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Datei
UHR_LED_TWI.asm
ZIFFER-F (Anode-E) - .include "m8def.inc" ; TWI SLAVE EINSTELLUNGEN .equ TWI_SLAVE_ADRESSE = 10 ; 0...127 eigene-SLAVE-Adresse .equ TWI_GENERAL_CALL_ENABLE= 0 ; 1=Generall Call enable .equ TWI_BIT_RATE = 12 ; Bit-Rate .equ TWI_PRESCALER = 0 ; Vorteiler: 0=1 1=4 2=16 3=64 ; SRAM - BELEGUNG .equ adr_DATEN
in „i2c problem“ · Mikrocontroller und Digitale Elektronik ·
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PDF
de302.pdf
-422 TxD+/-, RxD+/-, RTS+/-, CTS+/-, GND RS-485 Data+/-, GND Performance Speed 50 bps – 230.4 Kbps Max. No. of ports 256 (per Windows NT/2000/XP host) 128 (per Windows 95/98 host) 1-2 Downloaded from www.Manualslib.com manuals search engine Configuration Parity None, even, odd, space, mark Data bits
in „[V] Moxa NPort Server DE-302 Device Server LAN auf 2x RS232 (25€)“ · Markt ·
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PDF
s_p305_intel_mm_pro_p300.pdf
(mm) 69.85 +/- 0.25 Outlin Height (mm) 9.5 e dimen Depth (mm) 100.2 +/- 0.25 sions Weight (g) 95 (max.) 95 (max.) 102 (max.) 102 (max.) Table 1-2 2.5-inch HDD dimensions Parameter Standard value FUJITSU FUJITSU FUJITSU MHX2250BT MHX2300BT MHZ2400BT Width 100 (mm) Outline dimensi Height 12.5 (mm) ons
in „LCD-Inverter kaputt - wer kann helfen?“ · PC Hard- und Software ·
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PDF
LPC3130_31.pdf
MULTILAYER MATRIX BUFFER CONTROLLER DMA transfer request ECC ENCODER/ DECODER NAND INTERFACE 002aae127 Fig 4. Block diagram of the NAND flash controller This module has the following features: • Dedicated NAND flash interface with hardware controlled read and write accesses. • Wear leveling support with
in „LCD-Interface LPC3131“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BT-WiFi-52rf5541.pdf
Interrupt not reflected on the IRQ pin 0: Reflect TX_DS as active low interrupt on the IRQ pin MASK_MAX_RT 4 0 R/W Mask interrupt caused by MAX_RT 1: Interrupt not reflected on the IRQ pin 0: Reflect MAX_RT as active low interrupt on the IRQ pin Enable CRC. Forced high if one of EN_CRC 3 1 R/W the bits
in „JDY-40 ein neuer Geniestreich aus China?“ · Mikrocontroller und Digitale Elektronik ·
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STV0299B.pdf
decoder, periods. The maximum programmable value is several combinations are possible, at different 127/256 (higher error rates are of no practical levels: use). The demodulator may accept either QPSK or The Puncture Rate and Synchro Register is in BPSK signals - the only impact is on the carrier Address
in „Pollin - Receiver-Mainboard mit Twin DVB-[T,C] Tuner, NXP PNX8950EH“ · Mikrocontroller und Digitale Elektronik ·
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PDF
825_1_.pdf
des Wählers kann in diesem Modell eigentlich keine Rede sein, da sein Handeln - in der Terminologie Max Webers - nicht als „Mittel für rational, als Erfolg, erstrebte und abgewogene eigne Zwecke“ (WEBER 1980: 12), also „zweckrational“ eingesetzt wird. Der einzige Zweck der Wahl besteht mitunter darin,
in „Fachkräftemangel in Bayern“ · Ausbildung, Studium & Beruf ·
