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PDF
tl431.pdf
JA, andAT . The maximum allowable power dissipation at any allowable ambient temperature is P = (T (max) − T ). Operating at the absolute maximum T of 150°C can affect reliability. D J A JA J recommended operating conditions MIN MAX UNIT VKA Cathode voltage Vref 36 V KA Cathode current 1 100 mA TL43xxC
in „bauelement für Spannungsdurchlass“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DEV-CD-1645C.pdf
MIC_B_ MIC_ _NC0B0N 30CON203 7k5 50SW405 1 P0R4501 P0R4502 D BLM15HB221SN1 2 Stereo line input P 1u Max. 1.75VRMS/5Vp-p P0CON202 I R22 2 P0R4601 P0R4602 F 10CON201 F RIGHT 2k2 R46 N0MIC0BIAS 2 7k5 MIC_BIAS 40SW404 L4 P C27 CON JACK STEREO 3.5MM MIC_R_0MIC0R0P 20SW402 P0S3403 MIC_B_N0MIC0B0P P0L402 P0L401
in „Noise bei Audio processing mit IC von Cambridge Silicon Radio“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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PDF
488161_1_.pdf
Tuner, wenn Sie bei wenn Sie bei irgendeinem Arbeitsschritt unsicher sind. Kennlinien Zündverstel- max. Zündver- Vakuum- Vacuumverstel- ersetzt Zündverstellung in (einstellbar) lung beginnt stellung in ° beiverstellung lung endet bei ° bei U/Min (Kur- bei U/Min U/Min (Kurbel- beginnt bei (mmHg / max.
in „Funktionsweise von analogen elektronischen Drehzahlmessern?“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
report_par.txt
| 1.25 | 2.50 | PAD223 | F1 | None L | fpga_0_DDR_SDRAM_DDR_DQ_p | IO | SSTL2_I | 1.25 | 2.50 | PAD222 | F2 | None L | fpga_0_DDR_SDRAM_DDR_DQS_ | IO | SSTL2_I | 1.25 | 2.50 | PAD221 | G3 | None L | fpga_0_DDR_SDRAM_DDR_DQ_p | IO | SSTL2_I | 1.25 | 2.50 | PAD218 | G6 | None L | fpga_0_DDR_SDRAM_DDR_DQ_p
in „Place and Route partially locked IO bus“ · FPGA, VHDL & Co. ·
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PDF
AN040_Sqrt.pdf
Inc. TB040 ANALYSIS TABLE 1: PERFORMANCE Following the flow of this algorithm, there are only nine Max Time Cycles 40MHz 10MHz 4MHz loops for an 8-bit number. And summing all the mathe- matics involved, there is only one multiplication and 16-bit 149 14.9us 59.6us 149us one conditional test for each
in „Netzspannung auf LCD mit PIC“ · Mikrocontroller und Digitale Elektronik ·
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Datei
WiSoReV04.asm
BANKSEL BANK0 MOVLW D'59' ; PR2-Wert für alle PWM's (1-4): 59 = 50kHz bei 12MHz und TMR2 1:1 (DC somit max. 240 für 100%), 222 für 92,5% MOVWF PR2 ;---------------------------------------- PWM-Pins als Ausgang setzen (Richtungen setzen): BANKSEL BANK1 MOVLW B'11101111' ; als Eingang setzen RA.0,1,2,3,5,
in „Probleme hex-File zu erstellen von PIC16F1527(1827)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AN040_Sqrt.pdf
Inc. TB040 ANALYSIS TABLE 1: PERFORMANCE Following the flow of this algorithm, there are only nine Max Time Cycles 40MHz 10MHz 4MHz loops for an 8-bit number. And summing all the mathe- matics involved, there is only one multiplication and 16-bit 149 14.9us 59.6us 149us one conditional test for each
in „Schneller sqrt()-Ersatz ohne FPU“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Si4734-35-C40.pdf
