JP7392538B2 - 合金の処理方法 - Google Patents
合金の処理方法 Download PDFInfo
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- JP7392538B2 JP7392538B2 JP2020051156A JP2020051156A JP7392538B2 JP 7392538 B2 JP7392538 B2 JP 7392538B2 JP 2020051156 A JP2020051156 A JP 2020051156A JP 2020051156 A JP2020051156 A JP 2020051156A JP 7392538 B2 JP7392538 B2 JP 7392538B2
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- C22B3/08—Sulfuric acid, other sulfurated acids or salts thereof
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- C22B3/00—Extraction of metal compounds from ores or concentrates by wet processes
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Description
浸出工程S1では、合金に対して、硫化剤が共存する条件下で、酸による浸出処理を施して浸出液を得る。リチウムイオン電池の廃電池を熔解して得られる合金は、銅、ニッケルやコバルトの他に様々な回収対象でない不純物を含有する。本実施の形態においては、酸と硫化剤が共存した状態でこのような合金に対して浸出処理を施すことにより、合金から浸出された銅を硫化銅として析出させて、分離させる。一方、合金に対して、酸による浸出処理を施すことで、ニッケル及び/又はコバルトを浸出させて浸出液を得る。なお、この浸出液には、硫化剤と反応しなかった銅や、少なくとも鉄、リン及び/又は亜鉛のような不純物が残存することがある。
還元工程S2では、浸出工程S1で得られた浸出液に対して、還元剤を用いて還元処理を施す。ここで、上述した浸出工程S1における処理では、ニッケル及び/又はコバルトとともに、合金を構成する銅が酸により浸出して溶液中に溶解し、硫化剤と反応せずにその一部が溶液中に残存することがある。そこで、還元工程S2では、浸出液に残存する微量の銅を還元して銅を含む沈殿物を生成させ、生成した沈殿物を固液分離により分離して、ニッケル及び/又はコバルトを含む溶液(還元液)を得る。
酸化中和工程S3では、還元工程S2で得られた溶液(還元液)に酸化剤を添加するとともに中和剤を添加することにより酸化中和処理を施すことで、ニッケル及び/又はコバルトと、亜鉛と、を含む溶液(中和液)を得る。具体的には、酸化中和工程S3では、還元液に酸化剤を添加して酸化反応を生じさせるとともに、中和剤を添加して溶液のpHを所定の範囲に制御することで、還元液に含まれる、少なくとも鉄及び/又はリンの沈殿物を生成する。本発明において酸化中和工程S3を設けることは必須ではないが、酸化中和工程S3を経ることにより、少なくとも鉄及び/又はリンを沈殿物として分離して、精製されたニッケル及び/又はコバルトと、亜鉛と、を含む溶液(中和液)を得ることができる。
イオン交換工程S4では、得られた溶液を、アミノリン酸系キレート樹脂に接触させることでアミノリン酸系キレート樹脂に亜鉛を吸着させて、ニッケル及び/又はコバルトを含む溶液を得る。具体的には、得られた溶液をイオン交換処理の対象溶液として、アミノリン酸系キレート樹脂を使用したイオン交換処理による方法で、溶液に含まれる亜鉛を分離して除去し、ニッケル及び/又はコバルト含有溶液を得る。イオン交換工程S4では、カラムを用いた通液処理を行うものであっても、ビーカー等によるバッチ処理を行うものであってもよい。
[浸出工程]
廃リチウムイオン電池(廃LIB)を加熱熔融して還元する乾式処理に付して、還元熔融して得た合金を底面に穴を開けた小さなルツボに流し込み、穴から流れ出た熔湯に、高圧のガスや水を吹き付けて、溶湯を飛散、凝固させて粒径300μm以下の粉状物(アトマイズ粉)を得て、これを処理対象である合金として用いた。表1に組成を示す。
