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PDF
MSC-G12232DYSY-7N.pdf
LCD duty 1/32 --- LCD bias 1/5 --- Viewing direction 6 O’clock Module size (W×H×T) 84.0× 44.0× 12.0MAX (3.307″ × 1.732″ × 0.472″MAX) mm Viewing area (W×H) 60.5× 18.5(2.382″ × 0.728″) mm Number of dots 122× 32 dots Dot size (W×H) 0.40× 0.45(0.016″ × 0.018″) mm Dot pitch (W×H) 0.44× 0.49(0.017″ × 0.019
in „S: SG12232C Display“ · Markt ·
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PDF
ProASICPlus_DS.pdf
±1% –40°C ±2.5% ±3.5% ±1% –55°C ±2.5% ±3.5% ±1% Acquisition Time from Cold Start Acquisition Time (max.) 30 µs fVCO ≤ 40 MHz Acquisition Time (max.) 80 µs fVCO > 40 MHz Power Consumption Analog Supply Power (max.*) 6.9 mW per PLL Digital Supply Current (max.) 7 µW/MHz Duty Cycle 50% ±0.5% 5% input period
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PDF
9808035.pdf
the top of center frequency TUNE ,FINE TUNE and a filtersmoothsoraveragesnoise.Theavail- the screen. MAX SPAN calibration pot set up the proper able frequency spans range from a per- sweep for maximum span. As the span is division maximum of 7 MHz to about Time Base reduced with the SPAN control, the sweep
in „Oszilloskop als Spectrum analyzer“ · Mikrocontroller und Digitale Elektronik ·
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PDF
sn74hc02.pdf
range (unless otherwise noted) TA= 25°C SN54HC02 SN74HC02 PARAMETER TEST CONDITIONS V CC UNIT MIN TYP MAX MIN MAX MIN MAX 2 V 1.9 1.998 1.9 1.9 IOH = –20µA 4.5 V 4.4 4.499 4.4 4.4 V V = V or V 6 V 5.9 5.999 5.9 5.9 V OH I IH IL IOH = –4 mA 4.5 V 3.98 4.3 3.7 3.84 IOH = –5.2 mA 6 V 5.48 5.8 5.2 5.34 2 V
in „Ersatztype CD4001“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TSL220.PDF
TEST CONDITIONS MIN TYP MAX UNIT VOM Peak output voltage R L 50 k 3 4 V I Supply current C = 100 pF, E = 0 7.5 10 mA CC e operating characteristics at V CC = 5 V, T A 25 ⋅C (see Figure 1) PARAMETER TEST CONDITIONS MIN TYP MAX
in „timer 2 interrupt?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
UV1316.pdf
mounting tags (ground) LIMITING VALUES Environmental conditions SYMBOL PARAMETER CONDITIONS MIN. TYP. MAX. UNIT Non-operational conditions Tamb ambient temperature −25 − +85 °C RH relative humidity − − 100 % gB bump acceleration 25 g − − 245 m/s2 g shock acceleration 50 g − − 490 m/s2 S vibration amplitude
in „C-Box 2 Platine von Pollin“ · Mikrocontroller und Digitale Elektronik ·
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PDF
bd139.pdf
C 12.5 W o P tot Total Dissipation aamb 25 C 1.25 W T stg Storage Temperature -65 to 150 C o Tj Max. Operating Junction Temperature 150 C September 2001 1/4 BD135 / BD139 THERMAL DATA R thj-caseThermal Resistance Junction-case Max 10 oC/W o ELECTRICAL CHARACTERISTICS (T case= 25 C unlessotherwise
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PDF
Treiber_IC-SSD0323_OLED_128x64_GELB.pdf
oscillator and DC-DC voltage converter reduce the number of external components. FEATURES Support max. 128 x 80 matrix panel Power supply: VDD=2.4V - 3.5V VCC=8.0V - 16.0V OLED driving output voltage, 14V maximum DC-DC voltage converter Segment maximum source current: 300uA Common maximum sink current
