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PDF
an27701.pdf
Coercive force Temperature Material (gauss-oersted) (gauss) (oersteds) coefficient Cost Comments R.E. cobalt 16 x 106 8.1 x 103 7.9 x 103 -0.05%/°C Highest Strongest, smallest, resists demagnetizing best 6 3 3 Alnico 1, 2, 3, 4 1.3 - 1.7 x 10 5.5 - 7.5 x 10 0.42 - 0.72 x 10 -0.02%/°C to Medium Non-oriented
in „Drehzahlmessung mit Atmega32 über Spannungsteiler an Lichtmaschine“ · Mikrocontroller und Digitale Elektronik ·
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PDF
an27701.pdf
Coercive force Temperature Material (gauss-oersted) (gauss) (oersteds) coefficient Cost Comments R.E. cobalt 16 x 106 8.1 x 103 7.9 x 103 -0.05%/°C Highest Strongest, smallest, resists demagnetizing best 6 3 3 Alnico 1, 2, 3, 4 1.3 - 1.7 x 10 5.5 - 7.5 x 10 0.42 - 0.72 x 10 -0.02%/°C to Medium Non-oriented
in „Drehzahlmessung mit induktivem Näherungsschalter“ · Mikrocontroller und Digitale Elektronik ·
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PDF
an27701.pdf
Coercive force Temperature Material (gauss-oersted) (gauss) (oersteds) coefficient Cost Comments R.E. cobalt 16 x 106 8.1 x 103 7.9 x 103 -0.05%/°C Highest Strongest, smallest, resists demagnetizing best 6 3 3 Alnico 1, 2, 3, 4 1.3 - 1.7 x 10 5.5 - 7.5 x 10 0.42 - 0.72 x 10 -0.02%/°C to Medium Non-oriented
in „Hallsensor als Schalter“ · Mikrocontroller und Digitale Elektronik ·
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PDF
an27701.pdf
Coercive force Temperature Material (gauss-oersted) (gauss) (oersteds) coefficient Cost Comments R.E. cobalt 16 x 106 8.1 x 103 7.9 x 103 -0.05%/°C Highest Strongest, smallest, resists demagnetizing best 6 3 3 Alnico 1, 2, 3, 4 1.3 - 1.7 x 10 5.5 - 7.5 x 10 0.42 - 0.72 x 10 -0.02%/°C to Medium Non-oriented
in „Magnetfeld erfassen mit Hall Sensor“ · Mikrocontroller und Digitale Elektronik ·
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PDF
an27701.pdf
Coercive force Temperature Material (gauss-oersted) (gauss) (oersteds) coefficient Cost Comments R.E. cobalt 16 x 106 8.1 x 103 7.9 x 103 -0.05%/°C Highest Strongest, smallest, resists demagnetizing best 6 3 3 Alnico 1, 2, 3, 4 1.3 - 1.7 x 10 5.5 - 7.5 x 10 0.42 - 0.72 x 10 -0.02%/°C to Medium Non-oriented
in „Brauche Geberrad für Drehwinkelüberwachung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tmp95fy64f.pdf
CORPORATION or others. The information contained herein is subject to change without notice. 95fy64_10e.doc 2 99/01/19 11:43 TOSHIBA Under Development TMP95FY64 AN0 - AN2(PA0 - PA2) VCC[3] 900/H CPU VSS[3] AN3/ADTRG(PA3) AN4 - AN7(PA4 - PA7) 10BIT 8CH X1 VREFH A/D XWA W A OSC VREFL CONVERTER XBC B C X2
in „[S] Tools für TMP95FY64F von Toshiba“ · Mikrocontroller und Digitale Elektronik ·
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PDF
More_about_flexible_coils.PDF
characterised by a four digit number 1st digit 1 - butted together ends, 4 - overlapping ends (see section 2), X - unspecified 2nd digit 0 - no screen, 1 - braid screen, 2 - foil screen, X - unspecified 3rd digit 1 - standard cross-section, 2 - small cross-section, 3 - low output. X - unspecified 4th digit 0 -
in „Rogowski Spule“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MAX534.pdf
