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rf__0_4_schem.pdf
PA_BIAS DAC1 PIP108 F1F PWR_RET ADC3 PIP109 Fuse VCC_8V PWR_FWD ADC2 PIP1010 R121 P_DAH Paddle Dah PIP1011 10 12 PIR120PIRP102 C303 D2D2 P_DIT Paddle Dit PIP1012 R111 5.6K 16V PTT_3V PTT On PIP1014 1K P2 22uF PID202 PowerDown PIP1015 R2 10 BAND0 BAND0 PIP1016 D2 CR9 PID203 BAND1 BAND1 PIP1017 71 COC2 R115K
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ADXL350.pdf
Each axis 0 gOutput for X OUT, YOUT −150 ±50 +150 Mg 0 g Output for ZOUT −250 ±75 +250 Mg 0 g Offset vs. Temperature (X Axis and Y Axis)2 −0.31 ±0.17 +0.31 mg/°C 2 0 g Offset vs. Temperature (Z Axis) −0.49 ±0.24 +0.49 mg/°C NOISE PERFORMANCE Noise (X-Axis and Y-Axis) 100Hzdatarate,fullresolution 1.1 LSB
in „Beschleunigungssensor Unklarheiten“ · Mikrocontroller und Digitale Elektronik ·
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ADXL350.pdf
Each axis 0 gOutput for X OUT, YOUT −150 ±50 +150 Mg 0 g Output for ZOUT −250 ±75 +250 Mg 0 g Offset vs. Temperature (X Axis and Y Axis)2 −0.31 ±0.17 +0.31 mg/°C 2 0 g Offset vs. Temperature (Z Axis) −0.49 ±0.24 +0.49 mg/°C NOISE PERFORMANCE Noise (X-Axis and Y-Axis) 100Hzdatarate,fullresolution 1.1 LSB
in „Neigungswinkelinkelmessung beweglicher Teile“ · Analoge Elektronik und Schaltungstechnik ·
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AD-ADXL345.pdf
gOutput Deviation from Ideal, XOUT,YOUT ±35 mg 0 gOutput Deviation from Ideal, ZOUT ±40 mg 0 g Offset vs.Temperature for X-,Y-Axes ±0.4 mg/°C 0 g Offset vs.Temperature for Z-Axis ±1.2 mg/°C NOISE X-,Y-Axes ODR=100Hzfor±2g,10-bitresolutionor 0.75 LSB rms allg-ranges,fullresolution Z-Axis ODR=100Hzfor±2g,
in „MOSI-Pegel viel zu niedrig, aber warum?“ · Mikrocontroller und Digitale Elektronik ·
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AR-500X-Controller.pdf
5V GND GND 4 9 0 GND GND GND PR IC1 PC PI P0 ICSCN8049H R15 CN1 1k 1 T T c 38 PR P V P2.7PI243 PIC1011 +5V 4 P2.3PI372 PIC1022 r P PIIC04 RESET P2.6PI233 PIC1033 a R166 PC C5 PIIC05 SS P2.2PI362 PIC1044 B B P P P0 KK SRDUH-SS-105D1 10k PQ 1uF PIIC08 RD P2.5PI223 PIC1055 y B PD R17 CD5 P2 CQ5 PC PIIC09
in „SCN8049H Prozessor“ · Mikrocontroller und Digitale Elektronik ·
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DSA00206265.pdf
one- to the motor is expressed by the following equation: half as many power switches required (4 vs. 8), but the timing is not as critical to prevent a current short through J =(Z 1/Z)2 .(J2+J ) +J 1 twotransistorsasispossiblewithabipolardrive. Unipolar motors have approximately 30% less torque at
in „Daten zu einem Schrittmotor herausfinden“ · Mikrocontroller und Digitale Elektronik ·
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ADXL345.pdf
gOutput Deviation from Ideal, XOUT,YOUT ±35 mg 0 gOutput Deviation from Ideal, ZOUT ±40 mg 0 g Offset vs.Temperature for X-,Y-Axes ±0.4 mg/°C 0 g Offset vs.Temperature for Z-Axis ±1.2 mg/°C NOISE X-,Y-Axes ODR=100Hzfor±2g,10-bitresolutionor 0.75 LSB rms allg-ranges,fullresolution Z-Axis ODR=100Hzfor±2g,
