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irfb3077pbf.pdf
Output Characteristics Fig 2. Typical Output Characteristics 1000 2.5 c ID = 75A ) a V = 10V Α i GS n e e R 2.0 u 100 n C T = 175°C O ) c J r e u u l S S a1.5 o t r - n N a 10 TJ= 25°C a ( D D , ) 1.0 ID n VDS = 25V ( ≤ 60μs PULSE WIDTH D R 1 0.5 2.0 3.0 4.0 5.0 6.0 7.0 8.0 -60 -40 -20 0 20 40 60 80 100
in „Suche nach Treiber für Power-Mosfet“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
FB180SA10.pdf
Voltage Gate-to-Source Voltage 1000 10000 OPERATION IN THIS AREA LIMITED ) BY RDS(on) ( t TJ= 150 C e100 )000 r ( C n 10us i e r u D 10 C100 100us e i r r v T = 25 C D 1ms e J D , 1 I 10 10ms D IS TC= 25 C TJ= 150 C VGS = 0 V Single Pulse 0.1 1 0.2 0.6 1.0 1.4 1.8 1 10 100 1000 VSD ,Source-to-Drain Voltage
in „Strom bis 200A schalten mit Power MOSFET“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SST39LF010-SST39LF020-SST39LF040-SST39VF010-SST39VF020-SST39VF040-Data-Sheet-DS20005023.pdf
SST39LF010/SST39LF020/SST39LF040/ SST39VF010/SST39VF020/SST39VF040 1-Mbit/2-Mbit/4-Mbit (x8) Multi-Purpose Flash Features Product Description • Organized as 128K x 8/256K x 8/512K x 8 The SST39LF010/020/040 and SST39VF010/020/040 • Single Voltage Read and Write Operations: devices are 128K x8, 256K x8 and 5,124K x8 CMOS - 3.0V-3.6V for SST39LF010/020/040 Multi-Purpose Flash (MPF) manufactured with Microchip’s proprietary, high-performance CMOS - 2.7V-3.6V for SST39VF010/020/040 ® • Superior
in „[V] 10St. neue OPV Flash Micochip SST39LF040 4Mb 3-3.6V Parallel Flash PLCC32 (10€)“ · Markt ·
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SED1520.pdf
R C C ( ) S S 0 1 2 3 4 5 6 7 8 9 0 1 1 0 S R ( ( G G G G G G G G G G G G G G G G G G G G G G B B S / ( L S 0 E E E E E E E E E E E E E E E E E E E E E E 0 D V R E C5C A S S S 0 S S S S S5S S S S S 0 S S S S 5 S S 8 7 7 6
in „suche Text- LCD“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Batterie_Anzeige.pdf
practice 22 kΩ will suffice. This results in a theoretical input voltage of 4.625 V (10 / (22 + 10) x 14.8 V). The thresholds for the two other comparators will therefore be 4.125 V (10 / 32 x 13.2 V) and 3.6875 V (10 / 32 x 11.8 V). The next step is to convert the reference voltage U refith a second
in „Akku Tiefenentladungsschutz“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Batterie_Anzeige.pdf
practice 22 kΩ will suffice. This results in a theoretical input voltage of 4.625 V (10 / (22 + 10) x 14.8 V). The thresholds for the two other comparators will therefore be 4.125 V (10 / 32 x 13.2 V) and 3.6875 V (10 / 32 x 11.8 V). The next step is to convert the reference voltage U refith a second
in „Li-Ion Akku Ladezustand“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
U2008B.pdf
Ordering Information Extended Type Number Package Remarks U2008B-x DIP8 Tube U2008B-xFP SO8 Tube U2008B-xFPG3 SO8 Taped and reeled 230 V ~ 22 kW/2W BYT51K L R1 D 1 R 2 R 8 amax 680 kW 470 kW Load 7 6 Limiting Voltage Mains voltage detector detector compensation Automatic