(°C) SHUTDOWN SUPPLY CURRENT vs. SUPPLY CURRENT vs. TEMPERATURE REFERENCE VOLTAGE 5 C 1000 C 4 4 A X X ( M ALL DAC CODES = FF HEX M T 3 800 E A R ( U 3 N Y E 600 L R P C ALL DAC CODES = 00 HEX S 2 Y 400 N P W U D S U 1 200 H S 0 0 -55 -35 -15 5 25 45 65 85 105 125 0 0.5 1.0 1.52.0 2.5 3.0 3.54.0 4.5
in „D/A Wandler und der reference pin...“ · Mikrocontroller und Digitale Elektronik ·
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PDF
KS57C2016.pdf
/ INT2 28 53 SEG2 29 52 P1.1 / INT1 SEG1 30 51 P1.0 / INT0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 3 3 3 3 3 3 3 3 3 4 4 4 4 4 4 4 4 4 4 5 S C C C C V V V B V X X T X X R P P P P E O O O O C C CL A D o in E T T E 0 0 0 0 0 M M M M 2 1 0 S D t T n u E 0 1 2 3. 3 2
in „Voltcraft M-3610D (Metex) reparieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SDS_RS-5V.pdf
12V) diode protector provided Frequency: 50 cps R relay contact 1,000 m V , , 16 24 V DC c g L1 L2 L3 L4 L5 L6 t l Pick-up voltage i v r u 12 Max. L1~L6: HP2-DC24V × 6 pcs. in parallel t - x , Diode protector provided t100 o Min. c100 o Max. / a C u 8 i 80 k e 60 i Drop-out voltage t Max. P 4 Max. a
in „[S] Reed-Kontakt "NC"“ · Markt ·
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PDF
SDS-R-Relais.pdf
12V) diode protector provided Frequency: 50 cps R relay contact 1,000 m V , , 16 24 V DC c g L1 L2 L3 L4 L5 L6 t l Pick-up voltage i v r u 12 Max. L1~L6: HP2-DC24V × 6 pcs. in parallel t - x , Diode protector provided t100 o Min. c100 o Max. / a C u 8 i 80 k e 60 i Drop-out voltage t Max. P 4 Max. a
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PDF
TPN15.1E_LA.pdf
RSSGBB7-2K14 PWM2-R1 2 PWM2-G1 2 PWM2-B1 2 PWM2-R2 2 +12V PWM2-G2 2 PWM2-B2 2 R013 22R D001 D002 D003 1 8 2 7 6 6 6 3 6 e e e PWM2-B2 4 5 B B B 5 5 5 R015 560R 4 4 4 1 8 PWM2-R2 e e e 2 7 R R R 3 6 3 3 3 4 5 2 2 2 PWM2-G2 e e e G G G 1 1 1 C008 C009 100N16V NC/100NF 50V P5018/RSSGBB7-2K14 P5018/RSSGBB7-2K14
in „Philips 6300 TV Bildfehler "fading"“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
popl02.pdf
5 V = V ¡ fv 2 V jTs< T(v) < T e 6 E = fe 2 EjT < T(e ) < T g 0 s e 7 E = E ¡ E Figure 4: The adg for an application of filter’ to the func- 8 Q = Q ¡ E 0 tion fn x => x>2 and the input modifiable list 2::3::nil. 9 v = apply(reader(e
in „DSP-CIM Forum Pool“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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PDF
hid1_11.pdf
their default interpretation. z Codes and exponents not shown in the preceding table: Code Exponent 0x5 5 0x6 6 0x7 7 0x8 -8 0x9 -7 0xA -6 0xB -5 0xC -4 0xD -3 0xE -2 0xF -1 z Most complex units can be derived from the basic units of length, mass, time, temperature, current and luminous intensity. For
in „USB HID Descriptor Spotify-Steuerung STM32“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LPC_2119_2129_Datenblatt.pdf
/ / / 7 A L L 8 A A E 9 0 9 8 0 1 1 T T 1 S S E 1 0 0 0 1 3 S 1 handbook, full pagewidth P V X X P V V R P P P P P V V V 4 3 2 1 0 9 8 7 6 5 4 3 2 1 0 9 6 6 6 6 6 5 5 5 5 5 5 5 5 5 5 4 P0.21/PWM5/CAP1.3 1 48 P1.20/TRACESYNC
in „LPC 2129 Versorgungsspannung via PIN“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MEGA48V_88V_168V.pdf
C T X X E CD D D I T R R A A A A ( ( R(R(A ( A( ( ( ( ( ( ( ( ( ( 2 1 0 6 5 4 3 D D D C C C C C P P P P P P P P P P P P P P P 8 7 6 5 4 3 2 2 1 0 9 8 7 6 5 2 2 2 2 2 2 2 3 3 3 2 2 2 2 2 (PCINT19/OC2B/INT1)
