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AD9873JS Datasheet(PDF) 28 Page - Analog Devices |
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AD9873JS Datasheet(HTML) 28 Page - Analog Devices |
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28 / 39 page ![]() REV. 0 AD9873 –28– X Q I Z X Figure 13. 16-Quadrature Modulation Tx Signal Level Considerations The quadrature modulator itself introduces a maximum gain of 3 dB in signal level. To visualize this, assume that both the I data and Q data are fixed at the maximum possible digital value, x. Then the output of the modulator, z, is: z = [x cos( ωt) – x sin(ωt)] It can be shown that z assumes a maximum value of zx x x =+ () = 22 2 (a gain of +3 dB). However, if the same number of bits were used to represent the z values, as is used to represent the x values, an overflow would occur. To prevent this possibility, an effective –3 dB attenuation is internally imple- mented on the I and Q data path. zx =+ () = 12 12 // The following example assumes a Pk/rms level of 10 dB: Maximum Symbol Component Input Value = (2047 LSBs – 0.2 dB) = 2000 LSBs Maximum Complex Input rms Value = 2000 LSBs + 6 dB – Pk/rms(dB) = 1265 LSBs rms Maximum Complex Input rms Value calculation uses both I and Q symbol components which adds a factor of 2 (= 6 dB) to the formula. Table IV. I–Q Input Test Signals Input Level Modulator Output Level Single-Tone (fc – f) I = cos(f) FS – 0.2 dB FS – 3.0 dB Q = cos(f + 90 ) = –sin(f) FS – 0.2 dB Single-Tone (fc + f) I = cos(f) FS – 0.2 dB FS – 3.0 dB Q = cos(f + 270 ) = sin(f) FS – 0.2 dB Dual-Tone (fc f) I = cos(f) FS – 0.2 dB FS Q = cos(f + 180 ) = –cos(f) or Q = cos(f) FS – 0.2 dB If INV SINC filter is enabled, an insertion loss of ~1.4 dB (for low frequencies) occurs at the DAC output (see Figure 12a, 12b). Programming the AD9873 to single-tone transmit mode while disabling the INV SINC filter (address 0Fh) generates a maximum (FS) amplitude single tone with a frequency (fc) determined by the associated frequency tuning word. Table IV shows typical I–Q input test signals with amplitude levels related to 12-bit full scale (FS). Tx Throughput and Latency Data inputs effect the output fairly quickly but remain effective due to AD9873’s filter characteristics. Data transmit latency through the AD9873 is easiest to describe in terms of fSYSCLK clock cycles (4 fMCLK). The numbers quoted are when an effect is first seen after an input value change. Latency of I/Q data entering the data assembler (AD9873 input) to the DAC output is 119 fSYSCLK clock cycles (29.75 fMCLK cycles). DC values applied to the data assembler input will take up to 176 fSYSCLK clock cycles (44 fMCLK cycles) to propagate and settle at the DAC output. Enabling the Inverse SINC Filter adds only 2 fSYSCLK clock cycles latency. Frequency hopping is accomplished via changing the PROFILE input pins. The time required to switch from one frequency to another is less than 234 fSYSCLK cycles with the Inverse SINC Filter engaged. With the Inverse SINC Filter bypassed, the latency drops to less than 232 fSYSCLK cycles (58.5 fMCLK cycles). D/A Converter A 12-bit digital-to-analog converter (DAC) is used to convert the digitally processed waveform into an analog signal. The worst- case spurious signals due to the DAC are the harmonics of the fundamental signal and their aliases. (Please see the AD9851 data sheet for a detailed explanation of aliased images.) The wideband 12-bit DAC in the AD9873 maintains spurious-free dynamic range (SFDR) performance of 59 dBc up to fOUT = 42 MHz and 54 dBc up to fOUT = 65 MHz. The conversion process will produce aliased components of the fundamental signal at n fSYSCLK fCARRIER (n = 1, 2, 3). These are typically filtered with an external RLC filter at the DAC output. It is important for DAC INV SINC FILTER 0dB 1.4dB 12 HBF + CIC INTERPOLATOR +0.2dB HBF + CIC INTERPOLATOR +0.2dB ATTENUATOR –3dB MODULATOR 3dB MAX I OO I 12 12 I O COMPLEX DATA INPUT ATTENUATOR –3dB TWO'S COMPLEMENT FORMAT Figure 14. Signal Level Contribution |
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