13X Molecular Sieve for Nitrogen Deep Adsorption and Separation

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Customization: Available
CAS No.: Sio2/Al2O3
Formula: Sio2/Al2O3
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  • 13X Molecular Sieve for Nitrogen Deep Adsorption and Separation
  • 13X Molecular Sieve for Nitrogen Deep Adsorption and Separation
  • 13X Molecular Sieve for Nitrogen Deep Adsorption and Separation
  • 13X Molecular Sieve for Nitrogen Deep Adsorption and Separation
  • 13X Molecular Sieve for Nitrogen Deep Adsorption and Separation
  • 13X Molecular Sieve for Nitrogen Deep Adsorption and Separation
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  • Overview
  • Product Description
  • Specification
  • Company Profile
  • Packaging & Shipping
  • FAQ
Overview

Basic Info.

Model NO.
RJ-1704
EINECS
Sio2/Al2O3
Shape
Striped or Spherical
Drying Method
Static Drying
Kind
Mineral Desiccant
Sorbent
Molecular Sieves
Desiccant
Chemical Desiccant
Advantage
Excellent Catalyst
Material
Zeolite
Color
Light Gray
Application
Ethylene Production Drying
Molcular Size
1.6~2.5mm 3.6~4.8mm
Storage
Room Temperature and Avoid Directly Exposed to Air
Transport Package
Steel Drum, Ton Bag, Carton Box
Specification
1.7-2.5mm 3.0-5.0mm
Trademark
RONGJIAN
Origin
China
HS Code
2842100000
Production Capacity
10000ton/Year

Packaging & Delivery

Package Size
110.00cm * 100.00cm * 100.00cm
Package Gross Weight
25.000kg

Product Description

13X Molecular Sieve for Nitrogen Deep Adsorption and Separation
Product Description
13X Molecular Sieve for Nitrogen Deep Adsorption and Separation
Molecular Sieves: Key Principles
Molecular Sieve 3A is a synthetic zeolite with a pore size of approximately 3 angstroms (0.3 nm), primarily composed of potassium-exchanged aluminosilicate
Structure & Function
Synthetic aluminosilicates (zeolites) with uniform micropores arranged in a cubic lattice.
Selective adsorption based on molecular size: Smaller molecules enter pores and are trapped, while larger ones are excluded—hence the "sieve" analogy.
Pore Size Classification
Type 3A (3 A), 4A (4 A), 5A (5 A), and 13X (10 A) are common, each targeting specific molecules (e.g., 3A for water, 4A for CO2).
Mechanism
Adsorption occurs via van der Waals forces and electrostatic interactions within pores.
Regenerable by heating (~200–350°C) to release trapped molecules.
Applications
Gas/Liquid Drying: E.g., dehydrating ethanol or natural gas.
Separation: Isomer purification (e.g., separating n-paraffins from branched chains).
Catalysis: Used as supports in petrochemical reactions.
13X Molecular Sieve for Nitrogen Deep Adsorption and Separation
Specification
Name
Unit
Molecular Sieve
shape
-
strip type
ball
diameter
mm
1.5-1.7
3.0-3.3
1.7-2.5
3.0-5.0
size ratio up to grade
%
≥98
≥98
≥96
≥96
bulk density
g/ml
≥0.60
≥0.60
≥0.60
≥0.60
wear ratio
%
≤0.20
≤0.25
≤0.20
≤0.20
crushing strength
N
≥45/cm
≥60/cm
≥45/p
≥45/p
static H2O adsorption
%
≥20
≥20
≥20
≥20
water content
%
≤1.5
≤1.5
≤1.5
≤1.5
Adsorption Mechanism
Size Exclusion: Molecules smaller than pore size (e.g., H2O: 2.6 Å) enter and adsorb; larger ones (e.g., CH4: 3.8 Å) are blocked.
Surface Interactions: Polar molecules (e.g., water, NH3) bind strongly via hydrogen bonding and electrostatic forces.
Thermodynamics: Exothermic process; adsorption capacity decreases with temperature.
13X Molecular Sieve for Nitrogen Deep Adsorption and Separation
13X Molecular Sieve for Nitrogen Deep Adsorption and Separation
13X Molecular Sieve for Nitrogen Deep Adsorption and Separation
Applications
1. Polarity & Adsorption Mechanism
Polar Cavity: The aluminosilicate framework creates an electrostatic field within pores due to unsatisfied charges (from Al³+ substitution in SiO4 tetrahedra).
Interactions:Polar Molecules (e.g., H2O, CO2, H2S): Bind via hydrogen bonding or dipole-cation attraction (e.g., H2O → K+ in 3A sieves).
Polarizable Molecules (e.g., CO2): Induced dipoles form transient bonds with lattice cations (e.g., Na+ in 13X sieves).
Selectivity: Smaller polar molecules (kinetic diameter ≤ pore size) are preferentially adsorbed over nonpolar ones (e.g., CH4).
2. Role in Desulfurization
Target Molecules:H2S (2.6 Å): Strongly adsorbed due to polarity and small size (fits even in 3A sieves).
COS (3.2 Å): Captured by larger-pore sieves (e.g., 4A or 5A).
Competitive Adsorption:H2O vs. H2S: Water typically dominates adsorption sites, requiring pre-drying of gas streams to optimize H2S removal.
CO2 Interference: CO2 (3.3 Å) competes with sulfur species in 4A/13X sieves; selective formulations (e.g., metal-doped sieves) mitigate this.
13X Molecular Sieve for Nitrogen Deep Adsorption and Separation
Company Profile
Pingxiang Rongjian Environmental Protection Chemical Packing Co., Ltd.
Innovative Solutions for Environmental & Industrial Applications
Headquarters: Xiangdong District Industrial Park, Pingxiang City, Jiangxi Province, China
 
Core Capabilities
 Advanced Manufacturing: Custom-designed towers and systems in ceramic, metal, and plastic materials.
Comprehensive Product Portfolio: 200+ specifications including:
• Ceramic/metal/plastic packing materials
• Molecular sieves & activated alumina
• Catalysts & petrochemical additives
• Activated carbon & eco-friendly filtration media
Turnkey Services: Full-scale pollution control and wastewater treatment projects.
Corporate Strengths
  ISO 9001 Certified - Guaranteed quality management system compliance.
 300+ Workforce - Including 100+ specialized engineers and technicians.
30-Acre Production Base - Integrated R&D and manufacturing facilities.
 
Awards & Innovations
 National Science & Technology Achievement Award
Provincial Gold Medal & Famous Brand Product
17 Patented Technologies - Protecting proprietary advancements.
13X Molecular Sieve for Nitrogen Deep Adsorption and Separation
Packaging & Shipping
13X Molecular Sieve for Nitrogen Deep Adsorption and Separation
FAQ
13X Molecular Sieve for Nitrogen Deep Adsorption and Separation

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