in „ADXL345 und ESP8266: Echtzeitdatenergassung mit konstanter Abtastrate und Interrupts“ · Mikrocontroller und Digitale Elektronik ·
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DS_DA221.pdf
LSB/g So Sensitivity FS bit set to 01 512 LSB/g FS bit set to 10 256 LSB/g TCSo Sensitivity change vs. temperaturFS bit set to 00 ±0.01 %/°C Tyoff Typical zero-g level offset accuracy ±80 mg Tcoff Zero-g level change vs. temperatuMax delta from 2C° ±0.6 mg/°C FS bit set to 00, Noise XYZ RMS noise normal
in „Seltsames Verhalten eines Beschleunigungssensors“ · Mikrocontroller und Digitale Elektronik ·
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IRM-03-SPEC.PDF
FILTER & SWITCHING & -V FILTER FILTER PWM CONTROL DETECTION CIRCUIT Derating Curve Output Derating VS Input Voltage 100 100 90 80 80 60 70 ) 50 ( % 60 D 40 ( A A 50 L O 20 L 40 -30 0 10 20 30 40 50 60 70 85 (HORIZONTAL) 85 95 100 120 140 160 180 200 220 240 305 AMBIENT TEMPERATURE (℃) INPUT VOLTAGE (
in „230 Volt PCB-Netzteil“ · Analoge Elektronik und Schaltungstechnik ·
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66712.pdf
RAM (2) RAM xxxx1010 (3) CG xxxx1011 RAM (4) CG RAM xxxx1100 (5) RAM xxxx1101 (6) CG xxxx1110 RAM (7) CG RAM xxxx1111 (8) 387 HD66712U Table 4 Relationship between Character Codes and Character Pattern (ROM Code: A01) Upper Lower Bits000
in „ds89c420 @ 32mhz“ · Mikrocontroller und Digitale Elektronik ·
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AS1130_Datasheet_EN_v5__1_.pdf
5.1 5.5 -45 -25 -5 15 35 55 75 Supply Voltage (V) Temperature (ΣC) Figure 6. Segment Drive Current vs. Output Voltage Figure 7. ONNMOS vs. Supply Voltage 32 0.5 A Vdd = 2.7V -45°C ( 31.5 Vdd = 3.3V +25°C t Vdd = 4.5V 0.4 +85°C e 31 Vdd = 5.5V r C 30.5 ) e Ω 0.3 r (S o 30 M S N0.2 v 29.5 R r t 29 n 0.1
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Treiber_IC-SSD0323_OLED_128x64_GELB.pdf
display all on, display all off pattern with either internal or external DC-DC voltage converter. VSL vs Bi t val ue 2. 5 2 ) ( 1. 5 S V 1 0. 5 0 1000 1001 1010 1011 1100 1101 1110 Bi t val ue 1000-1110 Figure 7 - VSL vs Bit value Set V Voltage COMH This command is used to set V COMH voltage level VCOMH
in „[Q]Erfahrungen mit (Reichelt) Pictiva OLED Displays“ · Mikrocontroller und Digitale Elektronik ·
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vs1033d.pdf
VS1033 D VS1033d VS1033 - MP3/AAC/WMA/MIDI AUDIO CODEC Features Description † Decodes MPEG 1 & 2 audio layer III (CBR VS1033 is a single-chip MP3/AAC/WMA/MIDI +VBR +ABR); layers I & II optional; MPEG4/2
in „Layout dringend“ · Platinen ·
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HCPL-063.pdf
TEMPERATURE – °C Figure 1. Typical high level output current vFigure 2. Typical input threshold current vsFigure 3. Typical low level output voltage vs. temperature. temperature. temperature. 8-PIN DIP, SO-8 m 70 1000 – VCC = 3.3 V * FOR SINGLE T = 25 °C T V = 2.0 V* CHANNEL A A N VE = 0.6 V PRODUCTS ONLY