level is adjustable capacitors are provided. Refer to "2. Typical Application using the FM_SOFT_MUTE_MAX_ATTENUATION and Schematic (QFN)" on page 17. This mode is enabled AM_SOFT_MUTE_MAX_ATTENUATION properties. using the POWER_UP command. Refer to Table 14, “Selected Si473x Commands,” on page 27. 5.12
in „[V] LCD Display, xMega128 mit USB, AM/FM Radio Empfänger“ · Markt ·
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Datei
ODM100.c
,0x00,Max_Row,0x07,0xFF); // Red => Column 65~80 Fill_Block(0x40,0x4F,0x00,Max_Row,0xF8,0x00); // Green => Column 81~96 Fill_Block(0x50,0x5F,0x00,Max_Row,0x07,0xE0); // Blue => Column 97~112 Fill_Block(0x60,0x6F,0x00,Max_Row,0x00,0x1F); // Black => Column 113~128 Fill_Block(0x70,Max_Column,0x00,Max_Row,0x00,0x00); } //-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-= // Show Character (5x7) // /
in „Frage zum ODM100 OLED Bausatz von ELV“ · Mikrocontroller und Digitale Elektronik ·
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Datei
oled1.c
,0x00,Max_Row,0x07,0xFF); // Red => Column 65~80 Fill_Block(0x40,0x4F,0x00,Max_Row,0xF8,0x00); // Green => Column 81~96 Fill_Block(0x50,0x5F,0x00,Max_Row,0x07,0xE0); // Blue => Column 97~112 Fill_Block(0x60,0x6F,0x00,Max_Row,0x00,0x1F); // Black => Column 113~128 Fill_Block(0x70,Max_Column,0x00,Max_Row,0x00,0x00); } //-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-= // Show Character (5x7) // /
in „AVR Oled Display odm 100-Wie ansteuern?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
oled.c
,0x00,Max_Row,0x07,0xFF); // Red => Column 65~80 Fill_Block(0x40,0x4F,0x00,Max_Row,0xF8,0x00); // Green => Column 81~96 Fill_Block(0x50,0x5F,0x00,Max_Row,0x07,0xE0); // Blue => Column 97~112 Fill_Block(0x60,0x6F,0x00,Max_Row,0x00,0x1F); // Black => Column 113~128 Fill_Block(0x70,Max_Column,0x00,Max_Row,0x00,0x00); } //-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-= // Show Character (5x7) // /
in „ODM100 OLED bleibt schwarz“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ODM100.c
,0x00,Max_Row,0x07,0xFF); // Red => Column 65~80 Fill_Block(0x40,0x4F,0x00,Max_Row,0xF8,0x00); // Green => Column 81~96 Fill_Block(0x50,0x5F,0x00,Max_Row,0x07,0xE0); // Blue => Column 97~112 Fill_Block(0x60,0x6F,0x00,Max_Row,0x00,0x1F); // Black => Column 113~128 Fill_Block(0x70,Max_Column,0x00,Max_Row,0x00,0x00); } //-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-= // Show Character (5x7) // /
in „SSD 1351 - OLED ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ee24xx.lst
master transmitter mode 51:ee24xx.c **** */ 52:ee24xx.c **** restart: 53:ee24xx.c **** if (n++ >= MAX_ITER) 54:ee24xx.c **** return -1; 55:ee24xx.c **** begin: 129 .LM9: 130 0046 822F mov r24,r18 131 0048 2F5F subi r18,lo8(-(1)) 132 004a 883C cpi r24,lo8(-56) 133 004c 08F0 brlo .+2 134 004e 7CC0 rjmp
in „I2C EEPROM Adressierung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AN1010.pdf
14 11 21 PD1 (TX) 22 pF EXTAL 7 TxD 13 12 20 PD0 (RX) + 1 10 M 8 MHz CTS C1 MC68HC11A1 XTAL 8 DSR 3 MAX232 52-PIN PLCC + 4 22 pF DCD DTR C2 5 3 MODA 0 V 15 2 GND MODB V RESET 17 2 + 6 DD 0 V C3 C4 26 4.7 k 1 µF + 0 V 0.1 µF C1, C2, C3, C4 — 22 mF, 25-V aluminum or tantalum CERAMIC +5 V Note: To improve
in „Programm zum MC68HC11 auslesen und programmieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AN721.pdf
