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W77E058Aj.pdf
2007 - 9 - Revision A10 W77E058A FFh 80h Indirect RAM 7Fh Direct RAM 30h 2Fh 7F 7E 7D 7C 7B 7A 79 78 2Eh 77 76 75 74 73 72 71 70 2Dh 6F 6E 6D 6C 6B 6A 69 68 2Ch 67 66 65 64 63 62 61 60 2Bh 5F 5E 5D 5C 5B 5A 59 58 2Ah 57 56 55 54 53 52 51 50 29h 4F 4E 4D 4C 4B 4A 49 48 28h 47 46 45 44 43 42 41 40 Bit
in „[V] 12St. 8051er- NUVOTON / WINBOND PLCC44 ( 2UARTS u. 4 clocks/machine cycle- 40MHz)“ · Markt ·
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Propeller_Layout_20070717.pdf
:L 1 1 2 29 12 4 1 3 2 3 0 1 2 1 2 C2 3 2 1 VIDEO D 2 2 1 2 C17 1 2 X RRX22 C208 C RR 1 2 1 1 1 2 1RL L2 L L CR21:L 2 A A 2 30 1 11 1 2 1 2 1 2 2 C210 1 1 483 7 6 5 3 4 34 V V G E 1 S 8 8 X21 9 8 8 1 28 2 1 X X 2 1 7 2 2 7 28 2 2 1 1 1 31 10 8 8 6 6 9 7 C 1 2 1 3 1 1 V9 28:1 1 : 2 5 12:L 1 K 1 K 2 2
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schematic.pdf
VCCINT 47 TCK 20 F_TDO R6 4.7k SDRAM_A0 23 2 SDRAM_DQ0 IO, DIFFIO_L6n 30 SDRAM_DQ0 63 GND GND 145 78 VCCINT VCCIO3 40 TDO 15 F_TDI R5 4.7k SDRAM_A1 24 A0 DQ0 4 SDRAM_DQ1 e d c I2, DIFFIO_L8p, (DQS1L/CQ1L#,DPCLK1) 31 SDRAM_DQ3 GND TGND 61 VCCINT VCCIO3 TDI R4 4.7k SDRAM_A2 25 A1 DQ1 5 SDRAM_DQ2 4 K IO
in „Sequentielle Anweisung: Takt wird nicht richtig verarbeitet“ · FPGA, VHDL & Co. ·
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PDF
Cyclone4_schematic_v200.pdf
VCCINT 47 TCK 20 F_TDO R6 4.7k SDRAM_A0 23 2 SDRAM_DQ0 IO, DIFFIO_L6n 30 SDRAM_DQ0 63 GND GND 145 78 VCCINT VCCIO3 40 TDO 15 F_TDI R5 4.7k SDRAM_A1 24 A0 DQ0 4 SDRAM_DQ1 e d c I2, DIFFIO_L8p, (DQS1L/CQ1L#,DPCLK1) 31 SDRAM_DQ3 GND TGND 61 VCCINT VCCIO3 TDI R4 4.7k SDRAM_A2 25 A1 DQ1 5 SDRAM_DQ2 4 K IO
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U2532B.pdf
tr 0.5 ms Fall time C = 15 pF,R = 2.2 kW Pin 3 tf 0.3 ms Output pulse width 2.4 kbit/s, tp 7 15 ms 78 ms pulse width Pin 3 Output pulse width 115.2 kbit/s, tp 2.5 4 ms 1.6 ms pulse width Pin 3 Output delay time 115.2 kbit/s, t 1 2 ms d 1.6 ms pulse width – Output level 0.5 V CC – Leading edges of signals
in „Temic-Datenblättern“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Espier_III.pdf
nHold RP12 IO_L47P_1 79 DS_B IO_L51N_3 7 SDRAM_A0 R13 4.7k 3 nWP CLK 6 CCLK DS_F 8 1 DSF IO_L47N_1 78 DS_F IO_L52P_3 6 SDRAM_A10 OSC DS_B 7 2 DSB IO_L74P_AWAKE_1 75 DS_EN4 IO_L52N_3 5 SDRAM_BA1 +3.3V 4 GND DI 5 R16 MOSI DS_A 6 3 DSA IO_L74N_DOUT_BUSY_1 74 DS_EN2 IO_L83P_3 2 SDRAM_BA0 J1 25 DS_E 5 4 DSE
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schematic_v200.pdf
VCCINT 47 TCK 20 F_TDO R6 4.7k SDRAM_A0 23 2 SDRAM_DQ0 IO, DIFFIO_L6n 30 SDRAM_DQ0 63 GND GND 145 78 VCCINT VCCIO3 40 TDO 15 F_TDI R5 4.7k SDRAM_A1 24 A0 DQ0 4 SDRAM_DQ1 e d c I2, DIFFIO_L8p, (DQS1L/CQ1L#,DPCLK1) 31 SDRAM_DQ3 GND TGND 61 VCCINT VCCIO3 TDI R4 4.7k SDRAM_A2 25 A1 DQ1 5 SDRAM_DQ2 4 K IO
in „Board EP4CE6E22C8N Altera mit Quartus2 13 ansprechen“ · FPGA, VHDL & Co. ·
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PIC_Simulator_-_Free_Online_PIC_Microcontroller_Simulator.pdf
