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邓明科,西安建筑科技大学教授、博士生导师,民盟陕西省委委员。现任西安建筑科技大学高延性复合材料研究院院长、西安五和新材料科技集团股份有限公司董事长,兼任中国建筑节能协会工程改造与加固分会副主任委员、中国混凝土与水泥制品协会高延性复合材料与工程技术分会副理事长、陕西省抗震防灾协会副会长、住房和城乡建设部防灾研究中心专家委员会委员等。
长期致力于新材料及新型结构体系等领域的教育与科研工作,曾荣获首届全国建筑结构行业杰出青年、全国砌体结构领域优秀青年专家、中国产学研合作创新奖、第18届陕西青年五四奖章、陕西省杰出青年基金资助、陕西省科技创新创业人才、首批西安市领军型青年企业家等荣誉,2021年-2025 年连续五年入选斯坦福大学全球前 2%顶尖科学家榜单。
主持3项国家自然科学基金研究项目,牵头10余项省部级重点项目(含陕西省杰出青年基金、西安市科技局重大科技平台建设项目等);主导或参与编制工程技术应用标准及图集48部,已发布实施38部,为行业技术规范提供核心支撑;发表学术论文200余篇,其中《Engineering Structures》23篇,《Construction and Building Materials》28篇,《土木工程学报》11篇、《建筑结构学报》19篇,申请专利160余项(其中发明专利50余项),出版教材及专著 8 部,学术成果被广泛引用。
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支持扩展名:.rar .zip .doc .docx .pdf .jpg .png .jpeg(1)西藏自治区科技计划项目(重点研发计划),XZ202501ZY0096,主持
(2) 国家自然科学基金面上项目,51878545,主持
(3)国家自然科学基金面上项目,51578445,主持
(4)国家自然科学基金青年科学基金项目,50908187,主持
(5)陕西省杰出青年科学基金项目,2020JC-45,主持
(6)陕西省科技新星项目,2015KJXX-31,主持
(7)陕西省住建厅项目,2015-K142,主持
(8)陕西省自然科学基金项目,2013JM7013,主持
(9)西安市科技计划项目,CX13135-3,主持
(1)2014年4月10日,“高延性纤维混凝土加固砌体结构抗震性能及加固方法研究”项目通过了由陕西省科技厅组织、陕西省教育厅主持的科技成果鉴定,达到国际领先水平。
(2)2018年9月30日,“高延性混凝土加固砌体结构技术”被住房和城乡建设部科技与产业化发展中心列为2018年全国建设行业科技成果推广项目(编号:2018051-1)。
(3)2014年8月1日,“高延性纤维混凝土(砂浆)加固砌体结构技术”被陕西省住房和城乡建设厅列为陕西省建设新技术推广项目(编号:KJ-14-004)。
(4)2016年10月18日,“高延性混凝土及加固砌体结构技术”被山西省建筑节能监管中心列为山西省建设新技术(产品)推广项目(编号:SXJJT-2016014)。
(5)2016年10月20日,“高延性混凝土”通过河北省住房和城乡建设厅组织的产品技术评估,可用于河北省砌体结构加固和混凝土构件补强(编号:冀建材评字2016-12)。
(6)2017年6月16日,“高延性混凝土加固材料”通过重庆市建设技术发展中心组织的重庆市建设领域新技术认定(编号:渝建推备字2017-007)。
(7)2018年3月13日,“高延性混凝土及加固技术”进入了青海省建设领域先进实用技术与产品目录(第二批)。
(8)2019年1月10日,“高延性混凝土及其加固砌体结构技术”被山东省住房和城乡建设厅列为山东省建设新技术新产品推广项目(编号:鲁建科2018-016)。
在标准编制方面:
截止目前,已在全国各省、市主编标准36部,其中:已发布标准28部,已发布正在试行的标准3部,正在立项、编制审批阶段的标准5部。
【28部已发布实施标准】
2016年陕西《高延性混凝土应用技术规程》
陕西《高延性混凝土加固砌体结构图集》
2018年陕西《农村危房改造高延性混凝土加固应用技术导则》
2019年甘肃《高延性混凝土应用技术标准》
甘肃《高延性混凝土加固砌体结构构造》
云南《高延性混凝土加固技术导则》
2020年山西《高延性混凝土加固技术规程》
宁夏《高延性混凝土加固技术规程》
河南《高延性混凝土加固农房技术标准》
安徽《高延性混凝土应用技术规程》
2021年天津《高延性混凝土加固农村住房应用技术导则》
新疆《高延性混凝土加固技术标准》
山东《高延性混凝土加固技术规程》
宁夏《高延性混凝土加固砌体结构图集》
河北《高延性混凝土加固砌体结构技术规程》
辽宁《高延性混凝土加固技术规程》
2022年云南《既有房屋建筑抗震加固技术导则》
CECS《高韧性混凝土加固砌体结构技术规程》
江苏《高延性混凝土加固技术规程》
陕西《陕西省城乡居民自建房安全隐患排查技术导则》
西安《西安市城乡居民自建房加固技术导则》
安徽《高延性混凝土加固砖砌体结构构造》
陕西《钢筋桁架高延性混凝土楼承板标准图集》
新疆《高延性混凝土加固砌体结构图集》
江西《高延性混凝土加固技术标准》
2023年山西《农村房屋加固高延性混凝土加固技术规程》
西安《城镇既有建筑抗震隐患排查技术规程》
北京《砌体结构高延性混凝土加固技术规程》
【3部已发布正在试行的标准】
2021年《重庆市既有农村民居抗震加固技术导则(试行)》
《湖北省农村危房修缮加固技术导则(试行)》
《四川省农房抗震评估与加固技术导则(试行)》
【5部正在立项、编制审批阶段的标准】
送审阶段:重庆《高延性混凝土加固技术标准》
浙江《高延性混凝土加固技术规程》
编制阶段:中国建材联合会产品标准《高延性混凝土》
四川《高延性混凝土加固技术标准》
立项标准:广东《高延性混凝土加固技术规程》
发表的主要论文
SCI论文:
1)Shifei Song, Mingke Deng*, Yangxi Zhang, Tong Li, Ruizhe Li. Experimental study on axial compressive performance of filling high-strength grouting material (HSGM) in circular steel tube.Engineering Structures, 2025(343):121031.(SCI一区)
2)Ding Wei, Mingke Deng*, Ruizhe Li, Wei Zhang, Tong Li, Hui Chen. Axial compressive performance of RC columns strengthened with textile-reinforced high-strength highly ductile concrete.Engineering Structures,2025(343):121135.(SCI一区)