in „230V Dimmer µC gesteuert“ · Mikrocontroller und Digitale Elektronik ·
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4x20_Display.pdf
.7 s d o S W 0 7 N N . V V V R R E B B P P 0 .H.H2 .0 0 .04 .3 D D .S. O3 .0 0 .74 I 1 5.4 N m m U 5 3 0.4 T 4 9 1 1 T 9 5 6 4.0 t l 2 5 0.0 h c T T k b E a o I D i L r L 8 0 E . . 2 2 4 0 . . 0 0 BOOKBINDING AREA MODE NO. PRODUCT PAGE
in „Leerzeichen beim Display“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HF_Multi_ISO_OEM_V1_0_Datasheet_02.pdf
boot-loader enables firmware field upgrades via the serial interface. Typical Applications • e-Payment • PC Access • e-Toll Road Pricing • Authentication • e-Ticketing for Events & Public Transport • Logistics & Supply Chain Management • Access Control • Printer / Mobile Devices / Production Equipment
in „[V] 2 RFID Leser 125Khz und 13,56MHz + Karten“ · Markt ·
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PDF
HF_Multi_ISO_OEM_V1_0_Datasheet_02_1_.pdf
boot-loader enables firmware field upgrades via the serial interface. Typical Applications • e-Payment • PC Access • e-Toll Road Pricing • Authentication • e-Ticketing for Events & Public Transport • Logistics & Supply Chain Management • Access Control • Printer / Mobile Devices / Production Equipment
in „[V] 2 RFID Leser 125Khz und 13,56MHz + Karten“ · Markt ·
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spru790_QEP_Reference_Manual_ACHTUNG_nur_F280X.pdf
) Module 17 PRELIMINARY Description Table 1. EQEP Memory Map (Base Address EQEP1: 0x6B00, EQEP2 = 0x6B1F)(Continued) Size(x16)/ Name Offset #shadow Reset Register Description QCPRDLAT 0x20 1/0 0x0000 eQEP Capture Period Latch reserved 0x21 31/0 to 0x3F 18 Enhanced QEP (eQEP) Module SPRU790
in „QEP 32-Bit mit tms320f2812“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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PDF
lm25117.pdf
be calculated as follows: V æ V ö LO = OUT ´ ç1- OUT ÷ [H] IPP(MAX)´ fSW ç VIN(MAX)÷ è ø (26) L = 3.3V x 1 - 3.3V•= 7.2 PH O 9A x 0.2 x 230 kHz ¤ 36V ‚ ' „ (27) The closest standard value of 6.8μH was chosen for LO. Using the value of 6.8μH forOL , calculaPP again. This step is necessary if the chosen value ofOL differs significantly from the calculated value. From Equation 11, PP(MAX)= 3.3V x¤1 -3.3V‚ = 1.9A 6.8 PH x 230 kHz ' 36V„ (28) At the minimum input voltage, this value is 0.95A. 8.3.6 Diode Emulation Function The DEMB pin is left floating since this example uses diode emulation
in „DC-DC Wandler mit MCP42010“ · Mikrocontroller und Digitale Elektronik ·
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S29JL064H_00_A7_e.pdf
NC* NC* A13 A12 A14 A15 A16 BYTE# DQ15/A-1 VSS NC* NC* C6 D6 E6 F6 G6 H6 J6 K6 A9 A8 A10 A11 DQ7 DQ14 DQ13 DQ6 C5 D5 E5 F5 G5 H5 J5 K5 V WE# RESET# A21 A19 DQ5 DQ12 CC DQ4 C4 D4 E4 F4 G4 H4 J4 K4 RY/BY# WP#/ACC A18 A20 DQ2 DQ10 DQ11 DQ3 C3 D3 E3 F3 G3 H3 J3 K3 A7
