
李古
博士,“百人计划青年杰出人才”副教授,硕士生/博士后合作导师
广东省重大人才工程项目青年人才
广州市珠江科技新星
斯坦福“全球前2%顶尖科学家榜单”入选者
办公地点:英国上市365官网大学城校区工程实验北楼3楼317室
E-mail:liguleo@gzhu.edu.cn;ligu123@qq.com
教育背景:
2005-2009,中山大学,理论与应用力学(力学2+2)专业,本科
2007-2009,香港大学,土木工程专业,本科,工学学士学位(香港大学与中山大学联合培养)
2009-2013,香港大学,土木工程专业,博士,哲学博士学位
工作经历:
2014-2021,广东工业大学,土木与交通工程学院,土木工程系,“青年百人”副教授/土木工程材料实验室建设主任/土木工程系主任
2021至今,英国上市365官网,土木与交通工程学院,工程材料所,“百人计划青年杰出人才”副教授
研究领域:
1. 水泥基材料流变学与颗粒学
2. 建筑3D打印技术
3. 建筑材料大数据分析与机器学习
4. 高性能混凝土与功能混凝土
5. 固废资源化利用
6. FRP增强结构与组合结构
个人简历:
李古,香港大学博士,广东省重大人才工程项目青年人才、广州市珠江科技新星、斯坦福“全球前2%顶尖科学家榜单”入选者,现任英国上市365官网“百人计划青年杰出人才”副教授,目前主要从事混凝土材料与结构的教育教学、基础研究、技术开发与工程应用等工作。主持/参与各类课题20余项(包括国家自然科学基金、广东省自然科学基金、广东省教育厅普通高校特色创新项目、广州市科技计划、香港研究资助局项目等)。发表学术论文190余篇,包括SCI论文70余篇(中科院一区论文31篇,ESI高被引8篇),论文Google Scholar引用近5000次、h指数41。获授权专利24项,参编标准2项。获广东省科技进步二等奖2项,及行业科技奖项7项。在国内外20余个权威组织机构担任会士/委员/理事/专家/高级会员,包括香港混凝土学会(HKCI)会士、国际材料与结构研究实验联合会(RILEM)技术分委会委员中国硅酸盐学会分会委员、广东省硅酸盐学会常务理事等。在国内外16个期刊任编委/青年编委等职,包括《Journal of Intelligent Construction》编委、《Buildings》编委、《Advanced Fiber Materials》青年编委、《材料导报》青年编委、《硅酸盐通报》青年编委等。是国内外70余个权威期刊的杰出/特邀审稿人。是数个国际会议的组委会/学术委员会委员,并受邀在多个国内外会议作大会/特邀/分会报告和担任分会主席。
荣誉与称号:
1. 2017, 广东省硅酸盐学会“青年科技奖”
2. 2019, 广州市科学技术局“广州市珠江科技新星”称号
3. 2019, 香港工程师学会The HKIE Outstanding Paper Award for Young Engineers/Researchers 2019 (Shortlist) (香港工程师学会青年工程师/学者最佳论文提名奖)
4. 2020, 中国混凝土与水泥制品协会“混凝土科学技术奖”,项目“绿色环保混凝土的基础研究与设计方法”, 排名第1
5. 2021, 中国建筑材料联合会预拌砂浆分会“预拌砂浆行业科技杰出贡献奖”, 项目“湿拌砂浆环保与高性能化的关键技术创新和应用”, 排名第2
6. 2021,入选斯坦福大学World’s Top 2% Scientists – 2021 Annual list (全球前2%顶尖科学家榜单-2021年度科学影响力排行榜)
7. 2022, “广东省科技进步奖”二等奖,项目“绿色高性能砂浆的关键技术创新与产业化”,排名第3
8. 2022, 建筑材料工业技术情报研究所“建筑材料创新奖”,项目“再生-高性能砂浆的研究与工程应用”,排名第4/15
9. 2023, 建筑材料工业技术情报研究所“建筑材料创新奖”,项目“混凝土配合比智能化技术创新与应用示范”,排名第6/15
10. 2023, 入选斯坦福大学World’s Top 2% Scientists – 2023 Annual list (全球前2%顶尖科学家榜单-2023年度科学影响力排行榜)
11. 2023, 中国混凝土与水泥制品协会“混凝土科学技术奖”,项目“高性能透水混凝土的制备与性能研究及工程示范”,排名第6
12. 2024, 中国产学研合作促进会“产学研合作创新成果奖”,项目“海绵城市用透水混凝土的关键技术创新与产业化”,排名第4
13. 2024, “广东省科技进步奖”二等奖,项目“高性能透水混凝土的理论与技术创新及产业化”,排名第5
14. [2024,入选斯坦福大学World’s Top 2% Scientists – 2024 Annual list (全球前2%顶尖科学家榜单-2024年度科学影响力排行榜)
15. 2025,入选斯坦福大学World’s Top 2% Scientists – 2025 Annual list (全球前2%顶尖科学家榜单-2025年度科学影响力排行榜)
科研项目(节选):
1. 2015至2018, 广东省自然科学基金, “基于膜厚度理论下的砂浆流变性能关键因素研究”, 主持
2. 2016至2018, 广州市科技计划项目, “基于膜厚度理论的自密实混凝土流变性能研究”, 主持
3. 2017至2019, 国家自然科学基金, “基于膜厚度理论的自密实混凝土流变性能关键影响因素研究”, 主持
4. 2018至2019, 广东省教育厅-广东省普通高校特色创新项目, “湿热海洋环境下构筑物纳米改性水泥基材料保护层的性能研究”, 主持
5. 2019至2021, 广州市科技计划项目, “纤维自密实混凝土流变性能关键因素研究”, 主持
6. 2021至2023, 广东省自然科学基金, “湿热海洋腐蚀环境下的纳米改性水泥基材料耐久性能研究”, 主持,
7. [2023至2025, 广州市科技计划项目, “利用海洋地材的建筑3D打印材料性能研究”, 主持
8. 2024至2026, 广东省基础与应用基础研究基金, “海水珊瑚骨料3D打印混凝土的性能影响机理研究”, 主持
论文成果(节选):
