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PDF
SW6007.pdf
Level=3.0A 310 330 350 uA CC 管脚端接电阻 RD 4.9 5.1 5.3 kΩ BC1.2 DP Apple 2.4AMode 2.55 2.7 2.85 V DP/DM 电压 DM Apple 2.4AMode 2.55 2.7 2.85 V LED 电量指示 电量指示 LED 驱动电流 ILED 2 4 6 mA LED 闪烁频率 fLED 0.8 1 1.2 Hz LED 照明 WLED 电阻 R WLED 10 20 30 Ω KEY 短按键 TSHORT 24
in „I2C: Li/ion Mobile Power Shield SW6007<->SW6115“ · Mikrocontroller und Digitale Elektronik ·
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133821700AD736_d.pdf
Pin 2 Crest Factor vs. C AV 600 0.8 10mV G VIN= 1kHz VIN= 1kHz I 0.6 VIN= 200mV rms SINEWAVE INPUT SINEWAVE INPUT D 1kHz SINEWAVE 500 V = ⴞ5V AC-COUPLED E CAV= 100F S V = ⴞ5V R 0.4 C = 22F – CAV= 22F S F F T CC= 10F m O 0.2 E r 1mV
in „AD736 an mC anschliessen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
RT9080-33GJ5_esp32_8622_low_quiescent_600mA.pdf
www.richtek.com 7 RT9080 Shutdown Current vs. Input Voltage Shutdown Leakage Current vs. Temperature 0.045 0.10 VOUT = 0.8V, EN = 0V VOUT = 0.8V, EN = 0V ) 0.040 μ ) 0.08 t 0.035 A e t r 0.030 n u r 0.06 e 0.025 u g C k 0.020 n 0.04 a V IN1.8V o L 0.015 V IN5.5V t n h w 0.010 S 0.02 t u 0.005 h 0.00 S 0.000 1
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SSD1306B_1.1.pdf
Selection bit ACK – Acknowledgement SA0 – Slave address bit R/W# – Read / Write Selection bit Write mode S – Start Condition / P – Stop Condition R A C D A A C D A AP S 1 1 1 1 0 W C o C Control byte Data byte C o C Control byte Data byte C 0 1 1 1 1 # K # K K # K K Slave Address m ≥0 words 1 byte n≥ 0 bytes
in „OLED zeigt nur wirre Pixel am I2C“ · Mikrocontroller und Digitale Elektronik ·
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ADUM1250_1251-Datasheet.pdf
tolerated.Thevoltageinducedacrossthereceivingcoilisgivenby M V (dβ/dt) r ;n 1,2,...N n 0.01 1 1k 10k 100k 1M 10M 100M 3 where: MAGNETIC FIELD FREQUENCY (Hz) 6 β is the magnetic flux density (gauss). 0 Figure11.MaximumAllowableCurrentforVarious N is the number of turns in the receiving coil. Current-to-ADuM125xSpacings
in „I2C nach Stop conition Hänger!“ · Mikrocontroller und Digitale Elektronik ·
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PDF
NE555TexasInstroments.pdf
operation. The output high-level duratHon t and low-level durationLt may be calculated as follows: 100 k R A 2 RB= 1 k tH + 0.693 (R A R B) C RA+ 2 RB= 10 k z 10 k tL+ 0.693 (R B) C – RA+ 2 RB= 100 k y Other useful relationships are shown below. n u 1 k e period + t ) t + 0.693 (R ) 2R ) C F H L A B g frequency
in „Fragen zu NE555 Aplicationen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
NE555.pdf
operation. The output high-level duratHon t and low-level durationLt may be calculated as follows: 100 k R A 2 RB= 1 k tH + 0.693 (R A R B) C RA+ 2 RB= 10 k z 10 k tL+ 0.693 (R B) C – RA+ 2 RB= 100 k y Other useful relationships are shown below. n u 1 k e period + t ) t + 0.693 (R ) 2R ) C F H L A B g frequency
in „Frage zum Ne555“ · Mikrocontroller und Digitale Elektronik ·
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Sony_SA-WD100.pdf