in „analog comparator interrupt probleme mit atmegas“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ads122c04.pdf
PGA enabled Figure 22. DC CMRR vs Temperature Figure 23. DC CMRR vs Temperature 2000 2.051 AVDD = 3.3 V ) 2.05 AVDD = 5.0 V s ( c1500 g e l u o2.049 c V O c o1000 r2.048 e f b R u l2.047 N 500 r t I2.046 0 2.045 4 7 7 7 7 4 8 8 8 -50 -25 0 25 50 75 100 125 2 . . . . 2 . . . Temperature (qC) 2 2 2 2
in „ads122C04 ADC 24Bit“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM19264KCC-1-Manual-Rev0.1.pdf
as the inactive / background color 1.2 Mechanical Specifications 1) Outline Dimension : 130.0 x 65.0 x 12.6MAX (see attached Outline Drawing for details) 1.3 Environmental Safe Specifications This product, LM19264D-6b, conforms ROHS regulation. 1.4 Block Diagram e S u B COM1 LCD Panel a r 0 | e
in „Frage zu LCD Topway“ · Mikrocontroller und Digitale Elektronik ·
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PDF
avr450.pdf
e m R n R 1 1 c h h e 1 d 8 3 R m r t 7 R o R2 R L c s o 8 r N 1 1 DD s n r f D 0 3 6 . g r k 0 V N 1 V N 1 k R c D 8 R B 7 7 R 4 1 c C 1 2 k 1 4 4 3 c 6 4 R C S Q o D C 7 8 4 3 8 v A L 5 7 e Y t 6 e N
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PDF
HDMM01_Datasheet.pdf
HDMM01 V1.0 Dual-axis Magnetic Sensor 2 Module With I C Interface FEATURES X-axis Signal Path X • Low power consumption: typically Sensor 0.4mA@3V with 50 measurements per second 2 Y-axis • Power up/down function available through i Sensor Signal Path Y 2 e I C interface i •
in „Kompassmodul HDMM01 von Pollin will nicht - Bascom“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SSA_Cuk_Middlebrook.pdf
we obtain the basic averaged state-space descrip- lin e voltage variations v as v = V + C , where tion (over a single period T ) : V i s the dc lin e input v81tagef cauging 8 c8rrespo:ding perturbation i n the state vector x = X + X ,where !gain X i s the
in „Verdammte Regelung eines 200W Buckwandlers!“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
datasheet.pdf
6-clk 30/33 0–16 0–30/33 P80C54X2 256B 16K – – 3 – – – n – – – – 32 6 (2) n 12–clk 6-clk 30/33 0–16 0–30/33 256B – 8K – 3 – – – n – – – – 32 6 (2) n 12–clk 6-clk 30/33 0–16 0–30/33 P87C52X2 256B 8K – – 3 – – – n – – – – 32 6 (2) n 12
in „Info zum SAB80C382 gesucht!“ · Mikrocontroller und Digitale Elektronik ·
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PDF
CMPS10.pdf
GET ALL 4 angle high, angle low (0-3600), pitch (+/- 0-85), roll (+/- 0-85) 0x31 CALIBRATE EN1 1 returns ok (0x55) 0x45 CALIBRATE EN2 1 returns ok (0x55) 0x5A CALIBRATE EN3 1 returns ok (0x55) 0x5E CALIBRATE 1 returns ok (0x55) 0x6A RESTORE 1 1 returns ok (0x55) 0x7C RESTORE 2
in „Welcher Sensor für digitalen Kompass“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SGP41.pdf
4.6 mA Average current consumption while the sensor is continuously operated at VDD, VDDH = 3.3 V. Supply current during VOC+NO x – 4.3 4.8 mA Average current consumption while the sensor is measurement mode 10 continuously operated at VDD, VDDH = 1.8 V. – 3.0 3.4 mA Average current consumption
in „SGP41 I²C-Gassensor wieso nicht erreichbar?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HCS12COREUG.pdf
