APPARATUS FOR PRODUCING INORGANIC POWDER AND APPARATUS FOR PRODUCING AND CLASSIFYING INORGANIC POWDER
20180169606 ยท 2018-06-21
Assignee
Inventors
- Chun-An LU (New Taipei City, TW)
- Yuan-Ling Tsai (Changhua County, TW)
- Chiung-Hsiung Chen (Hsinchu County, TW)
- Yi-Chen Wu (Nantou County, TW)
- Shih-Chin Lin (New Taipei City, TW)
Cpc classification
B01J2219/0869
PERFORMING OPERATIONS; TRANSPORTING
B01J19/088
PERFORMING OPERATIONS; TRANSPORTING
B01J2219/0833
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An apparatus for producing an inorganic powder and an apparatus for producing and classifying an inorganic powder are provided, wherein the apparatus for producing an inorganic powder includes an insulating tube, at least one pair of annular RF electrodes, and a gas supply apparatus. The pair of annular RF electrodes surrounds the outer circumference of the insulating tube to generate a first electric field region outside the insulating tube and generate a second electric field region having a plasma torch in the insulating tube after being turned on. The gas supply apparatus supplies a reaction mist and an inert gas into the insulating tube to thermally degrade and oxidize the reaction mist into an inorganic powder via the plasma torch.
Claims
1. An apparatus for producing an inorganic powder, comprising: an insulating tube; at least one pair of annular RF electrodes surrounding an outer circumference of the insulating tube to generate a first electric field region outside the insulating tube and generate a second electric field region having a plasma torch in the insulating tube after being turned on; and a gas supply apparatus supplying a reaction mist and an inert gas into the insulating tube to degrade and oxidize the reaction mist into the inorganic powder via the plasma torch.
2. The apparatus for producing the inorganic powder of claim 1, wherein the insulating tube comprises a ceramic tube having a resistivity of 10.sup.9 .Math.cm or more.
3. The apparatus for producing the inorganic powder of claim 1, wherein a material of the insulating tube comprises aluminum oxide, zirconium oxide, aluminum nitride, silicon nitride, silicon carbide, or a combination thereof.
4. The apparatus for producing the inorganic powder of claim 1, wherein an electric field strength of the first electric field is greater than an electric field strength of the second electric field.
5. The apparatus for producing the inorganic powder of claim 1, further comprising: an outer tube surrounding the insulating tube and the pair of annular RF electrodes; and a nitrogen supply apparatus supplying nitrogen into the outer tube.
6. The apparatus for producing the inorganic powder of claim 1, wherein the gas supply apparatus comprises: a reaction mist supply apparatus connected to the insulating tube to supply the reaction mist; and a high-pressure gas supply apparatus connected to the reaction mist supply apparatus to supply the inert gas to the reaction mist supply apparatus.
7. The apparatus for producing the inorganic powder of claim 1, wherein the reaction mist comprises a metal organic salt precursor.
8. The apparatus for producing the inorganic powder of claim 1, wherein the inert gas comprises argon having a purity of 99.9% or more or a mixed gas of argon and air.
9. An apparatus for producing and classifying an inorganic powder, comprising: an atomization equipment atomizing a reaction liquid into a reaction mist; a plasma equipment, comprising: an insulating tube connected to the atomization equipment; a high-pressure gas supply apparatus supplying an inert gas to the atomization equipment such that the reaction mist and the inert gas enter the insulating tube together; and at least one pair of annular RF electrodes surrounding an outer circumference of the insulating tube to generate a first electric field region outside the insulating tube and generate a second electric field region having a plasma torch in the insulating tube after being turned on such that the reaction mist is degraded and oxidized into an inorganic powder by the plasma torch; and a classification equipment connected to the plasma equipment, wherein the classification equipment comprises a plurality of dry vortex cones having different radii to classify the inorganic powder.
10. The apparatus for producing and classifying the inorganic powder of claim 9, wherein the insulating tube comprises a ceramic tube having a resistivity of 10.sup.9 .Math.cm or more.
11. The apparatus for producing and classifying the inorganic powder of claim 9, wherein a material of the insulating tube comprises aluminum oxide, zirconium oxide, aluminum nitride, silicon nitride, silicon carbide, or a combination thereof.
12. The apparatus for producing and classifying the inorganic powder of claim 9, wherein an electric field strength of the first electric field region is greater than an electric field strength of the second electric field region.
13. The apparatus for producing and classifying the inorganic powder of claim 9, wherein the plasma equipment further comprises: an outer tube surrounding the insulating tube and the pair of annular RF electrodes; and a nitrogen supply apparatus supplying a nitrogen into the outer tube.
14. The apparatus for producing and classifying the inorganic powder of claim 9, wherein the reaction liquid comprises a metal organic salt precursor.
15. The apparatus for producing and classifying the inorganic powder of claim 9, wherein a cone angle of the dry vortex cones is less than 20 degrees.