3)Zhengtao Qiu, Mingke Deng*, Ding Wei, Xinlong Tian, Ruizhe Li. Axial compressive behaviour of H-shaped steel members strengthened with ultra-high performance concrete with coarse aggregates (CA-UHPC): Experimental study and theoretical analysis.Construction and Building Materials,2025(493):143257.(SCI一区)
4)Zhengtao Qiu, Mingke Deng*, Xin Yao, Yangxi Zhang, Ruizhe Li. Shear behavior of RC composite beams with HDC permanent formwork: Experimental study and PINN-based prediction.Engineering Structures,2025(343):120955.(SCI一区)
5)Yangxi Zhang, Jiasheng Yang*, Mingke Deng. Flexural response of ultra-high performance concrete thin plates reinforced with different types of short fibers and textile grids.Construction and Building Materials,2025(485):141879.(SCI一区)
6)Zhengtao Qiu, Mingke Deng*, Wei Zhang, Guanghao Huo, Tong Li, Ruizhe Li, Wubin Jing.Experimental study on seismic performance of semi-rigid steel frames with prefabricated high-ductility concrete walls. Construction and Building Materials,2025(472):140845.(SCI一区)
7)Zhiyan Wu, Mingke Deng*, Mengna Jin, Xinlong Wang, Hao Lyu. Splice length and bond behaviors of doubled-row lapped bars in ultra-high performance concrete (UHPC).Engineering Structures,2025(329):119840.(SCI一区)
8)Tong Li, Mingke Deng*, Zhengtao Qiu, Xuesong Wang, Shuo Yang.In-plane shear behavior of masonry walls strengthened with HDC repointing in bed joints and HDC layer under diagonal compression loads.Structures,2025(77):109088.(SCI二区)
9)Shifei Song, Mingke Deng, Yangxi Zhang*, Guoyu Wang. Flexural property of highly ductile concrete (HDC) permanent formwork combined with rebar truss under construction load.Archives of Civil and Mechanical Engineering, 2025(25):218.(SCI二区)
10)Zhiyan Wu,Mingke Deng*,Zhengtao Qiu,Tong Li, Zhifang Dong.Coupling effect of short-fiber kind and matrix strength on uniaxial tensile behavior of textile-reinforced high-ductility concrete (TRHDC).Archives of Civil and Mechanical Engineering,2025(25):114.(SCI二区)
11)Ding Wei, Mingke Deng*, Tong Li*, Ruizhe Li, Hui Chen, Xinlong Wang. Experimental study on eccentric compressive performance of RC columns strengthened with textile-reinforced high-strength high ductile concrete. Construction and Building Materials, 2024(457): 139382. (SCI一区)
12)Zhengtao Qiu, Mingke Deng, Xinlong Tian, Tong Li*, Hongzhe Sun, Jitao Cao. Experimental study and theoretical analysis on steel frames infilled high-ductility concrete shear walls. Construction and Building Materials, 2024(434): 136739. (SCI一区)
13)Tong Li*, Zhengtao Qiu, Yangxi Zhang, Mingke Deng, Wei Huang. Autoclaved aerated concrete masonry wallettes strengthened using TRC overlay under out-of-plane load. Journal of Building Engineering, 2024(86): 108884. (SCI二区)