conversion factor. A network fulfilling this requirement cannot be obtained For the band-pass filter, Q max or the maximum possible lN in practice as an infinite number of reactive elements would input Q of a device to be matched, has been increased by be necessary. the factor r (from Figure 25, Q′ IN max
in „Stackpole Ferrit Kerne für RF Verstärker“ · HF, Funk und Felder ·
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PDF
TOFC100-xx.pdf
Main Specifications of the TODX283 Data rate: DC to 50 Mb/s (NRZ code) Transmission distance: 10 m (max) (via APF cable) 100 m (max) (via PCF cable) Pulse width distortion: less than ±7 ns Center wavelength: 650nm Operating temperature: –10°C to 70°C TTL interface TODX283 7 OpticalM odulesforHigh-SpeedDataT
in „TosLink als einfacher Datenlink“ · Mikrocontroller und Digitale Elektronik ·
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Datei
buildroot-2011.02-Mini2440-linux-2.6.39.patch
not set +# CONFIG_SENSORS_LTC4261 is not set +# CONFIG_SENSORS_LM95241 is not set +# CONFIG_SENSORS_MAX1111 is not set +# CONFIG_SENSORS_MAX1619 is not set +# CONFIG_SENSORS_MAX6650 is not set +# CONFIG_SENSORS_PC87360 is not set +# CONFIG_SENSORS_PC87427 is not set +# CONFIG_SENSORS_PCF8591 is not set
in „mini2440 Odyssee“ · Mikrocontroller und Digitale Elektronik ·
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Datei
buildroot-2011.02-Mini2440-linux-2.6.39.patch
not set +# CONFIG_SENSORS_LTC4261 is not set +# CONFIG_SENSORS_LM95241 is not set +# CONFIG_SENSORS_MAX1111 is not set +# CONFIG_SENSORS_MAX1619 is not set +# CONFIG_SENSORS_MAX6650 is not set +# CONFIG_SENSORS_PC87360 is not set +# CONFIG_SENSORS_PC87427 is not set +# CONFIG_SENSORS_PCF8591 is not set
in „mini2440 Odyssee“ · Mikrocontroller und Digitale Elektronik ·
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PDF
GN80_2_NMEA_Protocol__1_.pdf
syntax below: “Param”: Log Output Sentence <Log Output Sentence Length in bytes> “GGAnn”:$GPGGA<82 max> GGA00-GGA60 [5](sec){GGA01} “ZDAnn”:$GPZDA<36> ZDA00-ZDA60 [5](sec){ZDA01} “GLLnn”:$GPGLL<47> GLL00-GLL60 [5](sec){GLL00} “GSAnn”:$GPGSA<69 max> GSA00-GSA60 [5](sec){GSA00} “GSVnn”:$GPGSV<70 max> GSV00-GSV60 [5](sec){GSV01} “VTGnn”:$GPVTG<46 max> VTG00-VTG60 [5](sec){VTG01} “RMCnn”:$GPRMC<77 max> RMC00-RMC60 [5](sec){RMC00} “ancnn”:$PFEC,GPanc<62> anc00-anc60 [5](sec){anc00} “accnn”:$PFEC,GPacc<49> acc00-acc60 [5](sec){acc00} “astnn”:$PFEC,
in „DGPS korreliert nicht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
u-blox-ATCommands_Manual__UBX-13002752_.pdf
the selected <facility>. • If <facility> is "PN": <pers_data> is in the format: "MCC1.MNC1min[-MNC2max][,MCC2.MNC2min[-MNC2max]... [,MCC10.MNC10min[- MNC10max]]" It contains a list of comma-separated pairs of MCCs and MNC ranges • If <facility> is "PU": <pers_data> is in the format: "MCC1.MNC1min[-MNC2max][,MCC2.MNC2min[-MNC2max]... [,MCC10.MNC10min[- MNC10max]]:MSIN1[,MSIN2...[,MSIN10]]" It contains a list of comma-separated pairs of MCCs+MNC ranges as above; a list of comma- separated MSIN(s) or ranges of MSINs is appended
in „GSM-Modul (SIM908) nur analoge Ausgänge für Anruf?“ · HF, Funk und Felder ·
