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Performance and application of a fluidized bed limestone reactor designed for control of alkalinity, hardness and pH at the Warm Springs Regional Fisheries Center

碱度 流出物 流化床 二氧化碳 溶解 硬水 焊剂(冶金) 化学 环境工程 环境科学 环境化学 物理化学 有机化学
作者
Barnaby J. Watten,Vincent A. Mudrak,Carlos Echevarria,Philip L. Sibrell,Steven T. Summerfelt,Claude E. Boyd
出处
期刊:Aquacultural Engineering [Elsevier BV]
卷期号:77: 97-106 被引量:3
标识
DOI:10.1016/j.aquaeng.2017.03.003
摘要

Abstract Springs serving the Warm Springs Regional Fisheries Center, Warm Springs, Georgia, have pH, alkalinity, and hardness levels that lie under the range required for successful fish propagation while free CO2 is well above allowable targets. We evaluate a pretreatment process that exploits limestone’s (CaCO3) ability to react away hydrogen ions (H+) and carbon dioxide (CO2) while increasing alkalinity (HCO3 −) and calcium (Ca2+) concentrations, i.e. C a C O 3 + H + ↔ H C O 3 − + C a 2 + C a C O 3 + C O 2 + H 2 O ↔ C a 2 + + 2 H C O 3 − Limestone sand was tested in both pilot and full scale fluidized bed reactors (CycloBio®). 1 We first established the bed expansion characteristics of three commercial limestone products then evaluated the effect of hydraulic flux and bed height on dissolution rate of a single selected product (Type A16 × 120). Pilot scale testing at 18C showed limestone dissolution rates were relatively insensitive to flux over the range 1.51–3.03 m3/min/m2 but were sensitive (P   0.05) demonstrating that limestone was present in the reactor effluent primarily in the form of dissolved Ca(HCO3)2. Effluent alkalinity exceeded our target level of 50 mg/L under most operating conditions evaluated with typical pilot scale values falling within the range of 90–100 mg/L despite influent concentrations of about 4 mg/L. Concurrently, CO2 fell from an average of 50.6 mg/L to 8.3 mg/L (90%), providing for an increase in pH from 5.27 to a mean of 7.71. The ability of the test reactor to provide changes in water chemistry variables that exceeded required changes allowed for a dilution ratio of 0.6. Here, alkalinity still exceeded 50 mg/L, the CO2 concentration remained well below our limit of 20 mg/L (15.4 mg/L) and the pH was near neutral (7.17). Applying the dilution ratio of 0.6 in a full scale treatment plant at the site reduced by 40% the volume of spring water that is directed through each of three parallel reactors that combined react away 49,000 kg of limestone/yr.
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