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Carbon Molecular Sieve For Nitrogen Generator in The Field Of Air Purification

Carbon Molecular Sieve For Nitrogen Generator in The Field Of Air Purification

Carbon molecular sieve is a porous material made of solid carbon with extremely high surface area and fine pore size distribution. These characteristics make carbon molecular sieve have broad application prospects in adsorption, separation and catalysis.
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Product Details ofCarbon Molecular Sieve For Nitrogen Generator in The Field Of Air Purification

 

CHEMXIN CMS 260_01

Carbon molecular sieve, as a material with unique structure and excellent performance, plays an important role in modern industry and science and technology. Carbon molecular sieve is a porous material made of solid carbon with extremely high surface area and fine pore size distribution. These characteristics make carbon molecular sieve have broad application prospects in adsorption, separation and catalysis.

Adsorption: The adsorption performance of carbon molecular sieve is one of its most important applications. Due to its huge surface area and fine pore size structure, carbon molecular sieve can effectively adsorb small molecules in gas and liquid. This adsorption performance makes carbon molecular sieve widely used in air purification, water treatment, oil and gas recovery and other fields. For example, in the field of air purification, carbon molecular sieve can adsorb harmful gases and odors to improve air quality.

CHEMXIN CMS 260_02

Technical Parameter:

 

Model Carbon Molecular Sieve
Diameter (mm) 1.0-1.2 1.3-1.5 1.5-1.8 1.8-2.0
Crushing Strength (N/pc) 50-60 60-70 70-80 80-100
Production Output Data as follows 3-8% loss 5-15% loss 10-20% loss
Type 

Adsorption Pressure (MPa)

N2 Purity(%)

N2 quantity (M3/T.MT)

Air/N2 (%)

CMS-260

0.75-0.8

99.999 75 6.5
99.99 120 4.6
99.9 175 3.4
99.5 260 2.9
99 320 2.2
98 350 2.1
97 390 2.0

 

CMS 260_03CHEMXIN CMS 260_04

Can carbon molecular sieves adsorb radioactive gases?

Carbon molecular sieves are adsorption materials with a porous structure, and their adsorption effect is mainly based on factors such as molecular size and polarity. For some radioactive gases, such as radioactive iodine vapor (131I, etc.) and xenon gas (133Xe, etc.), if their molecular size matches the pore size of carbon molecules and their molecular polarity and other properties are suitable for adsorption, then carbon molecular sieves can adsorb them. For instance, when the pore size distribution of carbon molecular sieves is within a certain range and radioactive gas molecules can enter their pores, they will be adsorbed on the surface of the pore walls.

However, the adsorption capacity of carbon molecular sieves for radioactive gases is also limited by some factors. Firstly, different types of carbon molecular sieves have different pore size distributions, surface chemical properties, etc., which will affect the adsorption selectivity and adsorption capacity for radioactive gases. Secondly, the existence form, concentration of radioactive gas and environmental conditions (such as temperature, humidity, etc.) will also have an impact on the adsorption effect. In practical applications, it is usually necessary to select appropriate carbon molecular sieves based on the specific types of radioactive gases and working conditions, and to carry out optimized design and operation to achieve better adsorption effects.

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