[1] Li L.G., Kwan A.K.H.*, Mortar design based on water film thickness. Construction and Building Materials, May 2011, 25, pp 2381-2390. (SCI收录, 中科院1区Top期刊, JCR Q1)
[2] Kwan A.K.H.*, Li L.G., Fung W.W.S., Wet packing of blended fine and coarse aggregate. Materials and Structures, June 2012, 45(6), pp 817-828. (SCI收录, JCR Q1)
[3] Kwan A.K.H.*, Li L.G., Combined effects of water film thickness and paste film thickness on rheology of mortar.Materials and Structures, September 2012, 45(9), pp 1359-1374. (SCI收录, JCR Q1)
[4] Li L.G., Kwan A.K.H.*, Concrete mix design based on water film thickness and paste film thickness. Cement & Concrete Composites, May 2013, 39, pp 33-42. (SCI收录, 中科院1区Top期刊, JCR Q1)
[5] Kwan A.K.H.*, Li L.G.,Combined effects of water film, paste film and mortar film thicknesses on fresh properties of concrete.Construction and Building Materials, January 2014, 50, pp 598–608. (SCI收录, 中科院1区Top期刊, JCR Q1)
[6] Li L.G., Kwan A.K.H.*, Packing density of concrete mix under dry and wet conditions.Powder Technology, February 2014, 253, pp 514-521. (SCI收录, 中科院2区, JCR Q1)
[7] Li L.G., Kwan A.K.H.*, Effects of superplasticizer type on packing density, water film thickness and flowability of cementitious paste.Construction and Building Materials, 1 July 2015, 85, pp 113-119. (SCI收录, 中科院1区Top期刊, JCR Q1)
[8] Li L.G., Kwan A.K.H.*, Adding limestone fines as cementitious paste replacement to improve tensile strength, stiffness and durability of concrete.Cement & Concrete Composites, July 2015, 60, pp 17-24. (SCI收录, 中科院1区Top期刊, JCR Q1)
[9] Ng P.L.*, Kwan A.K.H., Li L.G., Packing and film thickness theories for the mix design of high-performance concrete. Journal of Zhejiang University-Science A, October 2016, 17(10), pp 759-781. (SCI收录, 中国科技期刊卓越行动计划入选期刊)
[10] Li L.G.*, Zhu J., Zhao Z.W., Kwan A.K.H., Roles of water film thickness and polypropylene fibre content in fresh properties of mortar. Advances in Cement Research, February 2017, 29(2), pp 71-80. (SCI收录)
[11] Li L.G.*, Huang Z.H., Zhu J., Kwan A.K.H., Chen H.Y., Synergistic effects of micro-silica and nano-silica on strength and microstructure of mortar. Construction and Building Materials, 1 June 2017, 140, pp 229-238. (SCI收录, 中科院1区Top期刊, JCR Q1)
[12] Li L.G.*, Chen J.J., Kwan A.K.H., Roles of packing density and water film thickness in strength and durability of limestone fines concrete. Magazine of Concrete Research, June 2017, 69(12), pp 595-605. (SCI收录, JCR Q2)
[13] Li L.G.*, Kwan A.K.H., Roles of superplasticiser dosage, water film thickness and slurry film thickness in flowability of cementitious paste. Advances in Cement Research, July 2017, 29(7), pp 287-301. (SCI收录)