in „[Verkaufe] 5xSDRAM (4Meg x 16 x 4 Banks) und 5xFLASH (64Meg 8 o. 16 Bit)“ · Markt ·
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Datei
DABLCD.ino
(FMFreq_storage, uint16_t); #endif #endif void ServiceData(void); uint8_t DAB_scan(void); void process_buttons(uint8_t buttons); void process_display(void); //LCD custom chars for accented vowels. const uint8_t abar[] = {0x0E,0x00,0x0E,0x01,0x0F,0x11,0x0F,0x00}; //0x08 const uint8_t ebar[] = {0x0E,0x00,0x0E,0x11,0x1F,0x10,0x0E,0x00}; //0x09 const uint8_t ibar[] = {0x0E,0x00,0x0C,0x04,0x04,0x04,0x0E,0x00}; //0x0A const uint8_t obar[] = {0x0E,0x00,0x0E,0x11,0x11,0x11,0x0E,0x00};
in „DAB Shield Frage zu Arduino Code“ · Mikrocontroller und Digitale Elektronik ·
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Datei
DABLCD.ino
(FMFreq_storage, uint16_t); #endif #endif void ServiceData(void); uint8_t DAB_scan(void); void process_buttons(uint8_t buttons); void process_display(void); //LCD custom chars for accented vowels. const uint8_t abar[] = {0x0E,0x00,0x0E,0x01,0x0F,0x11,0x0F,0x00}; //0x08 const uint8_t ebar[] = {0x0E,0x00,0x0E,0x11,0x1F,0x10,0x0E,0x00}; //0x09 const uint8_t ibar[] = {0x0E,0x00,0x0C,0x04,0x04,0x04,0x0E,0x00}; //0x0A const uint8_t obar[] = {0x0E,0x00,0x0E,0x11,0x11,0x11,0x0E,0x00};
in „DAB Shield Frage zu Arduino Code“ · Mikrocontroller und Digitale Elektronik ·
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doc7559.pdf
The DC universal motor used can be modeled using a very classical scheme as illustrated in Figure 3. Figure 3. DC Motor Equivalent Model i(t) J U f i(t) e(t) U L R 4 AVR480 7559B–AVR–12/06 AVR480 Differential (t) and Laplace domain (p) equations are extracted for Electrical and Mechanical elements:
in „Stromflussabbruch mit Arduino Nano steuern?“ · Mikrocontroller und Digitale Elektronik ·
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ca_pir_motionsensors_1192_en.pdf
electrical characteristics please see page 16 e r s N Dimension (in mm, inches in brackets) Detection area M nt売 A n 品 Y X-Y cross section at 3m (9.8ft) C nl (16.5mt) 5m(16.4ft) 秘 U (54.8°) 44.7° 4m(13.1ft) (9.8ft) 3m 2m(6.6ft) 1m(3.3ft) 0 1m(3.3ft
in „PIR Sensor Funktion“ · Mikrocontroller und Digitale Elektronik ·
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vestel_17mb70_sm.pdf
the second I2C can be used as a debugging interface • 16 GPIO pins • Five PWM outputs • Support for 8-bit NOR flash up to 64 MB • Support for 8-bit/16-bit NAND flash up to 128 MB c) PNX5120EH - Block Diagram 26 8. FPGA (Spartan-3E) XC3S1200E a) General Description The Spartan™-3E family of Field-Programmable
in „LED TV Medion MD 30630 defekt, nicht einmal standby Lampe“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
Struct_receiveLEDTon.ino
