PACKED COLUMN
20180257001 ยท 2018-09-13
Assignee
Inventors
Cpc classification
B01D3/14
PERFORMING OPERATIONS; TRANSPORTING
F25J3/04927
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J2200/72
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J3/04909
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J3/04284
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D3/346
PERFORMING OPERATIONS; TRANSPORTING
B01J19/32
PERFORMING OPERATIONS; TRANSPORTING
B01D3/26
PERFORMING OPERATIONS; TRANSPORTING
B01D3/20
PERFORMING OPERATIONS; TRANSPORTING
F25J3/04848
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D3/32
PERFORMING OPERATIONS; TRANSPORTING
F25J3/044
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B01D3/26
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Provided is a packed column capable of achieving sufficiently high distillation performance even with the height of its gas-liquid contactors reduced. The packed column is a packed column which includes a gas-liquid contactor 17, 18 inside a tubular body 16 and a liquid distributor 19 in the upper most portion and causes descending liquid and ascending gas to contact each other in the gas-liquid contactor. The operation pressure is in the range of 200 to 1500 kPaG. The relative volatility is in the range of 1.9 to 3.1. The gas-liquid contactor is vertically divided into at least two parts. A gas disperser 20 is provided at at least one position between a lower one of the gas-liquid contactors and an upper one of the gas-liquid contactors, the gas disperser uniformly dispersing the composition of the ascending gas rising from the lower gas-liquid contactor toward the upper gas-liquid contactor.
Claims
1. (canceled)
2. A packed column which includes a gas-liquid contactor inside a tubular body and a liquid distributor in an uppermost portion and causes descending liquid and ascending gas to contact each other in the gas-liquid contactor, characterized in that operation pressure is in a range of 200 to 1500 kPaG, relative volatility is in a range of 1.9 to 3.1, the gas-liquid contactor is vertically divided into at least two parts to thereby form a plurality of gas-liquid contactors, a gas disperser is provided at at least one position between a lower one of the gas-liquid contactors and an upper one of the gas-liquid contactors, the gas disperser uniformly dispersing composition of the ascending gas rising from the lower gas-liquid contactor toward the upper gas-liquid contactor, a total height of the gas-liquid contactors above the highest gas disperser is set such that a ratio of the total height to a height of all the gas-liquid contactors is 0.7 or greater.
3. The packed column according to claim 2, characterized in that the packed column further comprises at least one intermediate liquid distributor that distributes the descending liquid again.
4. (canceled)
5. The packed column according to claim 3, characterized in that the gas disperser is formed integrally with the intermediate liquid distributor.
6. (canceled)
7. (canceled)
Description
BRIEF DESCRIPTION OF DRAWINGS
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
DESCRIPTION OF EMBODIMENTS
[0038]
[0039] The ascending gas introduced from the gas introduction portion 12 is subjected to a distillation operation in the lower gas-liquid contactor 18, introduced into the gas disperser 20 to be dispersed, introduced into the upper gas-liquid contactor 17 to be subjected to a distillation operation, and then discharged from the gas discharge portion 14. On the other hand, the descending liquid introduced from the liquid introduction portion 15 is distributed by the liquid distributor 19 and introduced into the upper gas-liquid contactor 17 and the lower gas-liquid contactor 18 in this order. The liquid thus introduced becomes maldistributed as it descends, and is discharged from the liquid discharge portion 13.
[0040]
[0041]
[0042] In this packed column 31, a gas-liquid contactor in a tubular body 32 is formed into three vertically divided upper gas-liquid contactor 33a, intermediate gas-liquid contactor 33b, and lower gas-liquid contactor 34. An upper liquid distributor 35a is provided above the upper gas-liquid contactor 33a, an intermediate liquid distributor 35b is provided between the upper gas-liquid contactor 33a and the intermediate gas-liquid contactor 33b, and a gas disperser 36 is provided between the intermediate gas-liquid contactor 33b and the lower gas-liquid contactor 34.
