1.Kahrizi, E., Rajaee, T., & Sedighi, M. (2024). Probabilistic and Experimental Investigation of the Effect of Mineral Adsorbents on Porous Concrete Using Kriging, PRSM, and RBF Methods. Journal of Architectural Engineering, 30(1), 04023010. https://doi.org/10.1061/AJRUA6.0001258
2.Mousavi, S.-F., et al., Effects of adding mineral adsorbents to porous concrete for enhancing the quality performance of urban runoff systems. 2018. 15(4): p. 489-497. https:// doi.org/10.1108/WJE-10-2017-0314
3.Salari, M., E. Teymouri, and Z.J.J.o.E.T.T. Nassaj, Application of an artificial neural network model for estimating of water quality parameters in the karun river, Iran. 2021. 9(4): p. 720-727. https://doi.org/10.47277/JETT/9(4)727
4.طهرانی، م.ج، و دیگران، بهینه سازی طرح اختلاط بتن متخلخل به منظور کاهش رواناب معابر شهری. 2020.)24 (2 https://doi.org/10.47176/jwss.24.2.1011
5.خسروی، و دیگران، حذف فلزات سنگین دو ظرفیتی (کادمیم، کبالت، روی و سرب) و آمونیوم از پساب ها با استفاده از زئولیت طبیعی استان آذربایجان غربی. 2011. (6(20:ص 61-74. https://doi.org/10.22075/chem.2017.586
6. Committee, A. Guide for selecting proportions for no-slump concrete reported by ACI committee 211. in American Concrete Institute. 2002.
7. Sonebi, M. and M. Bassuoni, Investigating the effect of mixture design parameters on pervious concrete by statistical modelling. Construction and Building Materials, 2013. 38: p. 147-154. https://doi.org/10.1016/j.conbuildmat.2012.07.044
8.Xu, F., et al., Influence of aggregate reinforcement treatment on the performance of geopolymer recycled aggregate permeable concrete: From experimental studies to PFC 3D simulations. Construction and Building Materials, 2022. 354: p. 129222. https://doi.org/10.1016/j.conbuildmat.2022.129222
9.Zhao, H., Q. Geng, and X. Liu, Influence of freeze–thaw cycles on mechanical properties of pervious concrete: From experimental studies to discrete element simulations. Construction and Building Materials, 2023. 409: p. 133988. https://doi.org/10.1016/j.conbuildmat.2023.133988
10.Li, J., et al., Performance Simulation of Permeable Concrete Materials Combined with Nanotechnology in Rainwater Management. Processes, 2023. 11(3): p. 768. https://doi.org/10.3390/pr11030768
11. Wen, F., et al., A simplified numerical simulation of uniaxial compression for polyacrylonitrile fiber reinforced permeable concrete based on CT images. Construction and Building Materials, 2024. 411: p. 134319. https://doi.org/10.1016/j.conbuildmat.2023.134319
12.Ahmad, S.A., et al., Mathematical modeling techniques to predict the compressive strength of pervious concrete modified with waste glass powders. Asian Journal of Civil Engineering, 2024. 25(1): p. 773-785. https://doi.org/10.1007/s42107-023-00811-1
13.Jackson, P.J., P.J.L.s.c.o.c. Hewlett, and concrete, Portland cement: classification and manufacture. 1998. 4: p. 25-94.
14.Concreate, A.J.A.I., Standard specification for lightweight aggregates for structural concrete. 2017. 10.1520/C0330_C0330M-17A
15.ASTM, Standard test method for density and void content of freshly mixed pervious concrete. 2014, ASTM international West Conshohocken, PA. 10.1520/C1754-14
16.Institutions, B.S., method for Making Test Cubes from Fresh Concrete. 1881, BS.
17.Concrete, A.C.J.G.o.S.P.f.N.-S., Comittee 211–ACI 211.3 R-97. 1977. https://www.concrete.org/publications/internationalconcreteabstractsportal/m/details/id/5094
18. 522, A.C. ACI Committee 522. (2006), "Pervious Concrete", ACI 522R-06 Report. 2006. American Concrete Institute. https://www.concrete.org/publications/internationalconcreteabstractsportal/m/details/id/15614
20.Multiphysics, C.J.C.M., Burlington, MA, accessed Feb, Introduction to COMSOL multiphysics®. 1998. 9(2018): p. 32. https://cdn.comsol.com/doc/5.5/IntroductionToCOMSOLMultiphysics.pdf