R111 1-249-429-11 CARBON 10K 5% 1/4W C104 1-102-978-00 CERAMIC 220PF 5% 50V R112 1-249-429-11 CARBON 10K 5% 1/4W C105 1-126-964-11 ELECT 10uF 20.00% 50V R113 1-249-427-11 CARBON 6.8K 5% 1/4W F R114 1-249-427-11 CARBON 6.8K 5% 1
in „Trafo defekt Sony SA-WD100 aktiver Subwoofer“ · Analoge Elektronik und Schaltungstechnik ·
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DAP8A.pdf
5.00 0.189 0.197 PLANE B 3.80 4.00 0.150 0.157 −Z− C 1.35 1.75 0.053 0.069 D 0.33 0.51 0.013 0.020 0.10 (0.004) G 1.27 BSC 0.050 BSC H M J H 0.10 0.25 0.004 0.010 D J 0.19 0.25 0.007 0.010 K 0.40 1.27 0.016 0.050 M 0▯ 8▯ 0▯ 8 ▯ 0.25 (0.010) Z Y S X S N 0.25 0.50 0.010 0.020 S 5.80 6.20 0.228 0.244 SOLDERING
in „Widerstand gesucht“ · Mikrocontroller und Digitale Elektronik ·
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ths4509.pdf
a r!100 −!100 R =−200 W e e L r r − − n!110 r!110 RL=−500 W 2 RL=−1−kW 3 !120 !120 1 10 100 1000 1 10 100 1000 f ! Frequency ! MHz f − Frequency − MHz Figure 7. Figure 8. HD 2s OUTPUT VOLTAGE HD 3s OUTPUT VOLTAGE -60 -60 c f = 64 M Hz B B - -70 d -70 n n t f = 64 MHz i
in „Pipeline A/D-Wandler ADS5240 Verständnisproblem Analoge Eingangsspannung“ · Analoge Elektronik und Schaltungstechnik ·
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sfh610a-1767438_1_.pdf
VCC = 5 V F CO - 250 - kHz SATURATED SFH610A-1 SFH6106-1 IF - 20 - mA SFH610A-2 SFH6106-2 IF - 10 - mA Current SFH610A-3 IF - 10 - mA SFH6106-3 SFH610A-4 IF - 5 - mA SFH6106-4 SATURATED SFH610A-1 SFH6106-1 r - 2 - μs SFH610A
in „[V] 16St Optokopler Vishay SFH610A -2 und -A3“ · Markt ·
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BTA316B-600C.pdf
Product data sheet 6 August 2014 4 / 14 NXP Semiconductors BTA316B-600C 3Q Hi-Com Triac 3 003aab671 10 TSM (A) (1) 102 T ITSM t tp Tj(init)25 °C max 10 10-5 10 -4 10 -3 10-2 10-1 t (s) p tp≤ 20 ms (1) dI Tdt limit Fig. 5. Non-repetitive peak on-state current as a function of pulse duration; maximum values
in „Gibt es einen Triac der zwischen zwei Ausgängen wechseln kann?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ug_bbmv.pdf
EPC4, EPC8, and EPC16) Configure StratixII, Stratix GX, Stratix, CyclII, Cyclone, TM APEX II, APEX 20K (including APEX 20K, APEX 20KE, and APEX 20KC), ACEX 1K, Mercury TM , FLEX 10K (including FLEX 10KA and FLEX 10KE), FLEX 8000, FLEX 6000, and ExcaliburTMdevices. ■ Supports target systems using 5.0-V
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at29c010.pdf
• Low Power Dissipation (128K x 8) – 50 mA Active Current – 100 µA CMOS Standby Current 5-volt Only • Typical Endurance > 10,000 Cycles • Single 5V ± 10% Supply • CMOS and TTL Compatible Inputs and Outputs Flash Memory • Commercial
in „Beschaltung AT29C010 /Pulldowns?“ · Mikrocontroller und Digitale Elektronik ·
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al-kxj-e-150701.pdf
8 9 10 11 12 114 15 16 1718 E K X J A A A E A A A A A M A A A S Supplement code Size code Capacitance tolerance code Capacitance code (ex. 6.8µF:6R8,10µF:100,100µF:101) Lead forming·taping code Terminal code
