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DAC904_14-Bit_165MSPS_Digital-to-Analog_Converters.pdf
80 75 75 ) ) –6dBFS B 70 B70 ( –6dBFS ( R 65 R65 F F S 60 S60 55 55 0dBFS 0dBFS 50 50 45 45 0 10.0 20.0 30.0 40.0 50.0 0 10.0 20.0 30.0 40.0 50.0 60.0 Frequency (MHz) Frequency (MHz) DAC904 6 www.ti.com SBAS095C TYPICAL
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TI_ads809.pdf
SPECTRAL PERFORMANCE SPECTRAL PERFORMANCE (Differential, 2Vp-p) (Differential, 2Vp-p) 0 0 IN= 1MHz (–1.0dBFS) IN= 10MHz (–1.0dBFS) SFDR = 70.1dBFS SFDR = 68.3dBFS –20 –20 SNR = 65.4dBFS SNR = 65.1dBFS ) SINAD = 63.8dBFS ) SINAD = 63.0dBFS F –40 F –40 B B ( ( d –60 d –60 i i p p m –80 m –80 A A –100 –100 –120
in „Projekt Signal-Auswertung mit High-Speed-ADC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ads5240.pdf
= 70.9dBFS SNR = 70.5dBFS −20 −20 SINAD = 70.3dBFS SINAD = 70.8dBFS SFDR = 87.1dBFS SFDR = 84.9dBFS B −40 B −40 ( ( e e u −60 t −60 l p m m A −80 A −80 −100 −100 −120 −120 0 4 8 12 16 20 0 4 8 12 16 20 Input Frequency
in „Pipeline A/D-Wandler ADS5240 Verständnisproblem Analoge Eingangsspannung“ · Analoge Elektronik und Schaltungstechnik ·
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603A.pdf
recovery detection level ALC_REC_LVL[3:0] 0 0 0 0 -5dBFS 0 0 0 1 -6dBFS 0 0 1 0 -7dBFS 0 0 1 1 -8dBFS 0 1 0 0 -9dBFS 0 1 0 1 -10dBFS 0 1 1 0 -11dBFS 0 1 1 1 -12dBFS 1 0 0 0 -13dBFS 1 0 0 1 -14dBFS 1 0 1 0 -15dBFS 1 0 1 1 -16dBFS 1 1 0 0 -17dBFS 1 1 0 1 -18dBFS 1 1 1 0 -19dBFS 1 1 1 1 -20dBFS 6- 5- 20, ALC_LOWJUDGE_TIME Signal detection time for under the recovery level. The signal which level is less than the recovery detection level for a predetermined period of time shown
in „[AVR] FM-Transmitter für 1,50EUR --> Ansteuerung?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
valvo.txt
/transistor/tc/bf/BFS18.php?lan=de F4;;BFS18R;Valvo;SOT23;Transistor;https://www.web-bcs.com/ F5;;BFS19R;Valvo;SOT23;Transistor;https://www.web-bcs.com/ G1;;BFS20;Valvo;SOT23;Transistor;https://www.web-bcs.com/transistor/tc/bf/BFS20.php?lan=de G2;;BF550;Valvo;SOT23;Transistor;https://www.web-bcs.com/ G3;;BF536;Valvo;SOT23;Transistor;https://www.web-bcs.com/ G4;;BFS20R;Valvo;SOT23;Transistor;https://www.web-bcs.com/ G5;;BF550R
in „Datenbuch Valvo 1977 gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TI_ads5102_03.pdf
V DRV DD = 3.3 V 49.5 DRV DD = 3.3 V 77 F = 65 MHz F = 40 MHz clk 49.0 clk A fi= 32.49 MHz at –1 dBFS A fi= 19.99 MHz at –1 dBFS m 76 m t t 48.5 n e r r 48.0 u 75 u y y 47.5 p p u 74 u 47.0 S S g g a 73 a 46.5 n n A A 46.0 72 45.5 71 45.0 –40–30–20–10 0 10 20 30 40 50 60 70 80 90 –40–30–20–10 0 10 20
in „Projekt Signal-Auswertung mit High-Speed-ADC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Clock_jitter_analyzed_in_the_Time_Domain_Part_2.pdf
