Rabah Mahmoud A
Central Metallurgical R&D Institute (CMRDI) Industrial Wastes Laboratory PO Box 87 Helwan, 11421 Cairo, Egypt.
Waste Manag. 2004;24(2):119-26. doi: 10.1016/j.wasman.2003.07.001.
This study explores a combined pyro-hydrometallurgical method to recover pure aluminium, nickel-copper alloy(s), and some valuable salts from spent fluorescent lamps (SFLs). It also examines the safe recycling of clean glass tubes for the fluorescent lamp industry. Spent lamps were decapped under water containing 35% acetone to achieve safe capture of mercury vapour. Cleaned glass tubes, if broken, were cut using a rotating diamond disc to a standard shorter length. Aluminium and copper-nickel alloys in the separated metallic parts were recovered using suitable flux to decrease metal losses going to slag. Operation variables affecting the quality of the products and the extent of recovery with the suggested method were investigated. Results revealed that total loss in the glass tube recycling operation was 2% of the SFLs. Pure aluminium meeting standard specification DIN 1712 was recovered by melting at 800 degrees C under sodium chloride/carbon flux for 20 min. Standard nickel-copper alloys with less than 0.1% tin were prepared by melting at 1250 degrees C using a sodium borate/carbon flux. De-tinning of the molten nickel-copper alloy was carried out using oxygen gas. Tin in the slag as oxide was recovered by reduction using carbon or hydrogen gas at 650-700 degrees C. Different valuable chloride salts were also obtained in good quality. Further research is recommended on the thermodynamics of nickel-copper recovery, yttrium and europium recovery, and process economics.
本研究探索了一种火法-湿法联合冶金方法,用于从废旧荧光灯中回收纯铝、镍铜合金和一些有价值的盐类。同时还研究了将清洁玻璃管安全回收用于荧光灯行业的方法。在含有35%丙酮的水下对废旧灯管进行去封帽操作,以安全捕获汞蒸气。清洁后的玻璃管若有破损,则使用旋转金刚石切割盘将其切割至标准较短长度。使用合适的熔剂回收分离出的金属部件中的铝和铜镍合金,以减少进入炉渣的金属损失。研究了影响产品质量和采用所建议方法的回收程度的操作变量。结果表明,玻璃管回收操作中的总损失为废旧荧光灯的2%。通过在800摄氏度下于氯化钠/碳熔剂中熔化20分钟,回收了符合DIN 1712标准规格的纯铝。使用硼酸钠/碳熔剂在1250摄氏度下熔化制备了锡含量低于0.1%的标准镍铜合金。使用氧气对熔融的镍铜合金进行脱锡处理。炉渣中的锡以氧化物形式通过在650 - 700摄氏度下用碳或氢气还原进行回收。还获得了质量良好的不同有价值的氯化物盐类。建议进一步研究镍铜回收、钇和铕回收的热力学以及工艺经济性。