Soft-sensing method of sludge settlement index based on self-organized t‑s fuzzy neural network
A technology of fuzzy neural network and soft measurement, applied in neural learning methods, biological neural network models, instruments, etc., can solve problems such as measurement difficulties
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[0087] The experimental data comes from the actual daily report of a small sewage treatment plant in Beijing. figure 1 The neural network prediction model of SVI is given, and its inputs are the mixed liquid suspended solids concentration MLSS, acidity and alkalinity pH, aeration tank water temperature T, aeration tank ammonia NH 4 , the model output is the sludge volume index SVI. Among them, MLSS refers to the weight of dry sludge contained in the mixed liquid of the biochemical tank per unit volume; pH reflects the acidity and alkalinity of the influent water quality; T is the current sewage temperature in the aeration tank; NH 4 Represents the ammonia content of the aeration tank influent, and SVI represents the corresponding volume of 1 gram of dry sludge after the mixed solution of the aeration tank has settled for 30 minutes. In addition to pH and T, the other units are mg / L. The output unit is ml / g. A total of 150 sets of data, of which 90 sets of data are used to t...
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