Annular Centrifugal Extractor with Solid Separation Part to Separate Solid Particles Present in Solvent Extraction Fluid and a Process for the Same
20240238697 ยท 2024-07-18
Inventors
- M. Balamurugan (Kalpakkam, IN)
- N. K. Pandey (Ranchi, IN)
- Shekhar Kumar (Kalpakkam, IN)
- J. B. Joshi (Mumbai, IN)
Cpc classification
B01D11/0457
PERFORMING OPERATIONS; TRANSPORTING
B04B11/02
PERFORMING OPERATIONS; TRANSPORTING
B01D11/048
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
This disclosure relates to an annular centrifugal extractor with Solid Separation Part to Separate Solid Particles Present in Solvent Extraction Fluid. In order to remove solid particles from the solution, a solid separation part/rotating bowl is attached to rotating bowl in such a way that solid particles settle inside the solid separation part. This solid separating centrifugal extractor contains two parts: (I) upper part which acts as a liquid-liquid separator to separate aqueous and organic solution used in solvent extraction operation and (II) bottom part which acts as a solid separator to separate solid particle present in solvent extraction liquids. The bottom rotating rotor is coupled with upper rotating rotor by threading arrangement. Both the rotating rotors are confined within a stationary cylinder. Dispersion with solid particles entering inside the rotating bowl is deflected towards the wall of the rotating cylinder by deflecting baffle by centrifugal sedimentation.
Claims
1. An annular centrifugal extractor (ACE) with solid separation part to separate solid particles present in solvent extraction fluid, the ACE comprising: a stationary cylinder/bowl comprising: a heavy phase inlet for feeding heavy phase of material with/without solid particles into the ACE; a light phase inlet for feeding light phase of material with/without solid particles into the ACE; a light phase outlet port for allowing light phase material to come out for subsequent stages; a heavy phase outlet port for allowing heavy phase material to exit for subsequent stages; a lighter phase collection chamber to receive thrown out separated lighter phase flowing over light phase weir; and a heavy phase collection chamber located above lighter phase collection chamber in the stationary bowl to receive thrown out heavy phase material flowing over a heavy phase weir via under flow; a rotating cylinder/bowl working as a liquid/liquid separating rotor; a rotating cylinder/bowl working as a solid separating rotor; wherein the rotating cylinder/bowl working as the solid separating rotor is disposed inside the stationary cylinder as particle/solid separating rotor, and the rotating cylinder/bowl working as the solid separating rotor is coupled with the rotating cylinder by threaded joint to act as a solid separator to separate solid particle present in solvent extraction/process liquid, and wherein a deflecting baffle is disposed inside the solid separating rotor to deflect the dispersion with solid particles entering inside the rotating cylinder/bowl working as the solid separating rotor towards the inner wall of the rotating cylinder/bowl working as the solid separating rotor; a plurality of vertical baffles in the solid separating rotor to confine the separated solid particles inside the chambers; a central opening for rotating the cylinder/bowl working as a liquid/liquid separating rotor for allowing dispersion being free from solid particle to enter inside the rotating cylinder/bowl working as a liquid/liquid separating rotor; a deflecting baffle in the rotor to deflect the said dispersion towards the wall of the rotating cylinder; and a plurality of vertical baffles in the liquid/liquid separating rotor to confine the separated dispersed phase inside the chambers.
2. The annular centrifugal extractor (ACE) with solid separation part, as claimed in claim 1, wherein an orifice is disposed as an central opening for the rotating cylinder/bowl working as the solid separating rotor to allow mixed phase dispersion with solid particles to flow down by gravity in an annular region to enter inside the rotating cylinder/bowl working as the solid separating rotor via a bottom baffle.
3. The annular centrifugal extractor (ACE) with solid separation part, as claimed in claim 1, wherein vertical baffles are disposed in the rotating cylinder/bowl working as the solid separating rotor to cause the dispersion without solid particles to flow from bottom to top inside the rotating cylinder/bowl working as the solid separating rotor and confined inside the chambers.