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PDF
ILI9325.pdf
4.5V ~ 6.0V VGH 10V ~ 20V 6 Liquid Crystal Drive VGL -5V ~ -15V Voltages VCL -1.9V ~ -3.0V VGH - VGL Max. 32V Vci - VCL Max. 6.0V DDVDH Vci1 x2 7 Internal Step-up Circuits VGH Vci1 x4, x5, x6 VGL Vci1 x-3, x-4, x-5 VCL Vci1 x-1 The information contained herein is the exclusive property of ILI Technology
in „Programmierung von ILI9325 TFT Display“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ILI9325DS_V0.35.pdf
4.5V ~ 6.0V VGH 10V ~ 20V 6 Liquid Crystal Drive VGL -5V ~ -15V Voltages VCL -1.9V ~ -3.0V VGH - VGL Max. 32V Vci - VCL Max. 6.0V DDVDH Vci1 x2 VGH Vci1 x4, x5, x6 7 Internal Step-up Circuits VGL Vci1 x-3, x-4, x-5 VCL Vci1 x-1 The information contained herein is the exclusive property of ILI Technology
in „[V]erkaufe TFT 2.8" und TFT 2.4" mit adapter PCB“ · Markt ·
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PDF
ILI9325DS_V0.28.pdf
4.5V ~ 6.0V VGH 10V ~ 20V 6 Liquid Crystal Drive VGL -5V ~ -15V Voltages VCL -1.9V ~ -3.0V VGH - VGL Max. 32V Vci - VCL Max. 6.0V DDVDH Vci1 x2 7 Internal Step-up Circuits VGH Vci1 x4, x5, x6 VGL Vci1 x-3, x-4, x-5 VCL Vci1 x-1 The information contained herein is the exclusive property of ILI Technology
in „Chinesisches TFT LCD zum Schnäppchenpreis“ · Mikrocontroller und Digitale Elektronik ·
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PDF
cc1100.pdf
N 010 -84.5 -78.5 -72 -66 • AGCCTRL2.MAX_LNA_GAIN A _ 011 -82.5 -76.5 -70 -64 • AGCCTRL2.MAX_DVGA_GAIN A 100 -80.5 -74.5 -68 -62 L • AGCCTRL1.CARRIER_SENSE_ABS_THR X 101 -78 -72 -66 -60 A • AGCCTRL2.MAGN_TARGET M 110 -76.5 -70 -64 -58 • For a given AGCCTRL2.MAX_LNA_GAIN 111 -74.5 -68 -62 -56 and AGCCTRL2.MAX_DVGA_GAIN setting the Table 27: Typical RSSI Value in dBm at CS absolute threshold can be adjusted ±7 dB in steps of 1 dB using Threshold with Default
in „Scrambler für Funkstrecke“ · Mikrocontroller und Digitale Elektronik ·
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technical.pdf
used to model the transmission characteristic of operational amplifiers. I = 0 I = 0 (11.4) 1 3 V2= V max ·2 arctan π ·G·(V −1V ) 3 (11.5) π 2·V max 127 with V being the maximum output voltage swing and G the voltage amplification. To model max the small-signal behaviour (AC analysis), it is necessary to
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Datei
main.lss.txt
3c4: b7 01 movw r22, r14 3c6: 80 df rcall .-256 ; 0x2c8 <ispReadFlash> 3c8: 8f 37 cpi r24, 0x7F ; 127 3ca: 51 f4 brne .+20 ; 0x3e0 <ispWriteFlash+0xac> return 0; }; if ((uint8_t) (TIMERVALUE - starttime) > CLOCK_T_320us) { 3cc: 82 b7 in r24, 0x32 ; 50 3ce: 8c 19 sub r24, r12 3d0: 8d 33 cpi r24, 0x3D
in „2 Programme in einem AVR“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATMEGA8_DATENBLATT.pdf
to eight bits. In phase correct PWM mode the counter is incremented until the counter value matches MAX. When the counter reaches MAX, it changes the count direction. The TCNT2 value will be equal to MAX for one timer clock cycle. The timing diagram for the phase correct PWM mode is shown on Figure 51
in „I2C/TWI TWBR > 10 warum?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