in „Logic Gate Optocoupler“ · Mikrocontroller und Digitale Elektronik ·
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dac8512.pdf
100k LOGIC VOLTAGE VALUE – Volts FREQUENCY – Hz Figure 8. Broadband Noise Figure 9. Supply Current vs. Logic Figure 10. Power Supply Rejection Input Voltage vs. Frequency 5.0 1V VFS 1 LSB 5 4.8 DATA = FFF L 100 H 0 90 TA= +258C t s o l 204810TO 204710 V V 4.6 V D – – V I T.048 1 RL= NO LOAD M PROPER
in „µC soll Strom rausgeben“ · Mikrocontroller und Digitale Elektronik ·
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computer_math_lec9.pdf
Negative values are computed using a bias value • Example • 1.0110 × 2 −2 = 0.01011=0.34375 5 • −1.1011 × 2 = −110110.0 = −54 Dezentrales Logo 5 1/12/2015 optional Computer Arithmetic: Circuit Perspective - Ahmed Elhossini - Winter 2013/2014 Floating Point number format • Example: 5 − 7 𝑏𝑖𝑎𝑠𝑒 = −2 +1.0110 × 2 −2 5 12 − 7 𝑏𝑖𝑎𝑠𝑒 = 5 −1.1011 × 2 Dezentrales Logo 6 optional 1/12/2015 Computer Arithmetic: Circuit Perspective - Ahmed Elhossini - Winter 2013/2014 IEEE Floating Point Standard Single / Short • IEEE 754-2008 Standard • Single
in „Profitiert double von der 32bit FPU?“ · Mikrocontroller und Digitale Elektronik ·
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tlv320aic12k.pdf
0111 0110 0101 0100 0011 0010 0001 0000 11 1010 1001 1000 0111 0110 0101 0100 0011 0010 0001 0000 12 1011 1010 1001 1000 0111 0110 0101 0100 0011 0010 0001 0000 13 1100 1011 1010 1001 1000 0111 0110 0101 0100 0011 0010 0001 0000 14 1101 1100 1011 1010 1001 1000 0111 0110 0101 0100 0011 0010 0001 0000 15 1110 1101 1100 1011 1010 1001 1000 0111 0110 0101 0100 0011 0010 0001 0000 16 1111 1110 1101 1100 1011 1010 1001 1000 0111 0110 0101 0100 0011 0010 0001 0000 S C (Start-Stop Communication) The S C is a write-only interface
in „PHILIPS VP5500 VoIP Telefon bei Pollin“ · Mikrocontroller und Digitale Elektronik ·
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1510fc.pdf
20 0 20 40 60 80 100 120 140 BAT (A) DUTY CYCLE (%) TEMPERATURE (°C) 1510 G01 1510 G04 1510 G05 ICC vs V CC VREF Line Regulation IVA vs V OVP (Voltage Amplifier) 7.0 0.003 4 MAXIMUM DUTY CYCLE 0.002 6.5 0°C 3 25°C 0.001 6.0 ) ALL TEMPERATURES ) A ( m ( 125°C E 0 P 2 C VR O I 5.5 ∆ ∆ 125°C –0.001 1 5.0
in „Problem mit LT1510“ · Mikrocontroller und Digitale Elektronik ·
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LIS302DL.pdf
. . . . 37 Figure 20. Y axis zero-g level change vs. temperature at 2.5V . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 37 Figure 21. Y axis sensitivity change vs. temperature at 2.5V . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 37 Figure 22. Z axis zero-g level change vs. temperature at 2.5V . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 37 Figure 23. Z axis sensitivity change vs. temperature at 2.5V . . . . . . . . . . . . . . . . . . . . . . . . . . .