version of your Moteino! (others: RF69_433MHZ, RF69_868MHZ) #define KEY "PolizeiArduino123" //has to be same 16 characters/bytes on all nodes, not more not less! #define LED 9 #define SERIAL_BAUD 9600 #define ACK_TIME 30 // # of ms to wait for an ack int melody[] = { NOTE_C4, NOTE_G3, NOTE_G3, NOTE_A3, NOTE_G3, 0, NOTE_B3, NOTE_C4 }; int noteDurations[] = { 4, 8, 8, 4, 4, 4, 4, 4 }; RFM69 radio; SPIFlash flash(8, 0xEF30); //EF40 for 16mbit windbond chip bool promiscuousMode = false; //set to 'true' to sniff all packets
in „RFM69HW-Arduino Nano "Funkklingel"“ · HF, Funk und Felder ·
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sn74hc595.pdf
necessarily include testing of all parameters. POST OFFICE BOX 65DALLAS, TEXAS 75265 1 SN54HC595, SN74HC595 8-BIT SHIFT REGISTERS WITH 3-STATE OUTPUT REGISTERS SCLS041C – DECEMBER 1982 – REVISED JUNE 2000 FUNCTION TABLE INPUTS FUNCTION SER SRCLK SRCLR RCLK OE X X X X H Outputs Q –Q are disabled. A H X X X X
in „Wieviele 74HC595 am SPI-Bus möglich?“ · Mikrocontroller und Digitale Elektronik ·
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GM47_Integrators_Manual_R1C.pdf
115200 E: 1 M: 0 Q: 0 S0: 000 S10: 002 S2: 043 S3: 013 S4: 010 S5: 008 S6: 002 S7: 050 S8: 002 V: 1 X: 4 OK 189 LZT 123 7263 R1C GM47/GM48 INTEGRATOR’S MANUAL 190 LZT 123 7263 R1C 11. Input/Output 11.1 AT*E2IO
in „GM47 GSM Spannungsversorgung aus LiIo-Akku“ · Mikrocontroller und Digitale Elektronik ·
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AD811.pdf
5 X2 X1 +V S W1 200Ω +5V R1 INSET 1.87kΩ U4 U1 R8 R12 AD589 AD834 29.4Ω 6.98kΩ +5V R2 Y1 Y2 –VS W2 174Ω 1 2 3 4 V (±1V FS) FB A C3 –5V –5V 0.1µF R3 +5V LOAD 100Ω GND 7 2 – 8 7 6 5 R9 R13 U3 V R4 29.4Ω 6.98kΩ AD811 6 OUT 1.02kΩ X2 X1 +V S W1 3 + 4 C2 0.1µF U1 0.1µF AD834 FB LOAD Y1 Y2 –VS W2 GND 1 2 3 4 R11 0 VB(±1V FS) 2.49kΩ –5V - –5V 8 0 Figure48.APracticalVideoKeyerCircuit Rev. E | Page 16 of 20 AD811 To generate the 1V dc
in „2 Spannungen in einer Schaltung“ · Analoge Elektronik und Schaltungstechnik ·
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LIS3LV02DQ28.pdf
1B 8 Loaded at boot 0011100 -0011101 1C-1D Reserved CROSS-AXIS XZ, YZ r 0011110 1E CROSS-AXIS XY r 0011111 1F CTRL_REG1 rw 0100000 20 8 CTRL_REG2 rw 0100001 21 8 CTRL_REG3 rw 0100011 22 8 HP_FILTER RESET
in „"Halbleiterkreisel"“ · Mikrocontroller und Digitale Elektronik ·
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LIS3LV02DQ28.pdf
1B 8 Loaded at boot 0011100 -0011101 1C-1D Reserved CROSS-AXIS XZ, YZ r 0011110 1E CROSS-AXIS XY r 0011111 1F CTRL_REG1 rw 0100000 20 8 CTRL_REG2 rw 0100001 21 8 CTRL_REG3 rw 0100011 22 8 HP_FILTER RESET
in „Beschleunigungssensor für ca +/-6g in alle 3 Achsen“ · Mikrocontroller und Digitale Elektronik ·
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NM93C46A.pdf
Pin ORG tied to SS(Note 3) 2.5 2.5 I Output Leakage V e 0V to V b 1 1 mA OL IN CC V Input Low Voltage b0.1 0.8 V IL VIH Input High Voltage 2 VCC a 1 V VOL1 Output Low Voltage IOL e 2.1 mA 0.4 V VOH1 Output High Voltage IOH e