DDS.vhd
in integer:=0; DOUT : out std_logic_vector (31 downto 0); DIN_CNT_MAX: in integer:=0 ); end DDS; -------------------------------------------------- Architecture BEHAVIOUR of DDS is -------------------------------------------------- signal RESULT : signed (31 downto 0)
in „DDS mit DE0-Nano Board nur niedrige Frequenzen?“ · FPGA, VHDL & Co. ·
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PDF
A300_ATMEGA8xxx.pdf
to eight bits. In phase correct PWM mode the counter is incremented until the counter value matches MAX. When the counter reaches MAX, it changes the count direction. The TCNT2 value will be equal to MAX for one timer clock cycle. The timing diagram for the phase correct PWM mode is shown on Figure 51
in „atMega8-16 Au beschreiben“ · Mikrocontroller und Digitale Elektronik ·
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PDF
db_atmega8.pdf
to eight bits. In phase correct PWM mode the counter is incremented until the counter value matches MAX. When the counter reaches MAX, it changes the count direction. The TCNT2 value will be equal to MAX for one timer clock cycle. The timing diagram for the phase correct PWM mode is shown on Figure 51
in „ADC-Input und Auswahlverfahren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AVR_ATmega_328PB.pdf
set. The first figure below illustrates timing data for basic Timer/Counter operation close to the MAX value in all modes other than Phase Correct PWM mode. Figure 19-8 Timer/Counter Timing Diagram, no Prescaling clkI/O clkTn (clI/O1) TCNTn MAX - 1 MAX BOTTOM BOTTOM + 1 TOVn The next figure shows the
in „ATmega328PB: UART(MC) empfängt falsche Daten“ · Mikrocontroller und Digitale Elektronik ·
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HX8340-B_T__DS_preliminary_v01_080313.pdf
.................................................................................................. 127 8.29 Display Control 1 Register (R26h).................................................................................................. 128 8.30 Display Control 2 Register (R27h)...................
in „SAMMELBESTELLUNG: 2"2 TFT Display mit 16bit digital interface“ · Markt ·
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PDF
avr-libc-user-manual-1.8.0.pdf
_MAX UINT32_MAX • #define INT_FAST64_MAX INT64_MAX • #define INT_FAST64_MIN INT64_MIN • #define UINT_FAST64_MAX UINT64_MAX Limits of integer types capable of holding object pointers • #define INTPTR_MAX INT16_MAX • #define INTPTR_MIN INT16_MIN • #define UINTPTR_MAX UINT16_MAX Limits of greatest-width integer types • #define INTMAX_MAX INT64_MAX • #define INTMAX_MIN INT64_MIN • #define UINTMAX_MAX UINT64_MAX Limits
in „Interrupt Probleme beim Arduino“ · Mikrocontroller und Digitale Elektronik ·
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Datei
version_1p3_assembler.asm
GET EXPONENT JZ SQR41 ;EXIT IF ZERO ADD A,#128 ;BIAS THE EXPONENT JNC SQR1 ;SEE IF < 80H RR A ANL A,#127 SJMP SQR2 ; SQR1: CPL A ;FLIP BITS INC A RR A ANL A,#127 ;STRIP MSB CPL A INC A ; SQR2: ADD A,#128 ;BIAS EXPONENT MOVX @R0,A ;SAVE IT ; ; NEWGUESS = ( X/OLDGUESS + OLDGUESS) / 2 ; SQR4: ACALL P_T2 ;