in „Frage zu DB NCC Lebensdauer“ · Analoge Elektronik und Schaltungstechnik ·
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150418-da-01-en-ADJ_LOW_DROPOUT_POS_VR_5A.pdf
OUT GND *AS BALLAST RESISTANCE 1k INSURING CURRENT SHARING 1M 4N28 LT1083/4/5 TA04 DEVICES LT1083/4/5 TA03 + 10k LT1011 10k – 28V 1N914 9 LT1083/LT1084/LT1085 Fixed U TYPICAL APPLICATIO S 7.5A Regulator T1 L TRIAD C30B 1MH F-269U 12V
in „spannungsstabilisierung in blitz“ · Mikrocontroller und Digitale Elektronik ·
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1683356.pdf
DC —/0.4 U N Must drop-out voltage AC/DC —/0.05 U N Technical data 6 Mechanical life AC/DC cycles —/10 · 10 3 Electrical life at rated load AC1 cycles 60 · 10 Operate/release time ms 5/3 c Insulation between coil and contacts (1.2/50 μs) kV 6 (8 mm) e e Dielectric strength between open contacts V AC 1,000
in „Suche RC-Glied für Finder Relais“ · Mikrocontroller und Digitale Elektronik ·
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1083ffd.pdf
5 OUT GND AS BALLAST RESISTANCE 1k INSURING CURRENT SHARING 1M 4N28 LT1083/4/5 TA04DEVICES LT1083/4/5 TA03 + 10k LT1011 10k – 28V 1N914 1083ffd 9 LT1083/LT1084/LT1085 Fixed U TYPICAL APPLICATIO S 7.5A Regulator T1 TRIAD L F-269U C30B
in „Frage zum Datenblatt LT1084CT-5“ · Mikrocontroller und Digitale Elektronik ·
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pr4401.pdf
t 80 ( 60 n c r 70 n 50 22 µH u 60 22 µH c 40 14,7 µH C 10 µH f 10 µH l 50 E 30 p 40 u 30 20 S 20 10 10 0 0 0,8 1 1,2 1,4 1,6 1,8 2 0,8 1 1,2 1,4 1,6 1,8 2 Supply Voltage (V) Supply Voltage (V) Mean LED Current vs. Supply Voltage Peak LED Current vs. Supply
in „Step-Up Transistorschaltung für LED Lampe“ · Analoge Elektronik und Schaltungstechnik ·
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PSMN3R7-100BSE.pdf
S mb SM peak source current pulsed; p ≤ 10 µs; mb = 25 °C - 780 A Avalanche ruggedness EDS(AL)S non-repetitive drain- ID= 120 A; Vsup≤ 100 V; R GS= 50 Ω; - 542 mJ source avalanche energy V GS= 10 V; Tj
in „Mysteriöser Mosfet-Tod und der Spirito-Effekt“ · Analoge Elektronik und Schaltungstechnik ·
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Panel_116_ID_184.pdf
ausgerüstet wurden. Abb. 1.11: Akkuzellen und REC-BMS (REC 2014) Diese wurden zu zwei Akkupaketen zu je 7S/2P (Seriell/Parallel) zusammengestellt. Somit standen uns 5,18kWh mitgeführte Energie für unsere Versuchsreihen zur Verfügung. Abb. 1.12: Ausführung der Akkupakete Versuchsaufbau Konzeptumsetzung Prototyp 10 Im ersten Arbeitspaket erfolgte die Vervollständigung des mechanischen Aufbaues sowie dessen Er- gänzung mit den vom Auftraggeber zur Verfügung gestellten Fahrzeugkomponenten wie e-Motoren, Controller
in „E-Kart selber bauen ink. (Elektronik)“ · Fahrzeugelektronik ·
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PDF
mc33063a.pdf
1000 1.8 V CC= 5 V 1.7 VCC = 5 V Pin 7 = CC c ) Pin 1, 7, 8 CCV Pin 5 = GND i ( 1.6 Pin 3, 5 = GND h S g T = 25°C i ) T A 25°C t t 1.5 A w s 100 tON p o t ( u V 1.4 u e , o t T T a 1.3 O f OFF S u F O E a 1.2 F n 10 V S N O 1.1 t 110 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 1 0.01 0.1 1 10 IE, Emitter Current
