Dispersion plate and purification column including the same
11406911 · 2022-08-09
Assignee
Inventors
- Junyoung LEE (Daejeon, KR)
- Youngsoo SONG (Daejeon, KR)
- Gyu Chul DO (Daejeon, KR)
- Ye Hoon Im (Daejeon, KR)
- Dong Rak SON (Daejeon, KR)
Cpc classification
C07C7/148
CHEMISTRY; METALLURGY
B01D3/009
PERFORMING OPERATIONS; TRANSPORTING
Y02P20/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
C07C7/148
CHEMISTRY; METALLURGY
International classification
C07C7/148
CHEMISTRY; METALLURGY
Abstract
Disclosed is a dispersion plate for a purification column including a support plate, at least one first fluid tube penetrating through the support plate, and a plurality of second fluid tubes arranged to be spaced apart from the first fluid tube and surround the first fluid tube, wherein a length of at least one of the second fluid tubes is longer than lengths of another second fluid tubes, and is shorter than or equal to a length of the first fluid tube.
Claims
1. A dispersion plate, comprising: a support plate; at least one first fluid tube penetrating through the support plate; and a plurality of second fluid tubes arranged to be spaced apart from the first fluid tube and surround the first fluid tube, wherein a length of at least one of the second fluid tubes is longer than a length of another second fluid tubes, and is shorter than or equal to a length of the first fluid tube.
2. The dispersion plate of claim 1, wherein: the second fluid tubes are arranged at regular intervals along a circumference of the first fluid tube.
3. The dispersion plate of claim 2, wherein: the second fluid tubes include a first tube having a first length; and a tube having a second length longer than the first length, wherein the first length tube and the second length tube are alternately arranged along the circumference of the first fluid tube.
4. The dispersion plate of claim 3, wherein: each of the second fluid tubes has an elliptical inlet in which a first end point positioned to be spaced apart from one surface of the support plate by a first distance, and a second end point positioned to be spaced apart from the one surface of the support plate by a second distance longer than the first distance are connected to each other.
5. The dispersion plate of claim 4, wherein: the second end point of the first tube is positioned on the same line as the first end point of the second tube.
6. The dispersion plate of claim 3, wherein: diameters of the first length tube and the second length tube are the same.
7. The dispersion plate of claim 1, wherein: the second fluid tube includes a plurality of first length tubes surrounding the first fluid tube, arranged at a predetermined interval, and having the same length; and a plurality of second length tubes each positioned between adjacent first tubes and having different lengths, wherein a length of the second length tubes are longer than a length of the first length tubes.
8. The dispersion plate of claim 7, wherein: the first length tubes are arranged at an angle in which the first fluid tube having a circular cross-section is evenly divided.
9. The dispersion plate of claim 8, wherein: the second fluid tube includes the same number of the first length tubes and the second length tubes.
10. A purification column, comprising: a purification chamber having a lower portion into which steam is injected and an upper portion into which butadiene is injected; at least one dispersion plate installed across the inside of the purification chamber; and at least one catalyst layer positioned to be spaced apart from the dispersion plate and removing impurities of butadiene, wherein the dispersion plate includes a support plate; at least one first fluid tube penetrating through the support plate; and a plurality of second fluid tubes arranged to be spaced apart from the first fluid tube and surround the first fluid tube, and a length of at least one of the second fluid tubes being longer than lengths of other second fluid tubes, and being shorter than or equal to a length of the first fluid tube.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
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DETAILED DESCRIPTION
(9) Hereinafter, exemplary embodiments of the present invention will be described in detail so as for those of ordinary skill in the art to easily implement, with reference to the accompanying drawings. The present invention may be embodied in many different forms and is not limited to the exemplary embodiments described herein.
(10) To clarify the present invention, parts not related to the description are omitted from the drawings, and the same or similar components are denoted by the same reference numerals throughout the specification.
(11) In addition, the size and thickness of each component shown in the drawings are arbitrarily shown for convenience of explanation, and thus the present invention is not necessarily limited to those shown in the drawings.