in „Spaß mit Kloeckner-Moeller PS3 in BASIC(?)“ · Projekte & Code ·
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Datei
version_1p3_assembler.asm
GET EXPONENT JZ SQR41 ;EXIT IF ZERO ADD A,#128 ;BIAS THE EXPONENT JNC SQR1 ;SEE IF < 80H RR A ANL A,#127 SJMP SQR2 ; SQR1: CPL A ;FLIP BITS INC A RR A ANL A,#127 ;STRIP MSB CPL A INC A ; SQR2: ADD A,#128 ;BIAS EXPONENT MOVX @R0,A ;SAVE IT ; ; NEWGUESS = ( X/OLDGUESS + OLDGUESS) / 2 ; SQR4: ACALL P_T2 ;
in „Basic für 80C31“ · Mikrocontroller und Digitale Elektronik ·
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Datei
IS52Basic.a51
GET EXPONENT JZ SQR41 ;EXIT IF ZERO ADD A,#128 ;BIAS THE EXPONENT JNC SQR1 ;SEE IF < 80H RR A ANL A,#127 SJMP SQR2 ; SQR1: CPL A ;FLIP BITS INC A RR A ANL A,#127 ;STRIP MSB CPL A INC A ; SQR2: ADD A,#128 ;BIAS EXPONENT MOVX @R0,A ;SAVE IT ; ; NEWGUESS = ( X/OLDGUESS + OLDGUESS) / 2 ; SQR4: ACALL P_T2 ;
in „Layout für MCS51 Experimentierboard“ · Projekte & Code ·
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Datei
IS52Basic.a51
GET EXPONENT JZ SQR41 ;EXIT IF ZERO ADD A,#128 ;BIAS THE EXPONENT JNC SQR1 ;SEE IF < 80H RR A ANL A,#127 SJMP SQR2 ; SQR1: CPL A ;FLIP BITS INC A RR A ANL A,#127 ;STRIP MSB CPL A INC A ; SQR2: ADD A,#128 ;BIAS EXPONENT MOVX @R0,A ;SAVE IT ; ; NEWGUESS = ( X/OLDGUESS + OLDGUESS) / 2 ; SQR4: ACALL P_T2 ;
in „Layout für MCS51 Experimentierboard“ · Projekte & Code ·
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Datei
IS52Basic.a51
GET EXPONENT JZ SQR41 ;EXIT IF ZERO ADD A,#128 ;BIAS THE EXPONENT JNC SQR1 ;SEE IF < 80H RR A ANL A,#127 SJMP SQR2 ; SQR1: CPL A ;FLIP BITS INC A RR A ANL A,#127 ;STRIP MSB CPL A INC A ; SQR2: ADD A,#128 ;BIAS EXPONENT MOVX @R0,A ;SAVE IT ; ; NEWGUESS = ( X/OLDGUESS + OLDGUESS) / 2 ; SQR4: ACALL P_T2 ;
in „Basic für 80C31“ · Mikrocontroller und Digitale Elektronik ·
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Datei
BASIC131-PS3.a51
GET EXPONENT JZ SQR41 ;EXIT IF ZERO ADD A,#128 ;BIAS THE EXPONENT JNC SQR1 ;SEE IF < 80H RR A ANL A,#127 SJMP SQR2 ; SQR1: CPL A ;FLIP BITS INC A RR A ANL A,#127 ;STRIP MSB CPL A INC A ; SQR2: ADD A,#128 ;BIAS EXPONENT MOVX @R0,A ;SAVE IT ; ; NEWGUESS = ( X/OLDGUESS + OLDGUESS) / 2 ; SQR4: ACALL P_T2 ;
in „Spaß mit Kloeckner-Moeller PS3 in BASIC(?)“ · Projekte & Code ·
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Datei
IS51Basic133.a51
GET EXPONENT JZ SQR41 ;EXIT IF ZERO ADD A,#128 ;BIAS THE EXPONENT JNC SQR1 ;SEE IF < 80H RR A ANL A,#127 SJMP SQR2 ; SQR1: CPL A ;FLIP BITS INC A RR A ANL A,#127 ;STRIP MSB CPL A INC A ; SQR2: ADD A,#128 ;BIAS EXPONENT MOVX @R0,A ;SAVE IT ; ; NEWGUESS = ( X/OLDGUESS + OLDGUESS) / 2 ; SQR4: ACALL P_T2 ;
in „Layout für MCS51 Experimentierboard“ · Projekte & Code ·
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PDF
dirt_devil_dd777_1.pdf
Kabelloser Staubsauger Modell DD767 (-0/.../-9) DD 777 (-0/.../-9) Akku Li-ion 21,6V Li-ion 28,8V max. Betriebsdauer ca. 35 min ca. 45 min max. Ladedauer ca. 4 Stunden Netzadapter Input: 100 – 240V ~, Input: 100 – 240V ~, 50/60 Hz, 0,5 A 50/60 Hz, 0,8 A Output: 25V, 600 mA Output: 34V, 600 mA Fassungsvermögen