[14] Chen J.J.*, Li L.G., Ng P.L., Kwan A.K.H., Effects of superfine zeolite on strength, flowability and cohesiveness of cementitious paste. Cement & Concrete Composites, October 2017, 83, pp 101-110. (SCI收录, 中科院1区Top期刊, JCR Q1)
[15] Li L.G., Huang Z.H., Ng P.L.*, Zhu J., Kwan A.K.H., Effects of micro-silica and nano-silica on fresh properties of mortar. Materials Science-Medziagotyra, December 2017, 23(4), pp 362-371. (SCI收录)
[16] Li L.G.*, Zhu J., Huang Z.H., KwanA.K.H., Li L.J., Combined effects of micro-silica and nano-silica on durability of mortar. Construction and Building Materials, 30 December 2017, 157, pp 337-347. (SCI收录, 中科院1区Top期刊, JCR Q1)
[17] Li L.G., Lin C.J., Chen G.M.*, Kwan A.K.H., Jiang T., Effects of packing on compressive behaviour of recycled aggregateconcrete. Construction and Building Materials, 30 December 2017, 157, pp 757-777. (SCI收录, 中科院1区Top期刊, JCR Q1)
[18] Li L.G.*, Huang Z.H., Tan Y.P., Kwan A.K.H., Liu F., Use of marble dust as paste replacement for recycling waste and improving durability and dimensional stability of mortar. Construction and Building Materials, 30 March 2018, 166, pp 423-432. (SCI收录, 中科院1区Top期刊, JCR Q1)
[19] Chen J.J.*, Ng P.L., Li L.G., Kwan A.K.H., Use of superfine zeolite in conjunction with silica fume - Effects on rheology and strength of cementitious paste. Powder Technology, 1 April 2018, 328, pp 75-83. (SCI收录, 中科院2区, JCR Q1)
[20] Li L.G.*, Zheng J.Y., Zhu J., Kwan A.K.H., Combined usage of micro-silica and nano-silica in concrete: SP demand, cementing efficiencies and synergistic effect. Construction and Building Materials, 20 April 2018, 168, pp 622-632. (SCI收录, 中科院1区Top期刊, JCR Q1)
[21] Li L.G.*, Wang Y.M., Tan Y.P., Kwan A.K.H., Li L.J., Adding granite dust as paste replacement to improve durability and dimensional stability of mortar. Powder Technology, 15 June 2018, 333, pp 269-276. (SCI收录, 中科院2区, JCR Q1)
[22] Li L.G., Zhao Z.W., Zhu J.*, Kwan A.K.H., Zeng K.L., Combined effects of water film thickness and polypropylene fibre length on fresh properties of mortar. Construction and Building Materials, 20 June 2018, 174, pp 586-593. (SCI收录, 中科院1区Top期刊, JCR Q1)
[23] Li L.G.*, Chu S.H., Zeng K.L., Zhu J., Kwan A.K.H., Roles of water film thickness and fibre factor in workability of polypropylene fibre reinforced mortar. Cement & Concrete Composites, October 2018, 93, pp 196-204. (SCI收录, 中科院1区Top期刊, JCR Q1)
[24] Chu S.H., Li L.G., Kwan A.K.H.*, Fibre factors governing the fresh and hardened properties of steel FRC. Construction and Building Materials, 20 October 2018, 186, pp 1228-1238. (SCI收录, 中科院1区Top期刊, JCR Q1)