in „Verwirrung mit LIS302“ · Mikrocontroller und Digitale Elektronik ·
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mt9v403_ds.pdf
window The sensor’s ADCs contain special self-calibrating size and location, gain, biases, master vs. snap- circuitry that allow the sensor to reduce its own col- shot vs. slave, simultaneous vs. continuous expo- umn-wise fixed pattern noise. The calibration coeffi- sure/readout, progressive vs. interlace
in „Wer hat Interesse an CMOS Bildsensoren?“ · Mikrocontroller und Digitale Elektronik ·
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DiscoveryF3_adap.pdf
GND PD2_UART5_RX PIP377 8 PIP308 PC12_UART5_TX PB9_IN3 R1PIR190PIR1901 P7P1080PIP10108 PA3_ONLPF4J1011 12 PIJNLPA20OU NLPE PIJ211 12 PINLPE2 C0 100nF PIP106 7 PIP107 9 PIP309 Label: UART5 COR20 9 PIP10109 A NLPAIJ1013 14 PIJNLPA40OU NLPE PIJ213 14 PINLPE4 M25P32-VMW6TG PA9_UART1_RX PIP310 11 PIP3011
in „[V] STM32F3 Discovery + Adapterboard für ein FlyingF3 (FlightControl) mit der Taulabssoftware“ · Markt ·
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UC1698u_Revision__1.5.pdf
SEG<85> VB1- SEG<82> VB1- SEG<78> VB1- SEG<75> c VB0- SEG<72> VB0- SEG<68> VB0- VB0- SEG<65> SEG<62> VS- SEG<58> a SEG<55> SEG<52> SEG<48> VS- r VS- SEG<45> SEG<42> SEG<38> t VS+ SEG<35> VS+ SEG<32> l SEG<28> VS+ SEG<25> VS+ SEG<22> SEG<18> VLCDIN SEG<15> VLCDIN SEG<12> VLCD VLCDOUT SEG<8>> U SEG<5> SEG
in „Defekte Heizungsregelung RC310 Display leuchtet“ · Haus & Smart Home ·
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Lenovo_Z50-70_NM-A273_ACLUA_MB_Rev0.3_schematic_.pdf
Sheet023 of 59 1.0 WWW.AliSaler.Com A B C D E Voltage Rails ( O --> Means ON , X --> Means OFF ) +5VS STATE SIGNAL SLP_S1# SLP_S3# SLP_S4# SLP_S5# +VALW +V +VS Clock +3VS Power Plane +1.5VS Full ON HIGH HIGH HIGH HIGH ON ON ON ON +1.35VS S1(Power On Suspend) LOW HIGH HIGH HIGH ON ON ON LOW 1 +1.05VS
in „Laptop defekt: Kommunikation EC - PCH - CPU“ · Mikrocontroller und Digitale Elektronik ·
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TM56M152A-tenxtechnology.pdf
V DS-TM56M152A_E 89 Rev 0.96, 2024/05/16 TM56M152A Data Sheet 8. Characteristics Graphs FIRC Freq vs. VCC 17.0 16.0 -40℃ )15.0 -20℃ H 0℃ (14.0 25℃ e r 50℃ F13.0 70℃ 85℃ 12.0 105℃ 11.0 125℃ 1.5V 2.0V 2.5V 3.0V 3.5V 4.0V 4.5V 5.0V 5.5V VCC(V) FIRC Freq vs. Temperature 17.0 16.0 1.5V )15.0 2.0V z H 2.5V
in „MCU identifikation/Datenblatt - MC9989A0ZQ“ · Mikrocontroller und Digitale Elektronik ·
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ATtiny26.pdf
vs. V CC of Peripheral Units BROWNOUT DETECTOR CURRENT vs. V CC 0.035 0.03 0.025 ) 0.02 -40°C m 25°C C I 0.015 85°C 0.01 0.005 0 2 2.5 3 3.5 4 4.5 5 5.5 VCC(V) Figure 137. ADC Current vs. V CC (AREF = AV
in „ATtiny26(L) Analog-Digital-Wandler ( ADC ) Datenblattübersetzung“ · Mikrocontroller und Digitale Elektronik ·
