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HFBR-14XX_Optolink.pdf
R E (d-6 O Z -4 R I -7 F I -7 F L E A R A E M CABLE ATTENUATION dB/km I M -8 10 E M -8 10 T O -5 α MAX (-40˚C, +85˚C) 4 20 S R CABLE ATTENUATION dB/km I O -9 CABLE ATTENUATION dB/km I ) α MIN (-40˚C, +85˚C) 1 A N -9 MAX (-40 ˚C, +85 ˚C) M N MAX (-40 ˚C, +85 ˚C).5 S / α TYP (-40˚C, +85˚C) 2.8 T ) -10
in „Debuggen bei EMV-Tests“ · Mikrocontroller und Digitale Elektronik ·
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Datei
test.ino.asm
MILLIS_INC; 21a: 01 96 adiw r24, 0x01 ; 1 21c: a1 1d adc r26, r1 21e: b1 1d adc r27, r1 if (f >= FRACT_MAX) { f -= FRACT_MAX; m += 1; } timer0_fract = f; 220: 20 93 50 01 sts 0x0150, r18 ; 0x800150 <__data_end> timer0_millis = m; 224: 80 93 51 01 sts 0x0151, r24 ; 0x800151 <timer0_millis> 228: 90 93 52 01
in „Atmega328 1-Wire mit Timer CTC/PWM“ · Mikrocontroller und Digitale Elektronik ·
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Thread
flash-Fehler mit ATtiny2313, compile ok
0 390: b0 e0 ldi r27, 0x00 ; 0 392: e8 0e add r14, r24 394: f9 1e adc r15, r25 396: 0a 1f adc r16, r26 398: 1b 1f adc r17, r27 39a: 17 ff sbrs r17, 7 39c: 05 c0 rjmp .+10
dieser Algorithmus auf einem Mikrocontroller den o.g. Beschränkungen unterliegt und somit auch nur für max. zahl=4.294.967.295 die Stellen-Anzahl ermitteln kann. +++++++++++++++++++++++++++++++++++++++++++++++++++++++++++ Ich habe jetzt die Hinweise und Ratschläge von Bernd K. und Johann L. befolgt und
Mikrocontroller und Digitale Elektronik ·Bernd-Dieter Bernt · ·46 Antworten
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PDF
TD340.pdf
INTEGRATED 5V POWER SUPPLY FOR MICROCONTROLLER ■ INTEGRATED SECURITY CIRCUITS: UVLO, OVLO, WATCHDOG ■ 60V MAX RATING ORDER CODE Package DESCRIPTION Part Number Temperature Range D The TD340 integrated circuit allows N-Channel TD340I -40°C, +125°C • Power Mosfets drivingin a fullH-bridge configuration and is
in „Suche Vollbrücken Gatetreiber“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
bootloaderV25.a51
db LOADER_OPTIONS ; =============== S U B R O U T I N E ======================================= __MaxFunc set 11 ;11 functions by default FunctionDispatcher: ; 0x3804 __i set R3 ; __result set R1 __len set OverLay+1 __addr set OverLay+2 mov A, Marker1 ;remove this xrl A, #0x5A jz $+4 sjmp $ ; clr A
in „uC für 0,20€ CH552 / CH554 von WCH Billig Micro mit USB Funktion, Chip vorstellung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MC1377.pdf
View Wire: #38 AWG (0.1 m/m) Figure 24. A Prototype Delay Line TDK Sample Number DL122301D–1533 1.26Max 32.0 0.35Max 9.0 *Marking 0.93Max 23.5 0.394〉0.06 10.0〉 1.5 0.2〉 0.04 0.026〉 0.002 5.0〉 1.0 0.65〉 0.33 0.788〉 0.08 20.0〉 2.0 0.8RadiusMax 2.0 Item Specifications Time Delay 400 ns 〉 10% *Marking: Part
in „Phasenverschiebung -90 bis -180° erzeugen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MC1377.PDF
View Wire: #38 AWG (0.1 m/m) Figure 24. A Prototype Delay Line TDK Sample Number DL122301D–1533 1.26Max 32.0 0.35Max 9.0 *Marking 0.93Max 23.5 0.394〉0.06 10.0〉 1.5 0.2〉 0.04 0.026〉 0.002 5.0〉 1.0 0.65〉 0.33 0.788〉 0.08 20.0〉 2.0 0.8RadiusMax 2.0 Item Specifications Time Delay 400 ns 〉 10% *Marking: Part
in „Problem beim FBAS Signal am Amiga 500“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Siemens_NTC_Databook.pdf
spans and minimum distances have to be r observed: c Dip soldering Iron soldering i o Bath temperature max. 260 °C max. 360 °C s Soldering time max. 4 s max. 2 s Distance from thermistor min. 6 mm min. 6 mm Under more severe soldering conditions the resistance may change. 1.2 Leadless NTC thermistors In