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PDF
top247.pdf
FUNCTION (M) THERMAL SHUTDOWN VBG CONTROLLED TURN-ON STOP SOFT- GATE DRIVER OV/UV START LINE D DC DC MAX SENSE MAX MAX CLOCK S Q SAW - LEADING EDGE + R BLANKING OSCILLATOR WITH JITTER PWM COMPARATOR LIGHT LOAD FREQUENCY R E REDUCTION SOURCE (S) PI-2631-061200 PI-2641-061200 Figure 2b. Functional Block
in „Hilfe bei Reparatur SNT Laderegler“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
top247.pdf
FUNCTION (M) THERMAL SHUTDOWN VBG CONTROLLED TURN-ON STOP SOFT- GATE DRIVER OV/UV START LINE D DC DC MAX SENSE MAX MAX CLOCK S Q SAW - LEADING EDGE + R BLANKING OSCILLATOR WITH JITTER PWM COMPARATOR LIGHT LOAD FREQUENCY R E REDUCTION SOURCE (S) PI-2631-061200 PI-2641-061200 Figure 2b. Functional Block
in „Hilfe bei Reparatur SNT Laderegler“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
at91rm9200-ek.pdf
4 5 4 + 8 NTRST REF Q201 1 RES/PG C12 8 1 IRF7425 + + CR8 2 GND 7 100NF GND OUT CR7 3.3 V EN FB/NC MAX1626ESA STPS340U TPS77518D R288 C254 C255 4K7 100NF 2.2µF C25 220uF C 16V C C24 C23 220uF 220uF 16V 16V R244 0R100 I limit = 0.1V / R ... about 2.9A C221 R245 0R100 2.2µF U1 5V 5 V+ + 1 8 L1 22uH C2
in „SD-RAM aus PC für AT91RM9200 (ARM9)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tps62933-1.pdf
Incorporated Product Folder Links: TPS62933 TPS62933 www.ti.com SLUSEA4 – JUNE 2021 • K = 0.4 • VIN_MAX = 30 V • SW = 500 kHz • OUT_MAX = 3 A The inductor value is calculated to be 6.94 μH. Choose the nearest standard value of 6.8 μH. This gives a new K value of 0.408. The max HS_LIMITis 5.8 A, the calculated
in „TI Buck TPS62933.“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AN10496-NXP.pdf
82 harm_flag = 0; 83 update = 0; 84 key1_flag = 0; 85 key2_flag = 0; 86 key_value = 0x0; 87 speed_max = 46; //from 0~140 degree, set as 46 levels, so 3 degree a level 88 /* Pin configuration */ 89 P0M1 = 0x20; 90 P0M2 = 0x0; //pin 7 (P0.4) as Quasi-bidir. & pin 6 (P0.5) as input only 91 P1M1 = 0x0;
in „Controller an 230VAC wie realisieren?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LYT4321E.pdf
Driver VOLTAGE SenseFet MONITOR (V) STOP JITTER LOGIC CLOCK OSCILLATOR -Comparator + FB LEB 3-VT DC OFF MAX OCP LINE OV SENSE + CURRENT LIMIT - IV COMPARATOR ILIM FEEDBACK (FB) PFC/CC VBG CONTROL VSENSE I M I FB FBOFF FEEDBACK SENSE DCMAX S REFERENCE REFERENCE (R) BLOCK VBG 6.4 V PI-6843-071112 SOURCE (S)
in „PI LYTSwitch, wofuer diese Diode“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AND8391-D.pdf
voltage of 16 Vdc. Ambient For a series circuit (Figure 11), the power dissipation of temperature max of 85°C. Available heat sink area for the CCR is determined by: (V – (V + V )) x I . Using the worst case device is 300 mm of 1 oz Cu. source LEDS RPD reg scenario; i.e, highestsource Lowest LED V ,
in „12 Kanäle a 12 x 1W LEDs dimmen /steuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2011-01_digitale_Senderliste_mit_Frequenzen_1_.pdf
K60 russisch 220 SAT 7 arabisch 786 256 K60 arabisch 221 SAT.1 deutsch 618 256 K39 ProSiebenSat.1 222 SAT.1 HH/SH deutsch 674 256 K46 ProSiebenSat.1 223 SAT2000 italienisch 682 256 K47 italienisch 224 Servus TV deutsch 634 256 K41 div. Deutsche 225 Servus TV HD deutsch 714 256 K51 HDTV 226 SF info deutsch
