CRYSTALLIZATION SYSTEM AND CRYSTALLIZATION METHOD OF LITHIUM HEXAFLUOROPHOSPHATE
20250282631 ยท 2025-09-11
Inventors
- Sheng XU (Rugao City, CN)
- Hongwei CHEN (Rugao City, CN)
- Zhenxing LI (Rugao City, CN)
- Koei NISHIMATSU (Rugao City, CN)
Cpc classification
International classification
Abstract
In the crystallization system of the lithium hexafluorophosphate of the present invention, a first-stage crystallization kettle is connected to a lithium hexafluorophosphate mother liquor supply source through a lithium hexafluorophosphate mother liquor supply line; further connected to the lithium hexafluorophosphate mother liquor supply source through a mother liquor heat exchange line connected with a mother liquor heat exchanger; and further connected to a second-stage crystallization kettle through a first mother liquor delivery line configured to deliver lithium hexafluorophosphate mother liquor, a second-stage crystallization kettle is connected to a third-stage crystallization kettle through a second mother liquor delivery line configured to deliver lithium hexafluorophosphate mother liquor, a third-stage crystallization kettle is connected to a fourth-stage crystallization kettle through a crystalline particle delivery line configured to deliver small crystalline particles in the third-stage crystallization kettle; and further connected to a next process device through a first discharging line, and a fourth-stage crystallization kettle is connected to a next process device through a second discharging line. The crystallization system of lithium hexafluorophosphate of the present invention enables different crystallization stages to be carried out separately in different crystallization kettles, so as to realize continuous feeding and continuous discharging in the course of crystallization.
Claims
1. A crystallization system of lithium hexafluorophosphate, comprising a first-stage crystallization kettle, a second-stage crystallization kettle, a third-stage crystallization kettle, and one or more fourth-stage crystallization kettles; the first-stage crystallization kettle, which is connected to a lithium hexafluorophosphate mother liquor supply source through a lithium hexafluorophosphate mother liquor supply line; further connected to the lithium hexafluorophosphate mother liquor supply source through a mother liquor heat exchange line connected with a mother liquor heat exchanger; and further connected to the second-stage crystallization kettle through a first mother liquor delivery line configured to deliver lithium hexafluorophosphate mother liquor having a first prescribed grain size, the second-stage crystallization kettle, which is connected to the third-stage crystallization kettle through a second mother liquor delivery line configured to deliver lithium hexafluorophosphate mother liquor having a second prescribed grain size, the third-stage crystallization kettle, which is connected to the fourth-stage crystallization kettle through a crystalline particle delivery line configured to deliver small crystalline particles in the third-stage crystallization kettle; and further connected to a next process device through a first discharging line; the fourth-stage crystallization kettle, which is connected to a next process device through a second discharging line; when the lithium hexafluorophosphate mother liquor supplied from the lithium hexafluorophosphate mother liquor supply source to the first-stage crystallization kettle crystallizes and grows to the first prescribed grain size under the condition that the temperature of the lithium hexafluorophosphate mother liquor is controlled within a first prescribed temperature range by the mother liquor heat exchanger, the lithium hexafluorophosphate mother liquor being delivered to the second-stage crystallization kettle through the first mother liquor delivery line; when the lithium hexafluorophosphate mother liquor delivered to the second-stage crystallization kettle continues to crystallize and grow to the second prescribed grain size under the condition that the temperature of the lithium hexafluorophosphate mother liquor is controlled within a second prescribed temperature range, the lithium hexafluorophosphate mother liquor being delivered to the third-stage crystallization kettle through the second mother liquor delivery line; a part of the lithium hexafluorophosphate mother liquor delivered to the third-stage crystallization kettle growing to crystal particles having a third prescribed grain size under the condition that the temperature of the lithium hexafluorophosphate mother liquor is controlled within a third prescribed temperature range, and the crystal particles having a third prescribed grain size being delivered to a next process device through the first discharging line, while the other part grows to crystal particles having a grain size less than the third prescribed grain size, and the crystal particles having a grain size less than the third prescribed grain size are delivered to the fourth-stage crystallization kettle through the crystalline particle delivery line; and the lithium hexafluorophosphate crystal particles delivered to the fourth-stage crystallization kettle grow to crystal particles having a fourth prescribed grain size under the condition that the temperature of the lithium hexafluorophosphate crystal particles is controlled within a fourth prescribed temperature range, and the crystal particles having a fourth prescribed grain size being delivered to a next process device through the second discharging line.
2. The crystallization system of lithium hexafluorophosphate according to claim 1, wherein the first prescribed temperature range is from 5 C. to 0 C., and the first prescribed grain size is from 10 m to 50 m; the second prescribed temperature range is from 15 C. to 10 C., and the second prescribed grain size is from 100 m to 150 m; the third prescribed temperature range is from 30 C. to 25 C., and the third prescribed grain size is from 180 m to 200 m; and the fourth prescribed temperature range is from 32 C. to 25 C., and the fourth prescribed grain size is from 180 m to 200 m.