16. The apparatus for producing and classifying the inorganic powder of claim 9, wherein each of the dry vortex cones has an exit, a gas inlet, and a powder outlet, a diameter of the exit is a maximum diameter divided by N, a diameter of the gas inlet is the maximum diameter divided by M, and a diameter of the powder outlet is the maximum diameter divided by L, wherein N=3.5 to 5.5, M=5.5 to 8.5, and L=6.5 to 10.
17. The apparatus for producing and classifying the inorganic powder of claim 9, wherein the atomization equipment comprises a piezoelectric oscillator or an ultrasonic oscillator.
18. The apparatus for producing and classifying the inorganic powder of claim 9, wherein the high-pressure gas supply apparatus comprises a high-pressure gas cylinder.
19. The apparatus for producing and classifying the inorganic powder of claim 9, wherein the inert gas comprises argon having a purity of 99.9% or more or a mixed gas comprising argon and air.
20. The apparatus for producing and classifying the inorganic powder of claim 19, wherein the mixed gas comprises 5 mol % to 15 mol % of oxygen.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] The accompanying drawings are included to provide further understanding, and are incorporated in and constitute a part of this specification. The drawings illustrate exemplary embodiments and, together with the description, serve to explain the principles of the disclosure.
[0011]
[0012]
[0013]
[0014]
DETAILED DESCRIPTION OF DISCLOSED EMBODIMENTS
[0015] Hereinafter, the concepts of the disclosure are more comprehensively described with reference to figures with embodiments. However, the disclosure can also be implemented in many different forms and should not be construed to be limited to the embodiments below. In the figures, for clarity, the relative thickness and location of each layer, region, structure, and/or apparatus may be reduced or enlarged. Moreover, similar or the same reference numerals are used in each figure to represent similar or the same devices or features. It should be understood that, when a device is described as connected to another device, the device can be directly connected to the other device or an intermediate device can be present; on the other hand, when the device is described as directly connected to another device, an intermediate device is not present. Other spatial terms describing the relationship between the devices or film layers should be understood in the same manner.
[0016] An apparatus for producing an inorganic powder provided by the disclosure can produce a submicron inorganic powder that is easily classified.
[0017] The disclosure further provides an apparatus for producing and classifying an inorganic powder that can continuously produce a micron-grade or nano-grade inorganic powder on different scales.
[0018]
[0019] Referring to
[0020] Next, referring to
[0021] During the reaction, the annular RF electrodes 104 generate a first electric field region 204 outside the insulating tube 102 and generate a second electric field region 208 having a plasma torch 206 in the insulating tube 102 after being turned on, wherein the electric field strength of the first electric field region 204 is greater than the electric field strength of the second electric field region 208. Therefore, when the reaction mist supplied by the reaction mist supply apparatus 200 passes through the plasma torch 206, the reaction mist is degraded and oxidized into an inorganic powder, wherein the particle size of the degraded inorganic powder is 50 microns to 500 microns. In an embodiment, the radio frequency is between 100 kHz and 1000 kHz; the high-voltage range is between 0.5 kV and 5 kV; and the output wattage is between 0.5 kW and 5 kW. Based on the above conditions of the annular RF electrodes 104, a diameter d of the insulating tube 102 can be set to 8 cm or less, and a tube wall thickness t can be 3 mm or less. Moreover, a nitrogen supply apparatus 210 can be added to supply nitrogen into the outer tube 110 such that nitrogen is filled between the outer tube 110 and the insulating tube 102 to prevent the first electric field region 204 from generating an electric arc or even an explosion.
[0022] In the present embodiment, a high electric field is applied using the annular RF electrodes 104 disposed in the outer circumference 102a of the insulating tube 102, and a high-concentration inert gas (such as argon having a purity of 99.99%) is supplied by the inside 102b of the insulating tube 102 to form a plasma. Since the tube wall of the insulating tube 102 adopts a high insulation material, the electric field strength of the second electric field region 202 inside the insulating tube 102 can be limited, such that internal plasma concentration, temperature, and strength are weaker, and the reaction mist passing through can be degraded and oxidized and is not vaporized by the excessive strength of the plasma torch 206. As a result, the issues of requiring additional cooling regions and difficulty in collecting an inorganic powder that is too small are prevented.
[0023]
[0024] Referring to
[0025]
[0026] Based on the above, in the disclosure, by disposing annular RF electrodes in the outer circumference of the insulating tube to reduce the low-concentration plasma reaction region formed in the tube by the electric field strength, a discharge effect can be prevented from causing material vaporization so as to perform a rapid thermal degradation reaction to form an inorganic powder. Moreover, in the disclosure, a continuous production apparatus is formed by integrating an atomization equipment, an RF plasma torch, and a dry vortex classification equipment, and the continuous production apparatus can effectively improve the reaction time of the original powder synthesis, lower pollution, and achieve the effects of continuous reaction and powder auto classification.
[0027] It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the disclosed embodiments without departing from the scope or spirit of the disclosure. In view of the foregoing, it is intended that the disclosure cover modifications and variations of this disclosure provided they fall within the scope of the following claims and their equivalents.