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PCF8575.pdf
output current VOL = 1 V; note 3 10 25 − mA OH HIGH-level output current VOH = VSS −30 − −300 A OHt transient pull-up current VOH = VSS ; see Fig.9 −0.5 −1.0 − mA CI input capacitance note 2 − − 10 pF CO output capacitance note 2 − − 10 pF Port timing; CL≤ 100 pF (see Figs 9 and 10) pv output data valid − − 4 s su input data set-up time 0 − − s h input data hold time 4 − − s Interrupt INT (see Fig.13) OL LOW-level output current VOL =
in „Vieleeeele Eingänge, viele Ausgänge.“ · Mikrocontroller und Digitale Elektronik ·
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JBT6K71-AS_A__v1.42_2006-02-07_E.PDF
0 OSDW 0 0 0 0 0 0 0 OSDON 501h~ Non registers 503h 504h OSD screen 1 start address 0 0 0 0 0 0 0 ST18 ST17 ST16 ST15 ST14 ST13 ST12 ST11 ST10 505h OSD screen 2 start address 0 0 0 0 0 0 0 ST28 ST27 ST26 ST25 ST24 ST23 ST22 ST21 ST20 506h~ Non registers 5FFh 600h~ 6**h 6FFh Non operation * * * * * *
in „LCD aus Benq EL71 Handy“ · Mikrocontroller und Digitale Elektronik ·
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Transistor_2N3904.pdf
10 mA; I = 1 mA; note 1 − 850 mV BEsat C B IC= 50 mA; B = 5 mA; note 1 − 950 mV Cc collector capacitance IE= e = 0; CB= 5 V; f = 1 MHz − 4 pF Ce emitter capacitance IC= c = 0; EB= 500 mV; f = 1 MHz − 8 pF T transition frequency IC= 10 mA; VCE = 20 V; f = 100 MHz300 − MHz F noise figure IC= 100 A; V CE= 5 V; S = 1 k ; − 5 dB f = 10 Hz to 15.7 kHz Switching times (between 10% and 90% levels); see Fig.2 on
in „12V relais lässt nicht los“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
output.txt
from offset 0xaa by brne Label5: a4: st X+, r1 ; Referenced from offset 0xa2 by rjmp Label6: a6: cpi r26, 0x60 ; 96 a8: cpc r27, r17 aa: brne Label5 ac: rcall Function1 ae: rjmp Label10 ; Referenced from offset 0x5a by rjmp ; Referenced from
in „Atmega8 löst Timerinterrupt nicht aus“ · Mikrocontroller und Digitale Elektronik ·
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semicon.pdf
0603 1400 x 2,2nF / 100V kerámia 1206 2500 x 10nF / 15V kerámia 0603 3000 10nF / 25V kerámia 0603 3500 x 10nF / 50V kerámia 0805 4000 x 18nF / 16V polietilén 0805 2700 x 47nF / 50V kerámia 0805 1500 x 47nF / 100 kerámia
in „4" TFT für 7,97€“ · Markt ·
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PDF
HEDS973X.pdf
Derating Curves Typical performance over extended operating range. These curves were derived using a 25 pF load with a 3.3 k pull-up resistor. Greater load capacitances will cause more error than shown in these graphs. A B 0 15 R R R ) +25 °C R ) -40 °C E E +85 °C E E 10 H E H E I G -5 I G +25 °C W D W D
in „Unbekannte opt. Sensoren von Agilent“ · Mikrocontroller und Digitale Elektronik ·
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bs1Appnotes.pdf
+5 40-kHz Loop OutputVDD +5 CA5160 filter filter receiver 10k 10k 10k +5 LM567 1k To 2 Ð 7 0.022 F 3 Output Stamp Input 8 3 + 4 6 pin 1 5 Timing R 10k 18k 18k Timing C GND 6 7 10k pot CT 0.001 F Figure 1. Schematic to accompany program SONAR BAS . Parallax,Inc
in „Smartcard-Kode-Schloss mit PIC16F84“ · Mikrocontroller und Digitale Elektronik ·
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IgorPlug-USB__AVR__firmware.pdf