in „Microwire Eeprom 93cs46 programmieren“ · Mikrocontroller und Digitale Elektronik ·
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comparator_qmultiplier_stable_sinewave_oscillator.pdf
S 1+ Q S ) ⎜ 1 ⎟ jX S⎜1+ 2⎟ ⎝ Q S ⎠ 1 1 = + R P jX P Thus, we get the transformation pair: 2 R P R 1+S ( S ) ⎛ 1 ⎞ X P = X S⎜1 + 2 ⎟ ⎝ Q S ⎠ X P has the same sign as X .S Case I: Series R aSd L S ⎛ 1 ⎞ X S L ω S X P = ωL
in „Ultrapure Sinus Wave Generator“ · Analoge Elektronik und Schaltungstechnik ·
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AN26030-Managing-External-Magnetic-Field-Interference-ACS71x-Current-Sensor-ICs.pdf
magnetic devices (for example, in the U-Loop Allegro ™ MicroSystems CAand CB packages, used for theACS75x families of current sensor ICs). 8 The lack of a concentrator has the advantage of nearly eliminating magnetic hysteresis as a source of error in the IC. However, this also leaves theACS71x devices less
in „Vout ACS712 an Analogeingang von 3,3V mc“ · Mikrocontroller und Digitale Elektronik ·
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pcm1796.pdf
fS= 44.1 kHz −1 0.4 −2 0.3 B −3 B 0.2 − − e r v −4 r 0.1 L E i −5 i −0.0 a a p −6 p −0.1 m m - - D −7 D −0.2 −8 −0.3 −9 −0.4 −10 −0.5 0 2 4 6 8 10 12 14 16 18 20 0 2 4 6 8 10 12 14 16 18 20 f − Frequency − kHz f − Frequency −
in „Audio Signal verdoppeln“ · Analoge Elektronik und Schaltungstechnik ·
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XC88xCLM_UM_v1_1.pdf
63 Byte 2 Byte 1 Byte 0 5FFF H …………………………….. 5FC2 H 5FC1 H 5FC0 H 2 … … … … r - y … … … … t 4 - 2 e 1 2 x S L 1 5F3F H …………………………….. 5F02 H 5F01H 5F00 H W 5EFF …………………………….. 5EC2 5EC1 5EC0 3 … H … H … H … H 1 1 et 2 … … … … t 0 -b 2 i e 1 8 x a S L 1 P 5E3F H …………………………….. 5E02 H 5E01 H 5E00 H W h
in „80C517A Paging“ · Mikrocontroller und Digitale Elektronik ·
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Datei
AT90PWM3.xml
></SREG> <SPH> <IO_ADDR>$3E</IO_ADDR> <MEM_ADDR>$5E</MEM_ADDR> <SP8_MASK>0x01</SP8_MASK><SP9_MASK>0x02</SP9_MASK><SP10_MASK>0x04</SP10_MASK><SP11_MASK>0x08</SP11_MASK><SP12_MASK>0x10</SP12_MASK><SP13_MASK>0x20</SP13_MASK><SP14
in „AVRStudio4(SP4) debug mode: ACSR fehlt für AT90PWM3?“ · Mikrocontroller und Digitale Elektronik ·
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mlc-tant.pdf
1608M) R - 0805 (2012M) ( TAJB475M016 0805 (2012M) A - 1206 (3216M) R 1206 (3216M) B - 1411 (3528M) E 1 Tantalum ESR Tant. Imp. & 1210 (3225M) C - 2412 (6026M) n 0.1 Ceramic Imp. Rated Voltage (V) 10 - 500 4 - 50 d Dielectric BaTiO 2 Ta 2 5 p Ceramic ESR I0.01 Capacitance Range X7R - 0.0001 - 3.3 0.1
in „Schaltregler und Tantal-Elkos“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
10350.pdf
Memory Interface: Select 11 E1 P2.2/CS.2 I/O 2) CT 8mA X X Port 2.2 Memory Bank 3 output 12 E2 P2.3/CS.3 I/O 2) CT 8mA X X Port 2.3External Memory Interface: Select Memory Bank 4 output 13/77 System architecture STR71xF Table 3.