rd equ 00h ; 75 76 rp0 equ 05h ;register bank 77 zero equ 02h ;zero bit position in status register 78 carry equ 00h ;carrybit position in status register 79 PC equ 02h ;program counter register 80 81 ;============================================ 82 ; macro definitions 83 ;============================
in „IC-Idenifikation für Garagentor Zahlenschloß“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ST24C32_ST24C64_STM.pdf
The memory Figure 3. Maximum R ValLe versus Bus Capacitance (C BUS ) for an I C Bus V CC 20 )16 ( u RL RL a12 P SDA R u 8 MASTER SCL C BUS i fc = 100kHz a M 4 fc = 400kHz CBUS 0 10 100 1000 C BUS (pF) AI01665 3/18 M24C64, M24C32 Figure 4. I2C Bus Protocol SCL SDA START SDA SDA STOP CONDITION INPUT CHANGE
in „I²c mit Bascom und ATmega“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TLC5620CN_DIP14.pdf
Vref= 3.5 V, 3.2 0.5 Range = 1x 3 0 0 10 20 30 40 50 60 70 80 90 100 0 10 20 30 40 50 60 70 80 90 100 RL– Output Load – kΩ RL– Output Load – kΩ Figure 9 Figure 10 OUTPUT SOURCE CURRENT SUPPLY CURRENT vs vs OUTPUT VOLTAGE TEMPERATURE 8 1.2 V = 5 V DD A 7 TA= 25°C 1.15 m Vref= 2 V t Range = ×2 n 6 Input Code
in „Wie verhält sich der DAC am SPI-Bus (TLC5620)“ · Mikrocontroller und Digitale Elektronik ·
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NXP__74LVC1G17.pdf
CC V T− negative-going see Figure 7 and Figure 8 threshold voltage VCC = 1.8 V 0.46 0.6 0.75 0.46 0.78 V VCC = 2.3 V 0.65 0.8 0.96 0.65 0.99 V V = 3.0 V 0.88 1.0 1.24 0.88 1.27 V CC VCC = 4.5 V 1.32 1.5 1.84 1.32 1.87 V VCC = 5.5 V 1.58 1.8 2.24 1.58 2.27 V V H hysteresis voltage see Figure 7, Figure
in „Pegelwandlung 5V => 3,3V: Überschwinger mit 74LVC1G17“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TPS2113A.pdf
Switch Status IN1: 2.8 V to 5.5 V TPS2113A 0.1 mF R 1 1 8 STAT IN1 2 7 EN OUT 3 6 VSNS IN2 4 5 CL RL ILIM GND RILIM IN2: 2.8 V to 5.5 V 0.1 mF 1 Please be aware that an important notice concerning availability, standard warranty, and use in critical applications of Texas Instruments semiconductor products
in „Speisung umschalten“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
KS0093.pdf
CAP2- 540 -700 103 SEG17 1880 700 163 SEG77 -2920 700 44 CAP2+ 630 -700 104 SEG18 1800 700 164 SEG78 -3000 700 45 CAP2+ 720 -700 105 SEG19 1720 700 165 SEG79 -3080 700 46 CAP1- 810 -700 106 SEG20 1640 700 166 SEG80 -3160 700 47 CAP1- 900 -700 107 SEG21 1560 700 167 COMI2 -3400 440 48 CAP1+ 990 -700
in „LCD seriell ansteuern ST7093/KS0093“ · Mikrocontroller und Digitale Elektronik ·
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PDF
FULLTEXT01.pdf
amplifier is at 50%, while it increases substantially with reducing conduction angle and reaches to 78.5% for a class B amplifier. 2.2.3 Class B In class B amplifiers, the conduction angle is 180˚, meaning the transistor conducts either positive or negative half cycle of the input signal, independent
in „Buchempfehlung HF-Verstärker gesucht“ · HF, Funk und Felder ·
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PDF
Gesamtinhalt_1987-2016.pdf
Dreier Teil 1 1991/1 50 - 55 Teil 2 1991/2 71 - 77 Zylinderparabel-Antenne mit D. Burchard, 1991/2 78 - 86 METEOSAT-Kompaktkonverter Nairobi / Kenia Magnetisch gekoppelteYagi-Antennen E. Berberich, 1991/2 87 - 90 bei Amateuren ein Stiefkind DL 8 ZX UHF-Antenne mit vertikaler Polarisation J. Langer, 1991