14)Jiasheng Yang, Mingke Deng*, Yitong Wang, Yangxi Zhang. Uniaxial tensile test of high-strength high-ductility concrete (HSHDC): Mechanical response and toughness evaluation. Journal of Building Engineering, 2024(89): 109332. (SCI二区)
15)Shifei Song, Mingke Deng*, Yangxi Zhang. Effects of textile type on the flexural properties of prefabricated hollow-core slabs strengthened with PVA fibers-improved TRM. Journal of Building Engineering, 2024(87): 109103. (SCI二区)
16)Zhiyan Wu, Mingke Deng*, Min Zhang, Wei Zhang, Junchao Liu. Bond behavior between highly ductile fiber-reinforced concrete (HDC) and deformed rebar under repeated and post-repeated monotonic loading. Structures, 2024(67): 106933. (SCI二区)
17)Yanting Sun, Mingke Deng, Tong Li*, Zhifang Dong, Zhiyan Wu, Jie Shi, Xinxing Bu. Half-scale shaking table tests of two brick and wood buildings: Effect of the engineered cementitious composites strips retrofit system. Structures, 2024(59): 105752. (SCI二区)
18)Ruizhe Li, Mingke Deng, Liying Guo, Ding Wei, Yangxi Zhang*, Tong Li. Tensile behavior of high-strength highly ductile fiber-reinforced concrete with embedded carbon textile grids. Construction and Building Materials, 2024(414): 134957. (SCI一区)
19)Jiasheng Yang, Mingke Deng, Yangxi Zhang, Hongkan Fan, Hao Lyu. Bonding performance between high-early-strength high-ductility concrete (HES-HDC) and existing concrete. Archives of Civil and Mechanical Engineering, 2024(24): 218. (SCI二区)
20)Jiasheng Yang, Mingke Deng*, Yangxi Zhang, Hongkan Fan. Four-point bending test of high-early-strength high ductility concrete (HES-HDC): early mechanical behavior and toughness evaluation. Archives of Civil and Mechanical Engineering, 2024(24): 36. (SCI二区)
21)Liying Guo, Mingke Deng, Wei Zhang, Tong Li, Yangxi Zhang*, Mengyu Cao, Xian Hu. Flexural behavior of textile reinforced mortar-autoclaved lightweight aerated concrete composite panels. Frontiers of Structural and Civil Engineering, 2024, 18: 776-787. (SCI三区)
22)Tong Li*, Wei Zhang, Zhengtao Qiu, Shuo Yang, Yangxi Zhang, Mingke Deng. Experimental cyclic testing of masonry pier-spandrel substructures reinforced with engineered cementitious composites overlay. Bulletin of Earthquake Engineering, 2024(22): 7179-7200. (SCI二区)
23)Shifei Song, Mingke Deng*, Sihai Zhang, et al. Flexural properties of reinforced concrete slabs using highly ductile concrete (HDC) permanent formwork system[J]. Journal of Building Engineering, 2023, 80: 108111. (SCI二区)
24)Shifei Song, Mingke Deng*, Min Zhang, et al. Flexural strengthening of reinforced concrete beams using textile-reinforced mortar improved with short PVA fibers[J]. Structures, 2023, 56: 104824. (SCI二区)
25)Tong Li*, Mingke Deng, Yangxi Zhang, et al. Study on flexural behavior of BFRCM-autoclaved aerated concrete composite slabs: Effects of slab and strengthening thickness[J]. Journal of Building Engineering, 2023, 76: 107382. (SCI二区)