in „[Q]Erfahrungen mit (Reichelt) Pictiva OLED Displays“ · 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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Datei
regelung5a.c
Ankerkreiswiderstand gemessen in Ohm kphi = 0.04; // k * phi aus Leerlaufdaten ermittelt nmax = 333.0; // max. Drehzahl = Bezugswert für Normierung in 1/sec ; /* - Sollwert ermitteln - */ adcw = read_adc (7); // einlesen des analogen Sollwertes 0 bis 5V und wandeln auf Zahlen 0 bis 1023 w = adcw / 1024; //
in „Drehzahlregelung einer Handbohrmaschine“ · Mikrocontroller und Digitale Elektronik ·
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PDF
EEPROM_s_93Cxx.pdf
5.5V, V CC= 1.8V to 3.6V, Unit TA = 0 to 7° C, TA= 0 to 70°C, TA = –40 to 8° C T A= –20 to 85°C Min Max Min Max tSHCH tCSS Chip Select Set-up Time 100 200 ns t t Clock Set-up Time (relative to S) 100 100 ns CLSH SKS t t Data In Set-up Time 100 100 ns DVCH DIS tCHDX DIH Data In Hold Time 100 200 ns tCHQL
in „EEPROM 93C86 ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MOS4007_STM.pdf
Conditios Value Symbol Parameter o Unit V I VO |O | VDD TLOW * 25 C THIGH * (V) (V) ( A) (V) Min. Max. Min. Typ. Max. Min. Max. IL Quiescent 0/5 5 0.25 0.01 0.25 7.5 Current HCC 0/10 10 0.5 0.01 0.5 15 Types 0/15 15 1 0.01 1 30 A 0/20 20 5 0.02 5 150 HCF 0/5 5 1 0.01 1 7.5 0/10 10 2 0.01 2 15 Types
in „Frage zu MOS4007 (MOSFETs + INV)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
sn75452b.pdf
output current VCC = MIN, V IH= MIN, 300 100 A OH VOH = 30 V I Input current at maximum input voltVCC = MAX, V I 5.5 V 1 1 mA IH High-level input current VCC = MAX, V I 2.4 V 40 40 A IL Low-level input current VCC = MAX, V I 0.4 V –1 –1.6 –1 –1.6 mA I Supply current, outputs high V = MAX, V = 5 V 7 11 7 11
in „Suche Datenblatt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AVR450_BattCharger.pdf
voltage: V = 0.5V sat Input voltage: V = 15V I Output voltage: V = 1.5V O Maximum output current: IO,max= 1.5A 8-bit PWM: 510 T = = 69.199ms OSC With duty cycle of 50%: 69.199ms on = = 34.60ms 2 Inductance: VI -VsatV 0 on 15V -0.5V -1.5V 34.m0 s L = = =149.9mH 2Io,max 2×1.5A 9 1659B–AVR–11/02 t = L ×2×
in „Pb-Akku Ladegerät mit µP Selbstgemacht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Transistoren_cht.pdf
600 0.75 9 TO-220 2SK2866 A ST STP9NB60FP 600 0.75 5.2 TO-220FP 2SK2843 A ST STU10NB80 800 0.85 9.7 MAX220 ST STU11NB60 600 0.65 10.7 MAX220 2SK2843 B ST STU13NB50 500 0.45 13 MAX220 2SK2842 B ST STU13NB60 600 0.45 12.6 MAX220 ST STU13NB60I 600 0.45 8 MAX220 ST STU16NB50 500 0.33 15.6 MAX220 ST STU16NB50I 500 0.33 10 MAX220 ST STU6NA100 1000 1.7 6 MAX220 ST STU6NA90 900 2 5.8 MAX220 ST STU7NA80 800 1.5 6.5 MAX220 ST STU7NA90 900 1.3 7.3 MAX220 ST STU7NB90 900 1.45 7.4 MAX220 ST STU8NA80 800 1 8.3 MAX220 ST STU8NB90
in „Frage Mosfet“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
HD66773.pdf
