摘要
本研究采用超声/紫外强化Fenton法深度处理造纸废水,以COD、BOD去除率为评价指标,研究反应时间、超声功率和频率、紫外强度、H2O2和FeSO4·7H2O投加量、pH值对处理效果的影响。结果表明,超声/紫外强化Fenton法深度处理造纸废水的最佳处理条件为:反应时间90 min、超声功率160 W,超声频率50 kHz、紫外光强度12 mW/c
造纸废水具有色度高、固体悬浮物含量高、可生化性差、有机污染物成分复杂等问题,处理难度极大,通常情况下,造纸废水经二级生化处理后的出水无法满足直接排放要求,需要进一步深度处理才能保证出水排放达到环保排放指
H2SO4、NaOH、H2O2、FeSO4·7H2O,以上试剂均为分析纯,购于国药集团化学试剂有限公司,实验用水为实验室自制去离子水。造纸废水取自某造纸废水处理厂二级生化处理后出水,该造纸厂以废纸为主要原料,生产牛卡纸,生产废水来源于制浆过程中的洗涤和抄纸废水。废水初始水质如
将300 mL造纸废水加入500 mL的烧杯中,用1 mol/L的H2SO4或NaOH溶液调节废水的pH值,随后在烧杯中加入一定量的FeSO4·7H2O,充分溶解后,再加入一定量质量分数为30%的H2O2,然后将烧杯置于超声波清洗槽中,并在烧杯上方1 cm处放置紫外光灯,反应一段时间后,取出部分溶液以进行分析测试。
利用5B-3C型COD快速测定仪测试溶液的CODCr,并利用
(1) |
式中,CODt0表示造纸废水的初始CODCr,CODt表示反应一段时间后造纸废水的CODCr。
利用青岛绿宇BOD快速测定仪测定溶液的BOD5,利用铂钴标准比色法测定溶液的色度,利用称量法测定溶液的固体悬浮物浓度(SS)。
根据笔者所在团队前期实验研究,设定超声功率160 W,超声频率50 kHz、紫外光强度12 mW/c

图1 反应时间对造纸废水处理效果的影响
Fig. 1 Effect of reaction time on treatment of papermaking wastewater
在超声频率50 kHz、紫外光强度12 mW/c

图2 超声功率对造纸废水处理效果的影响
Fig. 2 Effect of ultrasonic power on treatment of papermaking wastewater
在超声功率160 W、紫外光强度12 mW/c

图3 超声频率对造纸废水处理效果的影响
Fig. 3 Effect of ultrasonic frequency on treatment of papermaking wastewater
在超声功率160 W、超声频率50 kHz、H2O2投加量12 mL/L、FeSO4·7H2O投加量500 mg/L、溶液pH值5、反应时间90 min的条件下,研究紫外光强度对造纸废水CODCr去除率的影响,结果如

图4 紫外光强度对造纸废水处理效果的影响
Fig. 4 Effect of ultraviolet intensity on treatment of papermaking wastewater
在超声功率160 W、超声频率50 kHz、紫外光强度12 mW/c

图5 H2O2投加量对造纸废水处理效果的影响
Fig. 5 Effect of H2O2 dosage on treatment of papermaking wastewater
在超声功率160 W、超声频率50 kHz、紫外光强度12 mW/c

图6 FeSO4·7H2O投加量对造纸废水处理效果的影响
Fig. 6 Effect of FeSO4·7H2O dosage on treatment of papermaking wastewater
在超声功率160 W、超声频率50 kHz、紫外光强度12 mW/c

图7 pH值对造纸废水处理效果的影响
Fig. 7 Effect of pH value on treatment of papermaking wastewater
对
注 超声+紫外+Fenton表示依次用单独的超声法、紫外法和Fenton法深度处理造纸废水。

图8 不同造纸废水处理方法的效果对比
Fig. 8 Performance comparison of different treatment methods for papermaking wastewater
利用
以二级生化处理后造纸废水为研究对象,研究超声/紫外强化Fenton法深度处理造纸废水中COD去除效果,反应的最佳处理条件为:反应时间90 min、超声功率160 W,超声频率50 kHz、紫外光强度12 mW/c
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