1;*************************************************************************** 2;* U S B S T A C K F O R T H E A V R F A M I L Y 3;* 4 5;* File Name :"USB90S2313.asm" ;* Title :USB stack + Infrared remote control to nonUSB MCU 6;* Date :5.4.2003 7;* Version :1.6 8;* Target MCU :AT90S2313-10,AT90S2323-10,AT90S2343-10 9;* AUTHOR :Ing. Igor Cesko 10;* Slovakia 11;* cesko@internet.sk 12;* http://www.cesko.host.sk 13;* 14;* DESCRIPTION: 15;* USB protocol implementation into MCU with noUSB interface: 16;*
in „90s2343 als usb ir empfänger“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PHI.pdf
temperature error for KTY81-152 Icont 1 mA. AMBIENT TEMPERATURE KTY81-152 RESISTANCE ( ) TEMP. (°C) (°F) (%/K) ERROR MIN. TYP. MAX. (K) −55 −67 0.99 480 502 525 ±4.52 −50 −58 0.98 505 528 551 ±4.45 −40 −40 0.96 558 582 606 ±4.3 −30 −22 0.93 614 639 664 ±4.16 −20 −4 0.91 675 701 726 ±4.01 −10 14 0.88 740
in „Genauere Messung der Temperatur“ · Mikrocontroller und Digitale Elektronik ·
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PDF
l200.pdf
V i 10 V V o V ref Io= 0.5 A f = 100 Hz 1.5 m CURRENT REGULATION LOOP VSC Current Limit Sense Voltage V i 10 V V o V ref between Pins 5 and 2 I5= 100 mA 0.38 0.45 0.52 V VSC Average Temperature 0.03 %/°C T
in „L200 Beschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MC9S08DZ60_Data_Sheet.pdf
12 11 10 9 Bit 8 0x002D TPM1C2VL Bit 7 6 5 4 3 2 1 Bit 0 0x002E TPM1C3SC CH3F CH3IE MS3B MS3A ELS3B ELS3A 0 0 0x002F TPM1C3VH Bit 15 14 13 12 11 10 9 Bit 8 0x0030 TPM1C3VL Bit 7 6 5 4 3 2 1 Bit 0 0x0031 TPM1C4SC
in „Bei AD-wandlung Bitsverlust“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HX5116_4.3inch.pdf
table: Pins connection Recommended voltage Capacity Resistance of wire (Ω ) C11P/N, C12P/N, DDVDH 10V 1 µF < 10 VGAM1OUT 10V 1 µF < 15 C21P/N, C22P/N 10V 1 µF < 10 HVO, LVO 16V 1 µF < 10 VGH, VGL,ARREF 16V 1 µF < 15 VDDD 10V 1uF < 10 VCI, VSSD, VSSA, VSSP - - < 5 Table 5. 10 Adoptability of Capacitor
in „OLED CMEL SPI Ansteuerung“ · Mikrocontroller und Digitale Elektronik ·
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1_TEA5768HL_Datasheet.pdf
12 SWPORT2 TUNING SYSTEM MUX PROGRAMMABLE 11 SWPORT1 VCCA reference frequency divider output PORT 10 k pilot mono 10 BUSENABLE VCO 2 I C-BUS 9 BUSMODE 1 2 3 4 5 6 7 8 CPOUT VCOTANK1 VCOTANK2 VCC(VCO) DGND VCCD DATA CLOCK mhc275 10 nF 39 nF V 12 D1 D2 CCD 22 nF 10 k 100 k L3 L2 T P 47 22 nF E o A u VCC
in „FM Stereo Radio mit TEA5768 von Philips“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TDA5051A_-_PowerLine.pdf
DATA 3 11 13 10 IN 1 k 150 RX IN 10 nF k DATA OUT 14 MICRO- 2 10 nF CONTROLLER TDA5051A TX BC547B CLK OUT 10 OUT 4 PD 33 15 1 k k 7 8 5 9 12 OSC1 OSC2 DGND APGND AGND 2.2 M XTAL 7.3728 MHz SA5.0A 27 pF 27 pF MGK843
in „Probleme mit PLC-Modem-Chip TDA5051“ · Haus & Smart Home ·
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PDF
TPS_Datasheet.pdf
0100 Type Case Size Capacitor Code Tolerance Rated DC Voltage Packaging Maximum ESR in See table pF code: 1st two K = ±10% 002 = 2.5Vdc R = 7" T/R Milliohms above digits represent M = ±20% 004 = 4Vdc date 1/1/04)ince productionSee note below significant figures, 006 = 6.3Vdc S = 13" T/R 3rd digit represents
in „Was für besondere Kondensatoren sind das??“ · Mikrocontroller und Digitale Elektronik ·
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PDF
st7565r.pdf