次に、得られた浸出液に粒径1~300μmのニッケル粉(還元剤)を添加することで浸出液に対して、還元剤を用いて還元処理を施して、ろ過を行い固液分離し、得られた濾液(還元液)をICP分析装置により分析し、各元素成分の濃度を求めた(表2中、「浸出液」と表記。)。
次に、得られた還元液を60~70℃の範囲に液温を維持しつつ、濃度30%過酸化水素水(酸化剤)を添加し、過酸化水素水(酸化剤)を添加した後に水酸化ナトリウム溶液(中和剤)を添加することで還元液に対して、酸化中和反応を進行させた。このときの酸化還元電位(ORP)は銀塩化銀電極を参照電極とする値で380mV以上430mV以下の範囲であり、pHは3.8以上4.5以下の範囲であった。反応後、ろ過を行い固液分離し、濾液(中和液)をICP分析装置により分析し、各元素成分の濃度を求めた(表2中、「中和液」と表記。)。
上記の実施例1とは異なる他の廃リチウムイオン電池(廃LIB)を用意して、同様に浸出工程、還元工程、及び酸化中和工程を経ることによって中和液(始液)を得た。この中和液(始液)についてICP分析装置により分析して、濃度(g/L)を求めた。各元素成分の濃度(g/L)を表3、表5に示す(表中、「中和液(始液)」と表記)。
アミノリン酸系キレート樹脂(デュオライト C747):20mlと、酸化中和工程で得られた中和液100mlをガラス製ビーカーに入れ30分間スターラーで攪拌することで中和液をアミノリン酸系キレート樹脂に接触させてイオン交換処理を施した。撹拌後、アミノリン酸系キレート樹脂と溶液(終液)とを分離して、溶液(終液)についてICP分析装置により分析し、各元素成分の濃度(g/L)を求めた。各元素成分の濃度を表3に示す(表中「終液」と表記)。
実施例2において、デュオライト C747とは異なるアミノリン酸系キレート樹脂を用いて同様に酸化中和工程で得られた中和液にイオン交換処理を施して、同様に終液中の各元素成分の濃度(g/L)及びキレート樹脂の吸着率(%)を求めた。各元素成分の濃度(g/L)を表5に、キレート樹脂の吸着率(%)を表6に示す。
実施例2において、アミノリン酸系キレート樹脂とは異なるキレート樹脂(三菱化学社製のイミノジ酢酸系キレート樹脂であるダイヤイオンCR11型)を用いて同様に酸化中和工程で得られた中和液にイオン交換処理を施した(比較例)。しかしながら、イミノジ酢酸系キレート樹脂では亜鉛の吸着は確認できず(吸着率0.0%)、亜鉛を分離してニッケル及び/又はコバルトを得るという本発明の目的を達成できていないものであった。
Claims (5)
- ニッケル及び/又はコバルトと、銅と、亜鉛と、を含む合金からニッケル及び/又はコバルトを含む溶液を得る、合金の処理方法であって、
前記合金に対して、硫化剤が共存する条件下で、酸による浸出処理を施して浸出液を得る浸出工程と、
前記浸出液に対して、還元剤を用いて還元処理を施す還元工程と、
前記還元工程で得られた溶液をアミノリン酸系キレート樹脂に接触させることで該アミノリン酸系キレート樹脂に亜鉛を吸着させて、ニッケル及び/又はコバルトを含む溶液を得るイオン交換工程と、
を含み、
前記浸出工程では、前記合金に対して、前記酸と前記硫化剤を同時に接触させるか、もしくは前記硫化剤を接触させた後に前記酸を接触させる
合金の処理方法。 - 前記還元工程で得られた溶液に、酸化剤を添加するとともに中和剤を添加することにより、ニッケル及び/又はコバルトと、亜鉛と、を含む溶液を得て前記イオン交換工程に供する酸化中和工程を含む
請求項1に記載の合金の処理方法。 - 前記イオン交換工程での処理後のアミノリン酸系キレート樹脂に酸を接触させることで該アミノリン酸系キレート樹脂に吸着した亜鉛を脱着させる亜鉛脱着工程を含む
請求項1又は2に記載の合金の処理方法。 - 前記亜鉛脱着工程を経て回収したアミノリン酸系キレート樹脂を、再びイオン交換工程での処理に供することにより、該アミノリン酸系キレート樹脂を繰り返し使用する
請求項3に記載の合金の処理方法。 - 前記合金が、リチウムイオン電池の廃電池を熔解して得た合金である
請求項1から4のいずれかに記載の合金の処理方法。
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