| Literature DB >> 28272309 |
Valérie Héquet1, Frédéric Batault2,3, Cécile Raillard4, Frédéric Thévenet5, Laurence Le Coq6, Éric Dumont7.
Abstract
The performances of a laboratory PhotoCatalytic Oxidation (PCO) device were determined using a recirculation closed-loop pilot reactor. The closed-loop system was modeled by associating equations related to two ideal reactors: a perfectly mixed reservoir with a volume of VR = 0.42 m³ and a plug flow system corresponding to the PCO device with a volume of VP = 5.6 × 10-3 m³. The PCO device was composed of a pleated photocatalytic filter (1100 cm²) and two 18-W UVA fluorescent tubes. The Clean Air Delivery Rate (CADR) of the apparatus was measured under different operating conditions. The influence of three operating parameters was investigated: (i) light irradiance I from 0.10 to 2.0 mW·cm-2; (ii) air velocity v from 0.2 to 1.9 m·s-1; and (iii) initial toluene concentration C₀ (200, 600, 1000 and 4700 ppbv). The results showed that the conditions needed to apply a first-order decay model to the experimental data (described in Part I) were fulfilled. The CADR values, ranging from 0.35 to 3.95 m³·h-1, were mainly dependent on the light irradiance intensity. A square root influence of the light irradiance was observed. Although the CADR of the PCO device inserted in the closed-loop reactor did not theoretically depend on the flow rate (see Part I), the experimental results did not enable the confirmation of this prediction. The initial concentration was also a parameter influencing the CADR, as well as the toluene degradation rate. The maximum degradation rate rmax ranged from 342 to 4894 ppbv/h. Finally, this study evidenced that a recirculation closed-loop pilot could be used to develop a reliable standard test method to assess the effectiveness of PCO devices.Entities:
Keywords: Clean Air Delivery Rate (CADR); Volatile Organic Compounds (VOCs); air cleaner; indoor air quality; photocatalysis
Mesh:
Substances:
Year: 2017 PMID: 28272309 PMCID: PMC6155512 DOI: 10.3390/molecules22030408
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Experimental closed-loop reactor operating in recirculation mode. (a) Schematic representation; and (b) photograph of the whole system.
Figure 2PhotoCatalytic Oxidation (PCO) device. View of: (a) the inlet side; (b) the outlet side; and (c) diagram of the pleated filter configuration.
Operating conditions used in each experiment and experimental results.
| Experimental Conditions | Experimental Results | ||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|
| I (mW·cm−²) | v (m·s−1) | τR (s) | C0 (ppbv) | α (−) | R2 | CADR (m3·h−1) | 1/α (−) | tc (h) | tc (s) | rmax (ppbv·h−1) | |
| Exp 1 | 0.10 | 0.2 | 52.5 | 600 | 0.0278 | 0.988 | 0.80 | 36 | 0.53 | 1917 | 1140 |
| Exp 2 | 0.10 | 0.6 | 17.5 | 200 | 0.0086 | 0.973 | 0.74 | 117 | 0.57 | 2052 | 342 |
| Exp 3 | 0.10 | 0.6 | 17.5 | 1000 | 0.0043 | 0.956 | 0.37 | 232 | 1.13 | 4065 | 890 |
| Exp 4 | 0.10 | 1.0 | 10.5 | 600 | 0.0059 | 0.937 | 0.85 | 169 | 0.49 | 1781 | 1183 |
| Exp 5 | 0.35 | 0.2 | 52.5 | 200 | 0.0337 | 0.969 | 0.97 | 30 | 0.44 | 1584 | 449 |
| Exp 6 | 0.35 | 0.2 | 52.5 | 1000 | 0.0259 | 0.927 | 0.75 | 39 | 0.57 | 2055 | 1780 |
| Exp 7 | 0.35 | 0.6 | 17.5 | 600 | 0.0166 | 0.971 | 1.43 | 60 | 0.30 | 1062 | 2045 |
| Exp 8 | 0.35 | 0.6 | 17.5 | 4700 | 0.0041 | 0.964 | 0.35 | 244 | 1.19 | 4273 | 3962 |
| Exp 9 | 0.35 | 1.0 | 10.5 | 200 | 0.0118 | 0.961 | 1.70 | 85 | 0.25 | 901 | 786 |
| Exp 10 | 0.35 | 1.0 | 10.5 | 1000 | 0.0090 | 0.984 | 1.30 | 111 | 0.33 | 1171 | 3097 |
| Exp 11 | 0.35 | 1.9 | 5.5 | 600 | 0.0047 | 0.966 | 1.29 | 212 | 0.33 | 1173 | 1841 |
| Exp 12 | 0.60 | 0.2 | 52.5 | 600 | 0.0643 | 0.994 | 1.85 | 16 | 0.23 | 843 | 2639 |
| Exp 13 | 0.60 | 0.6 | 17.5 | 200 | 0.0457 | 0.991 | 3.95 | 22 | 0.11 | 392 | 1827 |
| Exp 14 | 0.60 | 0.6 | 17.5 | 1000 | 0.0170 | 0.929 | 1.47 | 59 | 0.29 | 1039 | 3505 |
| Exp 15 | 0.60 | 1.0 | 10.5 | 600 | 0.0167 | 0.969 | 2.40 | 60 | 0.18 | 635 | 3971 |
| Exp 16 | 1.00 | 0.6 | 17.5 | 600 | 0.0238 | 0.979 | 2.06 | 42 | 0.21 | 743 | 2934 |
| Exp 17 | 2.00 | 0.6 | 17.5 | 600 | 0.0397 | 0.962 | 3.43 | 25 | 0.12 | 449 | 4894 |
Figure 3Typical change in toluene concentration over time. Experimental data and models (Exp 10; I = 0.35 mW·cm−2; v = 1.0 m·s−1; C0 = 1000 ppmv).
Figure 4Toluene removal efficiency for all experiments according to the generalized form (Equation (4)).
Figure 5Toluene removal efficiency for all experiments as a function of the number of cycles in the closed-loop reactor.
Figure 6Effect of irradiance intensity on toluene removal efficiency (experimental points and model). Insert: effect of irradiance intensity on the CADR value.
Figure 7Flow rate influence on toluene removal efficiency according to the initial concentration C0 and the light irradiance I (cases {A}–{E}; experimental points and model; cycle number = 1/α).
Figure 8Effect of the initial concentration on toluene removal efficiency according to the light irradiance I and the air velocity v (cases {F}–{J}; experimental points and model; cycle number = 1/α).