WITH MEASURED SNR CALCULATED JITTER FROM DEVICE 90-fs CLOCK JITTER WITH RF AMPLIFIER MEASURED SNR (dBFS) (dBFS) (fs) ADS54RF63 (f = 1 GHz) 59.9 60.0 ~85 IN ADS5483 (fIN= 100 MHz) 77.8 77.6 ~95 2 SNR 2 SNR 2 − Measured − − Thermal Nose 10 20 10 20 2 tJitter,Clock_Input= −(t Aperture_ADC
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AD9235.pdf
DIFFERENTIAL(dBc) S SNR 50 70 SNR SINGLE-ENDED (dBc) 7 65 0 40 - 0 25 50 75 100 125 - –30 –25 –20 –15 –10 –5 0 4 4 AIN(dBFS) 0 INPUT FREQUENCY (MHz) 0 Figure20.AD9235-20:SNR/SFDRvs.f IN Figure17.AD9235-20:SingleToneSNR/SFDRvs.A INwithfINNyquist(10MHz) Rev. C | Page 12 of 40 AD9235 0 95 SNR = 64.6dBFS
in „Einstellen eines ADCs“ · Mikrocontroller und Digitale Elektronik ·
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ADS830E_8Bit_60MHz__BB.pdf
unless otherwise noted. SPECTRAL PERFORMANCE SPECTRAL PERFORMANCE 0 0 fIN 1MHz IN= 10MHz –10 SNR = 49dBFS –10 SNR = 49dBFS –20 SFDR = 67dBFS –20 SFDR = 65dBFS ) ) d –30 d –30 ( e d –40 d –40 i i g –50 g –50 a a M –60 M –60 –70 –70 –80 –80 –90 –90 0 7.5 15 22.5 30 0 7.5 15 22.5 30 Frequency (MHz) Frequency (MHz) SPECTRAL PERFORMANCE SPECTRAL PERFORMANCE (Single-Ended, 1Vp-p) 0 0 –10 IN= 20MHz –10 IN= 10MHz SNR = 49dBFS SNR = 49dBFS –20 SFDR = 63dBFS –20 SFDR = 65dBFS ) –30 ) –30 ( ( e –40 e –40 u u n –50 n –50 g g M –60 M –60 –70 –70 –80 –80 –90 –90 0 7.5 15 22.5 30 0 7.5 15 22.5 30 Frequency
in „Oszilloskop mit AVR“ · Mikrocontroller und Digitale Elektronik ·
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ads831.pdf
otherwise noted. A SPECTRAL PERFORMANCE SPECTRAL PERFORMANCE 0 0 f = 1MHz IN= 10MHz –10 IN –10 SNR = 49dBFS SNR = 49dBFS –20 SFDR = 68dBFS –20 SFDR = 67dBFS ) ) B –30 B –30 ( ( d –40 d –40 i i n –50 g –50 a a M –60 M –60 –70 –70 –80 –80 –90 –90 0 10 20 30 40 0 10 20 30 40 Frequency (MHz) Frequency (MHz) SPECTRAL PERFORMANCE SPECTRAL PERFORMANCE (Single-Ended, 1Vp-p) 0 0 f = 20MHz IN= 10MHz –10 IN –10 SNR = 49dBFS SNR = 49dBFS SFDR = 66dBFS –20 SFDR = 66dBFS –20 ) ) B –30 B –30 ( ( d –40 d –40 i i g –50 g –50 a a M –60 M –60 –70 –70 –80 –80 –90 –90 0 10 20 30 40 0 10 20 30
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PDF
ads830.pdf
otherwise noted. A SPECTRAL PERFORMANCE SPECTRAL PERFORMANCE 0 0 f = 1MHz f = 10MHz –10 IN –10 IN SNR = 49dBFS SNR = 49dBFS –20 SFDR = 67dBFS –20 SFDR = 65dBFS ) ) B –30 B –30 ( ( d –40 d –40 i i n –50 g –50 a a M –60 M –60 –70 –70 –80 –80 –90 –90 0 7.5 15 22.5 30 0 7.5 15 22.5 30 Frequency (MHz) Frequency (MHz) SPECTRAL PERFORMANCE SPECTRAL PERFORMANCE (Single-Ended, 1Vp-p) 0 0 IN= 20MHz IN= 10MHz –10 SNR = 49dBFS –10 SNR = 49dBFS –20 SFDR = 63dBFS –20 SFDR = 65dBFS ) ) d –30 d –30 ( ( d –40 d –40 i i g –50 g –50 a a M –60 M –60 –70 –70 –80 –80 –90 –90 0 7.5 15 22.5 30 0 7.5 15 22.5
in „USB Speicher-Oszilloskop (Anfängerhilfe)“ · Mikrocontroller und Digitale Elektronik ·