in „Pollin - Receiver-Mainboard mit Twin DVB-[T,C] Tuner, NXP PNX8950EH“ · Mikrocontroller und Digitale Elektronik ·
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PDF
155008-da-01-en-8X_DAC_AD7808BRZ_SO24W.pdf
=3.3 V 0.6 0.6 V max Input Leakage Current 10 A max Input Capacitance 10 10 pF max Input Coding Twos Comp/Binary Twos Comp/Binary REFERENCE OUTPUT REF OUT Output Voltage 1.23 1.23 V nom REF OUT Error 8 8 % max REF OUT Temperature
in „DAC AD7808 wie register setzen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
155008-da-01-en-8X_DAC_AD7808BRZ_SO24W.pdf
=3.3 V 0.6 0.6 V max Input Leakage Current 10 A max Input Capacitance 10 10 pF max Input Coding Twos Comp/Binary Twos Comp/Binary REFERENCE OUTPUT REF OUT Output Voltage 1.23 1.23 V nom REF OUT Error 8 8 % max REF OUT Temperature
in „DAC AD7808 Datenübertragung mit ATMega16 klappt nicht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Epcos_NTCs.pdf
in Ammo pack Approx. weight 0.2 g General technical data Climatic category (IEC 60068-1) 40/125/56 Max. power (at 25 °C) P25 200 mW Resistance tolerance R RR R ±5, ±10 % Rated temperature T 25 °C R Dissipation factor (in air) δth approx. 3.5 mW/K Thermal cooling time constant (in air) τc approx. 12 s
in „Kennlinie VDO Öltemperaturgeber“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Epcos_NTCs.pdf
in Ammo pack Approx. weight 0.2 g General technical data Climatic category (IEC 60068-1) 40/125/56 Max. power (at 25 °C) P25 200 mW Resistance tolerance R RR R ±5, ±10 % Rated temperature T 25 °C R Dissipation factor (in air) δth approx. 3.5 mW/K Thermal cooling time constant (in air) τc approx. 12 s
in „Temperatursensor Identifikation“ · Mikrocontroller und Digitale Elektronik ·
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PDF
21058F.PDF
+5.5V Commercial (C): Tamb = 0˚C to +70˚C Industrial (I):Tamb = -40˚ to +85˚C Parameter Symbol Min Max Units Conditions A0, A1, A2, SCL and SDA pins: High level input voltage V IH .7 VCC — V Low level input voltage VIL — .3 Vcc V Hysteresis of Schmitt Trigger inpuVHYS .05 CC — V Note 1 Low level output
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PDF
MCP41010.pdf
(SOIC) E E1 p D 2 B n 1 h α 45° c A2 A φ β L A1 Units INCHES* MILLIMETERS Dimension Limits MIN NOM MAX MIN NOM MAX Number of Pins n 8 8 Pitch p .050 1.27 Overall Height A .053 .061 .069 1.35 1.55 1.75 Molded Package Thickness A2 .052 .056 .061 1.32 1.42 1.55 Standoff § A1 .004 .007 .010 0.10 0.18 0.25
in „Widerstand regeln“ · Mikrocontroller und Digitale Elektronik ·
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PDF
11195c.pdf
(SOIC) E E1 p D 2 B n 1 h α 45° c A2 A φ β L A1 Units INCHES* MILLIMETERS Dimension Limits MIN NOM MAX MIN NOM MAX Number of Pins n 8 8 Pitch p .050 1.27 Overall Height A .053 .061 .069 1.35 1.55 1.75 Molded Package Thickness A2 .052 .056 .061 1.32 1.42 1.55 Standoff § A1 .004 .007 .010 0.10 0.18 0.25
in „DC-DC Wandler mit MCP42010“ · Mikrocontroller und Digitale Elektronik ·
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PDF
mcp41xxx.pdf