in „Suche Zahnriemen für Dirt Devil DD777 Turbobürste (50 Zähne)“ · Markt ·
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PDF
MFRC530-NXP.pdf
solution 5. Quick reference data Table 1. Quick reference data Symbol Parameter Conditions Min Typ Max Unit T amb ambient temperature 40 - +150 C T stg storage temperature 40 - +150 C V digital supply voltage 0.5 +5 +6 V DDD V DDA analog supply voltage 0.5 +5 +6 V V DD(TVDD) TVDD supply voltage
in „[V] 3St. RFID (Mifare) Lese ICs NXP MFRC530 SO32 (4€)“ · Markt ·
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ATtiny841_Datasheet.pdf
Flag Mode WGM02 WGM01 WGM00 Mode of Operation TOP OCRx at Set on(1) 0 0 0 0 Normal 0xFF Immediate MAX 1 0 0 1 PWM, Phase Correct 0xFF TOP BOTTOM 2 0 1 0 CTC OCRA Immediate MAX 3 0 1 1 Fast PWM 0xFF BOTTOM MAX 4 1 0 0 Reserved – – – 5 1 0 1 PWM, Phase Correct OCRA TOP BOTTOM 6 1 1 0 Reserved – – – 7
in „TOCPMSA1 und TOCPMCOE Verhalten beim Attiny 841“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny441_841.pdf
Flag Mode WGM02 WGM01 WGM00 Mode of Operation TOP OCRx at Set on(1) 0 0 0 0 Normal 0xFF Immediate MAX 1 0 0 1 PWM, Phase Correct 0xFF TOP BOTTOM 2 0 1 0 CTC OCRA Immediate MAX 3 0 1 1 Fast PWM 0xFF BOTTOM MAX 4 1 0 0 Reserved – – – 5 1 0 1 PWM, Phase Correct OCRA TOP BOTTOM 6 1 1 0 Reserved – – – 7
in „Suche nach ATtiny mit ADC und Gain > 20x“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny841_Datasheet.pdf
Flag Mode WGM02 WGM01 WGM00 Mode of Operation TOP OCRx at Set on(1) 0 0 0 0 Normal 0xFF Immediate MAX 1 0 0 1 PWM, Phase Correct 0xFF TOP BOTTOM 2 0 1 0 CTC OCRA Immediate MAX 3 0 1 1 Fast PWM 0xFF BOTTOM MAX 4 1 0 0 Reserved – – – 5 1 0 1 PWM, Phase Correct OCRA TOP BOTTOM 6 1 1 0 Reserved – – – 7
in „sleep und Interrupt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny841_Datasheet.pdf
Flag Mode WGM02 WGM01 WGM00 Mode of Operation TOP OCRx at Set on(1) 0 0 0 0 Normal 0xFF Immediate MAX 1 0 0 1 PWM, Phase Correct 0xFF TOP BOTTOM 2 0 1 0 CTC OCRA Immediate MAX 3 0 1 1 Fast PWM 0xFF BOTTOM MAX 4 1 0 0 Reserved – – – 5 1 0 1 PWM, Phase Correct OCRA TOP BOTTOM 6 1 1 0 Reserved – – – 7
in „Takt-Vorskalierungsregister beim Attiny841“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Book_of_Knowledge_german.pdf
Minimale Eingangsspannung 2 V I,NOM IOUTMI O2 I V V Maximale Eingangsspannung 3 V I,NOM OU TMAX O3 IN,MAX 4 V I V IN,IN OUT,NOM O4 IOUT,NOM Nennausgangsstrom 5 V I V IN,IN OUTMI O5 Minimaler Ausgangsstrom 6 V I V IOUT,MIN IN,IN OU TMAX O6 7 V I V I Maximaler Ausgangsstrom I,MAX OUT,NOM O7 OUT,MAX 8 V I
in „Eingangsfilter DC-DC-Wandler - mal wieder“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
RECOM_de_Buch.pdf
Minimale Eingangsspannung 2 V I,NOM IOUTMI O2 I V V Maximale Eingangsspannung 3 V I,NOM OU TMAX O3 IN,MAX 4 V I V IN,IN OUT,NOM O4 IOUT,NOM Nennausgangsstrom 5 V I V IN,IN OUTMI O5 Minimaler Ausgangsstrom 6 V I V IOUT,MIN IN,IN OU TMAX O6 7 V I V I Maximaler Ausgangsstrom I,MAX OUT,NOM O7 OUT,MAX 8 V I
in „Schaltnetzteil Grundlage“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
magnetic.pdf