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ads830.pdf
otherwise noted. A SPECTRAL PERFORMANCE SPECTRAL PERFORMANCE 0 0 f = 1MHz f = 10MHz –10 IN –10 IN SNR = 49dBFS SNR = 49dBFS –20 SFDR = 67dBFS –20 SFDR = 65dBFS ) ) B –30 B –30 ( ( d –40 d –40 i i n –50 g –50 a a M –60 M –60 –70 –70 –80 –80 –90 –90 0 7.5 15 22.5 30 0 7.5 15 22.5 30 Frequency (MHz) Frequency (MHz) SPECTRAL PERFORMANCE SPECTRAL PERFORMANCE (Single-Ended, 1Vp-p) 0 0 IN= 20MHz IN= 10MHz –10 SNR = 49dBFS –10 SNR = 49dBFS –20 SFDR = 63dBFS –20 SFDR = 65dBFS ) ) d –30 d –30 ( ( d –40 d –40 i i g –50 g –50 a a M –60 M –60 –70 –70 –80 –80 –90 –90 0 7.5 15 22.5 30 0 7.5 15 22.5
in „ads830 ad wandler“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Ethernet_r.asm
movlw (1<<ENC_BSEL1) + (1<<ENC_BSEL0) call send bsf SPI_PORT,CS return encbank1 bcf SPI_PORT,CS ENC_BFS ENC_ECON1 call send movlw (1<<ENC_BSEL0) call send bsf SPI_PORT,CS bcf SPI_PORT,CS ENC_BFC ENC_ECON1 call send movlw (1<<ENC_BSEL1) call send bsf SPI_PORT,CS return encbank2 bcf SPI_PORT,CS ENC_BFS
in „ENC28J60 PC reagiert nicht“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Ethernet.asm
movlw (1<<ENC_BSEL1) + (1<<ENC_BSEL0) call send bsf SPI_PORT,CS return encbank1 bcf SPI_PORT,CS ENC_BFS ENC_ECON1 call send movlw (1<<ENC_BSEL0) call send bsf SPI_PORT,CS bcf SPI_PORT,CS ENC_BFC ENC_ECON1 call send movlw (1<<ENC_BSEL1) call send bsf SPI_PORT,CS return encbank2 bcf SPI_PORT,CS ENC_BFS
in „ENC28J60 PC reagiert nicht“ · Mikrocontroller und Digitale Elektronik ·
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Bild
Frequenzspektrum einer Messung
Untitled - Arta File Edit View Recorder Generator Setup Tools Help Spectrum Avg.Exp 20.0 dBFS 0.0 -20.0 -40.0 -60.0 -80.0 -100.0 -120.0 -140.0 20 50 100 200 500 1k 2k 5k 10k 20k F(Hz) Cursor: 20.19 Hz, -125.37 dB RMS = -6.3 dBFS THD = 0.00076% THD+N = 0.0051% L-86.1 R-6.3 dBFS
in „[S] ELV 7000er Serie“ · Markt · · Screenshots
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Spektrum-Magnitude-Anzeige einer ARTA-Software
Recorder Generator Setup Tools Mode Help Gen Sine Inp Right FFT Hz FFT Avg Exp Reset Spectrum magnitude (dBFS) Right Avg:Exp ARTA 20.0 -20.0 -40.0 -60.0 -80.0 -100.0 -120.0 -140.0 20 50 100 200 500 1k 2k 5k 10k 20k F(Hz) Cursor: 20.19 Hz, -125.37 dB RMS = -6.3 dBFS THD = 0.00076% THD+N = 0.0051% L:-86.1 R:-6.3 dBFS
in „[S] ELV 7000er Serie“ · Markt · · Screenshots
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PDF
AK5388AEQ.pdf
6) 2.7 2.8 2.9 Vpp S/(N+D) 1dBFS 100 110 - dB fs=48kHz 20dBFS - 97 - dB BW=20kHz 60dBFS - 57 - dB fs=96kHz 1dBFS 97 107 - dB BW=40kHz 20dBFS - 90 - dB 60dBFS - 50 - dB 1dBFS - 107 - dB fs=192kHz 20dBFS - 90 - dB BW=40kHz 60dBFS
in „Audio-ADC - Taktfrequenzen I2S“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TI_ads808.pdf