4. A method to separate solid particles present in solvent extraction fluid, the method comprising the following steps: i). allowing a heavy phase of material with or without solid particles and a light phase of material with or without solid particles to enter through an annular extractor (ACE) via a heavy phase feed pipe and a light phase feed pipe in between a stationary bowl and rotating bowls; ii). mixing of both the heavy phase and the light phase vigorously in an annular region by shear force/skin friction due to high-speed rotation of an inner bowl when turbulent liquid-liquid dispersion promotes the mass transfer between the two phases; iii). flowing down of the mixed phase dispersion with solid particles by gravity in the annular region and to enter inside a first of the rotating bowls through an orifice via a bottom baffle; iv). allowing dispersion with solid particles entering inside the first of the rotating bowls to deflect towards the wall of the first of the rotating bowls by a deflecting baffle enhancing the centrifugal sedimentation of solid particles; v). allowing the dispersion with solid particles to flow from bottom to top inside the first of the rotating bowls to confine inside the chambers by vertical baffles; vi). allowing the first of the rotating bowls to impart a rigid body rotation to the dispersion with solid particles to create vertically cylindrical free surface of liquid to become co-axial with the axis of rotation because of high centrifugal acceleration a; vii). allowing the solid particles to enter at the bottom and to get separated as it moves upwards; viii). allowing the dispersion being free from solid particles to enter inside a second of the rotating bowls through an orifice; ix). enhancing the centrifugal separation of heavy and light phases by deflecting the dispersion towards the wall of the second of the rotating bowls; x). allowing the dispersed phase to flow from bottom to top inside the second of the rotating bowls and to be confined inside the chambers by vertical baffles; xi). allowing the second of the rotating bowls to impart a rigid body rotation to the liquid creating vertically cylindrical free surface of liquid to become co-axial with an axis of rotation because of the high centrifugal acceleration a; xii). allowing the dispersion to enter at the bottom and to get separated as it moves upwards; xiii). allowing the separated lighter phase to flow over a light phase weir for being thrown out into a lighter phase collection chamber located at the stationary bowl; xiv). allowing the separated heavy phase to flow over a heavy phase weir via under flow for being thrown out into heavy phase collection chambers located above lighter phase collection chamber in the stationary bowl; xv). allowing both the heavy phase and the light phase to come out and flow in to adjacent stages through a heavy phase outlet and a light phase outlet, respectively; and xvi). decoupling the first of the rotating bowls from the second of the rotating bowls and arranging the solid particle to be collected and dispersed for further processing or solid waste management facility.
5. The method as claimed in claim 4, wherein the bottom baffle breaks the vortex formation of the mixed phase dispersion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0029] The patent or application file contains at least one drawing executed in color. Copies of this patent or patent application publication with color drawing(s) will be provided by the Office upon request and payment of the necessary fee.
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DESCRIPTION OF THE INVENTION
[0044] The annular centrifugal extractor (ACE) with solid separation part in accordance with the invention is shown in
[0051] Novel solid separating annular centrifugal extractor contains two rotating bowl parts (i) upper rotating part (4B) act as a liquid-liquid separator to separate aqueous and organic solution used in solvent extraction operation and (ii) bottom rotating part (4A) act as a solid separator to separate solid particle present in solvent extraction/process liquid. Bottom (4A) rotating cylinder/bowl (particle/solid separating rotor) is coupled with (4B) rotating cylinder/bowl (liquid/liquid separating rotor) by threaded joint (or any other joint).
[0052] The said ACE consists with solid separation part of a heavy phase inlet (1) for feeding heavy phase and light phase inlet (2) for feeding light phase of material into the ACE, a stationary cylinder/bowl (3), a rotating cylinder (4A) which is a particle/solid separating rotor, a rotating cylinder (4B) which is liquid/liquid separating rotor, radial baffles (5) on the stationary bottom plate, a central opening (6A) for rotating cylinder (4A), a central opening (6B) for rotating cylinder (4B), a deflecting baffle (7A) in the rotor (4A), a deflecting baffle (7B) in the rotor (4B), light phase weir (9), under flow region for heavy phase (10), heavy phase weir (11), light phase collection chamber (12), heavy phase collection chamber (13), light phase outlet part (14) and heavy phase outlet part (15). The stationary bowl (3) has a cover at the top, called as seating block (16) which supports the motor/drive to rotate the two threadedly joined bowls (4A, 4B).