WRITE Data setup time DS8 40 — WRITE Address hold time DH8 0 — D0 to D7 READ access time ACC8 CL= 100 pF — 70 READ Output disable time OH8 CL= 100 pF 5 50 Ver 1.5 60/72 2006/03/10 ST7565R Table 25 (VDD = 2.7V,Ta = –30 to 85°C) Rating Item Signal Symbol Condition Min. Max. Units Address hold time AH8 0 —
in „Neue DOG LCD-Grafikmodule SPI ansteuerung“ · Mikrocontroller und Digitale Elektronik ·
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Thread
Fusspunktimpedanz Ferritantenne
7.3.3.7 Offene Symmetrierschleife 152 7.3.3.8 Halbschalen-Balun 152 7.3.3.9 DJ9HO-Balun 152 7.3.3.10 ST-Leitung 153 7.3.4 Symmetrierbrücken 153 7.3.4.1 Boucherot-Brücke 153 7.3.4.2 Alford-Netzwerk 154 7.3.5 Symmetriertöpfe 154 7.3.5.1 Halbwellen-Symmetriertopf 154 7.3.5.2 Gefalteter Balun 154
12.2.2 Fächerdipol 272 12.2.3 Doppelkegel-Antenne 273 12.2.4 Flächendipol 274 12.2.5 Batwing-Antenne 276 12.2.6 Herz-Antenne 277 12.2.7 Breitbandmonopol 277 12.2.8 Reusenantenne 278 12.2.9 Diskon-Antenne 278 12.2.10 Scimitar-Antenne 281 12.3 Schaltungsbedingte Breitbandantennen 282 12.3.2 Breitband-Dipole
HF, Funk und Felder ·Hägar · ·11 Antworten
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PDF
TDA2003.pdf
F 0.8 1.05 0.031 0.041 F1 1 1.4 0.039 0.055 G 3.2 3.4 3.6 0.126 0.134 0.142 G1 6.6 6.8 7 0.260 0.268 0.276 H2 10.4 0.409 H3 10.05 10.4 0.396 0.409 L 17.55 17.85 18.15 0.691 0.703 0.715 L1 15.55 15.75 15.95
in „Verstärkerschaltung 5W“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
PHI.pdf
−10 14 0.88 1480 1532 1584 ±3.84 0 32 0.85 1618 1670 1723 ±3.67 10 50 0.83 1764 1817 1869 ±3.48 20 68 0.80 1919 1970 2022 ±3.28 25 77 0.79 2000 2050 2100 ±3.18 30 86 0.78 2077 2132 2187 ±3.33 40 104 0.75
in „Kurze Frage zwecks Vorwiderstand für Sensor.“ · Mikrocontroller und Digitale Elektronik ·
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DS_S6B1713_R42.pdf
data from DDRAM Write display data 1 0 Write data Write data into DDRAM Read status 0 1 BUSY ADC N/F RSETB 0 0 0 0 Read the internal status Turn on/off LCD panel Display ON / OFF 0 0 1 0 1 0 1 1 1 DON When DON = 0: display OFF When DON = 1: display ON Initial display line 0 0 0 1 ST5 ST4 ST3 ST2 ST1
in „Frage zu static indicator glcd“ · Mikrocontroller und Digitale Elektronik ·
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ST10F27X_Flyer.pdf
to enable innovative and competitive solutions. success, adding cutting-edge DSP potential to its ST10 advanced 16-bit MCU. ST10 0.18µm family features ■ ST10 with DSP unit 832K ST10F276 ST10F296 832K Flash/68K RAM 832K Flash/68K RAM ■ 5th generation embedded Flash ■ Uniform peripheral set 768K ST10F275
in „Programmer für C167“ · Mikrocontroller und Digitale Elektronik ·
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PDF
z01.pdf
SOT-223 Ttab= 90° C T(RMS) (full sine wave) 1 A TO-92 TL = 50° C Non repetitive surge peak on-state F = 50 Hz t = 20 ms 8 TSM current (full cyclej T initial = 25° C) A F = 60 Hz t = 16.7 ms 8.5 It I t Value for fusing t = 10 ms 0.35 A s p Critical rate of rise of on-state current dI/dt I = 2 x I , t
in „kann jemand Bauteil idetifizieren Z9M A818“ · Analoge Elektronik und Schaltungstechnik ·
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TDA1562.pdf