26)Zhengtao Qiu, Mingke Deng, Wei Zhang, Zhiyan Wu, Zhifang Dong, Tong Li*. Out-of-plane flexural behavior of autoclaved aerated concrete block masonry walls strengthened with high-ductility concrete[J]. Construction and Building Materials, 2023, 394: 132117. (SCI一区)
27)Zhiyan Wu, Mingke Deng, Yangxi Zhang*, Hui Chen, Junchao Liu, Ting Tian. Bond behavior between highly ductile fiber-reinforced concrete (HDC) and deformed rebar under repeated and post-repeated monotonic loading[J]. Structures, 2024, 67(000):12. (SCI二区)
28)Liying Guo, Mingke Deng, Tong Li*. Seismic behaviour of RC columns retrofitted with textile-reinforced mortar (TRM) optimized by short PVA fibres[J]. Structures, 2023, 50:244-254. (SCI二区)
29)Yangxi Zhang*, Heng Lei, ZhiFang Dong*, Tong Li, Fudong Ma, Huazheng Liu, Mingke Deng. Cyclic response of precast concrete columns connected with cast-in-place UHPC in plastic hinge region[J]. Journal of Building Engineering, 2023, 65. (SCI二区)
30)Mingke Deng*, ZhiFang Dong*, Jie Dai*, et al. Out-of-plane strengthening of URM walls using different fiber-reinforced materials[J]. Construction and Building Materials, 2023, 362: 129597. (SCI一区)
31)Zhiyan Wu, Mingke Deng*, Tian T ,et al. Influence of textile grid forms on tensile mechanical behaviors of carbon textile-reinforced composites with polyethylene (PE) short fibers[J]. Archives of Civil and Mechanical Engineering, 2023, 23. (SCI二区)
32)Shifei Song, Mingke Deng, Jiasheng Yang, Ruizhe Li, Yangxi Zhang*. Flexural performance of precast hollow-core slabs strengthened with textile-reinforced highly ductile concrete (TRHDC)[J]. Archives of Civil and Mechanical Engineering, 2023, 23(4). (SCI二区)
33)Yangxi Zhang*, Shijun Zhang, Tong Li, Mingke Deng. Cyclic response and shear mechanisms of RC short walls strengthened with engineered cementitious composites thin layers[J]. Archives of Civil and Mechanical Engineering, 2023, 23. (SCI二区)
34)Tong Li, Mingke Deng*, Mengna Jin, et al. Experimental study on axial compressive behavior of full-scale masonry columns strengthened with reinforced high ductile concrete (RHDC). Engineering Structures, 2022 (252): 113650. (SCI一区)
35)Liying Guo, Mingke Deng*, Ruizhe Li, et al. Shear strengthening of RC short columns with CFRP grid-reinforced FRC matrix: Cyclic loading tests. Journal of Building Engineering, 2022 (47):103915. (SCI二区)
36)Yangxi Zhang, Jiasheng Yang, Tong Li, Mingke Deng*. Mechanical behavior of RC columns strengthened with thin UHPC jacket under cyclic loads. Journal of Building Engineering,2022 (49):104065. (SCI二区)
37)Hao Lyu, Mingke Deng*, Yuren Ma, et al. In-plane cyclic tests on strengthening of full-scale autoclaved aerated concrete blocks infilled RC frames using highly ductile concrete (HDC). Journal of Building Engineering, 2022 (49):104083. (SCI二区)
