide to the M A -1 GAIN = 20 RL= 4 OHM experimenter: H 10 L 1. When assembling the printed T GAIN = 20 R L 8 OHM circuit board, mount the passive O T 4 components first, ensuring the cor- rect polarity of electrolytic capaci- tors
in „Mehrere IRF520 Parallel für 12-24V LEDs“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
HD49815TF.pdf
oscillation frequency was measured under the following conditions. V CC= 5.0 V V CC= 3 V Ta = 25°C 8 MHz, 20 MHz, and 24 MHz: Rf = 1 to 10 M Cin, Cout = 20 pF ( 20 pF) 32 MHz: Rf = 1 to 10 M Cin = 20 pF ( 20 pF) Cout = 100 pF ( 20 pF), Co = 15 pF ( 5 pF), Lout = 1 H The conditions above may be changed within
in „wo omnivision kameramodule kaufen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
GD32VF103_User_Manual_EN_V1.0.pdf
[15:0] r Bits Fields Descriptions 31:0 UNIQUE_ID[31:0] Unique device ID Base address: 0x1FFF F7EC The value is factory programmed and can never be altered by user. 30 GD32VF103 User Manual 31 30 29 28 27 26 25 24 23 22 21 20 19 18 17 16 UNIQUE_ID[63:48] r 15 14 13 12 11 10 9
in „STM32F103C8T6 => GD32VF103C8T6“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AV02-1046EN_0__3_.pdf
0.5V toVCC Output Current per Channel, IOUT -1.0 mA to 5 mA -1.0 mA to 5 mA -1.0 mA to 5 mA Vibration 20 g, 5 to 1000 Hz 20 g, 5 to 1000 Hz 20 g, 5 to 1000 Hz Shaft Axial Play ± 0.25 mm ± 0.175 mm ± 0.175 mm (± 0.010 in.) (± 0.007 in.) (± 0.007 in.) Shaft Eccentricity Plus Radial Play 0.1 mm 0.04 mm 0.04
in „drehzahlmessung und per bluetooth übertragen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
dmesgbeautified.txt
12:16:13 2011 ] pci 0000:00:01.0: PME# disabled [ Sun Feb 27 12:16:13 2011 ] pci 0000:00:1a.0: reg 20 io port: [0x9800-0x981f] [ Sun Feb 27 12:16:13 2011 ] pci 0000:00:1a.1: reg 20 io port: [0x9880-0x989f] [ Sun Feb 27 12:16:13 2011 ] pci 0000:00:1a.2: reg 20 io port: [0x9c00-0x9c1f] [ Sun Feb 27 12:
in „Sporadische Gnome-Abbrüche auf Ubuntu 10.04“ · PC Hard- und Software ·
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Datei
Neues_Textdokument.txt
0x08, 0x08, 0x14, 0x14, 0x18, 0x7c, // pq 0x7c, 0x08, 0x04, 0x04, 0x08, 0x48, 0x54, 0x54, 0x54, 0x20, // rs 0x04, 0x3f, 0x44, 0x40, 0x20, 0x3c, 0x40, 0x40, 0x20, 0x7c, // tu 0x1c, 0x20, 0x40, 0x20, 0x1c, 0x3c, 0x40, 0x30, 0x40, 0x3c, // vw 0x44, 0x28, 0x10, 0x28, 0x44, 0x0c, 0x50, 0x50, 0x50, 0x3c,
in „LED-Cube Effekte weiter per Knopfdruck“ · Mikrocontroller und Digitale Elektronik ·
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Datei
LED_Cube.ino
0x08, 0x08, 0x14, 0x14, 0x18, 0x7c, // pq 0x7c, 0x08, 0x04, 0x04, 0x08, 0x48, 0x54, 0x54, 0x54, 0x20, // rs 0x04, 0x3f, 0x44, 0x40, 0x20, 0x3c, 0x40, 0x40, 0x20, 0x7c, // tu 0x1c, 0x20, 0x40, 0x20, 0x1c, 0x3c, 0x40, 0x30, 0x40, 0x3c, // vw 0x44, 0x28, 0x10, 0x28, 0x44, 0x0c, 0x50, 0x50, 0x50, 0x3c,
in „LED-Cube Effekte weiter per Knopfdruck“ · Mikrocontroller und Digitale Elektronik ·
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OP196_296_496_empfehlung_aus_AAN_105-03_.pdf
O< 4.7V 70 800 R = 100k⍀ L B d60 V – GAIN / I50 V 650 A – P40 0 I O G O 45 ⴗ P -30 – O 500 E T L P20 90 I N O PHASE S E 10 135 E P 350 A O 0 180 H P 225 –1010 100 1k 10k 100k 1M 20–75 –50 –25 0 25 50 75 100 125 150 FREQUENCY – Hz TEMPERATURE – ⴗC TPC 15. Open-Loop Gain and Phase vs. Frequency TPC 18
in „OPV: Invertierer mit dual Supply?“ · Analoge Elektronik und Schaltungstechnik ·
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IntegratedMagneticsBo.pdf
to investigate switching frequency with high efficiency. different winding and gapping structures. Base on the A novel LLC resonant converter is proposed for this general model, several integrated magnetic designs for application. Fig. 1 shows circuit diagram of LLC resonant converter. Compare with PWM
in „Trafo: Streuinduktivität für LCC Regler berechnen“ · Analoge Elektronik und Schaltungstechnik ·