(12) Throughout the specification, when referring that a certain element is “connected” to another element, it includes not only “directly connected” but also “indirectly connected” between other members. In addition, when referring that a certain element “comprises” a certain component, this means that the element may further include another components instead of excluding another components, unless explicitly described to the contrary.
(13) Hereinafter, with reference to the accompanying drawings, a dispersion plate installed in a butadiene purification column according to an exemplary embodiment of the present invention will be described in detail.
(14)
(15) Purification of butadiene according to an exemplary embodiment of the present invention is performed in the purification column. As shown in
(16) The purification chamber 100 provides a space in which butadiene is purified by reacting with a catalyst and separated from an external environment.
(17) The purification chamber 100 includes a first inlet H1 through which butadiene is supplied, a second inlet H2 through which steam is injected, a first outlet H3 through which steam is discharged, and a second outlet H4 through which purified butadiene is discharged.
(18) The first inlet H1 is positioned at an upper portion of the purification chamber, and the second outlet H4 is positioned at a lower portion of the purification chamber to allow butadiene supplied from the upper portion of the purification chamber to the lower portion thereof and then purified to be discharged through the second outlet H4 at the lower portion thereof.
(19) The second inlet H2 is positioned at the lower portion of the purification chamber, and the first outlet H3 is positioned at the upper portion of the purification chamber 100 to allow steam supplied to the lower portion of the purification chamber 100 and then moving to the upper portion of the purification chamber 100 to be discharged through the first outlet H3.
(20) The catalyst layer 300 may be selected depending on the impurities to be removed from butadiene supplied, and may be a catalyst containing a metal.
(21) The dispersion plate 200, which is to separate the catalyst layer 300, butadiene and steam from one another, is installed across the purification chamber 100.
(22)
(23) Referring to
(24) Vapor (steam) may flow through the first tube 21 and butadiene may flow through the second fluid tube 23.
(25) Referring to
(26) Hereinafter, the second fluid tubes having four different lengths will be described as an example. For convenience of explanation, among the second fluid tubes having different lengths, the second fluid tube having the shortest length is referred to as a first tube 23a, and in order of increasing length, the second fluid tubes having different lengths, in the order of increasing lengths, are each referred to as a second tube 23b, a third tube 23c and a fourth tube 23d.
(27) Referring to
(28) Here, the second end point X2 is positioned relatively adjacent to the first fluid tube 21, and the first end point is positioned relatively far from the first fluid tube 21. Therefore, the elliptical inlet of the second fluid tube 23 is arranged so as not to face the first fluid tube 21, thereby allowing butadiene to easily flow in. A difference between a length L21 of the first tube 23a and a length L22 of the second tube 23b, a difference between a length L22 of the second tube 23b and a length L23 of the third tube 23c, and a difference between a length L23 of the third tube 23c and a length L24 of the fourth tube 23d may be a difference LD (hereinafter, referred to as a height of the elliptical inlet) between the second distance LD2 and the first distance LD1, respectively.
(29) Thus, the second end point X2 of the first tube 23a may be positioned on the same line as the first end point X1 of the second tube 23b, the second end point X2 of the second tube 23b may be positioned on the same line as the first end point X1 of the third tube 23c, and the second end point X2 of the third tube 23c may be positioned on the same line as the first end point X1 of the fourth tube 23d. That is, when arranging a second fluid tube having a longer length than a second fluid tube having a reference length, a second fluid tube having a longer length than a second fluid tube having the reference length (or previously arranged) by a height LD of the elliptical inlet may be arranged, and the second end point X2 of the second fluid tube having the reference length and the first end point X1 of the second fluid tube arranged thereafter may be arranged so as to be positioned on the same line.
(30) Meanwhile, when the plurality of second fluid tubes 23 surrounding the first fluid tube 21 around one first fluid tube 21 are referred to as one unit group G, the dispersion plate 200 may include a plurality of unit groups G depending on a purification capacity of the purification column. For example, the dispersion plate 200 may include seven unit groups G, and, the unit group G may be arranged at a predetermined interval in the support plate.
(31) Referring to
(32) As in an exemplary embodiment of the present invention, when the second fluid tubes 23 through which the butadiene flows have various lengths, the function of the dispersion plate may be extended although some of the second fluid tubes 23 are clogged due to popcorn polymer necessarily produced in addition to butadiene.