(SOIC) E E1 p D 2 B n 1 h α 45° c A2 A φ β L A1 Units INCHES* MILLIMETERS Dimension Limits MIN NOM MAX MIN NOM MAX Number of Pins n 8 8 Pitch p .050 1.27 Overall Height A .053 .061 .069 1.35 1.55 1.75 Molded Package Thickness A2 .052 .056 .061 1.32 1.42 1.55 Standoff § A1 .004 .007 .010 0.10 0.18 0.25
in „Schaltregler, Feedback und Op Amp“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DSAIH000309343.pdf
circuit frequency is a typ. value, and the max. value indicates the maximum operability. S1D15721 Series Technical Manual (Rev.2.1) EPSON 61 9. DC CHARACTERISTICS Table 9.2 Specified value Applicable Item Symbol Conditions Unit Min. Typ. Max. pin
in „Pollin Display VL-FS-COG-VLGEM1277-01“ · Mikrocontroller und Digitale Elektronik ·
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Datei
stk500_1200.asm
Overflow Handler 6: 18 95 reti ; Analog Comparator Handler ;;; ;;; PD0 is connected to pin 12 of the max202 (R1OUT) and RxD of the 8535. ;;; PD1 is connected to pin 11 of the max202 (T1IN) and TxD of the 8535. ;;; ;;; This seems to imply that the following functions implement a bit banged ;;; uart. ;;;
in „AVRISP => Hex-Datei vom 1200er“ · Mikrocontroller und Digitale Elektronik ·
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PDF
STK500_Schematics.pdf
NOTE! N.M. = Not Mounted SPI-SP VCC VCC VCC VCC VCC VCC SPI-SP Page 8 D D S S C CS R217 R219 R220 R222 R224 R226 D D D D 10K 10K 10K 10K 10K 10K N.M. N.M. N.M. R221 R223 R225 R227 4 3 4 3 VCC VCC SW200 SW201 10K 10K 10K 10K N.M. TxDA R201 R202 Page 3 TxDA 47K 47K RESET PROG RxDA U200 Page 3 RxDA AT90S1200
in „Schema STK 500 ?!“ · Mikrocontroller und Digitale Elektronik ·
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PDF
STK500_Schematics.pdf
NOTE! N.M. = Not Mounted SPI-SP VCC VCC VCC VCC VCC VCC SPI-SP Page 8 D D S S C CS R217 R219 R220 R222 R224 R226 D D D D 10K 10K 10K 10K 10K 10K N.M. N.M. N.M. R221 R223 R225 R227 4 3 4 3 VCC VCC SW200 SW201 10K 10K 10K 10K N.M. TxDA R201 R202 Page 3 TxDA 47K 47K RESET PROG RxDA U200 Page 3 RxDA AT90S1200
in „STK500 kein VTARGET mehr?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
STK500_1_.pdf
NOTE! N.M. = Not Mounted SPI-SP VCC VCC VCC VCC VCC VCC SPI-SP Page 8 D D S S C CS R217 R219 R220 R222 R224 R226 D D D D 10K 10K 10K 10K 10K 10K N.M. N.M. N.M. R221 R223 R225 R227 4 3 4 3 VCC VCC SW200 SW201 10K 10K 10K 10K N.M. TxDA R201 R202 Page 3 TxDA 47K 47K RESET PROG RxDA U200 Page 3 RxDA AT90S1200
in „STK500 - Analog-Setup für Line-In-Adapter“ · Mikrocontroller und Digitale Elektronik ·
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PDF
STK500_Schematics.pdf
NOTE! N.M. = Not Mounted SPI-SP VCC VCC VCC VCC VCC VCC SPI-SP Page 8 D D S S C CS R217 R219 R220 R222 R224 R226 D D D D 10K 10K 10K 10K 10K 10K N.M. N.M. N.M. R221 R223 R225 R227 4 3 4 3 VCC VCC SW200 SW201 10K 10K 10K 10K N.M. TxDA R201 R202 Page 3 TxDA 47K 47K RESET PROG RxDA U200 Page 3 RxDA AT90S1200
in „Roter Bereich auf STK500 defekt“ · Mikrocontroller und Digitale Elektronik ·
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Datei
PinKlasse_klassisch_toggle.ino.elf.txt
0x280E 15a: 30 91 0f 28 lds r19, 0x280F 15e: 82 0f add r24, r18 160: 93 1f adc r25, r19 if (f >= FRACT_MAX) { 162: 88 3e cpi r24, 0xE8 ; 232 164: 23 e0 ldi r18, 0x03 ; 3 166: 92 07 cpc r25, r18 168: 30 f0 brcs .+12 ; 0x176 <__vector_36+0x64> f -= FRACT_MAX; 16a: 88 5e subi r24, 0xE8 ; 232 16c: 93 40 sbci