in „ARM7TDMI 32-bit RISC CPU - STR 712 FR2 T6 zu verkaufen“ · Markt ·
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MAX31855.pdf
: THIS DATAWAS TAKEN R 0.8 VCC = 3.3V T 0.3 IN PRECISION BATH SO HIGH U V = 3.0V E TEMPERATURE LIMIT IS 90°C C CC M 0.2 L 0.6 R P S 0.1 S 0.4 A M 0 0.2 -0.1 -0.2 0 -40 -20 0 20 40 60 80 100 120 -40 -20 0 20 40 60 80 100 TEMPERATURE
in „Thermoelementcontroller MAX31855 conversion time“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SensAct_PCB.pdf
i i i ¯ 8T ON e n 8T ON i = f,c,h with A and Iibeing tie cross-sectional T(t) = π 2 (2n − 1) 2 = π 2 area and second-order moment, respectively. Eq. (5) was n=1 solved numerically in MATLAB, using the the geometry −(απ t)/(4L2) (−9απ t)/(4L ) × e + e + ··· , (8) of the fabricated actuator (L = 600m, l = 20fm, 1 9 lc= 400m, w = w f h = 15m, w = 25cm). For nickel, the resulting lowest natural frequency of the beam 2 4L was f = ω/2π = 37.89kHz
in „Ätzen von Gold“ · Platinen ·
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APPCHP7.pdf
increase the junction temperature, while negative pulses decrease it. 100 90 Calculation for time t x 80 70 Tj −mb@x= P 1Z thj −mb(t1)2Z thj −mb(t3) 60 +P .Z −P .Z 50 3 thj −mb(t4) 1 thj −mb(t2) 40 30 −P 2Z thj −mb(t4) 15 20 10 0 In equation 15, the values for P , P 1nd 2 are kno3n: P =40W, P =20W and
in „2N3055 , was sind aktuelle Alternativen ?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
APPCHP7.pdf
increase the junction temperature, while negative pulses decrease it. 100 90 Calculation for time t x 80 70 Tj −mb@x= P 1Z thj −mb(t1)2Z thj −mb(t3) 60 +P .Z −P .Z 50 3 thj −mb(t4) 1 thj −mb(t2) 40 30 −P 2Z thj −mb(t4) 15 20 10 0 In equation 15, the values for P , P 1nd 2 are kno3n: P =40W, P =20W and
in „Lineares Netzteil“ · Analoge Elektronik und Schaltungstechnik ·
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AD9857.pdf
8 92 3E T D GND VCC CD D L CS SD D D D D D D D DDD D DL E P CLOCK INPUT 1 2 3 4 NS S S P P A E D Y N R S x TxENABLE TB1 T POWER VCC W2 CONNECTION K RESET L C GND W11 D CIC TEST POINT DPD J8 PARALLEL PORT
in „Updatepin zur Aktivierung beschriebener Kontrollregister“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AD9857.pdf
8 92 3E T D GND VCC CD D L CS SD D D D D D D D DDD D DL E P CLOCK INPUT 1 2 3 4 NS S S P P A E D Y N R S x TxENABLE TB1 T POWER VCC W2 CONNECTION K RESET L C GND W11 D CIC TEST POINT DPD J8 PARALLEL PORT
in „Mit MSP430F2013 parallele Datenübertragung programmieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LTC6802-1.pdf
Regulation 3.09 3.074 5.4 NO EXTERNAL LOAD ON V REF CDC = 2 (CONTINUOUS CELL CONVERSIONS) 3.072 5.2 3.08 T = 85°C 3.070 5.0 A T = 25°C ) 3.07 ) 3.068 A ) 4.8 (F TA= 85°C ( ( TA= 25°C R T = 25°C R TA= 85°C E V A V
in „SPI: kein SCK bei Receive - Warum?“ · Mikrocontroller und Digitale Elektronik ·
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AN10652.pdf
coded in BCD> HEX 09 HEX minute alarm AE <minute alarm 00 to 59 coded in BCD> 0A HEX hour alarm AE x <hour alarm 00 to 23 coded in BCD> 0B HEX day alarm AE x <day alarm 01 to 31 coded in BCD> 0C HEX weekday alarm AE x x x x <weekday alarm 0 to 6> 0D HEX CLKOUT control FE x x x x x FD1 FD0 0E HEX timer
in „Frage zum Counter der RTC PCF8563“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PCF8563-Improve-Clock.pdf
coded in BCD> HEX 09 HEX minute alarm AE <minute alarm 00 to 59 coded in BCD> 0A HEX hour alarm AE x <hour alarm 00 to 23 coded in BCD> 0B HEX day alarm AE x <day alarm 01 to 31 coded in BCD> 0C HEX weekday alarm AE x x x x <weekday alarm 0 to 6> 0D HEX CLKOUT control FE x x x x x FD1 FD0 0E HEX timer