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inhalt.pdf
400 600 800 1000 V+ SUPPLY VOLTAGE (V) LOAD CAPACITANCE (pF) FIGURE 2. LOGIC INPUT THRESHOLD VOLTAGE vs SUPPLY FIGURE 3. DELAY FROM FALLING EDGE OF RD TO OUTPUT VOLTAGE DATA VALID vs LOAD CAPACITANCE 3.5 1000 V ( R = 10K G 3.1 V A T(+) L R = 50K O V 2.7 z L H O -55 C ≤ A ≤ +125 C ( S L E 2.3 f R T I K
in „A/D Wandler an At89S8252“ · Mikrocontroller und Digitale Elektronik ·
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lcdd_snubber.pdf
Resonant frequency need to be shorter than switching frequency Basic Resonant Network Parameters i D L VC Vs C ➜ Resonant frequency:fr= 1 ; r = 1 ; r =π 2π L C LC ωr L ➜ Characteristic impedance Z r C 27 Ideal LC-network with ideal diode fed by a voltage source Vs i(0)= o vC(0)=V Co i S L Vs C VC D V sV Co
in „Flyback-Wandler Störungen auf Versorgung“ · Analoge Elektronik und Schaltungstechnik ·
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TSL45315.pdf
TAOS112 − OCTOBER 2011 TYPICAL CHARACTERISTICS NORMALIZED RESPONSIVITY NORMALIZED SPECTRAL RESPONSIVITY vs. ANGULAR DISPLACEMENT — CL PACKAGE 100 1.0 90 Photoptic 80 0.8 y t 70 v s i s x n 60 o 0.6 l o 4531 p c s 50 e t R R O d e z 40 l 0.4 l a m 30 r o N N 20 0.2 10 0 0 300 500 700 900 1100 −90 −60 −30 0 30 60 90 λ − Wavelength − nm − Angular Displacement − ° Figure 2 Figure 3 I DD OUTPUT vs. vs V DD ILLUMINANCE 160 1000k 150 140 130 t 10k 25 C u A o 120 C D 70 C t I −15 C u 110 t O 100 100 90 80 1 2.2 2.4 2.6 2.8 3 3.2 3.4 1 100 10k 1000k VDD − V Illuminance — lux Figure 4 Figure 5 The
in „Kommunikation mit TSL45315“ · Mikrocontroller und Digitale Elektronik ·
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Tiny12.pdf
SINK CURRENT vs. OUTPUT VOLTAGE VCC = 5V 80 70 TA= 25C 60 50 ) A 40 ( O TA= 85˚C I 30 20 10 0 0 0.5 1 1.5 2 2.5 3 V (V) OL Figure 51. I/O Pin Source Current vs. Output Voltage I/O PIN SOURCE CURRENT vs. OUTPUT VOLTAGE
in „ATTiny12 uns SPI?“ · Mikrocontroller und Digitale Elektronik ·
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ATTINY11_ATTINY12_ATM.pdf
SINK CURRENT vs. OUTPUT VOLTAGE VCC = 5V 80 70 TA= 25C 60 50 ) A 40 ( O TA= 85˚C I 30 20 10 0 0 0.5 1 1.5 2 2.5 3 V (V) OL Figure 51. I/O Pin Source Current vs. Output Voltage I/O PIN SOURCE CURRENT vs. OUTPUT VOLTAGE
in „Attiny12 Datenblatt?“ · Mikrocontroller und Digitale Elektronik ·
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tmp275.pdf
2007 TYPICAL CHARACTERISTICS At A = +25°C and V+ = 5.0V, unless otherwise noted. QUIESCENT CURRENT vs TEMPERATURE SHUTDOWN CURRENT vs TEMPERATURE 85 1.0 0.9 75 0.8 0.7 65 0.6 ) V+ = 5V A µ ( 0.5 ( 55 D 0.4 I I 0.3 45 V+ = 2.7V 0.2 0.1 35 0.0 Serial Bus Inactive −0.1 25 −55 −35 −15 5 25 45 65 85 105 125 130 −55 −35 −15 5 25 45 65 85 105 125 130 Temperature ( C) Temperature ( C) CONVERSION TIME vs TEMPERATURE TEMPERATURE ERROR vs TEMPERATURE 300 0.500 0.375 ) V+ = 5V ) s 250 C 0.250 ( ( e o 0.125 i r n 200 e i V+ = 2.7V u 0 r a v e −0.125 o m C 150 T−0.250 −0.375 12−bit resolution. 100 − − − −