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wp-01212-high-speed-link-modeling-simulation.pdf
Mismatch Discontinuity 1 Discontinuity 2 RS TP1 ZCH TP2 Channel Network Topology Voltage Source CS CL RL Tpd JNEye Link Topology A Significant Technology Advancement in High-Speed Link Modeling and Simulation December 2013 Altera Corporation Page 18 JNEye’s Advanced Simulation and Modeling Methods The JNEye
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PCA9306.pdf
PCA9306 2 Dual bidirectional I C-bus and SMBus voltage-level translator VIH V TT input VM V M V IL RL S1 VOH from output under test S2 (open) V C output VM M L VOL 002aab845 002aab846 a. Load circuit b. Timing diagram S1 = translating up; S2 = translating down. C includes probe and jig capacitance. L
in „[V] ONSEMI Dual bidirectional PCA9306 I2C-bus and SMBus Voltage-level translator (30St für10€)“ · Markt ·
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PDF
PCA9306.pdf
PCA9306 2 Dual bidirectional I C-bus and SMBus voltage-level translator VIH V TT input VM V M V IL RL S1 VOH from output under test S2 (open) V C output VM M L VOL 002aab845 002aab846 a. Load circuit b. Timing diagram S1 = translating up; S2 = translating down. C includes probe and jig capacitance. L
in „[V] .Dual bidirectional PCA9306 I2C-bus and SMBus voltage-level translator (30St/10€)“ · Markt ·
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PDF
PCA9306.pdf
PCA9306 2 Dual bidirectional I C-bus and SMBus voltage-level translator VIH V TT input VM V M V IL RL S1 VOH from output under test S2 (open) V C output VM M L VOL 002aab845 002aab846 a. Load circuit b. Timing diagram S1 = translating up; S2 = translating down. C includes probe and jig capacitance. L
in „[V] ca. 190St.Dual bidirectional PCA9306 I2C-bus and SMBus voltage-level translator (20St/8€)“ · Markt ·
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PDF
PCA9306.pdf
PCA9306 2 Dual bidirectional I C-bus and SMBus voltage-level translator VIH V TT input VM V M V IL RL S1 VOH from output under test S2 (open) V C output VM M L VOL 002aab845 002aab846 a. Load circuit b. Timing diagram S1 = translating up; S2 = translating down. C includes probe and jig capacitance. L
in „V] ca. 170 St.Dual bidirectional PCA9306 I2C-bus and SMBus voltage-level translator (20St/8€)“ · Markt ·
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PDF
PCA9306.pdf
PCA9306 2 Dual bidirectional I C-bus and SMBus voltage-level translator VIH V TT input VM V M V IL RL S1 VOH from output under test S2 (open) V C output VM M L VOL 002aab845 002aab846 a. Load circuit b. Timing diagram S1 = translating up; S2 = translating down. C includes probe and jig capacitance. L
in „[V] Konvolut Dual bidirectional PCA9306 I2C-bus and SMBus voltage-level translator“ · Markt ·
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PDF
P14NK60Z.pdf
Table 3. Thermal data Symbol u c Parameter Value Unit Rthj-case ohermal resistance junction-case max 0.78 °C/W R thjPamb Thermal resistance junction-ambient max 62.5 °C/W e le t Table 4. Avalanche characteristics o Symbol Parameter Value Unit b s Avalanche current, repetitive or not- O IAS repetitive (pulse