landscape pages to be ... 1 T P 9 E h 8 T w 7 0 p A A h s r N W e 7 + VP D d m 100 2200 A a i c 4700 F nF F P g g n C1− C1+ VP1 VP2 L n h u 3 5 9 10 C s e t T t fi r CLASS-B O c c s status I/O6 CLASS-H TEMPERATURE LOAD DUMP N f e FAST MUTE SENSOR PROTECTION N c n F i c O t y mode 4 STANDBY disableLIFT-SUPPLY
in „Maximale Kapazitat an Lift Supply (TDA1562)“ · Mikrocontroller und Digitale Elektronik ·
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Thread
DigitalStrom aus der Schweiz
Investition: in meinem Haus sind stark nach unten gerundet ca. 100 Steckdosen bzw. Leuchten und mindestens 10 Stromkreise Darausfolgt: 100 x 10Euro + 10 x 20Euro (dSM10) + 1 x ?? (dSS10) ergibt minimum 1200 Euro Zum Stromverbrauch: 100 x 0,3Watt + (10+1) x 2Watt (2Watt völlig aus der Luft gegriffen)
10,00 Gang 4 LS 69,00 276,00 40,00 1 Zentraltaster * 69,00 69,00 10,00 2 L 69,00 138,00
Haus & Smart Home ·Rema Andante · ·1025 Antworten
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PDF
IgorPlug-USB__AVR__firmware.pdf
1;*************************************************************************** 2;* U S B S T A C K F O R T H E A V R F A M I L Y 3;* 4 5;* File Name :"USB90S2313.asm" ;* Title :USB stack + Infrared remote control to nonUSB MCU 6;* Date :5.4.2003 7;* Version :1.6 8;* Target MCU :AT90S2313-10,AT90S2323-10,AT90S2343-10 9;* AUTHOR :Ing. Igor Cesko 10;* Slovakia 11;* cesko@internet.sk 12;* http://www.cesko.host.sk 13;* 14;* DESCRIPTION: 15;* USB protocol implementation into MCU with noUSB interface: 16;*
in „IGORPLUG-USB“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at91rm9200-ek.pdf
offender to legal proceedings. 8 7 6 5 4 3 2 1 8 7 6 5 4 3 2 1 L2 742792093 3V3 1 2 3V3 D D C16 C15 C14 C10 C205 C204 C9 100NF 100NF 10 uF 10µF 100NF 100NF 100NF 10V LINE OUT 10 9 18 J5 U2 5 4 AVDD1 AVDD0 VDD C11 3 150uF 2 16V C1 + R203 47R 1 OUT_L 5 330PF R217 10K 21 DEECTRL OUT_R 7 + R200 47R ST-3081-5N
in „SD-RAM aus PC für AT91RM9200 (ARM9)“ · Mikrocontroller und Digitale Elektronik ·
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KMI_151T.pdf
) current output signal high see Figs 6 and 8 11.2 14.0 16.8 mA r output signal rise time CL= 100 pF; see Fig.9; 10 to 90% value − 0.5 − s t output signal fall time C = 100 pF; see Fig.9; 10 to 90% value − 0.7 − s f L d switching delay time between stimulation pulse (generated − 1 − s by a coil) and
in „Fragen zur Magnetkraft?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
The_International_System_of_Units_sp330.pdf
in every document in which they are used. † Table 10. Examples of other non-SI units Name Symbol Value in SI units (a) 10 curie Ci 1 Ci = 3.7 ⫻ 10 Bq roentgen (b) R 1 R = 2.58 ⫻ 10 C/kg (c,f) –2 rad rad 1 rad = 1 cGy = 10 Gy rem (d,f) rem 1 rem = 1 cSv = 10 Sv (e) –4 X unit 1 X unit 艐 1.002⫻10 nm gamma (f) ␥ 1 ␥ = 1 nT = 10 T9 –26 –2 –1 jansky Jy 1 Jy = 10 W ⭈ m ⭈ Hz fermi (f) 1 fermi = 1 fm = 10 –15m (g) metric carat 1 metric carat = 200 mg = 2⫻10 kg–4
in „Stromangabe in der Einheit At?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PCA82C250_PHI.pdf
differential input resistance 20 − 100 k Ci CANH, CANL input capacitance − − 20 pF Cdiff differential input capacitance − − 10 pF Reference output V reference output voltage V = 1 V; 0.45V − 0.55V V ref 8 CC CC −50 A < I5< 50 A V = 4 V; 0.4V − 0.6V V 8 CC CC −5 A < I5< 5 A Timing (
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PDF
PCD8544_1.pdf