in „Hellblauer Temperatursensor“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LOG_RATIO_-_log102.pdf
1 V/decade Gain Error 1nA to 100µA (5 decades) 0.15 ±1 % vs Temperature T to T 0.025 0.05 %/°C MIN MAX INPUT, A1 and A2 Offset Voltage ±0.3 ±1.5 mV vs Temperature T to T ±2 µV/°C MIN MAX vs Power Supply (PSRR) VS= ±4.5V to ±18V 5 50 µV/V Input Bias Current ±5 pA vs Temperature TMINto TMAX Doubles Every
in „Logarithmic and log ratio amplifier“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
OPV_LT1359CN.pdf
CHARACTERISTICS TA= 25°C, VCM = 0V unless otherwise noted. SYMBOL PARAMETER CONDITIONS VSUPPLY MIN TYP MAX UNITS VOS Input Offset Voltage ±15V 0.2 0.6 mV ±5V 0.2 0.6 mV ±2.5V 0.3 0.8 mV IOS Input Offset Current ±2.5V to ±15V 40 120 nA IB Input Bias Current ±2.5V to ±15V 120 500 nA en Input Noise Voltage
in „Operationsverstärker (OPV) wird heiß als Summierer“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
OPV_LT1359CN.pdf
CHARACTERISTICS TA= 25°C, VCM = 0V unless otherwise noted. SYMBOL PARAMETER CONDITIONS VSUPPLY MIN TYP MAX UNITS VOS Input Offset Voltage ±15V 0.2 0.6 mV ±5V 0.2 0.6 mV ±2.5V 0.3 0.8 mV IOS Input Offset Current ±2.5V to ±15V 40 120 nA IB Input Bias Current ±2.5V to ±15V 120 500 nA en Input Noise Voltage
in „Operationsverstärker (OPV) wird heiß als Summierer“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LQ092B5DW02.pdf
LCY10021-5 5.Absolute maximum rating Teble5-1 Absolute maximum ratings GND=0V Parameter Symbol MIN MAX Unit Remark Power supply Analog VSHA -0.3 +14.0 V Ta=25℃ of source driverDigital VSHD -0.3 +4.0 V 〃 Power supply VGH -0.3 +35.0 V 〃 of gate driver VGL -20.0 +0.3 V 〃 VGH-VGL -0.3 +38.0 V 〃 Input signal
in „Anschluss TFT-LCD-Modul SHARP LQ092B5DW02 vs. LQ092B5DW01“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LT1358__25MHz__LT.pdf
CHARACTERISTICS TA= 25°C, VCM = 0V unless otherwise noted. SYMBOL PARAMETER CONDITIONS VSUPPLY MIN TYP MAX UNITS VOS Input Offset Voltage ±15V 0.2 0.6 mV ±5V 0.2 0.6 mV ±2.5V 0.3 0.8 mV IOS Input Offset Current ±2.5V to ±15V 40 120 nA IB Input Bias Current ±2.5V to ±15V 120 500 nA en Input Noise Voltage
in „defekte LT1358“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
10134fd.pdf
Precision Specs It is no longer necessary to compromise specifications, n Guaranteed Offset Voltage: 150µV Max whilesavingboardspaceandcost,ascomparedtosingle n Guaranteed Low Drift: 2µV/°C Max operational amplifiers. n Guaranteed Offset Current: 0.8nA Max TheLT1014’slowoffsetvoltageof50µV,driftof0.3µV/°C, n
in „LT1013 Unterschied D und P Package“ · Analoge Elektronik und Schaltungstechnik ·
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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
SSD1332.pdf
Peripheral Interface. SSD1332 has a 256 steps contrast control and 65K color control. FEATURES Support max. 96RGB x 64 matrix panel Power supply: VDD=2.4V - 3.5V VCC=8.0V - 18.0V OLED driving output voltage, 16V maximum DC-DC voltage converter Segment maximum source current: 200uA Common maximum sink current
in „Verkaufe OLED Displays FullColor 128*128 bzw. 96*64“ · Markt ·
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PDF
UCC28880.pdf