Tested Integral Nonlinearity Error(1) = 1MHz ±4.0 ±7.0 LSBs Spurious-Free Dynamic Range f = 1MHz 72 dBFS (2) f = 10MHz 65 68 dBFS 2-Tone Intermodulation Distortion fIN= 19.4MHz and 20.4MHz (–7dB each tone) –77 dBFS Signal-to-Noise Ratio (SNR) f = 1MHz 64.5 dBFS f = 10MHz 64 dBFS Signal-to-(Noise + Distortion
in „Projekt Signal-Auswertung mit High-Speed-ADC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TI_ads808.pdf
Tested Integral Nonlinearity Error(1) = 1MHz ±4.0 ±7.0 LSBs Spurious-Free Dynamic Range f = 1MHz 72 dBFS (2) f = 10MHz 65 68 dBFS 2-Tone Intermodulation Distortion fIN= 19.4MHz and 20.4MHz (–7dB each tone) –77 dBFS Signal-to-Noise Ratio (SNR) f = 1MHz 64.5 dBFS f = 10MHz 64 dBFS Signal-to-(Noise + Distortion
in „Projekt Signal-Auswertung mit High-Speed-ADC“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Ethernet1.asm
movlw (1<<ENC_BSEL1) + (1<<ENC_BSEL0) call send bsf SPI_PORT,CS return encbank1 bcf SPI_PORT,CS ENC_BFS ENC_ECON1 call send movlw (1<<ENC_BSEL0) call send bsf SPI_PORT,CS bcf SPI_PORT,CS ENC_BFC ENC_ECON1 call send movlw (1<<ENC_BSEL1) call send bsf SPI_PORT,CS return encbank2 bcf SPI_PORT,CS ENC_BFS
in „ENC28J60 PC reagiert nicht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Datasheet_ADC_LTC2287.pdf
Range, 65Msps fIN = 30MHz, 2V Range, 65Msps 80 120 70 110 dBFS 100 60 dBFS S S 90 B B 80 d 50 D N dBc N 70 dBc c 40 c 60 d d R 30 R 50 S F 40 80dBc SFDR 20 S 30 REFERENCE LINE 20 10 10 0 0 –60 –50 –40 –30 –20 –10 0 –60 –50 –40 –30 –20 –10 0 INPUT LEVEL (dBFS) INPUT
in „Programmieren des LTC2287 Dual 10-Bit ADCs“ · FPGA, VHDL & Co. ·
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PDF
DAC3550A_Stereo_Audio_DAC.pdf
) BW =20 Hz...0.5 fs unweighted, Analog Gain = 0 dB, Input =−20 dBFS FINL/R 90 92 dB R ≥ 5 kΩ, R L ≥ 612 Ω dec BW etc2 as above 16 bit I, SEL_53V = 0 94 dB 32 bit I, SEL_53V = 0 96 dB 16 bit I S, SEL_53V = 1
in „Mini-DSP für Audio-Verarbeitung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
enc28j60.asm
rx ;;;//enc28j60_write_address(ENC28J60_REG_ECON1, (1<<ENC28J60_BIT_RXEN)); ldi param1,(ENC28J60_OP_BFS | ENC28J60_REG_ECON1) ldi param2,(1<<ENC28J60_BIT_RXEN) rcall enc28j60_spi_write_word ;enc28j60_spi_write_word(ENC28J60_OP_BFS|ENC28J60_REG_ECON1, (1<<ENC28J60_BIT_RXEN)); ;//set up leds: LEDA: link
in „ENC28J60 verliert Packete“ · Mikrocontroller und Digitale Elektronik ·
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Bild
Frequenzspektrum der Magnitude in dBFS
Spectrum magnitude (dBFS) Right Avg:36 0.0 -20.0 -40.0 -60.0 -80.0 -100.0 -120.0 -140.0 20 50 100 200 500 1k 2k 5k 10k 20k F(Hz) Cursor: 23.44 Hz, -118.44 dB RMS = -3.3 dBFS THD=0.0011% THD+N=0.0041% Fs=48000Hz, FFTsize=8192
in „[S] ELV 7000er Serie“ · Markt · · Screenshots
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PDF
Datenblatt_RedPitaya.pdf
