| Literature DB >> 35736334 |
Tianchao Xie1, Shaojun Xia1, Qinglong Jin1.
Abstract
In this paper, an ammonia decomposition membrane reactor is applied to a solar heat absorption system, and thermodynamic optimization is carried out according to the usage scenarios. First, a model of an ammonia decomposition solar heat absorption system based on the membrane reactor is established by using finite time thermodynamics (FTT) theory. Then, the three-objective optimization with and the four-objective optimization without the constraint of the given heat absorption rate are carried out by using the NSGA-II algorithm. Finally, the optimized performance objectives and the corresponding design parameters are obtained by using the TOPSIS decision method. Compared with the reference system, the TOPSIS optimal solution for the three-objective optimization can reduce the entropy generation rate by 4.8% and increase the thermal efficiency and energy conversion rate by 1.5% and 1.4%, respectively. The optimal solution for the four-objective optimization can reduce the heat absorption rate, entropy generation rate, and energy conversion rate by 15.5%, 14%, and 8.7%, respectively, and improve the thermal efficiency by 15.7%. The results of this paper are useful for the theoretical study and engineering application of ammonia solar heat absorption systems based on membrane reactors.Entities:
Keywords: ammonia decomposition; finite-time thermodynamics; membrane reactor; multi-objective optimization; solar heat absorption system
Year: 2022 PMID: 35736334 PMCID: PMC9227222 DOI: 10.3390/membranes12060627
Source DB: PubMed Journal: Membranes (Basel) ISSN: 2077-0375
Figure 1Schematic diagram of ammonia decomposition solar heat absorption system [25]. Reprinted/adapted with permission from Ref. [25]. 2022, Tianchao Xie.
Main design parameters of ET-100 collector [36].
| Parameter Name | Symbol | Value |
|---|---|---|
| Opening width |
| 5.76 m |
| Condenser reflectivity |
| 94% |
| Glass outer tube transmittance |
| 96% |
| Radiation absorption rate of reactor |
| 95% |
| Reactor surface emissivity |
| 14% |
Reprinted/adapted with permission from Ref. [36]. 2009, Yaxuan Xiong.
Figure 2Schematic diagram of an ammonia decomposition membrane reactor [25]. Reprinted/adapted with permission from Ref. [25]. 2022, Tianchao Xie.
Figure 3The distributions of each component flow rate along the reactor.
Figure 4The distributions of Ta, T, and σR along the reactor.
Figure 5Pareto Front of three-objective optimization at 800 W/m2.
Feature point parameters on the Pareto Front of three-objective optimization at 800 W/m2.
| System Parameters and Performance Indicators | Minimum | Maximum | Maximum | TOPSIS Decision Point |
|---|---|---|---|---|
| Ammonia gas preheating final temperature | 400 | 400 | 600 | 400 |
| Ammonia molar flow rate | 0.52 | 0.8 | 0.61 | 0.5 |
| Inner radius of membrane reactor | 3.6 | 2.8 | 3.8 | 3.7 |
| Reactor length | 10.1 | 9.7 | 10.3 | 10 |
| Osmotic zone pressure | 54 | 55 | 10 | 45 |
| Entropy generation rate | 33.1 | 35.4 | 41.0 | 33.2 |
| Thermal efficiency | 47.7 | 52.6 | 35.1 | 46.8 |
| Energy conversion rate | 46.7 | 40.2 | 62.8 | 48.5 |
Parameters of TOPSIS optimal system in three-objective optimization under different light intensities.
| System Parameters and Performance Indicators | 600 W/m2 | 800 W/m2 | 1000 W/m2 |
|---|---|---|---|
| Ammonia gas preheating final temperature | 400 | 400 | 448 |
| Ammonia molar flow rate | 0.31 | 0.5 | 0.6 |
| Inner radius of membrane reactor | 2.8 | 3.7 | 3.8 |
| Reactor length | 9.4 | 10 | 10 |
| Osmotic zone pressure | 35 | 45 | 47 |
| Entropy generation rate | 23.3 | 33.2 | 44.1 |
| Thermal efficiency | 44.4 | 46.8 | 47.5 |
| Energy conversion rate | 49.5 | 48.5 | 51.1 |
Figure 6Pareto Front of four-objective optimization at 800 W/m2.
Feature point parameters on the Pareto Front of four-objective optimization at 800 W/m2.
| System Parameters and Performance Indicators | Maximum | Minimum | Maximum | Maximum | TOPSIS Decision Point |
|---|---|---|---|---|---|
| Ammonia gas preheating final temperature | 400 | 400 | 400 | 600 | 400 |
| Ammonia molar flow rate | 0.8 | 0.5 | 0.8 | 0.75 | 0.63 |
| Inner radius of membrane reactor | 2.8 | 3.8 | 2.8 | 3.8 | 3.8 |
| Reactor length | 13 | 7 | 7 | 12.8 | 7 |
| Osmotic zone pressure | 10 | 100 | 53 | 10 | 47 |
| heat absorption rate | 42.4 | 17.6 | 21.2 | 40.8 | 20.7 |
| Entropy generation rate | 53.1 | 19.6 | 25.3 | 51.3 | 23.9 |
| Thermal efficiency | 41.4 | 48.4 | 56.2 | 35.2 | 52.1 |
| Energy conversion rate | 52.4 | 34.7 | 33.3 | 62.7 | 39.6 |
Parameters of TOPSIS optimal system in four-objective optimization under different light intensities.
| System Parameters and Performance Indicators | 600 W/m2 | 800 W/m2 | 1000 W/m2 |
|---|---|---|---|
| Ammonia gas preheating final temperature | 600 | 400 | 400 |
| Ammonia molar flow rate | 0.3 | 0.63 | 0.6 |
| Inner radius of membrane reactor | 3.8 | 3.8 | 3.8 |
| Reactor length | 7 | 7 | 11.5 |
| Osmotic zone pressure | 10 | 47 | 76 |
| heat absorption rate | 16.4 | 20.7 | 39.2 |
| Entropy generation rate | 19.4 | 23.9 | 43.7 |
| Thermal efficiency | 33.7 | 52.1 | 48.0 |
| Energy conversion rate | 62.3 | 39.6 | 46.1 |