[0043] Ascending gas introduced into a lower portion of the packed column 31 from the gas introduction portion 12 is subjected to a distillation operation in the lower gas-liquid contactor 34, introduced into the gas disperser 36 to be dispersed, introduced into the intermediate gas-liquid contactor 33b and the upper gas-liquid contactor 33a in this order to be subjected to distillation operations, and then discharged from the gas discharge portion 14. On the other hand, descending liquid introduced from the liquid introduction portion 15 is distributed in the upper liquid distributor 35a, introduced into the upper gas-liquid contactor 33a, and then distributed again in the intermediate liquid distributor 35b. Thereafter, the descending liquid is introduced into the intermediate gas-liquid contactor 33b and the lower gas-liquid contactor 34 in this order to be subjected to distillation operations.
[0044] The results of simulations performed to check the effect of placing a gas disperser between upper and lower gas-liquid contactors will be described below. Meanwhile, in each simulation model, descending liquid is indicated by solid lines while ascending gas is indicated by broken lines.
[0045]
[0046] In this simulation model, a gas disperser model 46 corresponding to the gas disperser 20 is provided between upper gas-liquid contactor models 44 and lower gas-liquid contactor models 45.
[0047] In the simulation model illustrated in
[0048] The descending liquid to be introduced from a liquid introduction portion 48 is introduced at a given ratio from the liquid distributor model 43, and then descends to the lowermost portions of the respective packed column models without their flow rates or compositions corrected at the intermediate portions.
[0049] In the simulation model illustrated in
[0050]
[0051]
[0052] In this simulation model, feed air to be introduced from a gas introduction portion 61 is introduced into lower portions of packed column models 62, 63 as ascending gases and subjected to distillation operations in respective lower gas-liquid contactor models 64. Thereafter, the ascending gases are introduced into a gas disperser model 65 to uniform the compositions of the ascending gases, and rise through intermediate gas-liquid contactor models 66b and upper gas-liquid contactor models 66a to the uppermost portions of the respective packed column models 62, 63.
[0053] On the other hand, descending liquid to be introduced from a liquid introduction portion 67 is introduced at a given ratio from an upper liquid distributor model 68a into upper portions of the packed column models 62, 63, subjected to distillation operations in upper gas-liquid contactor models 66a, and have their compositions uniformed in an intermediate liquid distributor model 68b. Thereafter, the resultant descending liquid is introduced at the same ratio as that by the upper liquid distributor model 68a into the intermediate gas-liquid contactor models 66b, introduced directly into the lower gas-liquid contactors 64, and descend to the lowermost portions of the packed column models 62, 63.
[0054]
[0055] In this simulation model, feed air to be introduced from a gas introduction portion 71 is introduced into packed column models 72, 73 as ascending gases and subjected to distillation operations in respective lower gas-liquid contactor models 74. Then, the ascending gases rise directly through upper gas-liquid contactor models 75 to the uppermost portions of the respective packed column models 72, 73 without their flow rates or compositions corrected.
[0056] On the other hand, descending liquid to be introduced from a liquid introduction portion 76 is introduced at a given ratio from an upper liquid distributor model 77 into the packed column models 72, 73, subjected to distillation operations in the upper gas-liquid contactor models 75, and have their compositions uniformed in an intermediate liquid distributor model 78. Then, the resultant descending liquid is introduced at the same ratio as that by the upper liquid distributor model 77 into the lower gas-liquid contactor models 74, and descends to the lowermost portions of the packed column models 72, 73.
[0057]
[0058] Further,
[0059] Furthermore,
[0060] This result indicates that the effect of suppressing performance deterioration is high when the ratio of the total height of the upper gas-liquid contactor model 66a and the intermediate gas-liquid contactor model 66b to the entire height of all gas-liquid contactor models is set to 0.5 or greater and in particular to 0.7 or greater. Note that although the performance deterioration rate is calculated in the setting where the entire height of all gas-liquid contactor models (H1A+H1B+H2) and the height H1A of the upper gas-liquid contactor model 66a are fixed, the advantageous effect of the invention of the present application can be achieved regardless of which part is fixed in length. For example, the performance deterioration rate may be calculated with the entire height of all gas-liquid contactor models (H1A+H1B+H2) and the height H1B of the intermediate gas-liquid contactor model 66b fixed.