[25] Li L.G.*, Wang Y.M., Tan Y.P., Kwan A.K.H., Filler technology of adding granite dust to reduce cement content and increase strength of mortar. Powder Technology, 15 January 2019, 342, pp 388-396. (SCI收录, 中科院2区, JCR Q1)
[26] Li L.G.*, Zhuo H.X., Zhu J., Kwan A.K.H., Packing density of mortar containing polypropylene, carbon or basalt fibres under dry and wet conditions. Powder Technology. 15 January 2019, 342, pp 433-440. (SCI收录, 中科院2区, JCR Q1)
[27] Li L.G.*, Huang Z.H., Tan Y.P., Kwan A.K.H., Chen H.Y., Recycling of marble dust as paste replacement for improving strength, microstructure and eco-friendliness of mortar. Journal of Cleaner Production, 10 February 2019, 210, pp 55-65. (SCI收录, ESI高被引论文, 中科院1区Top期刊, JCR Q1)
[28] Chen J.J.*, Ng P.L., Kwan A.K.H., Li L.G., Lowering cement content in mortar by adding superfine zeolite as cement replacement and optimizing mixture proportions. Journal of Cleaner Production. 10 February 2019, 210, pp 66-76. (SCI收录, 中科院1区Top期刊, JCR Q1)
[29] Chen H.Y., Li L.G.*, Lai Z.M., Kwan A.K.H., Chen P.M., Ng P.L., Effects of crushed oyster shell on strength and durability of marine concrete containing fly ash and blastfurnace slag. Materials Science-Medziagotyra, March 2019, 25(1), pp 97-107. (SCI收录)
[30] Li L.G., Lin Z.H., Chen G.M.*, Kwan A.K.H., Li Z.H., Reutilization of clay brick waste in mortar: Paste replacement versus cement replacement. Journal of Materials in Civil Engineering, 1 July 2019, 31(7), Article 04019129. (SCI收录, JCR Q2)
[31] Li L.G.*, Zhuo Z.Y., Zhu J., Chen J.J., Kwan A.K.H., Reutilizing ceramic polishing waste as powder filler in mortar to reduce cement content by 33% and increase strength by 85%. Powder Technology, October 2019, 355, pp 119-126. (SCI收录, 中科院2区, JCR Q1)
[32] Li L.G.*, Zheng J.Y., Ng P.L., Zhu J.*, Kwan A.K.H., Cementing efficiencies and synergistic roles of silica fume and nano-silica in sulphate and chloride resistance of concrete. Construction and Building Materials, 30 October 2019, 223, pp. 965-975. (SCI收录, 中科院1区Top期刊, JCR Q1)
[33] Li L.G.*, Chen Z.P., Ouyang Y., Zhu J., Chu S.H., Kwan A.K.H., Synergistic effects of steel fibres and expansive agent on steel bar-concrete bond. Cement & Concrete Composites, November 2019, 104, Article 103380. (SCI收录, 中科院1区Top期刊, JCR Q1)
[34] Li L.G., Zeng K.L., Ouyang Y.*, Kwan A.K.H., Basalt fibre-reinforced mortar: Rheology modelling based on water film thickness and fibre content. Construction and Building Materials, 30 December 2019, 229, Article 116857. (SCI收录, 中科院1区Top期刊, JCR Q1)
[35] Li L.G.*, Chen X.Q., Chu S.H., Ouyang Y., Kwan A.K.H., Seawater cement paste: Effects of seawater and roles of water film thickness and superplasticizer dosage. Construction and Building Materials, 30 December 2019, 229, Article 116862. (SCI收录, 中科院1区Top期刊, JCR Q1)