in „boost-converter“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DS1307.pdf
5.0V, T = +2A°C, unless otherwise noted.) CCS vs.V CC VBAT3.0V IBAT vs.V BAT VCC= 0V 120 400 SQW=32kHz 110 100 350 90 u n T0 T300 N N R0 R R R C0 C250 Y L SQW off P0 P U U S0 S200 30 150 20 10 0 100 1.0 2.0 3.0 4.0 5.0 2.0 2.5 3.0 3.5 VCC (V) VBACKUP(V) BAT vs.Temperature VCC0V, BAT3.0 SQW/OUT vs. Supply Voltage SQW=32kHz 32768.5 325.0 32768.4 A ( N z 275.0 (32768.3 R C C E Y U P E32768.2 P F S 225.0 32768.1 SQW off 32768 175.0 2.0 2.5 3.0 3.5 4.0 4.5 5.0 5.5 -40 -20 0 20 40 60 80 Supply (V) TEMPERATURE (°C) 5 of 14
in „[V] noch 2 x 10St. Dallas RTC DS1307Z (SO8) abzugeben“ · Markt ·
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PDF
DS1307.pdf
5.0V, T = +2A°C, unless otherwise noted.) CCS vs.V CC VBAT3.0V IBAT vs.V BAT VCC= 0V 120 400 SQW=32kHz 110 100 350 90 u n T0 T300 N N R0 R R R C0 C250 Y L SQW off P0 P U U S0 S200 30 150 20 10 0 100 1.0 2.0 3.0 4.0 5.0 2.0 2.5 3.0 3.5 VCC (V) VBACKUP(V) BAT vs.Temperature VCC0V, BAT3.0 SQW/OUT vs. Supply Voltage SQW=32kHz 32768.5 325.0 32768.4 A ( N z 275.0 (32768.3 R C C E Y U P E32768.2 P F S 225.0 32768.1 SQW off 32768 175.0 2.0 2.5 3.0 3.5 4.0 4.5 5.0 5.5 -40 -20 0 20 40 60 80 Supply (V) TEMPERATURE (°C) 5 of 14
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PDF
ds1307.pdf
5.0V, T = +2A°C, unless otherwise noted.) CCS vs.V CC VBAT3.0V IBAT vs.V BAT VCC= 0V 120 400 SQW=32kHz 110 100 350 90 u n T0 T300 N N R0 R R R C0 C250 Y L SQW off P0 P U U S0 S200 30 150 20 10 0 100 1.0 2.0 3.0 4.0 5.0 2.0 2.5 3.0 3.5 VCC (V) VBACKUP(V) BAT vs.Temperature VCC0V, BAT3.0 SQW/OUT vs. Supply Voltage SQW=32kHz 32768.5 325.0 32768.4 A ( N z 275.0 (32768.3 R C C E Y U P E32768.2 P F S 225.0 32768.1 SQW off 32768 175.0 2.0 2.5 3.0 3.5 4.0 4.5 5.0 5.5 -40 -20 0 20 40 60 80 Supply (V) TEMPERATURE (°C) 5 of 14
in „Probleme mit DS1307 und dessen Zeitausgabe“ · Mikrocontroller und Digitale Elektronik ·
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iPhone_4_schem.pdf
SPI_ST V2 SPI1_SSIN I2S2_LRCK AB23 I2S_ST I2S2_LRCLK 13 17 1/32W 1/32W 1/32W 1/32W 1/32W 1/32W 3 10K 01005 2 3 4 7 8 10 11 12 13 14 15 16 W23 I2S_ST MF MF MF MF MF MF SPI2_SCLK SPI_STAA2 I2S2_MCK I2S2_MCLK 13 01005 01005 01005
in „iphone 4 smd abgebrochen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IL3829.pdf
-1991 561.5 333 G238 3545 681.5 413 S35 1507 681.5 493 S115 -253 681.5 573 S195 -2013 681.5 334 G240 3524 561.5 414 S36 1485 561.5 494 S116 -275 561.5 574 S196 -2035 561.5 335 G242 3503 681.5 415 S37 1463 681.5 495 S117 -297 681.5 575 S197
in „IL3829 - E-Paper Display Treiber“ · Mikrocontroller und Digitale Elektronik ·
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Motorola_tech_info.pdf
2.2 10 10 100 80 1.5 10 4N25 20 10 10 0.5 50 2 1.2/1.3 10 10 100 30 1.5 10 4N26 20 10 10 0.5 50 2 1.2/1.3 10 10 100 30 1.5 10 MCT2 20 10 10 0.4 16 2 1.2/1.3 5 2k 15 30 1.5 20 MCT2E 20 10 10 0.4 16 2 1.2/1.3