38)Wei Zhang, Mingke Deng*, Yagang Han, et al. Uniaxial tensile performance of high ductile fiber-reinforced concrete with built-in basalt textile grids. Construction and Building Materials, 2022 (315):125716. (SCI一区)
39)Liying Guo, Mingke Deng*, Hui Chen, et al. Experimental study on pre-damaged RC beams shear-strengthened with textile-reinforced mortar (TRM). Engineering Structures, 2022 (256): 113956. (SCI一区)
40)Yangxi Zhang, Tong Li, Mingke Deng*. Effect of splitting bond on shear response of reinforced engineered cementitious composite short columns under cyclic loading. Engineering Structures, 2022 (251):113474. (SCI一区)
41)Ruizhe Li, Mingke Deng*, Yangxi Zhang, et al. Shear strengthening of reinforced concrete deep beams with highly ductile fiber-reinforced concrete jacket. Journal of Building Engineering, 2022 (48):103957. (SCI二区)
42)Min Zhang, Mingke Deng*. Tensile behavior of textile-reinforced composites made of highly ductile fiber-reinforced concrete and carbon textiles. Journal of Building Engineering, 2022, 57: 104824.(SCI二区)
43)Hao Lyu, Mingke Deng*, Yagang Han, Fudong Ma, Yangxi Zhang. In-plane cyclic testing of full-scale reinforced concrete frames with innovative isolated infill walls strengthened by highly ductile concrete. Journal of Building Engineering, 2022, 57: 104934.(SCI二区)
44)Ruizhe Li, Mingke Deng, Chen Hui, Yangxi Zhang*. Shear strengthening of RC shear-deficient beams with highly ductile fiber-reinforced concrete. Structures, 2022, 44: 159-170.(SCI二区)
45)Min Zhang, Mingke Deng*. Fabric-to-cementitious matrix bond behavior in carbon fabric reinforced cementitious matrix (FRCM) composites with added short fibers. Composite Structures, 2022, 300: 116173.(SCI一区)
46)Liying Guo, Mingke Deng*, Ding Wei, Zhengtao Qiu, Zhifang Dong. Seismic strengthening of reinforced concrete beams using high-ductility cementitious composite (HDCC). Engineering Structures, 2022, 267: 114715.(SCI一区)
47)Yangxi Zhang*, Shijun Zhang, Mingke Deng. Four-point bending tests of ECC: Mechanical response and toughness evaluation. Case Studies in Construction Materials, 2022, 17: e01573.(SCI二区)
48)Min Zhang, Mingke Deng*, Jiasheng Yang, Yangxi Zhang. Experimental study on the shear behavior of reinforced highly ductile fiber-reinforced concrete beams with stirrups. Buildings, 2022, 12, 1264.(SCI三区)
49)Tong Li, Mingke Deng*, Yuren Ma, et al. Study on axial compressive performance of HDC-masonry composite elements. Construction and Building Materials, 2021 (304):124593. (SCI一区)
50)Zhifang Dong, Mingke Deng*, Jie Dai, et al. Diagonal compressive behavior of unreinforced masonry walls strengthened with textile reinforced mortar added with short PVA fibers. Engineering Structures, 2021 (246):113034. (SCI一区)
51)Tong Li, Mingke Deng*, Mengna Jin, et al. Performance of axially loaded masonry columns confined using textile reinforced concrete (TRC) added with short fibers. Construction and Building Materials, 2021, 279: 122413. (SCI一区)