allowed switching frequency is: § D MIN · FSW _ VIN(max) MIN ¨ fSW(max) ¸ fSW(max) 66kHz ©tON_TO ¹ (10) The duty cycle does not force the MOSFET on time to go below t ON_TO. If DMIN/TON_TO < fSW(max), the switching frequency is reduced by current runaway protection and the maximum average switching frequency is lower than fSW(max) The minimum inductance value satisfies both the following conditions: VOUT ▯ Vd L1 2mH L fSW _ VIN(max) (11) ª§L MIN· º V IN(max) § 2H · L1 «¨ V ¸MIN T» J(max)K VIN(max)L1 I KtON_TO ¨ 2.65K V K375V
in „230V AC -> 3V3 DC“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
tlc4545.pdf
Sampling Rate D ATE System D Built-In Conversion Clock D Industrial Process Control D INL: ±2.5 LSB Max, D Measurement DNL: 2 to −1 LSB Max D Motor Control D SINAD = 84.5 dB, SFDR = 95 dB, DESCRIPTION THD = 94 dB at 15 kHz fin 200 KSPS D SPI/DSP-Compatible Serial Interfaces With The TLC4541 and TLC4545
in „Warum funktioniert das nicht? Mittelwert, AD_wandler“ · Mikrocontroller und Digitale Elektronik ·
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L6207.pdf
0.100 E1 6.350 6.600 6.860 0.250 0.260 0.270 e1 7.620 0.300 L 3.180 3.430 0.125 0.135 M 0° min., 15° max. 30/33 DocID7513 Rev 2 L6207 Package information Figure 33. SO24 package outline ▯▯▯▯▯▯▯ & Table 11. SO24 package mechanical data Dimensions Symbol mm inch Min. Typ. Max. Min. Typ. Max. A 2.35 2.65
in „Schrittmotor mit L6207“ · Mikrocontroller und Digitale Elektronik ·
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PDF
1822670.pdf
0.100 E1 6.350 6.600 6.860 0.250 0.260 0.270 e1 7.620 0.300 L 3.180 3.430 0.125 0.135 M 0° min., 15° max. 30/33 DocID7513 Rev 2 L6207 Package information Figure 33. SO24 package outline ▯▯▯▯▯▯▯ & Table 11. SO24 package mechanical data Dimensions Symbol mm inch Min. Typ. Max. Min. Typ. Max. A 2.35 2.65
in „Treiberstufe fuer Faulhaber Schrittmotor“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ab-EVAL6229PD.pdf
0.100 E1 6.350 6.600 6.860 0.250 0.260 0.270 e1 7.620 0.300 L 3.180 3.430 0.125 0.135 M 0° min., 15° max. DocID9455 Rev 4 31/34 34 Package information L6229 Figure 31. SO24 package outline ▯▯▯▯▯▯▯ & Table 12. SO24 package mechanical data Dimensions Symbol mm inch Min. Typ. Max. Min. Typ. Max. A 2.35 2.65
in „BLDC Motor rotiert nicht trotz Spannung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AS5045.pdf
AS5045 AS5040 Propagation delay 384µs (slow mode) 48µs 96µs (fast mode) Transition noise 0.03 degrees max. (slow mode) 0.12 degrees (rms; 1sigma) 0.06 degrees max. (fast mode) OTP programming Zero position, rotational direction, PWM Zero position, rotational direction, options disable, 2 Magnetic Field
in „Vom Sensor zum VHDL Board (D0-Board)“ · FPGA, VHDL & Co. ·
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Datei
console.txt
Zeichen Zeile 391 enthaelt 11 Zeichen Zeile 392 enthaelt 23 Zeichen Zeile 393 enthaelt 32 Zeichen Zeile 394 enthaelt 23 Zeichen Zeile 395 enthaelt 11 Zeichen Zeile 396 enthaelt 11 Zeichen Zeile 397 enthaelt 23 Zeichen Zeile 398 enthaelt 78 Zeichen Zeile 399 enthaelt 78 Zeichen Zeile 400 enthaelt 78 Zeichen
in „alle .htm-Dateien im Verzeichnis nacheinander öffnen“ · Softwareentwicklung ·
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PDF
LT1161.pdf
T A 25°C, V = 12V to 48V each channel, unless otherwise noted. SYMBOL PARAMETER CONDITIONS MIN TYP MAX UNITS IS Supply Current All Channels OFF (Note 2) 3 4.5 6.5 mA S(ON) Delta Supply Current (ON State) Measure Increase in S per Channel 1 1.35 mA V INH Input High Voltage 2 V V INL Input Low Voltage
in „Erfahrungen mit LT1161“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LT1170.pdf