in „Abmessungen Datenblatt“ · Mikrocontroller und Digitale Elektronik ·
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MCP4261-DigitalPot-2Fach-50kDATASHEET.pdf
(°C) Temperature (°C) FIGURE 2-52: V IL(SDI, SCK, CS, WP, and FIGURE 2-54: IOL (SDO) vs. V DD and SHDN ) vs. VDD and Temperature. Temperature. © 2008 Microchip Technology Inc. DS22059B-page 25 MCP414X/416X/424X/426X Note: Unless otherwise indicated, T A = +25°C, 2.1 Test Circuits V DD =
in „Step Down Regler zu heiss & Fragen zur Umsetzbarkeit einer Schaltung“ · Analoge Elektronik und Schaltungstechnik ·
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Ansteuer-IS_UC1698__Vers._1.21_fuer_DEM_240160AFGH-PW___240x160.pdf
> VB0- SEG<71> VB0- SEG<70> SEG<68> VB0- SEG<67> VB0- VB0- SEG<65> SEG<64> SEG<62> SEG<61> SEG<59> VS- SEG<58> SEG<56> SEG<55> SEG<53> SEG<52> SEG<50> SEG<49> VS- VS- SEG<47> VS- SEG<45> SEG<44> SEG<42> SEG<41> SEG<39> SEG<38> SEG<36> VS+ SEG<35> SEG<33> VS+ SEG<32> SEG<30> SEG<29> SEG<27> VS+ SEG<26
in „LCD DEM240160 mit UC1698 wie Bildspeicher auslesen“ · Mikrocontroller und Digitale Elektronik ·
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TMP006_IR_temperatur_I2C__sbos518.pdf
ABSOLUTE MAXIMUM RATINGS (1) TMP006 MIN MAX UNIT Supply voltage V+ 7 V Input voltage ADR1 pins –0.5 VS+ 0.5 V Input voltage SDA, SCL, DRDY, ADR0 pins –0.5 7 V Input current 10 mA Operating temperature range –55 +125 °C Storage temperature range –65 +150 °C Junction temperatureJ max +150 °C Human body
in „Temperaturfühler TMP006 von T, wie anschließen?“ · Mikrocontroller und Digitale Elektronik ·
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tmp006.pdf
ABSOLUTE MAXIMUM RATINGS (1) TMP006 MIN MAX UNIT Supply voltage V+ 7 V Input voltage ADR1 pins –0.5 VS+ 0.5 V Input voltage SDA, SCL, DRDY, ADR0 pins –0.5 7 V Input current 10 mA Operating temperature range –55 +125 °C Storage temperature range –65 +150 °C Junction temperatureJ max +150 °C Human body
in „Temperaturfühler TMP006 von T, wie anschließen?“ · Mikrocontroller und Digitale Elektronik ·
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AD9833.pdf
25 f (Hz) MCLK (MHz) OUT MCLK FREQUENCY (MHz) TPC 1. Typical Current Consumption TPC 2. Typical I vs. f for DD OUT TPC 3. Narrow-Band SFDR vs. MCLK Frequency fMCLK = 25 MHz vs. MCLK Frequency –40 0 –40 VDD = 3V VDD = 3V T = 25ⴗC T = 25ⴗC –10 TA= 25ⴗC A –45 A VDD = 3V –20 –45 fOUT = MCLK/4096 –30 )–50
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vig_2008.pdf
coefficient. 4-60 Frequency Jumps 2.0 x 1011 30 min. b p 4.0 ( o 3.0 a v 2.0 No. 2 d y 1.0 No. 3 n u 0.0 No. 4 e F -1.0 0 2 4 6 8 10 Elapsed time (hours) 4-61 Acceleration vs. Frequency Change Z’ f A5 f A2 A4 A6 A2 A1 O A4 Y’ G A3 A3 Crystal