[36] Li L.G.*, Zhuo Z.Y., Zhu J., Kwan A.K.H., Adding ceramic polishing waste as paste substitute to improve sulphate and shrinkage resistances of mortar. Powder Technology, 15 February 2020, 362, pp 149-156. (SCI收录, 中科院2区, JCR Q1)
[37] Ouyang Y., Zeng J.J.*, Li, L.G., Kwan A.K.H., Influence of concrete mix proportions on axial performance of concrete-filled steel tubes made with self-compacting concrete. Advances in Structural Engineering, April 2020. 23(5), pp 835-846. (SCI收录)
[38] Li L.G.*, Zhuo Z.Y., Kwan A.K.H., Zhang T.S., Lu D.G., Cementing efficiency factors of ceramic polishing residue in compressive strength and chloride resistance of mortar. Powder Technology, 1 May 2020, 367, pp 163-171. (SCI收录, 中科院2区, JCR Q1)
[39] Chen J.J.,*, Li Q.H., Ng P.L.*, Li L.G., Kwan A.K.H., Cement equivalence of metakaolin for workability, cohesiveness, strength and sorptivity of concrete. Materials, 2 April 2020, 13(7), Article 1646. (SCI收录, JCR Q2)
[40] Li L.G., Lin Z.H., Chen G.M.*, Kwan A.K.H., Reutilizing clay brick dust as paste substitution to produce environment-friendly durable mortar. Journal of Cleaner Production, 20 November 2020, 274, Article 122787. (SCI收录, 中科院1区Top期刊, JCR Q1)
[41] Cai Y., Kwan A.K.H.*, Li L.G., Circular concrete filled steel tubes made of eco-concrete with limestone fines added as cementitious paste replacement. Structures, December 2020, 28, pp 69-79. (SCI收录, JCR Q2)
[42] Li L.G.*, Zheng J.Y., Ng P.L.*, Kwan A.K.H., Synergistic cementing efficiencies of nano-silica and micro-silica in carbonation resistance and sorptivity of concrete. Journal of Building Engineering, January 2021, 33, Article 101862. (SCI收录, ESI高被引论文, JCR Q1)
[43] Li L.G.*, Feng J.J., Zhu J., Chu S.H., Kwan A.K.H., Pervious concrete: Effects of porosity on permeability and strength. Magazine of Concrete Research, January 2021, 73(2), pp 69-79. (SCI收录, ESI高被引论文, JCR Q2)
[44] Chu S.H.*, Li L.G., Kwan A.K.H., Development of extrudable high strength fiber reinforced concrete incorporating nano calcium carbonate, Additive Manufacturing, 21 January 2021, 37, Article 101617. (SCI收录, ESI高被引论文, 中科院1区Top期刊, JCR Q1)
[45] Li L.G.*, Xiao B.F., Fang Z.Q., Xiong Z.*, Chu S.H., Kwan A.K.H., Feasibility of glass/basalt fiber reinforced seawater coral sand mortar for 3D printing. Additive Manufacturing, 21 January 2021, 37, Article 101684. (SCI收录, 中科院1区Top期刊, JCR Q1)
[46] Chu S.H.*, Ye H., Huang L., Li L.G., Carbon fiber reinforced geopolymer (FRG) mix design based on liquid film thickness, Construction and Building Materials, 1 February 2021, 269, Article 121278 (SCI收录, 中科院1区Top期刊, JCR Q1)