U I I B B 4 X 3 4 I 3 4A 3 4 I 3 4 X 3 4 N 3 4 A3 4 I 3 d 0 I 1F 2 M P 3 M 4 D 5 I 6 S 7 C 8 M 9 M M M C A D M E M F M X m 1 I 1 I 1 E S 1 E I 1 E I 1 I 1 I 1 I 1 I 1 I 1E I 1 E I 1 M I 1 I 1 EI 1 E E s 4 5 5 5 5
in „HCS12 CPU Disassembler“ · Mikrocontroller und Digitale Elektronik ·
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PDF
doc8003.pdf
as ADC reference voltage. The idea is that small variations in the reference voltage will give the same effect as small variations in the input signal, without disturbing the input signal. Measuring a linear ramp signal as shown in Figure 3-6, gives the four graphs as shown in Figure 3-7, Figure 3-8,
in „ADC-Wert nicht linear beim Einlesen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
oversampling.pdf
as ADC reference voltage. The idea is that small variations in the reference voltage will give the same effect as small variations in the input signal, without disturbing the input signal. Measuring a linear ramp signal as shown in Figure 3-6, gives the four graphs as shown in Figure 3-7, Figure 3-8,
in „Bias-Voltage für ADC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ADC-Oversampling-AVR121.pdf
as ADC reference voltage. The idea is that small variations in the reference voltage will give the same effect as small variations in the input signal, without disturbing the input signal. Measuring a linear ramp signal as shown in Figure 3-6, gives the four graphs as shown in Figure 3-7, Figure 3-8,
in „Verständnissfrage zur nötigen Mehrfachmessung eines AD-Messwertes mit µC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
datasheetFilter.pdf
¡CFK455- W0 16.5T0.2 7.4T0.1 20.0Y1.0 7.5T0.5 5 . x x 0 a a a T m m 5 0 . 0 0 1 . 0 1 . 0 T . . 4 4 0.3T0.1 4-0.8φ 1.2T0.3 0.3T0.1 4-0.5φ 1.5T0.1 . 1 r w T Connection r w 0 Connection e q . q Input 2 q Input 4 e Output e q 4 e Output 16.8T0.3 wr Ground
in „Superhet mit einer Loop-Antenne=Empangsspule für KW“ · HF, Funk und Felder ·
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PDF
AVR081.pdf
TIMSK and TIFR TIMSK TIFR AT90S4433 Bit Position ATmega8 Bit Position TOIE1 TOV1 7 2 OC1E1 OCF1 6 4 TCIE1 ICF1 3 5 TOIE0 TOV0 1 0 TCNT1 Cleared in PWM Mode In AT90S4433 there are three different PWM resolutions – 8, 9, or 10 bits. Though only 8, 9, or 10 bits
in „def. inc Datei“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BME680.pdf
* 0.0005) + 0.00235; var3 = (double)par_g3 / 1024.0; var4 = var1 * (1.0 + (var2 * (double) target_temp)); var5 = var4 + (var3 * (double)amb_temp); res_heat_x = (uint8_t)(3.4 * ((var5 * (4.0 / (4.0 + (double)res_heat_range)) *
in „PIR-Sensor wird von BME680 gestört, warum?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BME680.pdf
* 0.0005) + 0.00235; var3 = (double)par_g3 / 1024.0; var4 = var1 * (1.0 + (var2 * (double) target_temp)); var5 = var4 + (var3 * (double)amb_temp); res_heat_x = (uint8_t)(3.4 * ((var5 * (4.0 / (4.0 + (double)res_heat_range)) *
in „BME680 Berechnung Temperatur Luftfeuchtigkeit Druck Gas Fragen Initialisierung Assembler ASM ATmega8“ · Mikrocontroller und Digitale Elektronik ·
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PDF
dip_icheln.pdf
shown in ▯gure 2.4. The Poisson’s equation describes the relation between the potential distribu- 8 tion ▯ in the cross section and the charge distribution %(x;y) @2 @ 2 1 (a + a )▯(x;y) = a %(x;y): (2:3) @x 2 @y2 E The following are the boundary conditions due to the outer conductor ▯(▯ 2a;y) = 0;