V = 1V 1.80 2.30 V FB Voltage Lo Clamp, VFB 1.5V 0.25 0.38 0.52 V Reference Voltage Line 3V≤ V IN MAX 0.03 %/V Regulation V = 0.8V C AV Error Amplifier Voltage Gain 0.9V ≤V C 1.4V 500 800 V/V MinimumInput Voltage (Note 3) 2.6 3.0 V IQ Supply Current 3V≤ V IN MAX, VC= 0.6V 6 9 mA Control Pin Threshold
in „Bei Schaltregler nur Minimum- und Maximum-PowerSwitchStrom angegeben“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Sager_D87P_Service_Manual_Part4.pdf
L_OUT+ L_OUT+ C872 1 + 2 MSPKL L83 FCM2012V-121 2 100U/16V(D) 1 Fan Control C378 C377 R317 R316 C392 C394 C393 AUDIO_JACK a 680P 680P 680P 680P 0.1U t 1K 1K i c APGND D i a g VDD5 FAN VDD3 VDD5 R741 s R356 Q41 Q15 4.7K Q38 2SB1198K 4.7K Q16 2SB1198K C R742 2SB1198K E E C R341 R357 2SB1198K(R) E E D24 B
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PDF
Bus_Buffer_P82B96_4_datasheet.pdf
in accordance with I C 2. Sense the state of the pin Rx (Ry) and pull the I C pin LOW requirements (max. 1.5 V in 5 V applications) but not low enough to whenever Rx (Ry) is LOW. be looped back to the Tx output and cause the buffer to latch LOW. 2 The rest of this discussion will address only the “x”
in „I2C EEPROM Störung bei 15m mit BusBuffer P82B96“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Bus_Buffer_P82B96_4_datasheet.pdf
in accordance with I C 2. Sense the state of the pin Rx (Ry) and pull the I C pin LOW requirements (max. 1.5 V in 5 V applications) but not low enough to whenever Rx (Ry) is LOW. be looped back to the Tx output and cause the buffer to latch LOW. 2 The rest of this discussion will address only the “x”
in „I2C EEPROM Störung bei 15m mit BusBuffer P82B96“ · Mikrocontroller und Digitale Elektronik ·
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PDF
P82B86.pdf
in accordance with I C 2. Sense the state of the pin Rx (Ry) and pull the I C pin LOW requirements (max. 1.5 V in 5 V applications) but not low enough to whenever Rx (Ry) is LOW. be looped back to the Tx output and cause the buffer to latch LOW. 2 The rest of this discussion will address only the “x”
in „Wie Die Richtung bei einem 2-Draht-Bus erkennen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Bus_Buffer_P82B96_4_datasheet.pdf
in accordance with I C 2. Sense the state of the pin Rx (Ry) and pull the I C pin LOW requirements (max. 1.5 V in 5 V applications) but not low enough to whenever Rx (Ry) is LOW. be looped back to the Tx output and cause the buffer to latch LOW. 2 The rest of this discussion will address only the “x”
in „Kondensatoren bei I2C + BusBuffer, wofür?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Bus_Buffer_P82B96_4_datasheet.pdf
in accordance with I C 2. Sense the state of the pin Rx (Ry) and pull the I C pin LOW requirements (max. 1.5 V in 5 V applications) but not low enough to whenever Rx (Ry) is LOW. be looped back to the Tx output and cause the buffer to latch LOW. 2 The rest of this discussion will address only the “x”
in „Kondensatoren bei I2C + BusBuffer, wofür?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
adxl202_beschl.sensor_analog.pdf
patent or patent rights of Analog Devices. Fax: 781/326-8703 © Analog Devices, Inc., 1999 (TA= TMINto MAX A = +258C for J Grade onlDD V = +5 V, ADXL202/ADXL210–SPECIFICATIONS RSET= 125 kV, Acceleration = 0 g, unless otherwise noted) ADXL202/JQC/AQC ADXL210/JQC/AQC Parameter Conditions Min Typ Max Min Typ
in „Differenzverstärkerschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
opa4348_1_.pdf
Plane 1 4 0.010 (0,25) A 0°– 8° 0.044 (1,12) 0.016 (0,40) Seating Plane 0.010 (0,25) 0.069 (1,75) MAX 0.004 (0,10) 0.004 (0,10) PINS ** DIM 8 14 16 0.197 0.344 0.394 A MAX (5,00) (8,75) (10,00) 0.189 0.337 0.386 A MIN (4,80) (8,55) (9,80) 4040047/E 09/01 NOTES: A. All linear dimensions are in inches