in „Isolationsspannung zwischen Doppel-FETs in einem SO8-Gehäuse“ · Analoge Elektronik und Schaltungstechnik ·
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AkkuPack_4LiPo.PDF
500mΩ( max) The internal impedance shall be measured at a since wave alternative current process of 1kHz after the standard charge. Specification Number: AE754364P8H-4S-FPS-Spec1 Version 1 Page 6/19 AEenergy Li Polymer Rechargeable Battery Product Specifications– AE754364P8H-4S 6.3.10. Cycle Life : The
in „Lipo Akkus zusammen schalten..“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
xTalk_10-01-2022_211035_MYL6F04233.txt
xTalk Version 6.7.0.0 Log File Start Time: 10/01/2022 21:10:35 Computer Name: TESTPC Operating System: MS Windows Sever 2012 or Windows 8 Version 6.2 (Build 9200) ____________________________________________________________ Start: 10/01/2022 21:
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PDF
LT1638.pdf
Distortion + Noise Total Harmonic Distortion + Noise vs Frequency vs Load Resistance vs Output Voltage 10 10 10 VS= 3V, 0V VS= 3V TOTAL R L 10k, f = 1kHz VOUT= 2VP-P AV= 1 V CM = HALF SUPPLY VCM = 1.2V VIN= 2VP-PAT 1kHz A V= –1, S = ±1.5V 1 R = 20k 1 1 A V= –1, S = 3V, 0V L ) A V= 1, S = ±1.5V % % % A =
in „OPAMP Differenzverstärker - max. Einganggsspannung?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
A200_DS_ADM3053_Isolated_CAN_Tranceiver.pdf
3.3V,SR = 0Ω T ) 315 O n146 F n D ( F ( 310 x x O x T f144 x f305 A t T to V = 5V, V = 3.3V, R= 47kΩ L E Y E CC IO S D I142 L I 300 N T E T O C D C295 T N140 N N A I VCC = 5V, IO= 5V, RS= 0Ω I I 290 G 138 T P G 285 O A P 136 P R 280 P V CC= 5V, VIO= 5V, S = 47kΩ 134 6 275 9 –40 –15 10 35 60 85 - –40
in „Eagle Neue Bibliothek bitte mal prüfen CAN-Tranceiver“ · Platinen ·
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PDF
ICL7665.pdf
= 2V 2.5 10 TA= +25°C V+ = 9V 2.6 10 VSET1 1.150 1.300 1.450 ICL7665, ICL7665B, TA= +25°C VSET2 1.200 1.300 1.400 VSET1 1.275 1.300 1.325 Input Trip Voltage V SET ICL7665A, TA= +25°C V VSET2 1.225 1.300 1.375 VSET1
in „Idee Solarregler ATTiny13 mit Überlade- und Entladeschutz“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ICL7665.pdf
= 2V 2.5 10 TA= +25°C V+ = 9V 2.6 10 VSET1 1.150 1.300 1.450 ICL7665, ICL7665B, TA= +25°C VSET2 1.200 1.300 1.400 VSET1 1.275 1.300 1.325 Input Trip Voltage V SET ICL7665A, TA= +25°C V VSET2 1.225 1.300 1.375 VSET1
in „7665 über 20V geht das?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
FD6287T_fortiorEnglish.pdf
0.1 5.0 ÿA VBS static current IQBS VIN=0V or 5V -- 180 270 ÿA -- VBS dynamic current IPBSfHIN1,2,3=20kHz 180 270 ÿA IQCC -- 330 500 uA VCC quiescent current VIN = 0V or 5V VCC dynamic current IPCC fLIN1,2,3=20kHz LIN* High-level -- 330 500 uA -- input bias current ILIN+ VLIN=0V LIN* Low-level input bias
in „hc-160a s2 Datenblatt?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LCD162F_DIS.pdf
