[1] Y.J. Ren, Q.R. Wu, M.N. Wen, G.L. Li, L.W. Xu, X. Ding, Z.J. Li, Y. Tang, Y. Wang, Q. Li, S.X. Wang, Sulfur trioxide emissions from coal-fired power plants in China and implications on future control, Fuel 261 (2020) 116438. [2] K. Wang, M.A. Satyro, R. Taylor, P.K. Hopke, Thermal energy storage tank sizing for biomass boiler heating systems using process dynamic simulation, Energy Build. 175 (2018) 199–207. [3] M.A. Varnosfaderani, A. Eslami, N. Saiedi, A. Bahrami, Metallurgical aspects of a blowdown pipe failure in a petrochemical plant, Eng. Fail. Anal. 98 (2019) 141–149. [4] A. Konist, O. Järvik, H. Pikkor, D. Neshumayev, T. Pihu, Utilization of pyrolytic wastewater in oil shale fired CFBC boiler, J. Clean. Prod. 234 (2019) 487–493. [5] Y. Xu, B. Dong, X.H. Dai, Effect of the silica-rich, oilfield-produced water with different degrees of softening on characteristics of scales in steam-injection boiler, Desalination 361 (2015) 38–45. [6] J.D. Li, P. Zhou, G. Yu, H.J. Yan, Z. Chen, G.M. Song, Z. Liao, Failure analysis of the water–wall tube in KIVCET waste heat boiler, Eng. Fail. Anal. 121 (2021) 105155. [7] A.S. Tyusenkov, S.E. Cherepashkin, Scale inhibitor for boiler water systems, Russ. J. Appl. Chem. 87 (9) (2014) 1240–1245. [8] W. Zhang, B. Li, L. Gong, Effects of scaling on pressure drop and tube wall temperature of steam injection boilers reusing oil field produced water, Heat Transf. Res. 50 (2) (2019) 183–194. [9] L.L. Baxter, R.W. DeSollar, A mechanistic description of ash deposition during pulverized coal combustion: Predictions compared with observations, Fuel 72 (10) (1993) 1411–1418. [10] M. Prisecaru, T. Prisecaru, L. Mihaescu, H. Necula, C. Ciobanu, S. Ceuca, Steam boilers chemical acid cleaning cycles optimization by internal deposits analysis, Rev. Chim. 60 (1) (2009) 72–75. [11] Q. Liu, J.P. Huang, Application of ultrasonic technology in the anti-fouling of boiler cleaning, Clean. World. 33 (6) (2017) 8–10, 26. (in Chinese) [12] P. Čuda, P. Pospíšil, J. Tenglerová, Reverse osmosis in water treatment for boilers, Desalination 198 (1–3) (2006) 41–46. [13] B. Zeng, M.D. Li, Z.P. Zhu, J.M. Zhao, H. Zhang, Application of 1-hydroxyethylidene-1, 1-diphosphonic acid in boiler water for industrial boilers, Water Sci. Technol. 67 (7) (2013) 1544–1550. [14] J.T. Song, J. Chi, Heat transfer enhancement of a three phase circulating fluidized bed fruit juice evaporator using inert particles, Int. J. Food Eng. 7 (2) (2011) 192–212. [15] R. Rautenbach, C. Erdmann, J.S. Kolbach, The fluidized bed technique in the evaporation of wastewaters with severe fouling/scaling potential – Latest developments, applications, limitations, Desalination 81 (1–3) (1991) 285–298. [16] D.D. Hu, X. Zeng, F. Wang, M. Haruna Adamu, G.W. Xu, Comparison of tar thermal cracking and catalytic reforming by char in a micro fluidized bed reaction analyzer, Fuel 290 (2021) 120038. [17] K. El Sheikh, M.J.H. Khan, M. Diana Hamid, S. Shrestha, B.S. Ali, G.A. Ryabov, L.A. Dolgushin, M.A. Hussain, T.V. Bukharkina, E.A. Gorelova, Advances in reduction of NOx and N2O1 emission formation in an oxy-fired fluidized bed boiler, Chin. J. Chem. Eng. 27 (2) (2019) 426–443. [18] P. Pronk, C.A.InfanteFerreira, G.J. Witkamp, Prevention of fouling and scaling in stationary and circulating liquid–solid fluidized bed heat exchangers: Particle impact measurements and analysis, Int. J. Heat Mass Transf. 