in „MOSFET (K4097) Ersatztyp“ · Analoge Elektronik und Schaltungstechnik ·
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ST232C.PDF
threshold low 0.8 V VTIH Input logic threshold high 2 V TA= 25°C, VCC = 5V SR T Transition slew rate RL= 3 to 7KΩ, L = 50 to 2500pF1) 7 30 V/µs DR Data rate (2) 120 220 Kbits/s RTOUT Transmitter output resistance VCC = V+ = V- = 0V OUT= ±2V 300 Ω Transmitter output short circuit ISC current One TXOUT to
in „ST232C-RS232 Wandler für USB geeignet?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Bestandsliste_mit_Preisen1.pdf
1A 8V negativ 44 Stk 0,25 € 10,89 € 7808 Spannungsregler TO220 1A 8V positiv 162 Stk 0,14 € 22,28 € 78S10 Spannungsregler TO220 2A 10V positiv 9 Stk 0,24 € 2,18 € 78S15 Spannungsregler TO220 2A 15V positiv 19 Stk 0,24 € 4,61 € 78S24 Spannungsregler TO220 2A 24V positiv 18 Stk 0,23 € 4,10 € 78S05 Spannungsregler TO220 2A 5V positiv 3 Stk 0,22 € 0,65 € 78S7.5 Spannungsregler TO220 2A 7.5V positiv 1 Stk 0,30 € 0,30 € 78S09 Spannungsregler TO220 2A 9V positiv 6 Stk 0,23 € 1,37 € 7815TO3 Spannungsregler TO3 1A 15V positiv 13 Stk 0,61 € 7,96 € 78L10 Spannungsregler
in „Auflösung Elektronik Shop“ · Markt ·
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teXet_TF-127_Service_manual.pdf
PO Output power W THD = 10%, f = 1 kHz,DD = 5.5 V 3 THD+N Total harmonic distortion + noisePO= 1 W, RL= 8 , f = 20 Hz to 20 kHz <0.4% V High-level output voltage R = 8 , Measured between output and V 700 mV OH L DD VOL Low-level output voltage RL= 8 , Measured between output and GND 400 mV V(BypassBypass
in „Photo-Rahmen als Farbdisplay“ · Mikrocontroller und Digitale Elektronik ·
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130_Schaltungen_sowjetischer_Transistorrundfunkgeraete.pdf
Rückkopplung MW 5+7 0,1 L5 Oszillatorspule LW 399 5 x 0,06 850 L6 Rückkopplung LW 8+6 0,1 L7 60 5 x 0,06 78 L8 )ZF-Filter 60 5 x 0,06 78 L9 l0 X 5 5 x 0,06 78 LlO 60 5 x 0,06 78 LU ZF-Filter 75 0,1 15 Eine Trennbuchse (in Bild 2.3 nicht eingezeichnet) unterbricht bei Anschluß eines Ohrhörers die Schaltung
in „Fernsteuerempfänger der mit 1,2V funktioniert“ · Analoge Elektronik und Schaltungstechnik ·
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TS80C51U2_ATMELCorporation.pdf
falling edge trigger). Must be 0 for clock out mode. Timer 2 Capture/Reload bit If RCLK=1 or TCLK=1, CP/RL2# is ignored and timer is forced to auto-reload on timer 2 overflow. 0 CP/RL2# Clear to auto-reload on timer 2 overflows or negative transitions on T2EX pin if EXEN2=1. Set to capture on negative transitions
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Datei
IS51Basic.ASM
********************************************************* ; RLINE: ACALL INTERR ;GET THE INTEGER ; RL1: ACALL GLN AJMP CLN_UP ; ; D_L1: ACALL GLN ;GET THE LINE AJMP SGT1 ;EXECUTE THE LINE ; $EJECT ;*************************************************************** ; ; The statement action routines WHILE
in „Layout für MCS51 Experimentierboard“ · Projekte & Code ·
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rxv396.pdf