3. The crystallization system of lithium hexafluorophosphate according to claim 1, wherein the first-stage crystallization kettle, the second-stage crystallization kettle, the third-stage crystallization kettle, and at least one crystallization kettle of the fourth-stage crystallization kettles are provided with an agitator, and a temperature drop rate that the temperature in the crystallization kettle at each of stages drops to the prescribed temperature range is controlled.
4. The crystallization system of lithium hexafluorophosphate according to claim 1, wherein assuming that a mother liquor feeding amount of the lithium hexafluorophosphate mother liquor supplied from the lithium hexafluorophosphate mother liquor supply source to the first-stage crystallization kettle is Q1, a first discharging amount of the lithium hexafluorophosphate crystals delivered to the next process device through the first discharging line is Q2, and a second discharging amount of the lithium hexafluorophosphate crystals delivered to the next process device through the second discharging line is Q3, the mother liquor feeding amount Q1 is a sum of the first discharging amount Q2 and the second discharging amount Q3, and the first discharging amount Q2 is twice the second discharging amount Q3.
5. The crystallization system of lithium hexafluorophosphate according to claim 1, wherein the lithium hexafluorophosphate mother liquor supply line is provided with a flow meter and a regulating valve; the mother liquor heat exchange line is provided with a axial-flow pump; and the first mother liquor delivery line, the second mother liquor delivery line, and the crystalline particle delivery line are provided with a regulating valve, respectively.
6. The crystallization system of lithium hexafluorophosphate according to claim 5, wherein the lithium hexafluorophosphate mother liquor supply line is connected to the mother liquor heat exchange line.
7. A crystallization method of lithium hexafluorophosphate, which is a crystallization method for crystallizing a mother liquor of the lithium hexafluorophosphate using a crystallization system of lithium hexafluorophosphate according to claim 1, comprising: a first-stage crystallization process carried out in the first-stage crystallization kettle, a second-stage crystallization process carried out in the second-stage crystallization kettle, a third-stage crystallization process carried out in the third-stage crystallization kettle, and a fourth-stage crystallization process carried out in the fourth-stage crystallization kettle, the crystallization processes from the first-stage crystallization process through the second-stage crystallization process to the third-stage crystallization process and the fourth-stage crystallization process being carried out continuously.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019]
[0020]
[0021]
[0022] In the drawings, 10-crystallization system of lithium hexafluorophosphate: 11-first-stage crystallization kettle: 12-second-stage crystallization kettle: 13-third-stage crystallization kettle: 14-fourth-stage crystallization kettle: 20-lithium hexafluorophosphate mother liquor supply source: 30-next process device.
DETAILED DESCRIPTION
[0023] The technical solutions of the present invention and effects thereof will be described in detail below with reference to specific embodiments. The following embodiments are used only for explaining the content of the present invention, but the invention is not just limited to the following embodiments or examples. All simple changes made to the present invention based on the concept of the present invention fall within the scope of protection for the present invention.
[0024] A crystallization system and crystallization method of lithium hexafluorophosphate provided in the present invention are designed, on the basis of agitated crystallization, to carry out different crystallization stages separately in different crystallization kettles according to the crystallization characteristics of lithium hexafluorophosphate, and connect the crystallization kettles for carrying out different crystallization stages in series, such that continuous feeding and continuous discharging are realized in the course of crystallization, thereby fulfilling the purpose of further improving the production efficiency of lithium hexafluorophosphate.
[0025] Specifically, a crystallization system 10 of lithium hexafluorophosphate provided in the present invention (as shown in
[0026] The first-stage crystallization kettle 11 is connected to a lithium hexafluorophosphate mother liquor supply source 20 through a lithium hexafluorophosphate mother liquor supply line 11a, and a flow meter 11b and a regulating valve 11c are provided on the lithium hexafluorophosphate mother liquor supply line 11a.
[0027] Furthermore, the first-stage crystallization kettle 11 is further connected to the lithium hexafluorophosphate mother liquor supply source 20 through a mother liquor heat exchange line 11e connected with a mother liquor heat exchanger 11d, and the mother liquor heat exchange line 11e is provided with an axial-flow pump 11f. Concretely, one end of the mother liquor heat exchange line 11e is communicated with the first-stage crystallization kettle 11, and the other end of the mother liquor heat exchange line 11e is communicated with the lithium hexafluorophosphate mother liquor supply line 11a.
[0028] In addition, the first-stage crystallization kettle 11 is further connected to the second-stage crystallization kettle 12 through a first mother liquor delivery line 11g configured to deliver lithium hexafluorophosphate mother liquor having a first prescribed grain size, and the first mother liquor delivery line 11g is provided with a regulating valve 11h.
[0029] The second-stage crystallization kettle 12 is connected to the third-stage crystallization kettle 13 through a second mother liquor delivery line 12a configured to deliver lithium hexafluorophosphate mother liquor having a second prescribed grain size, and the second mother liquor delivery line 12a is provided with a regulating valve 12b.