[47] Xiong Z.*, Zeng Y., Li L.G., Kwan A.K.H., He, S.H., Experimental study on the effects of glass fibres and expansive agent on the bond behaviour of glass/basalt FRP bars in seawater sea-sand concrete. Construction and Building Materials, 8 March 2021, 274, Article 122100. (SCI收录, 中科院1区Top期刊, JCR Q1)
[48] Chen G.M., Lin Z.H., Li L.G.*, He J.L., Kwan A.K.H., Compressive behaviour of concrete incorporating clay brick fines added by paste replacement method. Journal of Materials in Civil Engineering, July 2021, 33(7), Article 04021141. (SCI收录, 中科院4区, JCR Q2)
[49] Chu S.H.*, Chen J.J., Li L.G., Ng P.L., Kwan A.K.H., Roles of packing density and slurry film thickness in synergistic effects of metakaolin and silica fume. Powder Technology, July 2021, 387, pp 575-583. (SCI收录, 中科院2区, JCR Q1)
[50] Xiong Z.*, He S.H., Kwan A.K.H., Li L.G., Zeng Y., Compressive behaviour of seawater sea-sand concrete containing glass fibres and expansive agents. Construction and Building Materials, 19 July 2021, 292, Article 123309. (SCI收录, 中科院1区Top期刊, JCR Q1)
[51] Li L.G., Ouyang Y., Ng P.L.*, Zeng K.L., Kwan A.K.H., Influences of fiber length and water film thickness on fresh properties of basalt fiber-reinforced mortar. Journal of Zhejiang University-Science A, 2021, 22(5), pp 344-356. (SCI收录, 中国科技期刊卓越行动计划入选期刊)
[52] Li L.G.*, Feng J.J., Lu Z.C., Xie H.Z., Xiao B.F., Kwan A.K.H., Effects of aggregate bulking and film thicknesses on water permeability and strength of pervious concrete. Powder Technology, 2022, 396(Part B), pp 743–753. (SCI收录, ESI高被引论文,中科院2区, JCR Q1)
[53] Luo T.*, Yi Y., Sun Q.*, Li L.G., Tang L., Hua C. The effects of adding molybdenum tailings as cementitious paste replacement on the fluidity, mechanical properties and micro-structure of concrete. Journal of Building Engineering, 7 October 2022, 62, Article 105377. (SCI收录, 中科院2区, JCR Q1)
[54] Xie H.Z., Li L.G.*, Liu F., Kwan A.K.H. Recycling Old Concrete as Waste Concrete Powder for Use in Pervious Concrete: Effects on Permeability, Strength and Eco-Friendliness. Buildings, 8 December 2022, 12(12), Article 2172. (SCI收录, 中科院3区, JCR Q2)
[55] Li L.G., Ng P.L.*, Zeng K.L., Xie H.Z., Cheng C.M., Kwan A.K.H. Experimental Study and Modelling of Fresh Behaviours of Basalt Fibre-Reinforced Mortar Based on Average Water Film Thickness and Fibre Factor. Materials, 7 March 2023, 16(6), Article 2137. (SCI收录, 中科院3区, JCR Q2)
[56] Xie H.Z.*, Li L.G.*, Ng P.L., Liu F., Effects of Solid Waste Reutilization on Performance of Pervious Concrete: A Review. Sustainability, 1 April 2023, 15(7), Article 6105. (SCI收录, 中科院3区, JCR Q2)