LARGE LARGE 0dB SWFR C+L C+R NONE NONE NONE LFE 8 C:S REAR:S – – – SMALL SMALL LARGE 0dB SWFR FL FR C RL RR C+RL+RR+LFE 9 FRONT MIX 7A-12 LARGE LARGE LARGE 0dB SWFR FL FR NONE NONE NONE NONE LARGE: Mode in which speakers with high bass-sound playback capability (large unit) are used.Full-range signals present
in „Yamaha RX-V396 RDS Fehlersuche“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BK2433Datasheetv1.0.pdf
generator mode, Timer 2 runs at 2 clocks per increment, independent of the state of CKCON.5. T2CON.0 CP/RL2 – Capture/reload flag. When CP/RL2= 1, Timer 2 captures occur on high-to-low transitions of t2ex, if EXEN2= 1. When CP/RL2=0, auto-reloads occur when Timer 2 overflows or when high-to-low transitions
in „Chinesische USB/nRF24L01 Adpapter“ · Mikrocontroller und Digitale Elektronik ·
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THB6064AH.PDF
Unit Output ON resistor Ron + Ron I 4 A 0.4 0.6 H L OUT t 1.5 Output transistor switching r RL 2 , VNF 0 V, s characteristics t CL 15 pF 0.5 f Upper side ILH ― 5 Output leakage current VM 50 V A Lower side I ― 5 LL 5 2011-05-11 HHBY THB6064AH Description of Functions Excitation
in „CNC Fräse - komplette Steuerung kaufen“ · Mikrocontroller und Digitale Elektronik ·
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HS_Systems_Part_2_for_Print_A.pdf
Loss (Gain) d -5 s L o e-10 I 1 : N -15 0 1 10 100 1000 10000 2 Frequency (MHz) Z N Z O 0 Z O – Z RL = 20 log )-4 Return Loss, RL Z O Z ( s L-8 ZO= Ideal Input Impedance u R -12 Z = Measured Input Impedance with Secondary Terminated in Ideal Value N Z 2 -16 O 0 1 10 100 1000 10000 Frequency (MHz) A
in „ADCs: Digitale Masse und Oszillator an Analogmasse?“ · Analoge Elektronik und Schaltungstechnik ·
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74HC_HCT244.pdf
• CMOS low power dissipation • High noise immunity • Latch-up performance exceeds 100 mA per JESD 78 Class II Level B • Input levels: • For 74HC244: CMOS level • For 74HCT244: TTL level • Octal bus interface • Non-inverting 3-state outputs • Complies with JEDEC standards: • JESD8C (2.7 V to 3.6 V) •
in „Alte 74xx244 ersetzen“ · Mikrocontroller und Digitale Elektronik ·
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Datenblatt_AT89S52.PDF
T2CON Address = 0C8H Reset Value = 0000 0000B Bit Addressable Bit TF2 EXF2 RCLK TCLK EXEN2 TR2 C/T2 CP/RL2 7 6 5 4 3 2 1 0 Symbol Function TF2 Timer 2 overflow flag set by a Timer 2 overflow and must be cleared by software. TF2 will not be set when either RCLK = 1 or TCLK = 1. Timer 2 external flag set when
in „AT89S52 Port 0 als I/0-Port“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Datenblatt_AT89S52.PDF
T2CON Address = 0C8H Reset Value = 0000 0000B Bit Addressable Bit TF2 EXF2 RCLK TCLK EXEN2 TR2 C/T2 CP/RL2 7 6 5 4 3 2 1 0 Symbol Function TF2 Timer 2 overflow flag set by a Timer 2 overflow and must be cleared by software. TF2 will not be set when either RCLK = 1 or TCLK = 1. Timer 2 external flag set when
in „serielle Ausgaben auf AT89S52 Baud-Raten-Generator startet nicht“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Report_Samsung_X20.htm