potentiometer • Output power-supply voltage For the TFT-display counter electrode: Vcom amplitude = 6V (max), VcomH-GND =VREG1OUT (max), VcomL-GND= Vci + 1.0V to –Vci+0.5V (max) • Internal RAM capacity: 46,464 bytes • Internal operation circuit of liquid crystal display Source signal: 396 Gate signal: 176
in „The Siemens S65 132x176, 65536 color display with AVR“ · Projekte & Code ·
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PDF
HD66773.pdf
potentiometer • Output power-supply voltage For the TFT-display counter electrode: Vcom amplitude = 6V (max), VcomH-GND =VREG1OUT (max), VcomL-GND= Vci + 1.0V to –Vci+0.5V (max) • Internal RAM capacity: 46,464 bytes • Internal operation circuit of liquid crystal display Source signal: 396 Gate signal: 176
in „The Siemens S65 132x176, 65536 color display with AVR“ · Projekte & Code ·
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PDF
HD66766-10.pdf
all 0 Ta = 25C, fosc = 276khz (1/176duty), 1/12 Bias CT minimum, display all 0 typ: T.B.D typ: 480 Max: T.B.D Max: 600 96 HD66766 Rev. 1.0 / 30 November 2001 Rev.0.3 page part Before After 2001.11.12 79 Clock Characteristics Min: T.B.D Min: 151 (External clock frequency) Typ: 268 Typ: 275 Max: T.B.D Max: 640 (R-C oscillation clock) Test Condition Rf Test Condition Rf = 150 Ω 200Ω Min: - Min: 220 Typ: T.B.D Typ: 275 Max: - Max: 330 84 Reset Timing Characteristics Max: 10 Max: 100 (Reset rise time) 90
in „The Siemens S65 132x176, 65536 color display with AVR“ · Projekte & Code ·
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PDF
MOS4066_SMD4066_STM.pdf
aDDVvalues is 0,3%/⋅C) Test Conditions Value VI VDD TLow* 25⋅ C THigh Symbol Parameter Unit (V) (V) Min. Max. Min. Typ. Max. Min. Max. L Quiescent 0/ 5 5 0.25 0.01 0.25 7.5 Device 0/10 10 0.5 0.01 0.5 15 Current (allCC switches Types 0/15 15 1 0.01 1 30 ON or all switches 0/20 20 5 0.02 5 150 A OFF) 0/ 5 5
in „Varkaufe V4066D“ · Markt ·
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PDF
MOS4051_MOS4052_MOS4053_SMD4051_SMD4052_SMD4053_STM.pdf
Test Conditions Value Symbol Parameter V IS VEE V SS VDD TLow 25 ⋅ C THigh Unit (V) (V) (V) (V) Min. Max. Min. Typ. Max. Min. Max. IL Quiescent 5 5 0.04 5 150 Device HCC 10 10 0.04 10 300 Current Types 15 20 0.04 20 600 20 100 0.08 100 3000 5 20 0.04 20 150 A HCF 10 40 0.04 40 300 Types 15 80 0.04 80 600
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PDF
62761.pdf
range (unless otherwise noted) TA= 25°C SN54HC02 SN74HC02 PARAMETER TEST CONDITIONS V CC UNIT MIN TYP MAX MIN MAX MIN MAX 2 V 1.9 1.998 1.9 1.9 IOH = –20µA 4.5 V 4.4 4.499 4.4 4.4 V V = V or V 6 V 5.9 5.999 5.9 5.9 V OH I IH IL IOH = –4 mA 4.5 V 3.98 4.3 3.7 3.84 IOH = –5.2 mA 6 V 5.48 5.8 5.2 5.34 2 V
in „Treiberfähigkeit bei Gatter für LED-Ansteuerung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ST24C32_ST24C64_STM.pdf
T =0 to 70°C or T =0 to 70°C or TA=0 to 70°C or Unit A A 4 –40 to 85°C –40 to 85°C –20 to 85°C Min Max Min Max Min Max CH1CH2 tR Clock Rise Time 300 300 1000 ns t t Clock Fall Time 300 300 300 ns CL1CL2 F 2 tDH1DH2 tR SDA Rise Time 20 300 20 300 20 1000 ns tDL1DL22 tF SDA Fall Time 20 300 20 300 20 300