[57] Li L.G.*, Xiao B.F., Cheng C.M.*, Xie H.Z., Kwan A.K.H., Adding Glass Fibers to 3D Printable Mortar: Effects on Printability and Material Anisotropy. Buildings, September 2023, 13(9), Article 2295. (SCI收录, 中科院3区, JCR Q2)
[58] Li L.G.*, Lai Q., Zeng G.X., Li Y.J., Xie H.Z., Kwan A.K.H., Combined effects of micro and nano Fe3O4 on workability, strength, packing, microstructure and EM wave absorbing properties of mortar. Construction and Building Materials, 24 November 2023, 406, Article 133407. (SCI收录, 中科院1区Top期刊, JCR Q1)
[59] Li L.G.*, Lu Z.C., Ng P.L., Chen Z.P., Deng X., Reusing waste concrete recycled powder in mortar: paste substitution versus cement substitution. Journal of Materials in Civil Engineering, 1 May 2024, 36(5), Article 04024073. (SCI收录, 中科院3区, JCR Q2)
[60] Li L.G.*, Xiao B.F., Yu J., Fresh behaviours of glass fibre reinforced mortar: experimental study and modeling based on average water film thickness and fibre/cement ratio (Glass-fibre-reinforced mortar: study of fresh behaviours based on average water film thickness and fibre/cement ratio). Advances in Cement Research, 27 May 2024, 37(1), pp. 38-49 (SCI收录, 中科院4区, JCR Q3)
[61] Li L.G.*, Chen S.Y., Ma J., Ng P.L.*, Synergistic effects of single-walled carbon nanotube and carbon fiber on performance of conductive mortar. Journal of Building Engineering, 1 September 2024, 92, Article 109784. (SCI收录, 中科院2区, JCR Q1)
[62] Li L.G.*, Zhang G.H., Feasibility of underwater 3D printing: Effects of anti-washout admixtures on printability and strength of mortar. Journal of Building Engineering, 1 November 2024, 96, Article 110434. (SCI收录, 中科院2区, JCR Q1)
[63] He L.*, Pan J., Hee Y.S., Chen H., Li L.G., Panda B., Chow W.T., Development of novel concave and convex trowels for higher interlayer strength of 3D printed cement paste. Case Studies in Construction Materials, December 2024, 21, Article e03745. (SCI收录, ESI高被引论文, 中科院2区, JCR Q1)
[64] Cai Y.*, Kwan A.K.H., Li L.G., Use of eco-concrete containing limestone fines as cementitious paste replacement in circular concrete-filled steel tube columns. Construction and Building Materials, 25 October 2024, 449, Article 138363. (SCI收录, 中科院1区, JCR Q1)
[65] Luo T., Hua C., Li L.*, Zhang T., Lu X., Li L.G., Mostafa S.A., The effect of micro silica fume (MSF) content on pore fractaldimension (PFD) and mechanical properties of self-consolidating concrete. Case Studies in Construction Materials, December 2024, 21, Article e04065. (SCI收录, 中科院2区, JCR Q1)
[66] Li L.G.*, Fang Z.Q., Chu S.H., Kwan A.K.H., Improving mechanical properties of 3Dprinted mortar through synergistic effects of fly ash microspheres and nanosilica. Magazine of Concrete Research, March 2025, 77(5-6), pp. 255-269 (SCI收录, 中科院4区, JCR Q3);https://doi.org/10.1680/jmacr.24.00244