52 (15–16) (2009) 3857–3868. [19] M. Yang, F. Jiang, G.P. Qi, X.L. Li, Heat transfer performance of a vapor–liquid–solid three-phase circulating fluidized bed evaporation system with different concentrations of Na2SO4 solutions, Appl. Therm. Eng. 180 (2020) 115833. [20] H.J. Li, F. Jiang, G.P. Qi, X.L. Li, Investigation of the thermal performance of a novel thermosyphon combined with fluidized bed heat transfer technology, Powder Technol. 374 (2020) 40–48. [21] Y.D. Jun, K. Lee, S. Ko, Effect of particle ingestion on the fouling reduction and heat transfer enhancement of a no-distributor-fluidized heat exchanger, J. Mech. Sci. Technol. 22 (5) (2008) 965–972. [22] F. Jiang, Y.W. Bian, G.P. Qi, J.J. Zhang, J.Y. Wang, Q. Feng, N. Li, X.Y. Han, Study on the particle distribution of a horizontal multi-tube circulating fluidized bed, Powder Technol. 295 (2016) 272–283. [23] G.P. Qi, F. Jiang, Parametric study of particle distribution in tube bundle heat exchanger, Powder Technol. 271 (2015) 210–220. [24] T. Zhao, K. Liu, H. Murata, K. Harumi, M. Takei, Experimental and numerical investigation of particle distribution behaviors in a rolling circulating fluidized bed, Powder Technol. 258 (2014) 38–48. [25] X.P. Xu, M.Y. Liu, Y. Ma, M. An, Nonlinear behaviors of vibration acceleration signals in a graphite tube with vapor–liquid–solid boiling flows, Powder Technol. 316 (2017) 315–328. [26] F. Jiang, H.Y. Wang, Y. Liu, G.P. Qi, A.E. Al-Rawni, P. Nkomazana, X.L. Li, Effect of particle collision behavior on heat transfer performance in a down-flow circulating fluidized bed evaporator, Powder Technol. 381 (2021) 55–67. [27] S.A. Razzak, S. Barghi, J.X. Zhu, Application of electrical resistance tomography on liquid–solid two-phase flow characterization in an LSCFB riser, Chem. Eng. Sci. 64 (12) (2009) 2851–2858. [28] G.P. Qi, F. Jiang, Numerical investigation on prevention of fouling in the horizontal tube heat exchanger: Particle distribution and pressure drop, Desalination 367 (2015) 112–125. [29] Y.F. Zhou, H. Li, M.Y. Zhu, X.Y. Hu, H.Z. Yuan, S.Q. Jiang, L.C. Han, Effects of liquid content and surface tension on fluidization characteristics in a liquid-containing gas–solid fluidized bed: A CFD-DEM study, Chem. Eng. Process. Process. Intensif. 153 (2020) 107928. [30] L. Dong, F.L. Zhu, Y.J. Li, Y.M. Zhao, C.L. Duan, Y.X. Ren, G.H. Wang, J.F. He, Y. Zhang, Experimental and numerical study of the characteristics of the forced oscillation in a pulsation fluidized bed (PFB) for coal separation, Chem. Eng. Sci. 234 (2021) 116459. [31] Z.G. Li, Y.D. Liang, Q.Z. Niu, F. Liu, Modern design and development of industrial boilers, Standards Press of China, Beijing, 2011. (in Chinese) [32] J. Yan, X.F. Lu, Y.F. Song, X. Zheng, X.J. Lei, Z. Liu, X.C. Fan, C.C. Liu, A comprehensive understanding of the non-uniform characteristics and regulation mechanism of six external loops in a 600 MW supercritical CFB boiler, Energy 222 (2021) 120032. [33] F. Jiang, Y. Shen, G.P. Qi, W.Y. Jing, X. Li, S. Yare, X.L. Li, Hydrodynamics characteristics and particle distribution in a liquid–solid circulating fluidized bed boiler, Powder Technol. 377 (2021) 41–54. |