3B Network Connection (Fujitsu) <TR><TD><TD><TD><TD>Bus 6, Gerät 9, Funktion 0 <TD>Ricoh RL5C476 CardBus Controller <TR><TD><TD><TD><TD>Bus 6, Gerät 9, Funktion 1 <TD>Ricoh RL5C552 IEEE1394 Controller <TR><TD><TD><TD><TD>Bus 6, Gerät 9, Funktion 3 <TD>Ricoh RL5C592 Memory
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PDF
UCC28880.pdf
VRMS) LOAD (mA) EFFICIENCY (%) AVERAGE EFFICIENCY (%) 25 80.3 115 50 81.4 81.3 75 81.6 100 81.9 25 78.5 230 50 81.1 81.2 75 82.1 100 82.7 Table 3. No-Load and Output Shorted Converter Input Power V (V ) NO LOAD P (mW) OUTPUT SHORTED P (mW) OUTPUT SHORTED I (mA) IN RMS IN IN OUT 85 16 453 214 115 19.5
in „230V AC -> 3V3 DC“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
en.CD00254735.pdf
VCOMP = 3.3 V 320 400 480 µA R Dynamic resistance V = 2.6 to 4.8 V 25 kΩ COMP COMP (1) 2.52 2.65 2.78 V Burst-mode threshold V COMPBM (1MODE/SC = open 2.7 2.85 3 Hys Burst-mode hysteresis 20 mV I Lower clamp capability V = 2 V -3.5 -1.5 mA CLAMPL COMP V Disable threshold Voltage falling 1.4 V COMPOFF
in „Flybackcontroller“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
version_1p3_assembler.asm
*************************** ;* Change timer 0 from 13 bit to 16 bit counter mode to use XTAL up to 78MHz * ;* from D. Wulf 1/2000 * ;***************************************************************************** ; ; The max. value for XTAL is now 78627473 Hz, for use BASIC-52 with ; Dallas 80C320 high
in „Spaß mit Kloeckner-Moeller PS3 in BASIC(?)“ · Projekte & Code ·
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Datei
version_1p3_assembler.asm
*************************** ;* Change timer 0 from 13 bit to 16 bit counter mode to use XTAL up to 78MHz * ;* from D. Wulf 1/2000 * ;***************************************************************************** ; ; The max. value for XTAL is now 78627473 Hz, for use BASIC-52 with ; Dallas 80C320 high
in „Basic für 80C31“ · Mikrocontroller und Digitale Elektronik ·
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Datei
IS52Basic.a51
*************************** ;* Change timer 0 from 13 bit to 16 bit counter mode to use XTAL up to 78MHz * ;* from D. Wulf 1/2000 * ;***************************************************************************** ; ; The max. value for XTAL is now 78627473 Hz, for use BASIC-52 with ; Dallas 80C320 high
in „Layout für MCS51 Experimentierboard“ · Projekte & Code ·
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Datei
IS52Basic.a51
*************************** ;* Change timer 0 from 13 bit to 16 bit counter mode to use XTAL up to 78MHz * ;* from D. Wulf 1/2000 * ;***************************************************************************** ; ; The max. value for XTAL is now 78627473 Hz, for use BASIC-52 with ; Dallas 80C320 high
in „Layout für MCS51 Experimentierboard“ · Projekte & Code ·
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Datei
IS52Basic.a51
*************************** ;* Change timer 0 from 13 bit to 16 bit counter mode to use XTAL up to 78MHz * ;* from D. Wulf 1/2000 * ;***************************************************************************** ; ; The max. value for XTAL is now 78627473 Hz, for use BASIC-52 with ; Dallas 80C320 high
in „Basic für 80C31“ · Mikrocontroller und Digitale Elektronik ·