[67] Li L.G.*, Zhang G.H., Kwan A.K.H., Exploring Submarine 3D Printing: Enhancing Washout Resistance and Strength of 3D Printable Mortar. Journal of Materials in Civil Engineering, 13 March, 2025, 37(3), Article 04025019. (SCI收录, 中科院3区, JCR Q2)
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[72] Li L.G., J. Zhao, J. Wang, Z. Zhang*, Hybrid influence of recycled carbon fiber reinforced polymer and average water film thickness on the performance of seawater sea-sand mortar, Journal of Building Engineering, 1 April 2026, 123: 115906. (SCI收录, 中科院2区, JCR Q1)
专利成果(节选):
[1] 李古, 张广虎, 黎镛杰, 程从密, “一种水下3D打印砂浆”, 专利号: ZL202210484335.X, 授权日期: 2023年06月23日
[3] 李古, 关国雄, 李丽娟, 朱江, “近岸工程材料试验装置”, 专利号: ZL201520962261.1, 授权日期: 2016年03月30日
[4] 李古, 池连庆, 李丽娟, 朱江, 黄兆辉, “一种发光电线杆”, 专利号: ZL201620260210.9, 授权日期: 2016年08月03日
[5] 李古, 关国雄, 朱江, 李丽娟, 赵镇伟, “可拆式浆体粘附性试验仪器”, 专利号: ZL201620260125.2, 授权日期: 2016年08月03日
[6] 李古, 陈志鹏, 关国雄, 朱江, 李丽娟, 刁衍斌, 李振明, 伍苑雯, 郑俊颖, 卓红霞, “一种钢筋拉拔试验试件制作装置”, 专利号: ZL201621174669.3, 授权日期: 2017年04月19日
[7] 李古, 李中庆, 陈维耿, 朱江, 郑俊颖, “用于测试材料透水性的试验装置”, 专利号: ZL201621374222.0, 授权日期: 2017年06月16日
[8] 李古, 李中庆, 朱江, 陈维耿, 曾凯龙, “一种种植纤维的混凝土模具”, 专利号: ZL201720604474.6, 授权日期: 2018年01月05日
[9] 李古, 关国雄, 冯嘉健, 朱江, “一种再生骨料的表面处理装置”, 专利号: ZL201721453505.9, 授权日期: 2018年05月29日
[10] 李古, 冯嘉健, 关国雄, 朱江, “一种测定透水样本连通孔隙率的装置”, 专利号: ZL201821243984.6, 授权日期: 2019年01月25日
[11] 陈胜宇, 欧阳祎, 李古, “一种可拆式混凝土试模”, 专利号: ZL201920483711.7, 授权日期: 2019年11月22日
[12] 胡有成, 李古, 朱江, 倪志程, “一种筛析稳定性试验装置”, 专利号: ZL202020188262.6, 授权日期: 2020年07月31日
[13] 郑少鹏, 李古, 朱江, “一种直读式坍落度测量装置”, 专利号: ZL202020026286.1, 授权日期: 2020年08月21日
[14] 卢泽城, 李古, 肖博丰, “一种骨料筛分清洗装置”, 专利号: ZL202020635713.6, 授权日期: 2021年04月13日
[15] 李古, 肖博丰, “一种3D打印试验机”, 专利号: ZL202021841003.5, 授权日期: 2021年05月28日
[16] 方智全, 李古, “一种试件结合强度测试用的夹具”, 专利号: ZL202021751684.6, 授权日期: 2021年07月23日
[17] 谢蕙竹, 李古, 刘锋, “一种透水混凝土处理酸性矿山废水的装置”, 专利号: ZL202120074906.3, 授权日期: 2021年11月12日
[18] 李古, 徐寅, 彭博远, 程从密, 焦楚杰, “一种用于混凝土3D打印机的可调角度的自动插钉喷头”, 专利号: ZL202320389110.6, 授权日期: 2023年10月27日
[19] 何乐为, 钱野, 李犇, 李古, 刘志新, 李华, 潘家辉, 曾碧卿, “一种齿形可调的挤出式喷头”, 专利号: ZL202321788325.1, 授权日期: 2023年07月07
[20] 李古, 周马技, 何乐为, “一种3D打印装置”, 专利号: ZL202421159844.6, 授权日期: 2025年02月18日
[21] 周马技, 李古, “一种砂浆粘附性试验装置”, 专利号: ZL202420869455.6, 授权日期: 2025年03月11日
[22] 费左杰, 李古, “一种测量砂浆流动性和粘附性的试验装置”, 专利号: ZL202421244850.1, 授权日期: 2025年04月15日
[23] 梁科仁, 李古, “一种砂浆水下抗分散性试验装置”, 专利号: ZL202422533809.2, 授权日期: 2025年09月09日
[24] 黄任, 李古, “一种混凝土抗冲刷试验自动测定装置”, 专利号: ZL202422946657.9, 授权日期: 2026年02月17日
[25] 林楚君, 李古, 陈光明, 吴少慧, 劳怡, 黄学成, 张莉兰, 黄泽浩, “混凝土花盆(几何)”, 专利号: ZL201630564132.7, 授权日期: 2017年03月29日