(33)
(34) Referring to
(35) Some of the plurality of second fluid tubes may be clogged by the popcorn polymer. Clogging due to the popcorn polymer results in a difference in a flux of the supplied butadiene and the butadiene discharged through the second fluid tube 23. Therefore, all of the supplied butadiene is not transferred to the catalyst layer but are stored, result in raising the height of the liquid level W of butadiene.
(36) As in the present invention, when the second fluid tubes 23 are installed in multi-stages, butadiene is discharged through the tube 23a in the steady state. When some of the tube 23a is clogged, the liquid level W rises and, the liquid level W reaches the inlet of the tube 23b as shown in
(37) Thereafter, when some of the tube 23b is also clogged, the liquid level W rises again, the liquid level W reaches the tube 23c as shown in
(38) Conventionally, when some of the plurality of second fluid tubes having the same length are clogged, the flux of butadiene supplied to the catalyst layer is small while the liquid level rises, thereby reducing purification efficiency. Also, butadiene, whose the liquid level height was rapidly raised, was discharged through the first fluid tube, and disturbed the movement of steam, thereby reducing purification efficiency.
(39) However, in the present invention, butadiene may be discharged even while the liquid level rises and reaches the first fluid tube, thereby reducing the deterioration in purification efficiency.
(40) In addition, in an exemplary embodiment of the present invention, the second end point X2 of a second fluid tube which relatively first starts to discharge (for example, tube 23a which starts to discharge prior to the tube 23b), and the first end point X1 of the tube 23b starting the next discharge may be positioned on the same line. Therefore, even if the liquid level rises, it is possible to perform a discharge immediately, thereby preventing the deterioration in the purification efficiency.
(41) In addition, when the liquid level rises, the popcorn polymer together with butadiene may reach the catalyst layer through the first fluid tube, thereby reducing purification efficiency. However, in an exemplary embodiment of the present invention, the rise of the liquid level may delay as much as possible, thereby delaying the deterioration in purification efficiency due to the transfer of the popcorn polymer to the catalyst layer.
(42)
(43) The dispersion plate shown in
(44) As shown in
(45) The second fluid tubes 23 in
(46) Here, the arrangement of the second fluid tubes in
(47) That is, a reference tube is arranged at a predetermined interval along the circumference of the first fluid tube 21. Here, the reference tube may be tubes 23a, and all of the tubes 23a may have the same length and have the shortest length among the second fluid tubes.
(48) The second fluid tubes may be arranged radially from the center of the first fluid tube. For example, in
(49) Intermediate tubes having longer lengths than the reference tube may be arranged between adjacent reference tubes, respectively. Here, the intermediate tubes may be the tube 23b, the tube 23c, the tube 23d, and the tube 23e, all of these lengths may be different.
(50) In
(51) In an exemplary embodiment above, the second fluid tubes having four stages in
(52) Since the reference tube may be arranged at an angle in which the first fluid tube having a circular cross-section is evenly divided, and the intermediate tubes may be arranged therebetween, the number of reference tubes and the number of intermediate tubes positioned between adjacent reference tubes may be the same.
(53) Further, in exemplary embodiments of
(54) Also, in an exemplary embodiment above, the first fluid tube having a circular cross-section is described as an example, but is not limited thereto. The first fluid tube may have various cross-sections, such as a tetragon and pentagon. Here, the second fluid tubes may be arranged radially at a predetermined angle from the center of the first fluid tube, while surrounding the first fluid tube.
(55) In an exemplary embodiment above, the purification column having one dispersion plate is described, but is not limited thereto, and as shown in
(56)
(57) As shown in
(58) While this invention has been described in connection with what is presently considered to be practical exemplary embodiments, it is to be understood that the invention is not limited to the disclosed embodiments, but, on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the appended claims.
(59) TABLE-US-00001 <Description of symbols> 20: support plate 21: first fluid tube 23: second fluid tube 100: purification chamber 200, 202: dispersion plate 300: catalyst layer 1000, 1002: purification column H1, H2: inlet H3, H4: outlet