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Datei
BASIC131-PS3.a51
*************************** ;* Change timer 0 from 13 bit to 16 bit counter mode to use XTAL up to 78MHz * ;* from D. Wulf 1/2000 * ;***************************************************************************** ; ; The max. value for XTAL is now 78627473 Hz, for use BASIC-52 with ; Dallas 80C320 high
in „Spaß mit Kloeckner-Moeller PS3 in BASIC(?)“ · Projekte & Code ·
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Datei
IS51Basic133.a51
*************************** ;* Change timer 0 from 13 bit to 16 bit counter mode to use XTAL up to 78MHz * ;* from D. Wulf 1/2000 * ;***************************************************************************** ; ; The max. value for XTAL is now 78627473 Hz, for use BASIC-52 with ; Dallas 80C320 high
in „Layout für MCS51 Experimentierboard“ · Projekte & Code ·
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PDF
Beschreibung.pdf
contents of the A register without affecting any flag, or any directly addressable bit location. – RL, RLC, RR, RRC, SWAP are the five operations that can be performed on A. RL, rotate left, RR, rotate right, RLC, rotate left through carry, RRC, rotate right through carry, and SWAP, rotate left four.
in „ALI M6759-A1“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Schrittmotor.asm
beim Tastendruck für Position durch Poti (R12...R15) Ru: .Byte 2 ;Rampe unten Ro: .Byte 2 ;Rampe oben Rl: .Byte 1 ;Rampenlänge Rs: .Byte 2 ;Rampenschritt Timer Rz: .Byte 1 ;Rampenzähler Rm: .Byte 1 ;Rampenmerker ;Serialle Schnittstelle SerZ: .byte 2 ;Zeiger Pufferspeicher serielle Schnittstelle Anfang SerP
in „Spielerei mit einem 2- und 5-Phasen-Schrittmotor“ · Projekte & Code ·
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PDF
Bestandsliste.pdf
negatv 44Stk 0,25 € 10,89 € 1814 7808 Spannungsregler TO220 1A 8V positv 162 Stk 0,14 € 22,28 € 1815 78S10 Spannungsregler TO220 2A 10V positv 9Stk 0,24 € 2,18 € 1816 78S15 Spannungsregler TO220 2A 15V positv 19Stk 0,24 € 4,61 € 1817 78S24 Spannungsregler TO220 2A 24V positv 18Stk 0,23 € 4,10 € 1818 78S05
in „Auflösung Elektronik Shop“ · Markt ·
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PDF
MAX152.pdf
to RD,WR Setup Time CSS 0 0 0 ns CS to RD,WR CSH 0 0 0 ns Hold Time CS to RDY t CL= 50pF, Delay RDY RL= 5.1kΩ to VDD 100 120 140 ns Data Access Time tACC0 CL= 100pF tCRD tCRD CRD ns (RD Mode) (Note 7) +100 +130 +150 RD to INT Delay t C = 50pF (RD Mode) INTH L 100 160 170 180 ns Data Hold Time tDH 100
in „Ansteuerung A/D-Wandler MX152 (+/-Vref) Wechselspannungsmessung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Peavey_Semiconductors_Cross_Ref_2009.pdf
2N3644 2N3638, 2N6533, 2N3638 70406533 2N6534 2N4401 2N3642, 2N5630, 2N3642 70406531 2N6531 786 2SD-78 2SD-786E 70400786 A13 MPS-A13 MPS-A13 70400013 NPN DARLINGTON A63 MPS-A63 MPS-A63 70400063 PNP DARLINGTON 1815 2SC1815 2SC1815 70401815 NPN TRANSISTOR 2878 2SC2878 2SC2878 70402878 5550 2N5550 2N5550
in „Transistor Ersatztypen“ · Analoge Elektronik und Schaltungstechnik ·