in „I²c mit Bascom und ATmega“ · 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
SED1565.pdf
Figure 39 Table 35 (VDD= 4.5 V to 5.5 V, Ta = –40 to 85°C) Rating Item Signal Symbol Condition Min Typ Max Units FR delay time FR tDFR CL = 50 pF — 10 40 ns Table 36 (VDD= 2.7 V to 4.5 V, Ta = –40 to 85°C) Rating Item Signal Symbol Condition Units Min Typ Max FR delay time FR tDFR CL = 50 pF — 20 80 ns Table
in „Pollin 128x64 GLCD : Bild verzerrt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SpartanXL.pdf
configuration Low cost Chip scale packaging Table 1: Spartan and Spartan-XL Field Programmable Gate Arrays Max Typical Max. Total Logic System Gate Range (1) CLB Total No. of Avail. Distributed Device Cells Gates (Logic and RAM) Matrix CLBs Flip-flops User I/O RAM Bits XCS05 and XCS05XL 238 5,000 2,000-5,000
in „Logic Analyzer bauen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SPS9540_KM_G_011017.pdf
Byte-EEPROM fluss auf die Messung hat, ist der positive vomMikrocontroller(Port4.0bis Port4.2) (IC 307) ausgestattet. Des Weiteren dient Eingang von IC 311 B über den Span- gesteuert. das EEPROM zur Abspeicherung von nungsteiler R 323, R 324 leicht negativ Die über R 337 mit Spannung versorgte max. neun
in „*Netzteil die ZWEITE*“ · Mikrocontroller und Digitale Elektronik ·
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PDF
datenblatt_74hc4050.pdf
Symbol Parameter V T A = 25 C -40 to 85 C -55 to 125 C Unit CC 54HC and 74HC 74HC 54HC (V) Min. Typ. Max. Min. Max. Min. Max. V IH High Level Input 2.0 1.5 1.5 1.5 Voltage V 4.5 3.15 3.15 3.15 6.0 4.2 4.2 4.2 V IL Low Level Input 2.0 0.5 0.5 0.5 Voltage V 4.5 1.35 1.35 1.35 6.0 1.8 1.8 1.8 VOH High Level
in „Bustreiber-Ersatz zum 74LS244/245 - brauche Tipp“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at29c010.pdf
AT29C010A AC Read Characteristics AT29C010A-70 AT29C010A-90 AT29C010A-12 AT29C010A-15 Symbol Parameter Min Max Min Max Min Max Min Max Units t Address to Output Delay 70 90 120 150 ns ACC t (1) CE to Output Delay 70 90 120 150 ns CE tOE(2) OE to Output Delay 0 35 0 40 0 50 0 70 ns tDF(3)(4) CE or OE to Output
in „Beschaltung AT29C010 /Pulldowns?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Power_MOSET_Cross_reference.pdf
600 0.75 9 TO-220 2SK2866 A ST STP9NB60FP 600 0.75 5.2 TO-220FP 2SK2843 A ST STU10NB80 800 0.85 9.7 MAX220 ST STU11NB60 600 0.65 10.7 MAX220 2SK2843 B ST STU13NB50 500 0.45 13 MAX220 2SK2842 B ST STU13NB60 600 0.45 12.6 MAX220 ST STU13NB60I 600 0.45 8 MAX220 ST STU16NB50 500 0.33 15.6 MAX220 ST STU16NB50I 500 0.33 10 MAX220 ST STU6NA100 1000 1.7 6 MAX220 ST STU6NA90 900 2 5.8 MAX220 ST STU7NA80 800 1.5 6.5 MAX220 ST STU7NA90 900 1.3 7.3 MAX220 ST STU7NB90 900 1.45 7.4 MAX220 ST STU8NA80 800 1 8.3 MAX220 ST STU8NB90
in „Schaltregler Fragen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
M74HC11.pdf
= 25 C -40 to 85 C -55 to 125 C o Symbol Parameter VCC 54HC and 74HC 74HC 54HC Unit (V) Min. Typ. Max. Min. Max. Min. Max. V IH High Level Input 2.0 1.5 1.5 1.5 Voltage 4.5 3.15 3.15 3.15 V 6.0 4.2 4.2 4.2 V Low Level Input 2.0 0.5 0.5 0.5 IL Voltage 4.5 1.35 1.35 1.35 V 6.0 1.8 1.8 1.8 VOH High Level