isolation: typical performance 65 dB @ 10 kHz, 50 dB @ 100 kHz, 55 dB @ 1 M, 55 dB @ 10 MHz, 52 dB @ 20 MHz, 48 dB @ 30 MHz, 44 dB @ 40 MHz, 40 dB @ 50 MHz. (C) ○ Harmonics ■ at 3 dBFS: typical performance <45 dBc (E) ■ at 20 dBFS: typical performance <60 dBc (E) ○ Spurious frequency components: Typically <90 dBFS (F) ○ Connector type: SMA (U) ○ Frequency response is adjusted by digital compensation ● RF outputs ○ Number of channels: 2 ○ Bandwidth: 50 MHz (3 dB) (K) ○ Sample rate: 125 Msps ○ DAC resolution: 14
in „VHS anderweitig bespielen.“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lg_oem_lgit_pldc-p109b_sch.pdf
R481B 5.1K R481C R410 R468 VLED 1 4 R1 R2 R3 5.1k 560 KTN2907A R470B R485C 1K VREF 55uH B3100-13-F BFS3550R Jumper C481A R485A C481B R485B C481C CMP3 BL-DIM(VSYNC) OPEN R411 R421 OPEN BCX53-16 47 F GND1 4 3 2 1 0 9 8 7 6 5 4 D U405 2 A N 0 F 0 N 10K F 27K F C413 OPEN 47 F OPEN BCX53-16 47 F CMP2 Q403C
in „Netzteil Philips LED TV reparieren??“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
CS42L51_F3.pdf
- 90 96 - dB unweighted 90 96 - 87 93 - dB -80 - -84 -78 dB Total Harmonic Distortion + Noise -1 dBFS - -86 -20 dBFS - -76 - - -73 - dB -60 dBFS - -36 - - -33 - dB Analog In to PGA to ADC Dynamic Range PGA Setting: 0 dB A-weighted 92 98 - 89 95 - dB 89 95 - 86 92 - dB unweighted PGA Setting: +12 dB
in „STM32H7B3I-DK - Soundausgabe“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AD1836_prc.pdf
Ambient Temperature 25°C Master Clock 12.288MHz, (48kHz f S 256 × S Mode) Input Signal 1.000 kHz, 0dBFS (Full Scale) Input Sample Rate 48 kHz Measurement Bandwidth 20Hz to 20kHz Word Width 20 Bits Load Capacitance 100 pF Load Impedance 47kΩ Input Voltage HI 2.4V Input Voltage LO 0.8V NOTE Performance
in „Audio Codec mit Filter“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AD1836_prc.pdf
Ambient Temperature 25°C Master Clock 12.288MHz, (48kHz f S 256 × S Mode) Input Signal 1.000 kHz, 0dBFS (Full Scale) Input Sample Rate 48 kHz Measurement Bandwidth 20Hz to 20kHz Word Width 20 Bits Load Capacitance 100 pF Load Impedance 47kΩ Input Voltage HI 2.4V Input Voltage LO 0.8V NOTE Performance
in „Aktives Filter simulieren“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
adc101s051-q1_1_.pdf
SINAD Signal-to-Noise Plus Distortion Ratio VA= +2.7 to 5.25V 61.5 60.8 dB (min) IN = 100 kHz, −0.02 dBFS SNR Signal-to-Noise Ratio VA= +2.7 to 5.25V 61.6 61.1 dB (min) IN = 100 kHz, −0.02 dBFS THD Total Harmonic Distortion VA= +2.7 to 5.25V −79 −72.5 dB (max) IN = 100 kHz, −0.02 dBFS V = +2.7 to 5.25V
in „Ausgangsstrom MISO ADC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ths0842.pdf
DECEMBER 1999 – REVISED AUGUST 2000 TYPICAL CHARACTERISTICS † FAST FOURIER TRANSFORM 0 I Input Channel –20 AIN = 20 MHz S –40 F d –60 – e –80 w P–100 –120 –140 0 2 4 6 8 10 12 14 16 18 20 f – Frequency – MHz Figure 12 FAST FOURIER TRANSFORM 0 –20 Q Input Channel AIN = 20 MHz –40 F B – –60 r w –80 o P –100
