| Literature DB >> 24955244 |
Roohollah Rostami1, Ahmad Jonidi Jafari2.
Abstract
BACKGROUND: Zero valent iron and copper oxide nanoparticles (30-60 nm) were coated on a bed of natural zeolite (Clinoptilolite) with 1-2 mm grains and arranged as a dual filter in a stainless steel cylindrical reactor (I.D 4.5 cm and L = 30 cm) to investigating the coated bed removal efficiency for BTX. The experiments were conducted in three steps. First, with an air flow of 1.5 L/min and temperature range of 38 (ambient temperature) to 600°C the BTX removal and mineralization was surveyed. Then, in an optimized temperature the effect of flow rate and pollution loading rate were surveyed on BTX removal.Entities:
Keywords: Air pollution; Aromatic organics; Chemical process; Nanoparticles; Zeolite
Year: 2014 PMID: 24955244 PMCID: PMC4053284 DOI: 10.1186/2052-336X-12-89
Source DB: PubMed Journal: J Environ Health Sci Eng
Figure 1Scheme of the reactor packed with nanoparticle coated zeolite.
Figure 2BTX removal in adsorptive-thermocatalytic process as a function of temperature.
Inlet BTX concentration and loading rate for the range of temperature (38-600°C)
| 317.73 | 61.44 | 10.30 | 6.95 | 4.97 | |
| 157.49 | 30.45 | 5.10 | 3.44 | 2.46 | |
| 90.08 | 17.42 | 2.92 | 1.97 | 1.41 | |
| 2001.68 | 387.08 | 64.87 | 43.77 | 31.33 |
aMicro gram per each cubic centimeter of bed per hour; bMicro gram per each gram of bed per hour; cMay named as weight hourly space velocity (WHSV), micro gram per each gram of catalyst per hour.
Figure 3Outlet CO concentration and mineralization of BTX in adsorptive-thermocatalytic process as a function of temperature.
Figure 4The coated zeolites befor and after application of high temperature. a: Zeolite grain with Zero-valent iron nanoparticles coating after using in the reactor less than 400°C, b: Zeolite grain with Zero-valent iron nanoparticles coating after using in the reactor at 400°C, c: Zeolite grain with Copper oxide (I) nanoparticles coating after using in the reactor less than 400°C, d: Zeolite grain with Copper oxide (I) nanoparticles coating after using in the reactor at 400°C.
Figure 5BTX removal in adsorptive-thermocatalytic process with different flow rates (a) and BTX loading rates (b).
BTX Concentration and removal effisinecy in the adsorptive-thermocatalytic process with different pollution loads and flow rates
| High pollution load | Benzene | 1818.92 | 901.59 | 13.64 | 303.15 | 78.37 |
| Toluene | 486.16 | 240.99 | 3.65 | 81.03 | 86.09 | |
| p-Xylene | 42.01 | 20.82 | 0.32 | 7.00 | 84.05 | |
| m-Xylene | 35.74 | 17.73 | 0.27 | 5.96 | 82.85 | |
| o-Xylene | 7.21 | 3.57 | 0.05 | 1.20 | 82.75 | |
| Low pollution load | Benzene | 792.92 | 393.03 | 5.95 | 132.15 | 92.65 |
| Toluene | 172.07 | 85.29 | 1.29 | 28.68 | 98.73 | |
| p-Xylene | 11.82 | 5.85 | 0.09 | 1.97 | 93.58 | |
| m-Xylene | 9.17 | 4.56 | 0.07 | 1.53 | 90.01 | |
| o-Xylene | 3.51 | 1.74 | 0.03 | 0.59 | 88.55 | |
| 1 l/min flow rate | Benzene | 910.01 | 300.72 | 6.83 | 151.67 | 95.64 |
| Toluene | 200.99 | 66.42 | 1.51 | 33.50 | 98.52 | |
| p-Xylene | 5.62 | 1.86 | 0.04 | 0.94 | 94.32 | |
| m-Xylene | 9.61 | 3.18 | 0.07 | 1.60 | 98.67 | |
| o-Xylene | 4.32 | 1.44 | 0.03 | 0.72 | 100 | |
| 2 l/min flow rate | Benzene | 927.16 | 612.75 | 6.95 | 154.53 | 76.13 |
| Toluene | 209.14 | 138.21 | 1.57 | 34.86 | 87.74 | |
| p-Xylene | 7.06 | 4.68 | 0.05 | 1.18 | 82.19 | |
| m-Xylene | 11.01 | 7.29 | 0.08 | 1.84 | 88.53 | |
| o-Xylene | 9.86 | 6.51 | 0.07 | 1.64 | 80.84 |
Concentration of CO in exhaust air of the reactor with different pollution loads and flow rates
|
| 2300 |
|
| 4000 |
| 2800 | |
| 4800 |