in „Ausgangsstrom M74HC11“ · Mikrocontroller und Digitale Elektronik ·
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PDF
STK500_Schematics.pdf
located as close to the DSUB connector as possible C306 100nF GND VCC C304 + 10u/16V U300 R300 1 + C307 J300 C1+ 10u/16V C 1 470R 2 3 PWRM C 6 C300 V+ C1- PWRM Page 6,2 2 1n2 14 T1 11 TxDA TxDA Page 2 7 3 13 R1 12 RxDA RxDA Page 2 8 RS232 TTL 4 7 10 VCC 9 T2 VTG 5 R301 8 9 VTG Page 6,2 R2 R304 R305 R306 470R DB9 6 V- C2+ 4 1K 6 39K 47K C301 1n2 5 + C308 Q300A 2 C305 C2- 10u/16V BC847BS + 10u/16V MAX202CSE 3 1 C309 Q300B 5 22pF BC847BS NOTE! MAX202ECSE can be used to improve ESD tolerance NOTE! Filters must be located as close to the DSUB connector as possible 4 J302 TxDB 1 2 VCC R307 COM PORT R302
in „Schema STK 500 ?!“ · Mikrocontroller und Digitale Elektronik ·
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PDF
hct541.pdf
/M74HCT540/541 Ceramic DIP20 MECHANICAL DATA mm inch DIM. MIN. TYP. MAX. MIN. TYP. MAX. A 25 0.984 B 7.8 0.307 D 3.3 0.130 E 0.5 1.78 0.020 0.070 e3 22.86 0.900 F 2.29 2.79 0.090 0.110 G 0.4 0.55 0.016 0.022 I 1.27 1.52 0.050 0.060 L 0.22 0.31 0.009 0.012 M 0.51 1.27 0.020 0.050 N1 4⋅ (min.), 15⋅ (max.) P 7.9 8.13 0.311 0.320 Q 5.71 0.225 P057H 9/12 M54/M74HCT540/541 SO20 MECHANICAL DATA mm inch DIM. MIN. TYP. MAX. MIN. TYP. MAX. A 2.65 0.104 a1 0.10 0.20 0.004 0.007 a2 2.45 0.096 b 0.35 0.49 0.013
in „High Voltage Programmer“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MOS40106_STA_1_.pdf
Conditions Value Symbol Parameter VI V O |IO| V D D T Low* 25⋅ C THigh* Unit (V) (V) ( A) (V) Min. Max. Min. Typ. Max. Min. Max. I Quiescent 0/ 5 5 1 0.02 1 30 L Current HCC 0/10 10 2 0.02 2 60 Types 0/15 15 4 0.02 4 120 A 0/20 20 20 0.04 20 600 0/ 5 5 4 0.02 4 30 HCF Types 0/10 10 8 0.02 8 60 0/15 15
in „R und C bestimmen für Schmitt-Trigger“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tlc274.pdf
PW 700 mW 5.6 mW/°C 448 mW — — recommended operating conditions C SUFFIX I SUFFIX M SUFFIX UNIT MIN MAX MIN MAX MIN MAX Supply voltageDDV 3 16 4 16 4 16 V VDD = 5 V –0.2 3.5 –0.2 3.5 0 3.5 Common-mode input voltageICV V = 10 V –0.2 8.5 –0.2 8.5 0 8.5 V DD Operating free-air temperaAure, T 0 70 –40 85
in „Beschaltung von Photodioden“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HM17CM4096.pdf
CLLW CL DFLM t DFLM FLM tDM FR OUTPUT TIMING (VDD2.4 3.3V, Ta=-30 +85 C) ITEM SYMBOL CONDITION MIN. MAX. UNIT PORT FLM delay time tDFLM C =15pF 0 500 ns FLM FR delay time FR L 0 500 ns FR OUTPUT TIMING (VDD1.7 2.4V, Ta=-30 +85 C) ITEM SYMBOL CONDITION MIN. MAX. UNIT PORT FLM delay time tDFLM C =15pF 0
in „LCD Graphik Display mit µController ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IgorPlug-USB__AVR__firmware.pdf
znuluj dlzky Infra kodu v bufferi sts InfraBufferBegin+1,YH ;znuluj pocitadlo infra kodov v bufferi 306 307 clr MyUpdatedAddress ;nova adresa USB - nedekodovana 308 rcall InitACKBufffer ;inicializacia ACK buffera 309 rcall InitNAKBufffer ;inicializacia NAK buffera 310 311 rcall USBReset ;inicializacia USB