52)Zhifang Dong, Mingke Deng*, Jie Dai, et al. Flexural strengthening of RC slabs using textile reinforced mortar improved with short PVA fibers. Construction and Building Materials, 2021, 304: 124613. (SCI一区)
53)Fudong Ma, Mingke Deng*, Yong Yang. Experimental study on internal precast beam-column ultra-high-performance concrete connection and shear capacity of its joint. Journal of Building Engineering, 2021, 44: 103204. (SCI二区)
54)Mingke Deng, Min Zhang, Fudong Ma, et al. Flexural strengthening of over-reinforced concrete beams with highly ductile fiber-reinforced concrete layer. Engineering Structures, 2021, 231: 111725. (SCI一区)
55)Tong Li, Mingke Deng*, Yangxi Zhang. Effect of eccentricity on strengthening efficiency of bar mesh high ductile concrete (BMHDC) on slender masonry columns. Engineering Structures, 2021, 230: 111732. (SCI一区)
56)Zhifang Dong, Mingke Deng*, Yangxi Zhang, et al. Strengthening of unreinforced masonry walls against out-of-plane loads using carbon textile reinforced mortar optimized by short PVA fibers. Engineering Structures, 2021, 227: 111433. (SCI一区)
57)Fudong Ma, Mingke Deng*, Yuren Ma, et al. Experimental study on interior precast concrete beam–column connections with lap-spliced steel bars in field-cast RPC. Engineering Structures, 2021, 228: 111481. (SCI一区)
58)Min Zhang, Mingke Deng*, Zhiyan Wu, et al. Flexural cracking behavior and calculation approach of reinforced highly ductile fiber-reinforced concrete beams. Archives of Civil and Mechanical Engineering, 2021, 21(4): 1-14.(SCI二区)
59) Ruizhe Li, Mingke Deng*, Yangxi Zhang. Behavior of highly ductile fiber–reinforced concrete columns under eccentric loading. Structures, 2021 (33): 3357-3370. (SCI三区)
60)Mingke Deng, Min Zhang, Zihao Zhu, et al. Deformation capacity of over-reinforced concrete beams strengthened with highly ductile fiber-reinforced concrete. Structures, 2021, 29: 1861-1873. (SCI三区)
61)Tong Li, Mingke Deng*, Yuren Ma, Yangxi Zhang. In-plane behavior of URM wall with openings strengthened with ECC subjected to cyclic load. Structures, 2021, 34: 2765-2776.(SCI三区)
近五年发表EI论文如下:
1)邓明科,王一童,杨家盛,等.高强高延性混凝土单轴拉伸性能试验研究.湖南大学学报(自然科学版),2025,52(05):118-127.
2)杨家盛,邓明科,张阳玺,等.快速修补用高早强高延性混凝土的力学行为.材料导报,2025,39(15):112-119.
3)宋诗飞,邓明科,张阳玺.纤维网格-高延性混凝土加固预制空心板抗弯性能试验研究[J/OL].工程力学,1-13[2025-09-06].
4)邓明科, 姚昕, 张阳玺, 靳梦娜, 曹继涛. 基于梁式试验的UHPC-高强钢筋搭接黏结性能. 复合材料学报, 2024, 41(10): 5527-5539.
5)宋诗飞,邓明科,李培鹏,等.纤维织物-高延性混凝土加固钢筋混凝土板抗弯性能试验研究[J].湖南大学学报(自然科学版),2024,51(03):149-160.
6)杨家盛,邓明科,张晴晴,等.纤维特征参数对HES-HDC单轴拉伸性能的影响及拉伸韧性评价方法[J].湖南大学学报(自然科学版),2024,51(03):130-140.
7)邓明科,雷恒,张雨顺,等.纤维织物增强高延性混凝土加固RC短柱抗剪性能试验研究[J].湖南大学学报(自然科学版),2024,51(01):79-89.
8)邓明科,孙严廷,张思海,舒宏博,李彤. 高延性混凝土加固单层砖木结构农房振动台试验研究. 工程力学, 2024, 41 (01): 90-102+113.
9)邓明科,韦鼎,张伟,董志芳,杨铄,范洪侃. 玄武岩纤维织物高延性混凝土拉伸性能. 湖南大学学报(自然科学版), 2023, 50 (09): 97-108.
10)邓明科,范洪侃,马福栋,刘俊超,张伟. 高延性混凝土与带肋钢筋黏结性能试验研究. 工程力学, 2023, 40 (03): 78-87.