in „ADC - Wie schnell aktualisiert der? Ist ein Oszi möglich?“ · Mikrocontroller und Digitale Elektronik ·
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BF256_ON.pdf
Vdc, V = 0, f = 1 kHz) |Y | 4.5 5.0 – mmhos DS GS fs Reverse Transfer Capacitance (VDS = 20 Vdc, –GS = 1 Vdc, f = 1 MHz) Crss – 0.7 – pF Output Capacitance (VDS = 20 Vdc, GS = 0, f = 1 MHz) Coss – 1.0 – pF Cut–Off Frequency (Note 2.) (VDS = 15 Vdc, GS = 0) fgfs – 1000 – MHz 1. Pulse Test: Pulse
in „BF256, Pinbelegung unterschiedlich“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BF245abc.pdf
unless otherwise specified. SYMBOL PARAMETER CONDITIONS MIN. TYP. MAX. UNIT Cis input capacitance VDS = 20 V; VGS = −1 V; f = 1 MHz − 4 − pF Crs reverse transfer capacitance VDS = 20 V; VGS = −1 V; f = 1 MHz − 1.1 − pF Cos output capacitance VDS = 20 V; VGS = −1 V; f = 1 MHz − 1.6 − pF gis input conductance
in „Welche Steilheit hat ein BF245C?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SMD_Catalog.pdf
G0 HSMP-389B HP C SOT323 HP3890 pin sw diode G08 DTD133HKA Roh N SC59 npn dtr 3k3+10k 50V 500mA G1 BFS20 Phi N SOT23 BF199 G1p BFS20 Phi N SOT23 BF199 G1 BFS20 Phi N SOT23 BF199 G1t HSMP-3891 HP K SOT23 HP3890 pin sw diode G1 MMBT5551 Mot N SOT23 2N5551 npn Vce 140V tG1 PMBT5551 Phi N SOT23 2N5551 npn
in „Hilfe bei Bauteilsuche für Mainboard“ · PC Hard- und Software ·
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PDF
WM8978.pdf
1111 = 43.691s 3:0 ALCLVL 1011 ALC target – sets signal level at ADC [3:0] (-12dB) input 1111 : -1.5dBFS 1110 : -1.5dBFS 1101 : -3dBFS 1100 : -4.5dBFS ...... (-1.5dB steps) 0001 : -21dBFS 0000 : -22.5dBFS PTD Rev 2.6 November 2005 w 40 Preliminary Technical Data WM8978 REGISTER BIT LABEL DEFAULT DESCRIPTION
in „GSM + GPS Modul von Pollin“ · Mikrocontroller und Digitale Elektronik ·
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PDF
From_analog_to_digital_-_p281.pdf
Figure 14 shows such a plot, the result of an 8 k sample long recording of a full-scale sinewave. dBFS 0 12 bit ADC -20 8k point FFT -40 1.76+6.02n = 74dB -60 -74dB -80 N 10 log =36dB -100 2 -110dB -120 -140 0 500 1000 1500 2000 2500 3000 3500 4000 F N Fig. 14: Discrete Fourier transform of 8 k samples
in „SNR bei ADCs“ · Analoge Elektronik und Schaltungstechnik ·
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doc4688.pdf
V FDonfor t >BFS Battery Field supply supply (VBatt VCoil V FDonfor t >BFS Note: The rectified supply voltage from the coil is limitedDDC (2.9V). During field supply, the battery is switched off and DD changes to VDDC
in „Die I2C Schnittstelle eines PIC16F876A initialisieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Siemens_CrossRef_1998.pdf