[0061] Further, using the simulation model illustrated in FIG. 5, a performance deterioration rate 5A is calculated in a similar setting where the height of each upper gas-liquid contactor model 44 is H1, the height of each lower gas-liquid contactor model 45 is H2, and the height H2 of the lower gas-liquid contactor model 45 is reduced while the entire height of all gas-liquid contactor models (H1+H2) is fixed, that is, the gas disperser 46 is shifted downward without changing the entire height of all gas-liquid contactor models. As illustrated in
[0062]
[0063] Note that each single gas-liquid contactor in the present invention refers to a portion including a gas-liquid contactor between an introduction portion or discharge portion for descending liquid and an introduction portion or discharge portion for ascending gas. The present invention is applicable to each gas-liquid contactor in a packed column including a plurality of gas-liquid introduction portions and gas-liquid discharge portions inside a tubular body. Moreover, the structure of the gas disperser may be any suitable structure.
REFERENCE SIGNS LIST
[0064] 11 packed column [0065] 12 gas introduction portion [0066] 13 liquid discharge portion [0067] 14 gas discharge portion [0068] 15 liquid introduction portion [0069] 16 tubular body [0070] 17 upper gas-liquid contactor [0071] 18 lower gas-liquid contactor [0072] 19 liquid distributor [0073] 20 gas disperser [0074] 21 path [0075] 22 turn back portion [0076] 23 liquid receiving portion [0077] 24 bottom hole [0078] 31 packed column [0079] 32 tubular body [0080] 33a upper gas-liquid contactor [0081] 33b intermediate gas-liquid contactor [0082] 34 lower gas-liquid contactor [0083] 35a upper liquid distributor [0084] 35b intermediate liquid distributor [0085] 36 gas disperser [0086] 41, 42 packed column model [0087] 43 liquid distributor model [0088] 44 upper gas-liquid contactor model [0089] 45 lower gas-liquid contactor model [0090] 46 gas disperser model [0091] 47 gas introduction portion [0092] 48 liquid introduction portion [0093] 51 gas introduction portion [0094] 52, 53 packed column model [0095] 54 lower gas-liquid contactor model [0096] 55 upper gas-liquid contactor model [0097] 56 liquid introduction portion [0098] 57 liquid distributor model [0099] 61 gas introduction portion [0100] 62, 63 packed column model [0101] 64 lower gas-liquid contactor model [0102] 65 gas disperser model [0103] 66a upper gas-liquid contactor model [0104] 66b intermediate gas-liquid contactor model [0105] 67 liquid introduction portion [0106] 68a upper liquid distributor model [0107] 68b intermediate liquid distributor model [0108] 71 gas introduction portion [0109] 72, 73 packed column model [0110] 74 lower gas-liquid contactor model [0111] 75 upper gas-liquid contactor model [0112] 76 liquid introduction portion [0113] 77 upper liquid distributor model [0114] 78 intermediate liquid distributor model [0115] 81 upper gas-liquid contactor [0116] 82 lower gas-liquid contactor [0117] 83 intermediate liquid distributor [0118] 84 gas disperser [0119] 100 nitrogen generator [0120] 101 distillation column [0121] 102 upper liquid distributor [0122] 103 upper gas-liquid contactor [0123] 104 intermediate liquid distributor [0124] 105 lower gas-liquid contactor [0125] 106 air compressor [0126] 107 aftercooler [0127] 108 pre-treatment unit [0128] 109 purified air stream [0129] 110 cold box [0130] 111 main heat exchanger [0131] 112 gas introduction stream [0132] 113 gas discharge stream [0133] 114 condensation stream [0134] 115 condenser [0135] 116 liquid discharge stream [0136] 117 liquid-air pressure reducing valve [0137] 118 liquid introduction stream [0138] 119 low-temperature air stream [0139] 120 turbine inlet stream [0140] 121 expansion turbine [0141] 122 turbine outlet stream [0142] 123 waste gas stream [0143] 124 product nitrogen gas stream [0144] 131 distillation column [0145] 132 gas-liquid contactor [0146] 133 liquid distributor [0147] 135, 136 gas-liquid contactor [0148] 137 upper liquid distributor [0149] 138 intermediate liquid distributor [0150] 139 packed column