in „Was ist drin im Quarzoszillator?“ · Analoge Elektronik und Schaltungstechnik ·
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LM74.pdf
www.national.com 4 7 L Typical Performance Characteristics Average Power-On Reset Voltage Static Supply Current vs vs Temperature Temperature Error Temperature DS100909-23 DS100909-21 DS100909-22 1.0 Functional Description The LM74 temperature sensor incorporates a band-gap type the serial clock. Input data is to
in „suche I2C Themperatursensor, auf 0,1°C genau“ · Mikrocontroller und Digitale Elektronik ·
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ads1118.pdf
................................................................................ 9 • Deleted Noise vs Input Signal, Noise vs Supply Voltage, and Noise vs Input Signal plots................................................. 10 • Updated Overview section and deleted "Gain = 2/3, 1, 2, 4, 8, or 16" from
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ads1118.pdf
................................................................................ 9 • Deleted Noise vs Input Signal, Noise vs Supply Voltage, and Noise vs Input Signal plots................................................. 10 • Updated Overview section and deleted "Gain = 2/3, 1, 2, 4, 8, or 16" from
in „SPI-Kommunikation Atmega644 - ADS1118“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny.pdf
(MHz) 55 Figure 37. Idle Supply Current vs. V CC IDLE SUPPLY CURRENT vs.V cc FREQUENCY = 4 MHz 3 TA= 2˚C 2 TA= 85C 2 A ( C I 1 1 0 2 2.5 3 3.5 4 4.5 5 5.5 6 VCC(V) Figure 38. Power-down Supply Current vs. V CC POWER-DOWN SUPPLY CURRENT vs.V cc
in „Tiny 11 ,was ist davon zu halten?“ · PC Hard- und Software ·
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PDF
TMC262_datasheet.pdf
gate to close the MOSFET, and 5VOUT to open it. The high-side gate driver voltage is supplied by the VS and the VHS pin. VHS is more negative than VS and allows opening the VS referenced high-side MOSFET. The high-side driver supplies VS to the P channel MOSFET gate to close the MOSFET and VHS to open
in „Wärmeentwicklung Mosfet“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Littelfuse_ESD_System_Level_Guide.pdf
0201 (3.5pF @ 5V) Flipchip 6pF μDFN-6 SP1010 ±8kV 6V 1A 4 (3.5pF @ 2.5V) 1.25x1.0mm 12pF μDFN-6 SP1011 ±15kV (7pF @ 2.5V) 6V 2A 4 1.25x1.0mm ©2012 Littelfuse, Inc 5 ESD PROTECTION DESIGN GUIDE: TVS DIODE ARRAYS TVS Diode Arrays (SPA TM ) Series Descriptions General Purpose ESD Protection (continued)
in „Fachliteratur Entwurf Blitzductor“ · Analoge Elektronik und Schaltungstechnik ·
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harman_kardon_hkts200-230_hkts210-230_sub.pdf
P0CN302 P0D1301 010K/0.125W 105/250V 1 P0CN301 D13 R C P C 1N4148/0805 0 ERL-28V CON2.0-8 1 2 P 12VS C25 R36 C Q P0C2502 P0C2501 P0R3602 P0R3601 E P0Q20E P 0 15VS1015VS1 4 1 PGND 0 7 0 474/1206 39K/1206 J4 R Q2 0 PR14 FBN0FB R41 R7 1 2P0J402 +VH1N0+VH1 P 1 P0R4102 P0R41P001R702 P0R701 P0J401 MMBT4401
