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CLC935 데이터시트(PDF) 9 Page - National Semiconductor (TI) |
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CLC935 데이터시트(HTML) 9 Page - National Semiconductor (TI) |
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9 / 12 page ![]() 9 http://www.national.com Sine to ECL Conversion Circuit For variable frequency CONVERT clocks, low-phase- noise frequency synthesizers like the Fluke 6080A or the HP8662 are good choices. Sinusoidal sources of this type will require a sine-to-ECL conversion circuit, such as the one above. This circuit operates consistently with low level inputs (0dBm), but is sensitive to noise (jitter) from the synthesizer. Maintaining a larger input level (> +6dBm), greatly reduces this jitter contribution. Output Coding The CLC935 data converter is capable of producing four possible digital output formats: offset binary, two’s com- plement, and their inverted versions. In offset binary the outputs count from 000h to FFFh, as the input varies from -FS (full-scale) to +FS. For two’s complement output coding, the MSB in the offset binary format is inverted. On the CLC935 converter, this is achieved by using the D1 __ (MSB) _____ (pin 6) output rather than the D1(MSB) (pin 7). When using inverted coding formats, the data outputs D2 - D12(LSB) are inverted by tying DATA INV (pin 25) to an ECL logic HIGH (or grounding). For non-inverted operation DATA INV should be left floating, or tied to an ECL logic LOW. Analog Input Offset Binary Two’s Complement +FS - 1 LSB 1111 1111 1111 0111 1111 1111 +FS - 2 LSBs 1111 1111 1110 0111 1111 1110 +FS - 3 LSBs 1111 1111 1101 0111 1111 1101 -- - -- - mid-scale + 1/2 LSB 1000 0000 0000 0000 0000 0000 mid-scale - 1/2 LSB 0111 1111 1111 1111 1111 1111 -- - -- - -FS + 2 LSBs 0000 0000 0010 1000 0000 0010 -FS + 1 LSB 0000 0000 0001 1000 0000 0001 -FS 0000 0000 0000 1000 0000 0000 Output Data and “Data Ready” The CLC935 has data latency of one clock cycle. This means that a sample taken on the rising edge of CONVERT (tN) will appear at the output on the tN+1 clock cycle of the CLC935. The internally latched data from the previous conversion (tN-1 CLC935) is latched to the digital outputs on the rising edge of CONVERT. The previous output data is guaranteed to be valid for at least tHLD after the rising edge of CONVERT and the new output data will be stable tDV after the rising edge of CONVERT (see timing diagram). Since the output data is synchronous with the rising edge of the CONVERT, its falling edge should be used to generate the output latch clock, or DATA READY signal, if the system so requires. This will limit the bulk of the digital switching noise to a period well away from the sensitive analog processing inside the data converter. The use of the rising edge of CONVERT for Data Ready, and buffer clocking signals, is not recommended. Separate drivers for CONVERT and output latch strobing should be used to minimize corruption and jitter in the CONVERT signal. Digital Interface and Termination Differences All high-resolution A/D converters are susceptible to performance degradation if interference from the digital outputs is allowed to couple back to the analog input. Capacitive coupling back to the A/D input can result in increased harmonic distortion, or an elevated noise floor. This “noise” tends to be highly correlated to the input signal, and is difficult to remove through standard DSP noise reduction techniques. To minimize this effect, the CLC935 data converter employs ECL “compatible” outputs rather than larger swing TTL compatible outputs. Additional measures to reduce output-to-input coupling have resulted in some slight differences when interfacing to the data converter outputs as compared with true ECL. Significant system power and digital noise reduction for the CLC935 data converter results from the use of on chip ECL pull-down sources for each of the twelve bit lines as illustrated in the figure below. As shown, series termination resistors are included on each data bit in order to drive external 50 Ω transmission lines (i.e. PCB traces with Zo = 50 Ω). Internal ECL Termination Circuit The CLC935 data converter outputs are 10KH ECL logic compatible with internal constant-current pull-downs, and are designed to be connected directly to 10KH level inputs with no external termination. The power dissipa- tion in each termination is the 6mA standing current, multiplied by the 5.2V supply, or 31mW per output. For a 12-bit data converter, this represents 375mW. When compared to external (50 Ω/-2V) Thevenin terminations, the power savings is 1.2W. Output Latching and Level Translation Parasitic capacitances and inductances should be minimized, when interfacing to the CLC935 outputs. Output latches (10176) or buffers should be placed as close as practical to the output pins. If these output latches drive a significant trace load on the same board as the data converter, differen- tial output latches (100151) and trace routing should be used. VBB CLC935 CONV CONV -5.2V 10114 SINE WAVE 0.5Vpp 130 Ω 50 Ω 50 Ω 50 Ω 0.1 µF 0.1 µF 130 Ω 81 Ω 81Ω -5.2V 47 6mA Digital Outputs D1 thru D12 CLC935 |
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