in „Buchempfehlung C++ und MCUs“ · Mikrocontroller und Digitale Elektronik ·
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PDF
STK500.pdf
NOTE! N.M. = Not Mounted SPI-SP VCC VCC VCC VCC VCC VCC SPI-SP Page 8 D D S S C CS R217 R219 R220 R222 R224 R226 D D D D 10K 10K 10K 10K 10K 10K N.M. N.M. N.M. R221 R223 R225 R227 4 3 4 3 VCC VCC SW200 SW201 10K 10K 10K 10K N.M. TxDA R201 R202 Page 3 TxDA 47K 47K RESET PROG RxDA U200 Page 3 RxDA AT90S1200
in „STK500 Transistoren defekt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
STK500_Schematics.pdf
NOTE! N.M. = Not Mounted SPI-SP VCC VCC VCC VCC VCC VCC SPI-SP Page 8 D D S S C CS R217 R219 R220 R222 R224 R226 D D D D 10K 10K 10K 10K 10K 10K N.M. N.M. N.M. R221 R223 R225 R227 4 3 4 3 VCC VCC SW200 SW201 10K 10K 10K 10K N.M. TxDA R201 R202 Page 3 TxDA 47K 47K RESET PROG RxDA U200 Page 3 RxDA AT90S1200
in „STK500 getötet?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
STK500_Schematics.pdf
NOTE! N.M. = Not Mounted SPI-SP VCC VCC VCC VCC VCC VCC SPI-SP Page 8 D D S S C CS R217 R219 R220 R222 R224 R226 D D D D 10K 10K 10K 10K 10K 10K N.M. N.M. N.M. R221 R223 R225 R227 4 3 4 3 VCC VCC SW200 SW201 10K 10K 10K 10K N.M. TxDA R201 R202 Page 3 TxDA 47K 47K RESET PROG RxDA U200 Page 3 RxDA AT90S1200
in „STK500 reparieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
bq24725.pdf
at T = 25°C, with respect to GND (unless otherwise noted) VCC J A PARAMETER TEST CONDITIONS MIN TYP MAX UNIT CHARGE CURRENT REGULATION V Charge Current Regulation Differential V = V - V 0 81.28 mV IREG_CHG_RNG Voltage Range IREG_CHG SRP SRN 3973 4096 4219 mA ChargeCurrent() = 0x1000H –3% 3% 1946 2048
in „[V] 3St TI LiIon Lade/ Batterie-Management Chips: BQ24725RG und BQ24072RG“ · Markt ·
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TestArmTurtorialDeu.pdf
mathematische Operationen. Beispielsweise kann das Hinzufügen wie folgt durchgeführt werden: ldr r0 = 222 ldr r1 = 111 addiere r2, r0, r1 Dies lädt zuerst den Wert 222 in das Register r0, lädt 111 in r1 und addiert schließlich r0 und r1 und speichert das Ergebnis (d. H. 333) in r2. Der Operand für das Ergebnis
in „ARM-Assembler-Tutorial“ · Mikrocontroller und Digitale Elektronik ·
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VisiLogic_-_Communications.pdf
Main Routine of the Ladder application. CANbus Specifications Power Requirements: 24VDC ( ±4%), 40mA max. per unit Galvanic Isolation between CANbus and controller: Yes Baud rate Max. Network Cable Length: 1 Mbit/s 25 m 500 Kbit/s 100 m 250 Kbit/s 250 m 125 Kbit/s 500 m 100 Kbit/s 500 m 50 Kbit/s 1000
in „USB-Host / industrielle SPS / Frequency Counter“ · Mikrocontroller und Digitale Elektronik ·
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tl431.pdf
Package Thermal Metrics application report (SPRA953). 7.4 Recommended Operating Conditions See (1) MIN MAX UNIT VKA Cathode voltage Vref 36 V I Cathode current 1 100 mA KA TL43xxC 0 70 TA Operating free-air temperature TL43xxI –40 85 °C TL43xxQ –40 125 (1) Maximum power dissipation is a function ofJ(max)
in „Analogeingang: Problem bei Überlast“ · Analoge Elektronik und Schaltungstechnik ·