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Intermediate temperate pressure swing adsorption method for using bifunctional adsorbent in adsorption enhanced type vapor reforming and water-vapor transformation reactions

A technology of steam reforming and water-gas shift, applied in chemical instruments and methods, using solid contact hydrogen separation, inorganic chemistry, etc., can solve the problems of increased catalyst and adsorbent consumption, complicated operation, and increased equipment cost. Achieve the effect of improving gas processing capacity, reducing system complexity, and reducing heat exchange equipment

Active Publication Date: 2015-04-15
TSINGHUA UNIV
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  • Summary
  • Abstract
  • Description
  • Claims
  • Application Information

AI Technical Summary

Problems solved by technology

[0009] At present, the PSA gas separation method has been widely used in natural gas, coal-fired boiler flue gas, synthetic ammonia shift gas, roasting tail gas in alumina production, and CO in lime kiln gas. 2 This method overcomes the disadvantages of wet decarbonization, complex operation in desulfurization, high energy consumption, high cost, and large equipment corrosion.
However, the traditional PSA adsorption separation process is limited by the adsorbent and equipment working conditions, and often can only choose normal temperature operation (such as 20-45°C)
At the same time, common PSA adsorbents (such as molecular sieves) for H 2 The presence of O is also very sensitive, in the H 2 When O coexists with other gases, it will preferentially absorb H 2 O, so the pressure swing adsorption process and the reforming reaction or water-gas shift reaction cannot be carried out simultaneously in the same reactor, and the product gas of the reforming reaction or water-gas shift reaction needs to be cooled and dehydrated before passing through an independent PSA system. Purify hydrogen
If the catalyst and adsorbent are directly mixed or used in combination, on the one hand, the catalytic reaction and the adsorption reaction are not coupled in situ, and the efficiency is low; on the other hand, the amount of catalyst and adsorbent required will increase, which will increase the volume of the reactor. thus increasing equipment cost
In addition, some feedstock gases may also contain H 2 S, desulfurization device needs to be installed, system complexity and investment cost increase

Method used

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  • Intermediate temperate pressure swing adsorption method for using bifunctional adsorbent in adsorption enhanced type vapor reforming and water-vapor transformation reactions
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  • Intermediate temperate pressure swing adsorption method for using bifunctional adsorbent in adsorption enhanced type vapor reforming and water-vapor transformation reactions

Examples

Experimental program
Comparison scheme
Effect test

Embodiment 1

[0049] This example adopts four adsorption tower configurations, see figure 1 shown. The raw material gas is transported from the raw material gas buffer tank through the insulation pipeline, through the high temperature resistant program-controlled valve, to the adsorption tower; Steps of pressure release in direction, reverse pressure release, flushing, 2 pressure equalizations and final charge.

[0050] The composition of raw gas is as follows:

[0051]

[0052] Raw gas pressure: 5MPa

[0053] Raw gas temperature: 400-450°C

[0054] The pressures of the four adsorption towers are adjustable, and the adsorption towers are filled with adsorbents, and the adsorbents are composed of K 2 CO 3 Modified Mg-Al hydrotalcite compounded with molecular sieves and activated carbon, K 2 CO 3 The modified Mg-Al hydrotalcite accounts for 50% of the total mass of the adsorbent.

[0055] After the feed gas enters the adsorption tower, it undergoes steam reforming and water-gas shi...

Embodiment 2

[0081] This example uses a four-tower configuration, such as figure 1 shown. The raw material gas is transported from the raw material gas buffer tank through the insulated pipeline, through the high temperature resistant program-controlled valve, to the adsorption tower.

[0082] The composition of raw gas is as follows:

[0083]

[0084] Raw gas pressure: 3MPa

[0085] Raw gas temperature: 200-300°C

[0086] The pressure of the four adsorption towers is adjustable, and the adsorption tower is equipped with an adsorbent, which is composed of Na-modified Zn-Al hydrotalcite, molecular sieve, activated carbon, NaNO 3 The modified Zn-Al hydrotalcite accounts for 70% of the total mass of the adsorbent.

[0087] The specific operation steps are the same as in Example 1, and the changes are as follows: when the adsorption capacity of the adsorbent reaches 60% of the saturated adsorption capacity, the adsorption towers are automatically switched, and the previously working ads...

Embodiment 3

[0090] This example adopts 2 adsorption tower configurations, such as figure 2 shown. The raw material gas is transported from the raw material gas buffer tank through the insulated pipeline, through the high temperature resistant program-controlled valve, to the adsorption tower. The steps experienced by each adsorption tower include four steps of pressure charging, adsorption, pressure release and purging.

[0091] The composition of raw gas is as follows:

[0092]

[0093] Raw gas pressure: 3MPa

[0094] Raw gas temperature: 200-300°C

[0095] The pressure of the two adsorption towers is adjustable, and the adsorption tower is equipped with adsorbent, and the adsorbent is made of Na 2 CO 3 The modified Mg-Al hydrotalcite is composited with activated carbon, and the Na-modified Mg-Al hydrotalcite accounts for 20% of the total mass of the adsorbent.

[0096] The specific operation steps are the same as in Example 1, and the changes are as follows: when the adsorptio...

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Abstract

The invention discloses an intermediate temperature pressure swing adsorption method for using a bifunctional adsorbent in adsorption enhanced type vapor reforming and water-vapor transformation reactions, belonging to the technical field of clean energy. According to the method, the bifunctional adsorbent which has dual functions of catalytic reaction and decarburization desulphurization is added into a reactor. The process ensures that multiple hydrogen production reactions are performed in the same reactor under an intermediate temperature condition, so that the investment in system equipment is reduced and the process flow is simplified; the temperature of a reforming reactor is low, the requirement for steel products is lowered, and the equipment cost is reduced; the sensitive heat of raw material gas can be directly recovered, the overall thermal efficiency of a system is improved, heat exchange equipment of the system is reduced, and the system cost is reduced; the adsorption / regeneration of the adsorbent can be realized without temperature rise and drop, the energy consumption is reduced, the regeneration speed of the adsorbent is high, and the gas treating capacity of a pressure swing adsorption system can be improved.

Description

technical field [0001] The invention belongs to the technical field of clean energy, and specifically relates to a method for using a dual-function adsorbent to carry out adsorption-enhanced steam reforming, water-gas shift reaction and medium temperature pressure swing adsorption. Background technique [0002] With the increasingly prominent energy and environmental issues, H 2 As a clean and efficient fuel, it has attracted much attention, and hydrogen is also an important raw material in the chemical industry. Methane steam reforming is the main way of traditional large-scale industrial hydrogen production. In addition, other hydrocarbon fuels can be steam reformed and coal gasification synthesis gas can also be produced by water gas shift reaction. Taking the steam reforming of methane as an example, in the traditional industrial route, the raw material gas needs to go through three process steps of reforming reactor, water gas shift reactor and purification device to f...

Claims

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Application Information

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Patent Type & Authority Patents(China)
IPC IPC(8): C01B3/38C01B3/12C01B3/58
Inventor 蔡宁生史翊翔郑妍杨懿李爽
Owner TSINGHUA UNIV
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