A kind of recovery method of rare earth elements in NdFeB waste
A technology of rare earth elements and recovery methods, applied in the direction of improving process efficiency, etc., can solve the problems of difficult operation, low recovery rate of rare earths, and inability to recover rare earths, etc., and achieve the effect of improving the recovery rate
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Embodiment 1
[0027] A kind of recovery method of rare earth element in the NdFeB waste material of present embodiment, this method specifically comprises the following steps:
[0028] (1) Mix the aluminum fluoride powder and the cryolite powder uniformly according to the mass ratio of 1:5 and add them into the graphite crucible to obtain the cryolite-aluminum fluoride mixture. Specifically, in this example, 10.0 g of aluminum fluoride powder was weighed and mixed with 50.0 g of cryolite powder, and the aluminum fluoride powder was dried at a temperature of 100-200 ° C before use to avoid deliquescence due to water absorption; Aluminum: analytically pure; cryolite: analytically pure.
[0029] (2) Breaking the NdFeB waste material into particles with a particle size of 4 to 6 mm, and weighing 10.0 g of granular NdFeB waste material, dispersing and embedding them in the cryolite-aluminum fluoride mixture obtained in step (1), wherein: The NdFeB waste in this embodiment has a particle size of...
Embodiment 2
[0034] A kind of recovery method of rare earth element in the NdFeB waste material of present embodiment, this method specifically comprises the following steps:
[0035] (1) Mix the aluminum fluoride powder and the cryolite powder uniformly according to the mass ratio of 1:4 and add them into the graphite crucible to obtain the cryolite-aluminum fluoride mixture. Specifically, in this example, 10.0 g of aluminum fluoride powder was weighed and mixed with 40.0 g of cryolite powder, and the aluminum fluoride powder was dried at a temperature of 100-200°C before use to avoid deliquescence due to water absorption; Aluminum: analytically pure; cryolite: analytically pure.
[0036] (2) Breaking the NdFeB waste material into particles with a particle size of 4 to 6mm, and weighing 5.3g of granular NdFeB waste material, dispersing and embedding them in the cryolite-aluminum fluoride mixture obtained in step (1), wherein: The NdFeB waste in this embodiment has a particle size of 4mm-6m...
Embodiment 3
[0041] A kind of recovery method of rare earth element in the NdFeB waste material of present embodiment, this method specifically comprises the following steps:
[0042] (1) Mix the aluminum fluoride powder and the cryolite powder uniformly according to the mass ratio of 1:3 and add them into the graphite crucible to obtain the cryolite-aluminum fluoride mixture. Specifically, in this example, 10.0 g of aluminum fluoride powder was weighed and mixed with 30.0 g of cryolite powder, and the aluminum fluoride powder was dried at a temperature of 100-200°C before use to avoid deliquescence due to water absorption; Aluminum: analytically pure; cryolite: analytically pure.
[0043] (2) Breaking the NdFeB waste material into particles with a particle size of 4 to 6mm, and weighing 7.5g of granular NdFeB waste material, dispersing and embedding them in the cryolite-aluminum fluoride mixture obtained in step (1), wherein: The NdFeB waste in this embodiment has a particle size of 4mm-...
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