in „Überspannung Herman Kardon Subwoofer“ · Analoge Elektronik und Schaltungstechnik ·
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tlc59108.pdf
Output channel to O = 52 mA, V O 0.8 V, R ext= 360 Ω, channel current error OUT0 to OUT7 TJ= 25°C ±3% I vs Output current vs output VO= 1 V to 3 V, O = 26 mA ±0.1 VUT voltage regulation OUT0 to OUT7 %/V OUT VO= 3 V to 5.5 V, O = 26 mA to 120 mA ±1 OUT,Th1 Threshold current 1 for OUT0 to OUT7 OUT,target 26
in „[V] 4St. LED Treiber TI - TLC59108 8-Bit Fm+ I2C-Bus Constant-Current LED Sink Driver“ · Markt ·
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MAX44009.pdf
3.0 3.3 3.6 300 400 500 600 700 800 900 1000 SUPPLY VOLTAGE (V) WAVELENGTH (nm) OUTPUT CODE ERROR vs. SUPPLY VOLTAGE SUPPLY CURRENT vs. TEMPERATURE 1.10 5 1.2 6 ) t t 81.08 0 0 1 X VCC = 3.3V X M1.06 M 1.0 M R A O1.04 ( T T 0.8 (1.02 E R R O1.00 C 0.6 VCC = 1.8V E L VCC = 2.5V E0.98 P O U 0.4 T0.96
in „Helligkeitssensor Threshold festlegen“ · Mikrocontroller und Digitale Elektronik ·
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datasheet.pdf
xxxx0100 (5) * xxx0101 (6) xxx0110 (7) * xxxx0111 (8) * xxxx1000 (1) xxxx1001 (2) * xxxx1010 (3) * xxxx1011 (4) xxxx1100 (5) xxxx1101 (6) xxxx1110 (7) xxxx1111 (8) * 1. CG RAM is character generator RAM in which user-definable character patterns are stored. 2. X mark: prohibition of input. Figure 7. Input Code Vs. Charater Pattern LCD Data Sheet Page 11 LM16A21 Dot Matrix LCD Unit 84 ±0.5 79 ±0.3 73 ±0.3 61 ±0.3 7.5 ±0.5 2-R1.25 1.5 ±0.3 9.9 ±0.5 . . 5 3 ± ± . 0 1 . . ± ± 5 8 6 4 . 1 2 3 ± . 5 1 ± 3 0 5 4 2-φ2.5
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Datei
schemath.txt
PM9684 PM9685 PM9686 PM9687 PM9688 PM9693 PM9695 PM9696 PM9885 PM9889 MEETAPPERATUUR PHILIPS DIV: PP1011 PP1014 PP1021 PP1081 PP1122 PP2010 PP4385X PT2248 PP5514 PP5516 PR2210 PR2500 PR3210 PR3500 PP5514 PP5516 SM9900 PZ2015 PW1390 KS8238 SBC530 LBB4101 LBB5601 EL3402 LDL1251 LDN5006 LDH25 LDH2999 LDH4250
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PDF
ATtiny841_Datasheet.pdf
Resistor Current vs. Input Voltage, V = 2.7V CC 80 70 60 50 ] u P40 105 I 30 85 25 20 0 10 -40 0 0.0 0.5 1.0 1.5 2.0 2.5 3.0 VOP[V] Figure 26-36.I/O Pin Pull-Up Resistor Current vs. Input Voltage, V = 5.0V CC 160 140 120
in „TOCPMSA1 und TOCPMCOE Verhalten beim Attiny 841“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny441_841.pdf
Resistor Current vs. Input Voltage, V = 2.7V CC 80 70 60 50 ] u P40 105 I 30 85 25 20 0 10 -40 0 0.0 0.5 1.0 1.5 2.0 2.5 3.0 VOP[V] Figure 26-36.I/O Pin Pull-Up Resistor Current vs. Input Voltage, V = 5.0V CC 160 140 120
in „Suche nach ATtiny mit ADC und Gain > 20x“ · Mikrocontroller und Digitale Elektronik ·