voltage generator V V tolerance internally V = 2.85 V; V = 7.0 V; − 0 300 mV LCD LCD DD LCD generated fSCLK = 0; display load = 10 A; note 5 TC0 VLCD temperature coefficient 0 V DD= 2.85 V; VLCD = 7.0 V; − 1 − mV/K fSCLK = 0; display load = 10 A TC1 VLCD temperature coefficient 1 V DD= 2.85 V; VLCD = 7.0 V; − 9 − mV/K fSCLK = 0; display load = 10 A TC2 VLCD temperature coefficient 2 V DD= 2.85 V; VLCD = 7.0 V; − 17 − mV/K f = 0; SCLK display load = 10 A TC3 V temperature coefficient 3 V = 2.85 V; V = 7.0 V; − 24 − mV/
in „MSP430F2013 steuert Nokia-3310-Display an“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PCD8544_1.pdf
voltage generator V V tolerance internally V = 2.85 V; V = 7.0 V; − 0 300 mV LCD LCD DD LCD generated fSCLK = 0; display load = 10 A; note 5 TC0 VLCD temperature coefficient 0 V DD= 2.85 V; VLCD = 7.0 V; − 1 − mV/K fSCLK = 0; display load = 10 A TC1 VLCD temperature coefficient 1 V DD= 2.85 V; VLCD = 7.0 V; − 9 − mV/K fSCLK = 0; display load = 10 A TC2 VLCD temperature coefficient 2 V DD= 2.85 V; VLCD = 7.0 V; − 17 − mV/K f = 0; SCLK display load = 10 A TC3 V temperature coefficient 3 V = 2.85 V; V = 7.0 V; − 24 − mV/
in „(Dieser Beitrag wurde geloescht)“ · Mikrocontroller und Digitale Elektronik ·
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tda8444.pdf
MGL533 handbook, halfpage handbook, halfpage V VMAX = 12 V V O(DAC) O(DAC) VCC = 12 V (V) (V) V = 10 V 8 MAX 8 VCC = 8 V V = 6 V MAX 4 4 V = 5 V CC VMAX = 1 V 0 0 00 05 0A 0F 14 19 1E 23 28 2D 32 37 3C 3F 00 05 0A 0F 14 19 1E 23 28 2D 32 37 3C 3F data (hex) data (hex) V = 12 V. V = V . CC MAX CC Fig
in „Verzweifle an TWI Code Mega8-TDA 8444“ · Mikrocontroller und Digitale Elektronik ·
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BSS89.pdf
60 A GSS gate leakage current VDS = 0; GS= ±20 V − − ±100 nA R drain-source on-state resistance = 10 V; I = 400 mA − 4.5 6 DSon GS D yfs forward transfer admittance D = 400 mA; DS = 25 V 140 350 − mS Ciss input capacitance VDS = 25 V;GS = 0; f = 1 MHz − 45 − pF C output capacitance V = 25 V; V = 0; f = 1 MHz − 15 − pF oss DS GS Crss reverse transfer capacitance VDS = 25 V;GS = 0; f = 1 MHz − 3.5 − pF Switching times (see Figs 2 and 3) on turn-on time VGS = 0 to 10 VDDV= 50 V; − 5 − ns D = 250 mA
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OM5610_2_1_.pdf
shifts and accepts one bit into LSB. At CLCK LOW the microcontroller writes data F.13 213 102400 (see Fig.3). F.12 212 51200 To write the entire shift register 25 clock pulses are F.11 211 25600 10 necessary. F.10 2 12800 F.9 29 6400 F.8 28 3200 F.7 27 1600 F.6 26 800 5 F.5 2 400 F
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LT.pdf
Frequency vs Voltage Error Amplifier Phase and G M Temperature 20 8k 200 120 ) V 10 7k 150 115 ( o G 0 h 6k θ 100 110 T–10 m ) O TRI WAVE E H E –20 N 5k 50 H (105 C SQUARE T S C E –30 WAVE U 4k 0 ( E100 F D GM ) U E –40 O 3k –50 E 95 N –50 S F E A 2k –100 90 N –60 T A 1k 85 C –70 –150
in „Prinzipielle Fragen zum Schaltregler“ · Analoge Elektronik und Schaltungstechnik ·
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Thread
Begriff "rechts vorbei fahren" und "rechts überholen"
3sec überhole, ist das weniger gefährlich aber verboten als wenn ein auto ein motorradfahrer während 10sec auf der gleichenstrecke überholt (was wesentlich gefährlicher ist - aber eben: erlaubt).