in „Booten auf Knopfdruck mit AT90S23X3“ · Mikrocontroller und Digitale Elektronik ·
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PDF
M24CXX.pdf
Symbol Alt. Parameter TA=0 to 70°C or TA=0 to 70°C or A Unit –40 to 85°C –40 to 85°C –40 to 85°C 4 Min Max Min Max Min Max CH1CH2 tR Clock Rise Time 300 300 300 ns tCL1CL2 tF Clock Fall Time 300 300 300 ns tDH1DH22 tR SDA Rise Time 20 300 20 300 20 300 ns tDL1DL22 tF SDA Fall Time 20 300 20 300 20 300 ns
in „serielles EEPROM“ · Mikrocontroller und Digitale Elektronik ·
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PDF
f_2320312311226304479081.pdf
Table 35 (VDD = 4.5 V to 5.5 V, Ta = –40 to 85°C) Item Signal Symbol Condition Rating Units Min. Typ. Max. FR delay time FR tDFR CL = 50 pF — 10 40 ns Table 36 (VDD = 2.7 V to 4.5 V, Ta = –40 to 85°C) Rating Item Signal Symbol Condition Min. Typ. Max. Units FR delay time FR tDFR CL = 50 pF — 20 80 ns Table
in „Philips GLCD Modul“ · Mikrocontroller und Digitale Elektronik ·
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PDF
S1D15714_Technical_Manual__E_.pdf
value Unit Applicable Min. Typ. Max. pin Sleep state IDDS1 — — 0.3 5 µA — 48 EPSON Rev. 1.0 S1D15714 Series [Reference Data 1] • Dynamic current consumption during LCD display when the internal power supply is used. V 3 = 14V *13 150
in „Nokia LCD 3510“ · Mikrocontroller und Digitale Elektronik ·
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PDF
D15G14E_14_030526.pdf
SEG309 6100 219 SEG259 4100 269 SEG209 2100 170 SEG308 6060 220 SEG258 4060 270 SEG208 2060 171 SEG307 6020 221 SEG257 4020 271 SEG207 2020 172 SEG306 5980 222 SEG256 3980 272 SEG206 1980 173 SEG305 5940 223 SEG255 3940 273 SEG205 1940 174 SEG304 5900 224 SEG254 3900 274 SEG204 1900 175 SEG303 5860 225
in „Nokia LCD 3510“ · Mikrocontroller und Digitale Elektronik ·
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PDF
dimmer6.pdf
82 114 146 178 210 242 274 306 338 370 402 434 466 498 1 1 0 0 1 19 51 83 115 147 179 211 243 275 307 339 371 403 435 467 499 0 0 1 0 1 20 52 84 116 148 180 212 244 276 308 340 372 404 436 468 500 1 0 1 0 1 21 53 85 117 149 181 213 245 277 309 341 373 405 437 469 501 0 1 1 0 1 22 54 86 118 150 182 214
in „12V Halogenlampen dimmen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
43480001.pdf
25 C 12.5 W Ptot Total Dissipation aamb 25 C 1.25 W o T stg Storage Temperature -65 to 150 C T Max. Operating Junction Temperature 150 oC j October1995 1/4 BD135/BD137/BD139 THERMAL DATA R thj-caseThermal Resistance Junction-case Max 10 C/W ELECTRICAL CHARACTERISTICS (T = 25 C unlessotherwise specified
in „Lüfter mit Wiederstand regeln“ · Mikrocontroller und Digitale Elektronik ·
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PDF
avr450.pdf
max = = 488 S V I− Vsat−V O 15V − 0.5V − 15V Rb VADC = * ( ) This gives a duty cycle of Ra Rb on 4.88 s Where: = = 0.449 = 44.9 % • V ADCis the output voltage from the op-amp to the AVR T 9.96 s A/D. •