which has two extreme values along the hysteresis curve Bx,1− B x,2 B x,1− B x,2 µmin = min , and µ max = max . (5.58) H x,1Hx,2H x,1− H x,2 Hx,1,Hx,2H x,1− H x,2 Hereµ min andµ max aretheminimumandmaximumslopeofthehysteresischaracteristics. The inequality µmin ≤ µ ≤ µ max (5.59) is obvious, from which
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PDF
20120224183241077.pdf
3.60V,Ta=-40℃~+85℃ 13.3.1. Clock Characteristics Table 13-3 Item Symbol Unit Timing Diagram Min. Typ. Max. Note IOVCC = VCC = 3.0V, RC Oscillation clock fosc kHz 25°C 384 427 470 NOTE︰Value of Typ.、Min. and Max. is decided by the setting of Initial Code at Page 61 80-System Bus Interface Timing Characteristics
in „Handydummy (Attrappe)mit richtigem Display - Sony Ericsson Vivaz“ · Mikrocontroller und Digitale Elektronik ·
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PDF
hm1000.pdf
Interfaces Operation: Autoset, Menu and help functions Rise time: ‹3.5ns (multilingual) Overshoot: max. 1% Save/Recall (instrument parameter settings): 9 Bandwith limiting (selectable): about 20MHz (5mV/cm - 20V/cm) Signal display: max. 4 traces Deflection Coefficients(CH1,2):14 calibrated steps 1mV
in „defektes Hameg HM-1000“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ps42p3sx_ch._d58a.pdf
CONPENSA 616 PC TTX Contrast offset 00 BLUE CONPENSA 616 -------------------------------------- NR SCALE MAX 64 WTE GAIN 58 R GAIN 127 127 NR SCALE MIN 18 RAST VSIZE 1023 G GAIN 127 127 DE GAIN COR 03 RAST HSIZE 895 B GAIN 127 127 DE GAIN CLIP (90/90/60) SHARP OFFSET 17 R,CR OFFSET 54 63 CE UPPER 240 CLK DLY
in „Netzteil prüfen wie stelle ich das richtig an?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
wt8871.pdf
detect region 55h R 7:0 x1min[7:0] Active region H min 56h R 3:0 x1min[11:8] 7:4 Reserved 57h R 7:0 x1max[7:0] Active region H max 58h R 3:0 x1max[11:8] 7:4 Reserved 59h R 7:0 y1min[7:0] Active region V min 5Ah R 3:0 y1min[11:8] 7:4 Reserved 5Bh R 7:0 y1max[7:0] Active region V max 5Ch R 3:0 y1max[11:8]
in „LCD Display HT070I36-E00“ · Mikrocontroller und Digitale Elektronik ·
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PDF
M16C62_Hardware.pdf
) 0ns.min th(BCLK–AD) 25ns.max 4ns.min ADi BHE td(BCLK–ALE) th(BCLK–ALE) –4ns.min th(RD–AD) ALE 25ns.max (tcyc/2)ns.min td(BCLK–RD) th(BCLK–RD) 25ns.max 0ns.min RD Write timing BCLK th(BCLK–CS) d(BCLK–CS) tcyc th(WR–CS) 4ns.min 25ns.max
in „M16C Parallel pinbelegung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
e8_manual_5_July_2008.pdf
. Normally aspirated engines, on the other hand, can use NOS at full load, in this case the max load value should be set to 150kpa (ie the nitrous is always enabled). The max load value is an absolute pressure value in kpa. • Max RPM - If RPM exceeds this value the NOS output will be switched
in „Vollprogrammierbare Zündanlage für 1Zylinder 2 und 4 Takt Motoren“ · Mikrocontroller und Digitale Elektronik ·
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Datei
output.txt
$(CPPFLAGS) $(TARGET_ARCH) -c # Standard CTANGLE = ctangle # Makefile (from `Makefile-1732', line 127) ZOPT = --fno-omit-frame-pointer # Standard .LIBPATTERNS = lib%.so lib%.a # Standard LINK.C = $(LINK.cc) # Umgebung PWD = /home/cjulius/nasdata/Z80/2014-11-10-1530 # Makefile (from `Makefile-1732',