BAT68-07 BAT68W BAT68-07W BAT68-04 BAT68-04W BAT68-05 BAT68-05W BAT68-06 BAT68-06W BAV19 BAS19 BAV20 BAS20 BAV21 BAS21 BAV23 BAW101 BB112 BB512 BB304 BB804 BB409 BB419 BB439 BB505 BB515 BB535 BB555 BB609 BB619C BB639C BB659C Semiconductor Group 3 1998-11-01 Cross Reference Leaded SMD-Packages Devices
in „1N4001und BC574C ==> SMD?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Siemens_CrossRef_1998.pdf
BAT68-07 BAT68W BAT68-07W BAT68-04 BAT68-04W BAT68-05 BAT68-05W BAT68-06 BAT68-06W BAV19 BAS19 BAV20 BAS20 BAV21 BAS21 BAV23 BAW101 BB112 BB512 BB304 BB804 BB409 BB419 BB439 BB505 BB515 BB535 BB555 BB609 BB619C BB639C BB659C Semiconductor Group 3 1998-11-01 Cross Reference Leaded SMD-Packages Devices
in „Suche NPN Transistor Low Noise SMD“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Siemens_CrossRef_1998.pdf
BAT68-07 BAT68W BAT68-07W BAT68-04 BAT68-04W BAT68-05 BAT68-05W BAT68-06 BAT68-06W BAV19 BAS19 BAV20 BAS20 BAV21 BAS21 BAV23 BAW101 BB112 BB512 BB304 BB804 BB409 BB419 BB439 BB505 BB515 BB535 BB555 BB609 BB619C BB639C BB659C Semiconductor Group 3 1998-11-01 Cross Reference Leaded SMD-Packages Devices
in „SMD - Transistoren“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Siemens_CrossRef_1998.pdf
BAT68-07 BAT68W BAT68-07W BAT68-04 BAT68-04W BAT68-05 BAT68-05W BAT68-06 BAT68-06W BAV19 BAS19 BAV20 BAS20 BAV21 BAS21 BAV23 BAW101 BB112 BB512 BB304 BB804 BB409 BB419 BB439 BB505 BB515 BB535 BB555 BB609 BB619C BB639C BB659C Semiconductor Group 3 1998-11-01 Cross Reference Leaded SMD-Packages Devices
in „BC337-40 in Pspice“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Siemens_CrossRef_1998.pdf
BAT68-07 BAT68W BAT68-07W BAT68-04 BAT68-04W BAT68-05 BAT68-05W BAT68-06 BAT68-06W BAV19 BAS19 BAV20 BAS20 BAV21 BAS21 BAV23 BAW101 BB112 BB512 BB304 BB804 BB409 BB419 BB439 BB505 BB515 BB535 BB555 BB609 BB619C BB639C BB659C Semiconductor Group 3 1998-11-01 Cross Reference Leaded SMD-Packages Devices
in „SMD-Vergleichstypen von Transistoren“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mcp2515_defs.h
0x19 #define RXF5EID8 0x1A #define RXF5EID0 0x1B #define TEC 0x1C #define REC 0x1D #define RXM0SIDH 0x20 #define RXM0SIDL 0x21 #define RXM0EID8 0x22 #define RXM0EID0 0x23 #define RXM1SIDH 0x24 #define RXM1SIDL 0x25 #define RXM1EID8 0x26 #define RXM1EID0 0x27 #define CNF3 0x28 #define CNF2 0x29 #define CNF1
in „MCP2515 sendet kein SO Signal an MISO (SPI)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
MCP_Reg.h
0x19 #define RXF5EID8 0x1A #define RXF5EID0 0x1B #define TEC 0x1C #define REC 0x1D #define RXM0SIDH 0x20 #define RXM0SIDL 0x21 #define RXM0EID8 0x22 #define RXM0EID0 0x23 #define RXM1SIDH 0x24 #define RXM1SIDL 0x25 #define RXM1EID8 0x26 #define RXM1EID0 0x27 #define CNF3 0x28 #define CNF2 0x29 #define CNF1
in „SPI-Problem mit MCP2515 und ATmega16“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mcp2515_defs_neu.h