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Datei
test7.c
297, 297, 298, 298, 299, 299, 300, 300, 301, 301, 302, 302, 303, 303, 304, 304, 305, 305, 306, 306, 307, 307, 308, 308, 309, 310, 310, 311, 311, 312, 312, 313, 313, 314, 314, 315, 315, 316, 316, 317, 317, 318, 318, 319, 319, 320, 320, 321, 321, 322, 322, 323, 323, 324, 325, 325, 326, 326, 327, 327, 328
in „Frage zu Interrupt“ · Mikrocontroller und Digitale Elektronik ·
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Datei
test7.c
297, 297, 298, 298, 299, 299, 300, 300, 301, 301, 302, 302, 303, 303, 304, 304, 305, 305, 306, 306, 307, 307, 308, 308, 309, 310, 310, 311, 311, 312, 312, 313, 313, 314, 314, 315, 315, 316, 316, 317, 317, 318, 318, 319, 319, 320, 320, 321, 321, 322, 322, 323, 323, 324, 325, 325, 326, 326, 327, 327, 328
in „Frage zu Interrupt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
24c04_V2.pdf
ST24/25C04, ST24/25W04 PSDIP8 - 8 pin Plastic Skinny DIP, 0.25mm lead frame Symb mm inches Typ Min Max Typ Min Max A 3.90 5.90 0.154 0.232 A1 0.49 – 0.019 – A2 3.30 5.30 0.130 0.209 B 0.36 0.56 0.014 0.022 B1 1.15 1.65 0.045 0.065 C 0.20 0.36 0.008 0.014 D 9.20 9.90 0.362 0.390 E 7.62 – – 0.300 – – E1
in „I²C - EEPROM's (24C04 ...)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
atmel-flash-speicher.pdf
AT49F512 AT49F512 AC Read Characteristics AT49F512-50 AT49F512-70 AT49F512-90 Symbol Parameter Min Max Min Max Min Max Units tACC Address to Output Delay 50 70 90 ns tCE(1) CE to Output Delay 50 70 90 ns (2) tOE OE to Output Delay 30 35 0 40 ns (3)(4) tDF CE or OE to Output Float 0 25 0 25 0 25 ns t
in „Speicher für Messwerte“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TLC2543.pdf
) LEADLESS CERAMIC CHIP CARRIER 28 TERMINAL SHOWN 18 17 16 15 14 13 12 NO. OF A B TERMINALS ** MIN MAX MIN MAX 0.342 0.358 0.307 0.358 19 11 20 (8,69) (9,09) (7,80) (9,09) 20 10 0.442 0.458 0.406 0.458 28 21 9 (11,23) (11,63) (10,31) (11,63) B SQ 44 0.640 0.660 0.495 0.560 22 8 (16,26) (16,76) (12,58
in „externer A/D Wandler“ · Mikrocontroller und Digitale Elektronik ·
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PDF
CMX813.pdf
Absolute Maximum Ratings Exceeding these maximum ratings can result in damage to the device. Min. Max. Units Supply (VDD - VSS) -0.3 7.0 V Voltage on any pin to SS -0.3 VDD + 0.3 V Current into or out oDDVand V SSpins -30 +30 mA Current into or out of any other pin -20 +20 MA E4 Package Min. Max. Units
in „leidiges Thema - SPI“ · Mikrocontroller und Digitale Elektronik ·
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Thread
Baudrate Converter für RS232
Richtung aktiv ist (Half-Duplex), kann das auch ein Tiny2313 mit 1x Hardware- und 1x Software-UART (AN304,307).
könnte man eine UART auch in Software realisieren. Die beiden UARTs können über einen gemeinsamen MAX232 geschickt werden und passt schon. * Das Display links liegen lassen und ein neues Standard-Display kaufen, dass an einen µC angechlossen wird der die Umsetzung RS232 -> LCD macht. Softwaretechnisch
Mikrocontroller und Digitale Elektronik ·Fredi Nüßle · ·16 Antworten