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PDF
Ateme16.pdf
executed. 18 2466T–AVR–07/10 ATmega16(L) The EEPROM Address Register – EEARH and Bit 15 14 13 12 11 10 9 8 EEARL – – – – – – – EEAR8 EEARH EEAR7 EEAR6 EEAR5 EEAR4 EEAR3 EEAR2 EEAR1 EEAR0 EEARL 7 6 5 4 3 2 1 0 Read/Write R R R R R R R R/W R/W R/W R/W R/W R/W R/W R/W R/W Initial Value 0 0 0 0 0 0 0 X X X X
in „Atmega16 und spi bus“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Ateme16.pdf
executed. 18 2466T–AVR–07/10 ATmega16(L) The EEPROM Address Register – EEARH and Bit 15 14 13 12 11 10 9 8 EEARL – – – – – – – EEAR8 EEARH EEAR7 EEAR6 EEAR5 EEAR4 EEAR3 EEAR2 EEAR1 EEAR0 EEARL 7 6 5 4 3 2 1 0 Read/Write R R R R R R R R/W R/W R/W R/W R/W R/W R/W R/W R/W Initial Value 0 0 0 0 0 0 0 X X X X
in „Atmega16 und spi bus“ · Mikrocontroller und Digitale Elektronik ·
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PDF
1980-09.pdf
HEWLETT-PACKARD JOURNAL SEPTEMBER 1980 © Copr. 1949-1998 Hewlett-Packard Co. ccgrad arcsec + 1 0 - r -T +3.24 4 P h o t o d i o d e s L i m i t S e n s o r P h o t o t r a n s i s t o r Patterns are 2 0 0 x 2 0 0 p i m Transparent - 1 0 - - 3 . 2 4 U — 3240 Aim -j 4 P h o t o d i o d e s 5 0 1 0 0 1 5 0
in „Time-interpolation“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
CS5532-34-BS_F3.pdf
M IN+ X1 * U X1 * X IN- AIN1+ GAIN is the gain setting of the PGIA (i.e. 2, 4, 8, 16, 32, 64) AIN1- Figure 3. Multiplexer Configuration 12 DS755F3 CS5532/34-BS instrumentation amplifier is typically 1200 pA
in „CS5534 Referenzspannung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MAX639-MAX653.pdf
V+ = 4.3V I 90 E 90 I MAX653, V+ = 4V I MAX640 I X F 70 E F E E MAX640 A 85 85 MAX653 60 M MAX653 / 9 50 80 80 10µ 100µ 1m 10m 100m 1 3 4 5 6 7 8 9 10 11 12 3 4 5 6 7 8 9 10 11 12 3 V+ (V) V+ (V) OUTPUT CURRENT
in „Spannung am Ausgang eines Converters anlegen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
sc4901.pdf
package Distributed power architectures Typical Application Circuit Isolated VRMs VOUT QS QF R1 R2 R3 R4 R5 L1 SINGLE • • R8 ENDED QR C1 C2 FORWARD CONVERTOR R9 R6 R7 R10 C3 T1 T2 • RTN C4 C5 C6 D1 D2 8 7 6 5 4 3 2 1 A B C - + N F T C E A C S P X O V S C C R11 R12 RZ RT R13 D3 R14 U1 SC4901 C T F - T
in „Schaltplan für Aktivgleichrichter“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AN-162.pdf
the average voltage on pin 3 Q3 provides. In order to reverse the state of Q7 and Q8, it T e period of input signal will be necessary to reduce the current from Q2 below that e R resistor connected to pin 3 provided by Q3 by an
in „LM2907/17 Frequenz-Spannungswandler“ · Mikrocontroller und Digitale Elektronik ·
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PDF
8020_8021_Users_Manual.pdf
0E-3- 700E-3 +/-237mV 10E-3-150E-3 0E-3- 232E-3 3-7-4.IEEE-488Errors 3-8.SELECTING2ndFUNCTIONS In general, whenever a GPIB programming attempts to A few front panel push-buttons were assigned a secon- put
in „Handbuch für Funktionsgenerator Kontron 8021 gesucht“ · Offtopic ·
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PDF
74HC_HCT244.pdf