11)张阳玺,李睿喆,邓明科,代龙. 超高性能混凝土加固钢筋混凝土柱抗震性能试验研究. 建筑结构学报, 2023, 44 (08): 88-98.
12)邓明科,胡娴,李彤,张聪,郭莉英. 织物增强HDC加固砖柱受压性能试验研究. 湖南大学学报(自然科学版), 2023, 50 (05): 43-54.
13)张敏,邓明科,智奥龙,马向琨. 纤维织物增强高延性混凝土加固受损RC梁受剪性能试验. 复合材料学报, 2023, 40 (03): 1624-1636.
14)邓明科,陈晖,李睿喆,张阳玺,朱兆晴. 高强钢筋高延性混凝土构件正截面承载力计算. 复合材料学报, 2023, 40 (05): 2926-2937.
15)郭莉英,邓明科,马钰人,张雨顺,张伟. 纤维网格高延性混凝土加固RC柱抗剪性能试验研究. 工程力学, 2022, 39 (06): 43-54.
16)邓明科, 王雪松, 张敏, 马福栋, 罗妍, 孙宏哲.钢筋高延性混凝土梁裂缝试验研究与计算方法. 材料导报, 2022, 36(02): 93-101.
17)邓明科,靳梦娜,郭莉英,马福栋,刘华政. 超高性能混凝土连接装配式柱抗震性能试验研究. 浙江大学学报(工学版), 2022, 56 (10): 1995-2006.
18)张敏,邓明科,智奥龙,宋诗飞,陈晖. 纤维织物增强高延性混凝土加固RC梁的受弯性能. 浙江大学学报(工学版), 2022, 56 (09): 1693-1703.
19)马福栋, 邓明科*, 杨勇. 超高性能混凝土装配整体式框架梁柱节点抗震性能研究. 工程力学, 2021, 38 (10): 90-102.
20)邓明科, 宋诗飞, 张敏, 马福栋, 陈尚城, 张阳玺. 高延性混凝土加固钢筋混凝土梁受剪性能试验研究及承载力计算. 工程力学, 2021, 38 (09): 36-44+63.
21)邓明科, 马向琨, 张伟, 李宁. 高延性混凝土加固蒸压加气混凝土砌体墙抗震性能试验研究. 工程力学, 2021, 38 (07): 9-18.
22)邓明科, 李彤, 范丽玮. 钢筋网高延性混凝土加固砖柱偏心受压性能试验及计算方法研究. 工程力学, 2021, 38 (05): 61-71.
23)邓明科, 刘俊超, 张阳玺, 刘海勃, 景武斌. 钢板-高延性混凝土组合低矮剪力墙抗震性能试验研究. 工程力学, 2021, 38(03): 40-49.
24)邓明科, 代龙, 何斌斌, 张阳玺. 塑性铰区采用高延性混凝土梁变形性能研究. 工程力学, 2021, 38 (01): 52-63+99.
(1) 连续5年入选全球前2%顶尖科学家榜单(2021~2025);
(2)入选三秦英才特殊支持计划-产业领军人才(陕西省科技厅,2023);
(3)获得山东省泰山产业领军人才(山东省科技厅,2023);
(4)入选首批西安市领军型青年企业家(共青团西安市委,2022);
(5)获得陕西省科技创新创业人才(陕西省科技厅,2021);
(6)获得第15届苏州工业园区科技领军人才(苏州工业园区,2021);
(7)获得西安市领军创业人才(西安市科技局,2021);
(8)获得陕西省杰出青年基金资助(陕西省科技厅,2020);
(9)获得全国砌体结构领域优秀青年专家(中国工程建设标准化协会砌体结构专业委员会,2019);
(10)获得首届全国建筑结构行业杰出青年(中国勘察设计协会,2019);
(11)获得第18届陕西青年五四奖章(共青团陕西省委,2019);
(12)获得陕西省土木建筑科学技术一等奖,第一完成人(陕西省土木建筑学会,2018);
(13)获得中国产学研合作创新奖(中国产学研合作促进会,2017)。

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