0x19 #define RXF5EID8 0x1A #define RXF5EID0 0x1B #define TEC 0x1C #define REC 0x1D #define RXM0SIDH 0x20 #define RXM0SIDL 0x21 #define RXM0EID8 0x22 #define RXM0EID0 0x23 #define RXM1SIDH 0x24 #define RXM1SIDL 0x25 #define RXM1EID8 0x26 #define RXM1EID0 0x27 #define CNF3 0x28 #define CNF2 0x29 #define CNF1
in „AT90CAN128 und MCP2515-Controller“ · Mikrocontroller und Digitale Elektronik ·
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Datei
regs.h
0x19 #define RXF5EID8 0x1A #define RXF5EID0 0x1B #define TEC 0x1C #define REC 0x1D #define RXM0SIDH 0x20 #define RXM0SIDL 0x21 #define RXM0EID8 0x22 #define RXM0EID0 0x23 #define RXM1SIDH 0x24 #define RXM1SIDL 0x25 #define RXM1EID8 0x26 #define RXM1EID0 0x27 #define CNF3 0x28 #define CNF2 0x29 #define CNF1
in „Problem durch Optimierung -Os“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mcp2515_defs.h
0x19 #define RXF5EID8 0x1A #define RXF5EID0 0x1B #define TEC 0x1C #define REC 0x1D #define RXM0SIDH 0x20 #define RXM0SIDL 0x21 #define RXM0EID8 0x22 #define RXM0EID0 0x23 #define RXM1SIDH 0x24 #define RXM1SIDL 0x25 #define RXM1EID8 0x26 #define RXM1EID0 0x27 #define CNF3 0x28 #define CNF2 0x29 #define CNF1
in „ATmega644PA und MCP2515 SPI Problem“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mcp2515_equ.inc
RXF5SIDL =0x19 .equ RXF5EID8 =0x1A .equ RXF5EID0 =0x1B .equ TEC =0x1C .equ REC =0x1D .equ RXM0SIDH =0x20 .equ RXM0SIDL =0x21 .equ RXM0EID8 =0x22 .equ RXM0EID0 =0x23 .equ RXM1SIDH =0x24 .equ RXM1SIDL =0x25 .equ RXM1EID8 =0x26 .equ RXM1EID0 =0x27 .equ CNF3 =0x28 .equ CNF2 =0x29 .equ CNF1 =0x2A .equ CANINTE
in „CAN Controller MCP2515: Schreiben in CANCTRL“ · Mikrocontroller und Digitale Elektronik ·
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Bild
Spektrum-Analyse eines Funksignals
20:10:00 20:10:01 20:10:03 20:10:04 20:10:06 20:10:09 20:10:10 20:10:11 20:10:13 20:10:14 20:10:17 20:10:19 20:10:20 20:10:22 20:10:23 20:10:24 20:10:26 20:10:27 20:10:29 20:10:30 26590 26600 26650 26700 26750 26800 26850 26900 26950 27000 27050 27100 27150 27200 27250 27300 27350 27400 RF -17 dBFS AM ECSS FM LSB USB CW DIG freqMp 26.985.000 10 kHz 27.315.000 10 kHz LO A Tune SO -64 dB
in „Antennenbau, Eure Bilder.“ · HF, Funk und Felder · · Screenshots
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Spektrum-Analyse und Wasserfall-Diagramm eines Signals
20:51:28 20:51:29 20:51:30 20:51:31 20:51:34 20:51:35 20:51:37 20:51:40 20:51:41 20:51:43 20:51:46 20:51:47 20:51:49 20:51:52 20:51:53 20:51:54 20:51:56 20:51:57 26550 26600 26650 26700 26750 26800 26850 26900 26950 27000 27050 27100 27150 27200 27250 27300 27350 27400 RF -14 dBFS Peak AM EC55 FM LSB USB CW DIG freqMpr Waterfall Spectrum RBW 61.0 Hz Avg Zoom Speed 26.985.000 CB 27.135.000 10 kHz Volume Gain +20.2dB
in „Antennenbau, Eure Bilder.“ · HF, Funk und Felder · · Oszi-Bilder