Aber es scheint zu funktionieren... In D hätte man da bestimmt schon nach ca. 10sek einen riesigen Schrotthaufen ^^
Offtopic ·Andy · ·35 Antworten
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IgorPlug-USB__AVR__firmware.pdf
1;*************************************************************************** 2;* U S B S T A C K F O R T H E A V R F A M I L Y 3;* 4 5;* File Name :"USB90S2313.asm" ;* Title :USB stack + Infrared remote control to nonUSB MCU 6;* Date :5.4.2003 7;* Version :1.6 8;* Target MCU :AT90S2313-10,AT90S2323-10,AT90S2343-10 9;* AUTHOR :Ing. Igor Cesko 10;* Slovakia 11;* cesko@internet.sk 12;* http://www.cesko.host.sk 13;* 14;* DESCRIPTION: 15;* USB protocol implementation into MCU with noUSB interface: 16;*
in „Per USB mit ATMega32 kommunizieren“ · Mikrocontroller und Digitale Elektronik ·
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Datei
TEST.LST
== 2 ){ b4: c2 30 cpi r28, 0x02 ; 2 b6: 29 f4 brne .+10 ; 0xc2 <display_time+0x4c> digit[1] = 0; b8: 10 92 80 00 sts 0x0080, r1 digit[0] = 0; bc: 10 92 7f 00 sts 0x007F, r1 c0: 0f c0 rjmp .+30 ; 0xe0 <__stack+0x1> }else{ digit[1] = get7s( minute
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PDF
ST__L200.pdf
Vi= 10 V Vo= V ref I = 0.5 A f = 100 Hz 1.5 m o CURRENT REGULATION LOOP V Current Limit Sense Voltage V = 10 V V = V SC i o ref between Pins 5 and 2 I5= 100 mA 0.38 0.45 0.52 V VSC Average Temperature 0.03
in „liegender einstellbarer Spannungsregler“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LIS3LV02DQ28.pdf
typ=2.5V) while the I/O pads are supplied through Vdd_IO. Power supply decoupling capacitors (100 nF ceramic, 10 µF Al) should be placed as near as pos- sible to the pin 3 of the device (common design practice). All the voltage and ground supplies must be present at the same time to have proper behavior
in „Beschleunigungssensor für ca +/-6g in alle 3 Achsen“ · Mikrocontroller und Digitale Elektronik ·
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COFDM_tutorial.pdf
transmitter. 8. Some more-susceptible data have special treatment. EBU Technical Review -Winter 1998 10 J.H. Stott T U T O R IA–LC O F D M 6. Single-frequency networks Our simple example of a 0 dB echo often crops up when considering SFNs . If two synchro- nized COFDM transmitters operate on a common frequency
in „DVB-T Tunermodul“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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PDF
SC16C550-05.pdf
25 pF load 77 - 26 - 23 - ns 7w 7h chip select hold time from IOR 0 - 0 - 0 - ns 7h' address hold time [2] 5 - 5 - 5 - ns 8d IOR delay from address 10 - 10 - 10 - ns 9d read cycle delay 25 pF load 20 - 20 - 20 - ns 11d IOR to DDIS delay 25 pF load - 100 - 35 - 30 ns 12d delay from IOR to data 25 pF load - 77 - 26 - 23 ns t data disable time 25 pF load - 15 - 15 - 15 ns 12h 13d IOW delay from chip select 10 - 10 - 10 - ns [3] 13w IOW strobe
in „Probleme beim Senden SC16c550“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LIS3LV02DQ28.pdf
typ=2.5V) while the I/O pads are supplied through Vdd_IO. Power supply decoupling capacitors (100 nF ceramic, 10 µF Al) should be placed as near as pos- sible to the pin 3 of the device (common design practice). All the voltage and ground supplies must be present at the same time to have proper behavior