Nexperia 74HC244; 74HCT244 Octal buffer/line driver; 3-state 11. Package outline SO20: plastic small outline package; 20 leads; body width 7.5 mm SOT163-1 D E A X c y HE v M A Z 20 11 Q A 2 (A ) A A1 3 pin 1 index θ L p L 1 10 detail X e w M bp 0 5 10 mm
in „Alte 74xx244 ersetzen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Cell_balancing.pdf
R m.Ω A L µH m.Ω A C F m.Ω V D m.Ω V A IC SW V A m.Ω Size SR 4 3900 2 - - - - - - - - - - - - - 4 8 4 9 + + + SC 3 10 2 - - - - 3 .22 20 5.5 - - - - - 8 8 4 2 + DTSC 4 10 2 - - - - 4 .22 20 5.5 - - - - - 8 8 4 2 + SSC 1 10 2 - - - - 1 .22 20 5.5 - - - - - 9 8 4 2 + + MSI 3 1.5 8 3 100 25 8 - - - -
in „BMS ohne heizen, mit switched caps?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ADUM1201.pdf
8 ) 15 A ( L ) E 6 A N ( A T 10 H E / R N 4 R 5V E C R 5V U 3V 5 C 2 3V 0 0 0 0 0 0 0 10 20 30 4 0 10 20 30 4 DATA RATE (Mbps) 4 DATA RATE (Mbps) 4 0 0 Figure6.TypicalInputSupplyCurrentperChannelvs.DataRate
in „Mega8 funktioniert ohne Versorgungsspannung :)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
USR-K6-user-manual-V1.0.0.pdf
established, if the connection has established, and you can test the data transport transmission. 3.More information reference the below: http://www.usr.cn/Search/getList/keyword/%E8%99%9A%E6%8B%9F%E4%B8%B2%E5%8F%A3/ 4.3. Serial Port Function Jinan USR IOT Technology Limited 37 / 107 inquiry@usriot.com
in „[V] 3St.(neu) Ethernet- SeriellModule USR-K6 (alle für 20€)“ · Markt ·
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PDF
MAX1132-MAX1133.pdf
NONLINEARITY TOTAL SUPPLY CURRENT vs. DIGITAL OUTPUT CODE vs. DIGITAL OUTPUT CODE vs. TEMPERATURE X 1.0 1.5 c o 11.5 t A 3 0.8 3 11.3 A: AVDD DV DD= +4.75V 3 X B A B: AVDD, DVDD= +5.00V A B 1.0 M ( 0.6 M A11.1 C: AV , DV = +5.25V M M ( Y ( DD DD / Y R 0.4 N10.9 2 R 0.5 E R E L 0.2 U10.7 3 L N C C N
in „50 Hz Tiefpass-Filter mit Eingangsimpedanz ADC möglich?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Si_4420.pdf
+ j179 98.00 433 MHz 1.4E-3 - j7.1E-3 27 + j136 52.00 868 MHz 2E-3 - j1.5E-2 8.7 + j66 12.50 915 MHz 2.2E-3 - j1.55E-2 9 + j63 11.20 Note 5: Adjustable in 8 steps. Note 6: With selective resonant antennas (see: Application Notes
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Datei
compiler_defs.h
msb at 0xCD // SFR16E(TMR0, 0x8C8A); // Timer 0, lsb at 0x8A, msb at 0x8C // SFR32 (MAC0ACC, 0x93); // SiLabs C8051F120 32 bits MAC0 Accumulator, // // lsb at 0x93, msb at 0x96 // SFR32E(SUMR, 0xE5E4E3E2); //
in „Puffer-Problem mit C8051F320 (8051)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AN255_I2C__SMBus_REPEATERS_HUBS_AND_EXPANDERS.pdf
ns. Consider the V DD released input t-t/RCold of V IH = 0.7 V DD and V =IL.3 V DD for the purposes of RC time constant calculation. Then V (t) V DD (1-1/e ) where t is the time since the charging started and RC is the time constant. V = 0.3 x V = V (1-1/e-t1/R); then t1 = 0.3566749
in „SPI oder TWI“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AN255.pdf
ns. Consider the V DD released input t-t/RCold of V IH = 0.7 V DD and V =IL.3 V DD for the purposes of RC time constant calculation. Then V (t) V DD (1-1/e ) where t is the time since the charging started and RC is the time constant. V = 0.3 x V = V (1-1/e-t1/R); then t1 = 0.3566749
in „50 X LM75 an ATMEGA16?“ · Mikrocontroller und Digitale Elektronik ·