in „ADC im Messbereich kleiner 1V“ · Mikrocontroller und Digitale Elektronik ·
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PDF
STV5730.pdf
Frequency Range 0 2 MHz CLK tCWL CLK Width Low 200 ns tCWH CLK Width High 200 ns CSWL CSN Width Low maxHZ* x 4 s CSWH CSN Width High maxHZ* x 4 s tDCLH DATA Valid to CLK High 100 ns CLD CLK High to DATA Unvalid 100 ns CLCSL CLK Valid to CSN Low 100 ns tCSLCLL CSN Low to CLK Low 100 ns L . tCLHCSH CLK
in „Videoeinblendung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
STV5730A.pdf
Frequency Range 0 2 MHz CLK tCWL CLK Width Low 200 ns tCWH CLK Width High 200 ns CSWL CSN Width Low maxHZ* x 4 s CSWH CSN Width High maxHZ* x 4 s tDCLH DATA Valid to CLK High 100 ns CLD CLK High to DATA Unvalid 100 ns CLCSL CLK Valid to CSN Low 100 ns tCSLCLL CSN Low to CLK Low 100 ns L . tCLHCSH CLK
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PDF
1510fc.pdf
SINKING. Consult factory for Military grade parts. ELECTRICAL CHARACTERISTICS VCC = 16V, V BAT = 8V, V MAX (maximumoperating V ) = CCV, no load on any outputs, unless otherwise noted. (Notes 7, 8) PARAMETER CONDITIONS MIN TYP MAX UNITS Overall Supply Current VPROG = 2.7V, VCC ≤20V 2.90 4.3 mA V = 2.7V, 20V
in „Problem mit LT1510“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PCF8583.pdf
dimensions are derived from the original mm dimensions) UNIT A A1 A2 b b b c D (1) E(1) e e L M M w Z (1) max. min. max. 1 2 1 E H max. mm 4.2 0.51 3.2 1.73 0.53 1.07 0.36 9.8 6.48 2.54 7.62 3.60 8.25 10.0 0.254 1.15 1.14 0.38 0.89 0.23 9.2 6.20 3.05 7.80 8.3 inches 0.17 0.020 0.13 0.068 0.021 0.042 0.014 0.39
in „RTC PCF8583 einen Interrupt ausloesen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PCF8583_5_rtc_real_time_clock.pdf
dimensions are derived from the original mm dimensions) UNIT A A1 A2 b b b c D (1) E(1) e e L M M w Z (1) max. min. max. 1 2 1 E H max. mm 4.2 0.51 3.2 1.73 0.53 1.07 0.36 9.8 6.48 2.54 7.62 3.60 8.25 10.0 0.254 1.15 1.14 0.38 0.89 0.23 9.2 6.20 3.05 7.80 8.3 inches 0.17 0.020 0.13 0.068 0.021 0.042 0.014 0.39
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PDF
PCF8583P.pdf
dimensions are derived from the original mm dimensions) UNIT A A1 A2 b b b c D (1) E(1) e e L M M w Z (1) max. min. max. 1 2 1 E H max. mm 4.2 0.51 3.2 1.73 0.53 1.07 0.36 9.8 6.48 2.54 7.62 3.60 8.25 10.0 0.254 1.15 1.14 0.38 0.89 0.23 9.2 6.20 3.05 7.80 8.3 inches 0.17 0.020 0.13 0.068 0.021 0.042 0.014 0.39
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PDF
PCF8583_5.pdf
dimensions are derived from the original mm dimensions) UNIT A A1 A2 b b b c D (1) E(1) e e L M M w Z (1) max. min. max. 1 2 1 E H max. mm 4.2 0.51 3.2 1.73 0.53 1.07 0.36 9.8 6.48 2.54 7.62 3.60 8.25 10.0 0.254 1.15 1.14 0.38 0.89 0.23 9.2 6.20 3.05 7.80 8.3 inches 0.17 0.020 0.13 0.068 0.021 0.042 0.014 0.39
in „PCF8583: Welche Genauigkeit kann ìch erwarten?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
RBS17707-SN65HVD230-CAN-Board-Datasheetsiyyp0AhGRhw5g.pdf
over recommended operating conditions (unless otherwise noted) PARAMETER TEST CONDITIONS MIN TYP † MAX UNIT VIT+ Positive-going input threshold voltage 750 900 mV See Table 1 VIT– Negative-going input threshold voltage 500 650 mV Vhys Hysteresis voltage IT+ – IT–) 100 VOH High-level output voltage –6
in „PCB Schaltplan“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MLX90640-Datasheet-Melexis.pdf