in „"Halbleiterkreisel"“ · Mikrocontroller und Digitale Elektronik ·
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LT1083_LT1084_LT1085_LT.pdf
I 30 I 30 20 R R 20 CADJ = 200 F AT FREQUENCIES < 60Hz 20 VOUT = 5V CADJ = 25 F AT FREQUENCIES > 60Hz CADJ = 25 F 10 LT1084CK 10 IOUT= 5A 10 COUT = 25 F 0 0 0 10 100 1k 10k 100k 0 1 2 3 4 5 50 60 70 80 90 100 110 120 130 140 150 FREQUENCY
in „Aus 12V 5V machen“ · Mikrocontroller und Digitale Elektronik ·
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TDA1562_PHI.pdf
landscape pages to be ... 1 T P 9 E h 8 T w 7 0 p A A h s r N W e 7 + VP D d m 100 2200 A a i c 4700 F nF F P g g n C1− C1+ VP1 VP2 L n h u 3 5 9 10 C s e t T t fi r CLASS-B O c c s status I/O6 CLASS-H TEMPERATURE LOAD DUMP N f e FAST MUTE SENSOR PROTECTION N c n F i c O t y mode 4 STANDBY disableLIFT-SUPPLY
in „Frage zu TDA1562 I/O Pin“ · Mikrocontroller und Digitale Elektronik ·
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PDF
The_Terawatt_Challenge_for_Thin-Film_PV__NREL.pdf
to stabilize CO 2y mid-century is one in which PV and other renewables are used for 3 electricity (10 TW) and to make hydrogen for transportation (10 TW); and fossil fuels (coal, natural gas, oil) are used to make residential and industrial heat (10 TW). Departures from this strategy include using coal
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Datei
ee24xx.lst
D1F6 brne .L23 377 .LM44: 378 0182 60E0 ldi r22,lo8(0) 379 0184 70E0 ldi r23,hi8(0) 380 .L66: 382 .LM45: 383 0186 33B1 in r19,35-0x20 384 0188 3D93 st X+,r19 386 .LM46: 387 018a 4F5F subi r20,lo8(-(1)) 388
in „I2C EEPROM Adressierung“ · Mikrocontroller und Digitale Elektronik ·
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KTY81.pdf
for straight lead types. handbook, full pagewidth P T A h h 1 (p) A H2 W H1 2 H0 L W0 W 1 W MBH795 F1 F2 D0 t1 F t P2 P 0 Fig.7 Configuration of bandolier: spread leads. 2000 Aug 25 10 Philips Semiconductors Product specification Silicon temperature sensors KTY81-2 series handbook, full pagewidth P T A1 h h (p) A H2 H1 W2 H 0 L W0 W 1 W MBL214 F1 F2 D0 t1 F t P2 P 0 Fig.8 Configuration of bandolier: straight leads. 2000 Aug 25 11 Philips Semiconductors Product specification Silicon temperature sensors KTY81-2 series Table 5 Tape specification
in „Spannungsquelle für KTY - gegeneinander entkoppeln?“ · Analoge Elektronik und Schaltungstechnik ·
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KTY81-2_PHI.pdf
−10 14 0.88 1480 1532 1584 ±3.84 0 32 0.85 1618 1670 1723 ±3.67 10 50 0.83 1764 1817 1869 ±3.48 20 68 0.80 1919 1970 2022 ±3.28 25 77 0.79 2000 2050 2100 ±3.18 30 86 0.78 2077 2132 2187 ±3.33 40 104 0.75
in „KTY 81 110 an Mega“ · Mikrocontroller und Digitale Elektronik ·
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BZX399.pdf
3.00 215 3.0 7V5 7.13 7.88 0.15 3.60 170 3.0 8V2 7.79 8.61 0.15 4.25 150 3.0 9V1 8.65 9.56 0.10 5.00 120 3.0 10 9.50 10.50 0.10 5.80 110 3.0 11 10.45 11.55 0.11 6.70 110 2.5 12 11.40 12.60 0.12 7.65 105 2.5 13 12.35 13.65 0.13 8.60 105 2.5 15 14.25 15.75 0.15 10.50 100 2.0 Note 1. V Z V Zt 100
in „Frage Mosfet“ · Analoge Elektronik und Schaltungstechnik ·