matrix (W×H) 5 × 8 dots Character size (W×H) 4.84 × 9.66 (0.191″ × 0.380″) mm Dot size (W×H) 0.92 × 1.10 (0.036″ × 0.043″) mm Dot pitch (W×H) 0.98 × 1.16 (0.039″ × 0.046″) mm EXTERNAL DIMENSIONS BLOCK DIAGRAM 14 13 12 11 10 9 8 7 6 5 4 3 2 1 15 16 DB7 DB6 DB5 DB4 DB3 DB2 DB1 DB0 E R/W RS VO VDD VSS SLA
in „2x16 LCD-Display funkt einfach nicht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Infineon-BFQ790-DS-v02_00-EN.pdf
4 0.2 5 2.0 0.01 to 6 GHz 0.1 10 0 0.1 0.2 0.3 0.4 0.5 1 1.5 2 3 4 5 1.0 0.01 −0.1 −10 −0.2 −5 −4 −0.3 −3 −0.4 −0.5 −2 70 mA −1.5 150 mA −1 200 mA 250 mA Figure 12 Input Reflection Coefficient S vs.f atV =5V,I =Parameter 11 CE C 1 1.5
in „HF-Ausgangsleistung - Verständnisfrage“ · HF, Funk und Felder ·
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PDF
ULN200xA_data.pdf
= 125 mA 5 IC= 200 mA 2.7 6 IC= 250 mA 2.9 VI(on) ON-state input Figure 14 VCE = 2 V V voltage IC= 275 mA 7 IC= 300 mA 3 I = 350 mA 8 C High-level output V voltage after Figure 18 V = 50 V, I = 300 mA V – 50 V – 50 mV OH switching S O S S I = 250 μA, IC= 100 mA 0.9 1.2 0.9 1.1 Collector-emitter VCE(sat
in „[V] Darlington Transistor Arrays, npn, Relaistreiber“ · Markt ·
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PDF
sct2750ny-e.pdf
Derating Curve Fig.2 Maximum Safe Operating Area 60 100 Operation in this area is limited P = 100s ] 50 by RDS(on) W W [D ] 10 P = 1ms P 40 [ W : ID P = 10ms o t W t e i 30 r 1 s C D n r 20 r w D 0.1 o PW= 100ms P 10 Ta= 25ºC Single Pulse 0 0.01 0 50 100 150 200 0.1 1 10 100 1000 10000 Junction Temperature
in „"Leiterbahn-Sicherung" erstezen - was würdet ihr tun?“ · Analoge Elektronik und Schaltungstechnik ·
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96055.pdf
s4c32s1+c4s32s1 (3.47) zey = s4c32s1+c4s32s1 (3.48) zez = s4s32−c4c32 (3.49) Seite 28 Kapitel 3 Kinematik eines Manipulators Berechnung der Nick- , Gier- und-Rollwinkel mit (3.9) und (3.10) : q (Roty)
in „[V] Roboterarm 360Grad drehung 4Achsen komplett“ · Markt ·
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73d.pdf
Ref. [5], the following conjecture was developed to explain the phase opposition. As the wavevectors k a1d k of 2ields at the two mirror outputs are oppositely directed, that is k = - 1 k2, their scalar products with the target displacement s has opposite sign. Now, the feedback in the Lang and Kobayashi
in „Effekte in Laserdiode bei reflektiertem Strahl“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LCD162C_DIS.pdf
VDD+0.3 V Input voltage VI -0.3 VDD+0.3 V Operating temperature TOP 0 50 °C Storage temperature TST -10 60 °C ELECTRICAL CHARACTERISTICS ( VDD = +5V±10% , VSS = 0V, Ta = 25°C ) ◆ DC Characteristics Parameter Symbol Condition Min Typ Max Unit Supply voltage for logic VDD --- 4.5 5.0 5.5 V Supply current
in „LCD Ansteuerung kleine Probleme“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LCD162C.pdf
VDD+0.3 V Input voltage VI -0.3 VDD+0.3 V Operating temperature TOP 0 50 °C Storage temperature TST -10 60 °C ELECTRICAL CHARACTERISTICS ( VDD = +5V±10% , VSS = 0V, Ta = 25°C ) ◆ DC Characteristics Parameter Symbol Condition Min Typ Max Unit Supply voltage for logic VDD --- 4.5 5.0 5.5 V Supply current