[0030] The third-stage crystallization kettle 13 is connected to the fourth-stage crystallization kettle 14 through a crystalline particle delivery line 13a configured to deliver small crystalline particles in the third-stage crystallization kettle 13, and the crystalline particle delivery line 13a is provided with a regulating valve 13b. Besides, the third-stage crystallization kettle 13 is further connected to a next process device 30 through a first discharging line 13c, and the first discharging line 13c is provided with a metering pump 13d.
[0031] The fourth-stage crystallization kettle 14 is connected with a next process device 30 (such as a crystallization drying device) through a second discharging line 14a, and the second discharging line 14a is provided with a metering pump 14b.
[0032] In addition, an agitator 40 is provided in the first-stage crystallization kettle 11, the second-stage crystallization kettle 12, the third-stage crystallization kettle 13, and the fourth-stage crystallization kettle 14, respectively.
[0033] Hereinafter, the process flow of the crystallization system 10 of lithium hexafluorophosphate of the present invention is described with reference to
[0034] As shown in
[0035] Additionally, during the crystallization in the first-stage crystallization kettle 11, the temperature in the first-stage crystallization kettle 11 is controlled to slowly drop to the first prescribed temperature range (5 C. to 0 C. in this embodiment). In this way, more uniform small crystals are easily precipitated in the first-stage crystallization kettle 11, and the amount of crystals precipitated is controllable without excessive small crystals. Moreover, the small crystals are dispersed by agitating with an agitator 40 to reduce the probability for the small crystals to encounter each other and lessen aggregation and settlement resulting from accumulation of small crystals, thereby ensuring that the small crystals supplied from the first-stage crystallization kettle 11 to the second-stage crystallization kettle 12 are uniform, which contributes to improvement of the crystallization efficiency and acquisition of uniform crystals. During the crystallization in the second-stage crystallization kettle 12, the temperature in the second-stage crystallization kettle 12 is controlled to rapidly drop to the second prescribed temperature range (15 C. to 10 C. in this embodiment). In this way, the small crystals from the first-stage crystallization kettle 11 grow rapidly and uniformly in the second-stage crystallization kettle 12 along its surface. Moreover, the growing crystals are dispersed by agitating with the agitator 40 to reduce the probability for the grown crystals to encounter each other and lessen aggregation and settlement resulting from accumulation of crystals, thereby ensuring that the crystals supplied from the second-stage crystallization kettle 12 to the third-stage crystallization kettle 13 are uniform, which contributes to improvement of the crystallization efficiency and acquisition of uniform crystals. In the third-stage crystallization kettle 13, grains having a large grain size are settled in the downstream, and grains having a small grain size are settled in the midstream and upstream and will enter the fourth-stage crystallization kettle 14 through the line. The temperature in the fourth-stage crystallization kettle 14 may be set to be lower (about 2 C.) than that in the third-stage crystallization kettle 13. In this way, a part of crystals will be further precipitated in the fourth-stage reaction kettle 14 and grow on the surfaces of the grains having a small grain size. Finally, the crystals in the third-stage crystallization kettle 13 and the fourth-stage crystallization kettle 14 are precipitated together with homogeneous grain sizes.
[0036] In addition, assuming that a mother liquor feeding amount of the lithium hexafluorophosphate mother liquor supplied from the lithium hexafluorophosphate mother liquor supply source to the first-stage crystallization kettle is Q1, a first discharging amount of the lithium hexafluorophosphate crystal particles delivered to the next process device through the first discharging line is Q2, and a second discharging amount of the lithium hexafluorophosphate crystal particles delivered to the next process device through the second discharging line is Q3, the mother liquor feeding amount Q1 is a sum of the first discharging amount Q2 and the second discharging amount, and the first discharging amount Q2 is twice the second discharging amount Q3.
[0037] The crystallization method of lithium hexafluorophosphate provided in the present invention, which is a crystallization method for crystallizing a mother liquor of the lithium hexafluorophosphate using the crystallization system 10 of lithium hexafluorophosphate described above, comprises: a first-stage crystallization process carried out in the first-stage crystallization kettle 11, a second-stage crystallization process carried out in the second-stage crystallization kettle 12, a third-stage crystallization process carried out in the third-stage crystallization kettle 13, and a fourth-stage crystallization process carried out in the fourth-stage crystallization kettle 14, the crystallization processes from the first-stage crystallization process though the second-stage crystallization process to the third-stage crystallization process and the fourth-stage crystallization process being carried out continuously.
[0038] The crystallization system and crystallization method of lithium hexafluorophosphate according to the present invention may allow different crystallization stages to be carried out separately in different crystallization kettles and allow the crystallization kettles for carrying out different crystallization stages to be connected in series, such that continuous feeding and continuous discharging are realized in the course of crystallization, thereby fulfilling the purpose of further improving the production efficiency of lithium hexafluorophosphate. Meanwhile, the crystallization in the crystallization kettles at all stages are precisely controlled to reduce aggregation and settlement during the crystallization, so as to ensure that crystals in the crystallization kettles at all stages are uniform, thereby improving the crystallization efficiency and obtaining uniform crystals.
[0039] As other embodiments of the present invention, the structure and process flow as shown in
[0040] Further, it is to be noted that each of the specific technical features described in the above specific embodiments may be combined in any suitable manner if without contradiction.