Figure 2 MLX90640 Overview and pin description 7. Absolute Maximum Ratings Parameter Symbol Min. Typ. Max. Unit Remark Supply Voltage (over voltage) V 5 V DD Supply Voltage (operating max voltage) V 3.6 DD Reverse Voltage (each pin) -0.3 V Operating Temperature TAMB -40 +85 °C Storage Temperature TST -40
in „MLX90640 IR-Array 32x24 pixel“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MLX90640-Datasheet-Melexis.pdf
Figure 2 MLX90640 Overview and pin description 7. Absolute Maximum Ratings Parameter Symbol Min. Typ. Max. Unit Remark Supply Voltage (over voltage) V 5 V DD Supply Voltage (operating max voltage) V 3.6 DD Reverse Voltage (each pin) -0.3 V Operating Temperature TAMB -40 +85 °C Storage Temperature TST -40
in „Wärmebildkamera mit dem MLX90640 und Arduino Due“ · Mikrocontroller und Digitale Elektronik ·
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PDF
l6599.pdf
define the switching frequency fmax above which the L6599 will enter burst-mode operation. Once fixed f max, RF max will be found from the relationship: 3 RF min RF max = 8-⋅f----------------- --------- – 1 fmin Note that, unlike the max considered in the previous section ("Chapter 7.1: Oscillator"), here
in „Hilfe bei der Reparatur eines Schaltnetzteiles erbeten“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LEDOverCurrentDriving.pdf
the or switched-mode power supply. XLamp XM-L have multi-ampere Within specification boundaries, 1 max-current specifications. none of these conditions is cause However, to explore the limits of for concern in the long-term lumen the possible, but not necessar- maintenance or reliability of the ily reasonable
in „Stroboskope mit LED“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ADS8345.pdf
24 • SAMPLE= 2.4MHz, unless otherwise noted. ADS8345E, N ADS8345EB, NB PARAMETER CONDITIONS MIN TYP MAX MIN TYP MAX UNITS RESOLUTION 16 ✻ Bits ANALOG INPUT Full-Scale Input Span Positive Input-Negative Input –V REF +VREF ✻ ✻ V Absolute Input Range +IN –0.2 +V + 0.2 ✻ ✻ V CC –IN –0.2 +VCC+ 0.2 ✻ ✻ V Capacitance
in „ext. AD Wandler ADS8345“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SSD1332_R1.61.pdf
Peripheral Interface. It has a 256 steps contrast control and 65K color control. 2 FEATURES Support max. 96RGB x 64 matrix panel Power supply: V DD= 2.4V - 3.5V VCC= 7.0V - 18.0V OLED driving output voltage, 16V maximum DC-DC voltage converter Segment maximum source current: 200uA Common maximum sink
in „OLED und 8051“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ds-mb86r01-jade-rev1-4.pdf
Max. resolution is 1024 × 768 Max. 6 layered display Max. 2 screen output • Digital video capture function BT.601, BT.656, and RGB666 Max. 2 inputs • Geometry engine (MB86296 compatible display list is
in „Bild im Bild in der Instumententafel Range Rover“ · Mikrocontroller und Digitale Elektronik ·
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PDF
NCO8703.pdf
4πE − 7 × 120 × 97.6E − 6)) = 15.8 turns. So n pr8 turns and n sec= 16 turns. For each transformer V max depends on the power over 100 . V max= SQR(2 × P ×OR ) =LSQR(2 × 150 × 100) = 173.2 V B maxdepends on the parallel loss resistance at 1.6 MHz; for a power loss of 1%: B max = 1.3E − 2T. The volume A.1 needed per core is: A.1 = (V /(ω × B )) ( × )/L. max max o r A.1 = (1.73.2/(2π × 1.6E + 6 × 0.013)) (4πE − 7 × 120)/40E − 6 = 6.62E − 6 m .3 Each of the toroids has a volume of 8.97E − 6 m . Figure 7 shows one of the two parallel connected output transformers
in „Stackpole Ferrit Kerne für RF Verstärker“ · HF, Funk und Felder ·