in „LCD 2x16 sprung in die zweite zeile“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LCD_Datenblatt.pdf
VDD+0.3 V Input voltage VI -0.3 VDD+0.3 V Operating temperature TOP 0 50 °C Storage temperature TST -10 60 °C ELECTRICAL CHARACTERISTICS ( VDD = +5V±10% , VSS = 0V, Ta = 25°C ) ◆ DC Characteristics Parameter Symbol Condition Min Typ Max Unit Supply voltage for logic VDD --- 4.5 5.0 5.5 V Supply current
in „LCD KS0070B mit atmega8 nach Tutorial: Initialisierungsprob.“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LCD_Datenblatt.pdf
VDD+0.3 V Input voltage VI -0.3 VDD+0.3 V Operating temperature TOP 0 50 °C Storage temperature TST -10 60 °C ELECTRICAL CHARACTERISTICS ( VDD = +5V±10% , VSS = 0V, Ta = 25°C ) ◆ DC Characteristics Parameter Symbol Condition Min Typ Max Unit Supply voltage for logic VDD --- 4.5 5.0 5.5 V Supply current
in „Display "Displaytech 162" bringe ich nicht zum laufen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DIS.pdf
VDD+0.3 V Input voltage VI -0.3 VDD+0.3 V Operating temperature TOP 0 50 °C Storage temperature TST -10 60 °C ELECTRICAL CHARACTERISTICS ( VDD = +5V±10% , VSS = 0V, Ta = 25°C ) ◆ DC Characteristics Parameter Symbol Condition Min Typ Max Unit Supply voltage for logic VDD --- 4.5 5.0 5.5 V Supply current
in „Problem mit LCD Initialisierung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LCD_Datenblatt.pdf
VDD+0.3 V Input voltage VI -0.3 VDD+0.3 V Operating temperature TOP 0 50 °C Storage temperature TST -10 60 °C ELECTRICAL CHARACTERISTICS ( VDD = +5V±10% , VSS = 0V, Ta = 25°C ) ◆ DC Characteristics Parameter Symbol Condition Min Typ Max Unit Supply voltage for logic VDD --- 4.5 5.0 5.5 V Supply current
in „LCD Problem ATMEGA32“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LCD_Datenblatt.pdf
VDD+0.3 V Input voltage VI -0.3 VDD+0.3 V Operating temperature TOP 0 50 °C Storage temperature TST -10 60 °C ELECTRICAL CHARACTERISTICS ( VDD = +5V±10% , VSS = 0V, Ta = 25°C ) ◆ DC Characteristics Parameter Symbol Condition Min Typ Max Unit Supply voltage for logic VDD --- 4.5 5.0 5.5 V Supply current
in „VT100 ESC Sequenzen + LCD“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LCD_Modul_162C.pdf
VDD+0.3 V Input voltage VI -0.3 VDD+0.3 V Operating temperature TOP 0 50 °C Storage temperature TST -10 60 °C ELECTRICAL CHARACTERISTICS ( VDD = +5V±10% , VSS = 0V, Ta = 25°C ) ◆ DC Characteristics Parameter Symbol Condition Min Typ Max Unit Supply voltage for logic VDD --- 4.5 5.0 5.5 V Supply current
in „LCD Display 162C ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LCD162C_DIS.pdf
VDD+0.3 V Input voltage VI -0.3 VDD+0.3 V Operating temperature TOP 0 50 °C Storage temperature TST -10 60 °C ELECTRICAL CHARACTERISTICS ( VDD = +5V±10% , VSS = 0V, Ta = 25°C ) ◆ DC Characteristics Parameter Symbol Condition Min Typ Max Unit Supply voltage for logic VDD --- 4.5 5.0 5.5 V Supply current
in „Probleme mit LCD initialisierung“ · Mikrocontroller und Digitale Elektronik ·