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ADRF6510ACPZ-R7 数据表(PDF) 20 Page - Analog Devices |
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ADRF6510ACPZ-R7 数据表(HTML) 20 Page - Analog Devices |
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20 / 32 page ![]() ADRF6510 Data Sheet Rev. B | Page 20 of 32 APPLICATIONS INFORMATION BASIC CONNECTIONS Figure 49 shows the basic connections for operating the ADRF6510. A voltage from 4.75 V to 5.25 V should be applied to the supply pins. Each supply pin should be decoupled with at least one low inductance, surface-mount ceramic capacitor of 0.1 µF placed as close as possible to the device. The input buffers provide an interface to the sensitive filter sections that follow. They set a differential input impedance of 400 Ω and sit at a nominal common-mode voltage of VPS/2. The inputs can be dc-coupled or ac-coupled. If using direct dc-coupling, the common-mode voltage, VCM, can range from 1.5 V to 3 V. The output buffers of the ADRF6510 are low impedance (~20 Ω) designed to drive either ADC inputs or subsequent amplifier stages. The output common-mode voltage defaults to VPS/2 but can be adjusted from 1.5 V to 3.0 V without loss of drive capability by presenting the VOCM pin with the desired common-mode voltage. The high input impedance of VOCM allows the ADC reference output to be connected directly. To enable the ADRF6510, the ENBL pin must be pulled high. Taking ENBL low disables the device, reducing current con- sumption to approximately 2 mA at ambient temperature. ERROR VECTOR MAGNITUDE (EVM) PERFORMANCE Error vector magnitude (EVM) is a measure used to quantify the performance of a digital radio transmitter or receiver by measuring the fidelity of the digital signal transmitted or received. Various imperfections in the link, such as magnitude and phase imbalance, noise, and distortion, cause the constel- lation points to deviate from their ideal locations. In general, a receiver exhibits three distinct EVM limitations vs. received input signal power. As signal power increases, the distortion components increase. • At large enough signal levels, where the distortion compo- nents due to the harmonic nonlinearities in the device dominate, EVM degrades as signal levels increase. • At medium signal levels, where the signal chain behaves in a linear manner and the signal is well above any notable noise contributions, EVM has a tendency to reach an optimal level determined dominantly by either the quadrature accuracy and I/Q gain match of the signal chain or the precision of the test equipment. • As signal levels decrease, such that noise is a major con- tributor, EVM performance vs. the signal level exhibits a decibel-for-decibel degradation with decreasing signal levels. At these lower signal levels, where noise is the dominant limitation, decibel EVM is directly proportional to the SNR. VPSD COMD LE CLK DATA SDO COM VPS OPP1 OPM1 COM GAIN VOCM COM OPM2 OPP2 COM INP2 INM2 VPS COM OFDS OFS2 VPS ENBL INP1 INM1 VPS COM GNSW OFS1 VPS ADRF6510 VPSD LE CLK DATA SDO INP2 INM2 VPS VPS OPP2 INM1 INP1 OPM1 OPM2 OPP1 VPS VPS VPS VPS VPS VPS VPS VPS Figure 49. Basic Connections |
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