in „Stromsparender Sekundentakt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
CFAG12864BTFHV_v3.0.pdf
Crystalfontz America, Inc. CFAG12864B-TFH-V Graphic LCD Module Data Sheet www.crystalfontz.com Hardware vE / Data Sheet v3.0 July 2009 Page 9 MODULE OUTLINE DRAWING v 1 R o r E 1 w v t r e H S 0 r m . 34. 0 s u 4 a 5 x 93. 0 _ / a 4 B 4 / 9 0 0 i e 8 0 8 1 t m 1 2 D N G l g F x w C e 3 9 40. 0 P r a . . D
in „avr asm LCD Problem“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Interface_Model_LG_Displays_40_pin_lb065wq3-td01.pdf
------------------COLOR : WHITE ( 12 ) INTERFACE MODE -----------------------------8BIT PARALLEL (DE/SYNC MODE) 02101300-01-02 MODEL NO. VERSION PAGE E M E R G I N G D I S P L A Y TECHNOLOGIES CORPORATION E T V 5 7 0 G 2 D M U 2 2 3 . ABSOLUTE MAXIMUM RATINGS 3 . 1 ELECTRICAL ABSOLUTE
in „Ansteuerung für TFT“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Display.pdf
S240 SEG C1 D3 D2 D1 D0 D3 • • • • • • D0 D3 D2 D1 D0 C2 D3 D2 D1 D0 D3 • • • • • • D0 D3 D2 D1 D0 • • Input data Dots on display • D0 Dot 4 Dot 8 • • • Dot 236 Dot 240 • D1 Dot 3 Dot 7 • • • Dot 235 Dot 239 • D2 Dot
in „Grafik LCD mit AVR“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DTMF_AVR.pdf
are not read in a sequen- tially manner from the lookup table but just every second value. At the same sample frequency an output signal with twice the frequency is generated (see Figure 4). Figure 4. Doubling the Output Frequency (X SW = 2) V 1 2 3 4 5 6 7 8 9 10 11 12 t 1/fl T/2 T In using not every
in „Frequenzverfahren beim Telefon“ · Mikrocontroller und Digitale Elektronik ·
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PDF
doc1982.pdf
are not read in a sequen- tially manner from the lookup table but just every second value. At the same sample frequency an output signal with twice the frequency is generated (see Figure 4). Figure 4. Doubling the Output Frequency (X SW = 2) V 1/fl 2 3 4 5 6 7 8 9 10 11 12 t T/2 T In using not every
in „seriell verkabelte und auslesbare Schalter bzw. Sensoren?“ · Offtopic ·
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PDF
HD44780.pdf
unit *** 3 Vo - * 4 RS H/L H: Data Input L: Instruction code input 5 R/W H/L H: Data Read (LCD module -> MPU) L: Data Write (LCD module <- MPU) 6 E H,H->L Enable Signal 7 DB0 H/L D 8 DB1 H/L A 9 DB2 H/L T 10 DB3
in „Große Ziffern auf standard 5*7 Display“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Transmission_Line_WP_Final_0416.pdf
for the step incident at the transmission line input, the transmission line behaves in exactly the same way as a resistor of value √(L/C)=Z0=50ohms. So, as far the source is concerned, the equivalent circuit right at the instant of application of the step is as depicted in Figure 3. Rs 200 0.8V 0 5 V(x,t)=0.2V 0 (i.e., voltage at the entry point into the transmission line, 1V step = Source R at the instant of application of the step input.) Figure 3: An equivalent circuit at the step input. So the
in „Messung Wellenimpedanz von 75Ω Koax falsch“ · HF, Funk und Felder ·
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doc4368.pdf
E E E I L S o e n o o u E W W O O x o o o U w w r r C C C C C C C C R R R R R R R R 1 L L L D 8 R P R I S 8 B T 2 3 K . C 2 C C R P S S C C N 4 C A N E I I I E C L J B A 2 S S S N T N G D S P _ O N f O
in „Entwicklungsboard für AT89C51 Controllers“ · Mikrocontroller und Digitale Elektronik ·
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SH1106_V2.3.pdf
COM60 D5 3DH COM61 D6 3EH COM62 D7 3FH COM63 0 n s = 0 1 2 1 2 3 m e C D 0 0 0 8 8 8 l d D ” o d A = H H H H H H C A 0 8 8 8 0 0 0 D T 0 1 2 2 3 3 D U G G G 1 1 1 L O S S S E E E S S S Figure. 8 16 SH1106 The Oscillator