[0053] During normal operation heavy phase with/without solid particles and light phase with/without solid particles enters through ACE via heavy phase feed pipe (1) and light phase feed pipe (2) in-between stationary bowl (3) and rotating bowl (4A & 4B). Both phases mixed vigorously in annular region by shear force/skin friction due to high-speed rotation of inner bowl and turbulent liquid-liquid dispersion promotes the mass transfer between two phases. Mixed phase (dispersion) with solid particles flows down by gravity in annular region and enters inside rotating bowl (particle/solid separating rotor, 4A (flat or conical shape bottom) through orifice (6A) via bottom baffle (5) (mixing vane, shape: straight or curved). Main function of bottom baffle is to break the vortex formation and provided in the bottom region which are either attached to the base of the outer cylinder or to the bottom of the rotating cylinder. Dispersion with solid particles entering inside the rotating bowl (particle/solid separating rotor, 4A) is deflected towards the wall of the rotating cylinder by deflecting baffle (7A) to enhance the centrifugal sedimentation of solid particles. Solid particles gets separated inside particle/solid separating rotor and dispersion flows from bottom to top inside the rotating bowl (and it is confined inside the chambers (four to eight numbers) by vertical baffles (8A). The rotating cylinder imparts a rigid body rotation to the dispersion with solid particles and creates vertically cylindrical free surface of liquid and it is coaxial with the axis of rotation because of high centrifugal acceleration a. The central portion is occupied by air. The solid particles entering at the bottom gets separated as it moves upwards. The sedimentation rate of solid particles depends upon density difference between solid particle and mixed phase, viscosity of mixed phase, particle size distribution, and settling velocity of particle under centrifugal acceleration (r?.sup.2). For complete separation of solid particles, adequate height and diameter are provided for a given level of centrifugal acceleration.
[0054] Dispersion (free from solid particles) entering inside the upper rotating bowl (4B, inside liquid/liquid separating rotor) through orifice (6B) is deflected towards the wall of the rotating cylinder by deflecting baffle (7B) to enhance the centrifugal separation of heavy and light phases. Dispersion phase gets separated and also flows from bottom to top inside the rotating bowl and it is confined inside the chambers (four to eight numbers) by vertical baffles (8B). The rotating cylinder imparts a rigid body rotation to the liquid and creates vertically cylindrical free surface of liquid and it is coaxial with the axis of rotation because of high centrifugal acceleration a. The central portion is occupied by air. The dispersion entering at the bottom gets separated as it moves upwards. The separation rate of dispersed phase depends upon density difference between continuous and dispersed phase, viscosity of continuous phase, drop size distribution, settling velocity of dispersed phase under centrifugal acceleration (r?.sup.2) and coalescing behavior of the dispersed phase. For complete separation (which is considered to be a flagship advantage of ACEs) of dispersion, adequate height and diameter are provided for a given level of centrifugal acceleration. Separated lighter phase flow over light phase weir (9) and it is thrown out in to lighter phase collection chamber (12) located at stationary bowl. Similarly, heavy phase flows over heave phase weir (11) via under flow (10) and it is thrown out in to heavy phase collection chamber (13) located above lighter phase collection chamber at stationary bowl. Finally both heavy phase and light phase comes out or flows in to adjacent stages through light phase outlet (14) and heavy phase outlet (15).
[0055] After N number of solvent extraction cycles (value of N, depends upon the concentration of solid particles in process liquid) the bottom (4A) rotating cylinder (particle/solid separating rotor) is decoupled from (4B) rotating cylinder (liquid/liquid separating rotor) and the solid is sent for further processing or solid waste management facility.
Advantages
[0056] a. The proposed design of rotor separates solid particles present in solvent extraction process liquid. [0057] b. Possibility of remote maintenance. [0058] c. Doesn't require any additional system for further processing of separated solid particle. [0059] d. Enhances the ACE operating life. [0060] e. The removable solid separation part can be sent directly to waste management facility for further processing of radioactive solid particles. [0061] f. Doesn't require additional dechoking facility.