in „Retro Fieber: Z80 oder 68000 ?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
bootloaderV25.a51
db LOADER_OPTIONS ; =============== S U B R O U T I N E ======================================= __MaxFunc set 11 ;11 functions by default FunctionDispatcher: ; 0x3804 __i set R3 ; __result set R1 __len set OverLay+1 __addr set OverLay+2 mov A, Marker1 ;remove this xrl A, #0x5A jz $+4 sjmp $ ; clr A
in „uC für 0,20€ CH552 / CH554 von WCH Billig Micro mit USB Funktion, Chip vorstellung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
srf02doku_dr.pdf
Vorteil dieses Busses besteht darin das er eigentlich nur aus zwei Leitungen besteht und dennoch bis zu 127 verschiedenste Schaltungen , Sensoren oder Chips daran angeschlossen werden können. Sollten Sie den I2C-Bus noch nicht näher kennen, empfehlen wir die Webseite: http://www.roboternetz.de/wissen/index.php
in „Berechnung der Entfernung mit SRF02“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AVR128DA28_32_48_64.pdf
...................................................................................................127 15.1. Features...................................................................................................................................127 15.2. Overview...................................
in „AVR64EA28: PIT-Interrupt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LIS302DL.pdf
Table 6. I C slave timing values 2 (1) 2 (1) I C standard mode I C fast mode Symbol Parameter Unit Min Max Min Max (SCL) SCL clock frequency 0 100 0 400 KHz t w(SCLL) SCL clock low time 4.7 1.3 µs tw(SCLH) SCL clock high time 4.0 0.6 su(SDA) SDA setup time 250 100 ns th(SDA) SDA data hold time 0 3.45 (2)
in „Verwirrung mit LIS302“ · Mikrocontroller und Digitale Elektronik ·
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PDF
atmel-8393-mcu_wireless-atmega256rfr2-atmega128rfr2-atmega64rfr2_datasheet.pdf
9.5.1.1.3 PHY Payload (PHY Service Data Unit, PSDU) The PSDU has a variable length between 0 and aMaxPHYPacketSize (127, maximum PSDU size in octets) whereas the last two octets are used for the Frame Check Sequence (FCS). The length of the PSDU is signaled by the frame length field (PHR) as described
in „AVR-Verlustleistung maximieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
CompactFlashSpecifications.pdf
Table 6: Absolute Maximum Conditions Parameter Symbol Conditions Input Power Vcc -0.3V min. to 6.5V max. Voltage on any pin except Vcc with respect to GND. V -0.5V min. to Vcc + 0.5V max. Table 7: Input Power Voltage Maximum Average RMS Current Measurement Method 3.3V ± 5% 75 mA (500mA in Power Level
in „CompactFlash im I/O Mode“ · Mikrocontroller und Digitale Elektronik ·
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PDF
USB_Type-C_Specification_Release_1.2.pdf
plug or receptacle. See Figure 3-57. The following apply to the power and signal contacts: • 40 mΩ (Max) initial for V BUS, GND and all other contacts. • 50 mΩ (Max) after environmental stresses. • Measure at 20 mV (Max) open circuit at 100 mA. Refer to Section 3.8 for environmental requirements and test