基本信息
姓名:李慶濤
出生年月:1980.7
學位:博士
職稱:副教授、碩導
研究領域:鋼筋混凝土抗火、新型建築材料、建築物保護與加固
招收研究生專業:結構工程,防災減災工程與防護工程
李慶濤,男,2011年獲日本山口大學博士學位,伟德官网bv第九批校級青年學術帶頭人,第九批校級優秀青年骨幹教師,中國勘察設計協會抗震防災分會會員,江蘇省住房和城鄉建設廳科技發展中專家庫專家。主要講授《鋼筋混凝土結構設計》、《土木工程制圖與計算機繪圖》、和《建築工程事故診斷與分析》等課程。主持國家自然科學基金項目、中央高校基本科研業務基金項目、伟德官网bv“啟航計劃”項目等科研項目,榮獲省部級科技進步二等獎3項。獲得國家授權專利10餘項。在Construction and Building Materials、Magazine of Concrete Research、Advances in Cement Research、Journal of Building Engineering、Structural Concrete、建築材料學報等期刊上發表論文30餘篇,編寫教材、著作5部,參編江蘇省标準、圖集3部。
E-mail:li.qingtao@cumt.edu.cn
主持或主要研究人員參加的科研項目
1、淮海科技城創智中心5、6号樓全裝配框架抗震安全項目,126萬元,2019/1-2022/12;
2、預制裝配式混凝土住宅标準化疊合樓闆試驗研究,10萬元,2019/1-2021/12;
3、長三角近前緣地帶鑽孔灌注樁全過程質量控制關鍵技術研究,44.5萬元,2018/1-2022/12;
4、科技樓樓頂網架工程安全性評估,20萬元,2018/9-2020/12;
5、新龐莊村房屋損傷檢測及處理方案研究,18萬元,2016/5-2018/12;
6、國家自然科學基金項目,火災後混凝土性能恢複促進技術研究,25萬元,2013/01 - 2015/12;
7、國家自然科學基金項目,考慮端部約束非定常性的鋼筋混凝土框架梁的火災行為研究,25 萬元,2019/01-2021/12;
8、中央高校基本科研業務費項目,摻粉煤灰-礦渣粉複合膠凝材料混凝土的抗火性能研究、6萬元、2013/01-2015/12;
9、伟德官网bv卓越計劃教材建設項目,2萬元,2017/12-2019/12;
10、2021年教育部産學合作協同育人項目“智能建造新專業建設”(202102234003)。
代表性學術成果:
(1)第一作者或通訊作者學術論文
[1] Experimental study on the effect of fireproof coating and cooling methods on the mechanical properties of concrete exposed to high temperature, Construction and Building Materials,2023,376(131045)
[2] Effects of elevated temperature on the mechanical properties of concrete with aggregate of waste porcelain tile,Journal of Building Engineering,2023, 64(105585).
[3] Experimental study on the free expansion deformation of concrete during the cooling process after being heated at high temperature Construction and Building Materials, 2022, 337(127617).
[4] Effect of heating rate on the free expansion deformation of concrete during the heating process. Journal of building engineering, 2021, 34: 101896.
[5] Influence of curing age on the mechanical properties of fly ash concrete exposed to elevated temperature. Structural concrete, 2021, 22:868-883.
[6] Investigation on the free expansive deformation of concrete during the heating process, Construction and building materials, 2021, 306(124871).
[7] Effects of moisture content and heating temperature on the thermal expansion deformation of concrete, Structural concrete, 2021.7
[8] Bond behavior between cement-based grouting material and steel bar under repetitive loading after being exposed to high temperature at early age. Construction and building materials, 2020, 262:120023.
[9] Natural restoration of mechanical properties of concrete subjected to high temperature, Advances in cement research, 2019.1:1-12.
[10] Improvement of bond behaviour between steel bar and concrete subjected to elevated temperature at early age, Magazine of concrete research, 2018.70(17):885-893.
[11] Degradation of the elastic modulus of cement-based grouting material with early ages after fire, Construction and building materials, 2018(187):510-518.
[12] Bond characteristics between early aged fly ash concrete and reinforcing steel bar after fire, Construction and building materials, 2017(147):701-712.
[13] Residual compressive strength of cement-based grouting material with early ages after fire, Construction and building materials, 2017(138):316-325.
[14] The use of surface coating in enhancing the mechanical properties and durability of concrete exposed to elevated temperature. Construction and building materials, 2015, 95:375-383.
[15] Effects of heating/cooling on recovery of strength & carbonation resistance of fire-damaged concrete. Magazine of concrete research 2014, 66(18), 925-936.
[16] Effect of elevated temperature on the mechanical properties of high-volume GGBS concrete. Magazine of concrete research 2014, 66(24):1277-1285.
[17] The effect of a proprietary inorganic coating on compressive strength and carbonation depth of simulated fire-damaged concrete. Magazine of concrete research 2013, 65(11), 651-659.
[18] Effect of elevated temperatures on properties of concrete containing ground granulated blast furnace slag as cementitious material. Construction and building materials, 2012, 35, 687-692.
[19]無機塗層對高溫後混凝土抗壓強度的修複. 建築材料學報. 2019,22(1):60-64.
[20]研讨式教學法在鋼筋混凝土結構設計教學中的探索與實踐,高等建築教育,2019.28(2):63-68.
(2)獲獎
[1]裝配式空腔樓蓋耐火關鍵技術及其鋼結構工程示範應用,中國鋼結構協會技術創新獎,2021;
[2]建築物整體下降關鍵技術的研究與應用,2019年度江蘇省建設科技創新成果獎,2020;
[3] 土木工程專業立體化實踐教學體系的構建和實施,中國煤炭教育教學成果一等獎,2017;
[4] 結構安全與防災減災系列教材建設成果,中國煤炭教育教學成果三等獎,2017;
[5]火災全過程中大跨度鋼結構整體坍塌概率預測技術,中國消防協會科學技術進步二等獎,2016;
[5]建築物整體移動基礎理論及關鍵技術研究與應用,河南省科學技術進步二等獎,2015;
[6]山體内複雜變形條件下煤礦卸載站加固技術研究與應用,中國煤炭工業科學技術二等獎,2013。
(3)教材及著作
[1] 《混凝土結構與砌體結構設計》,中國建築工業出版社,2023;
[2] 《建築結構檢測鑒定與加固技術》,武漢大學出版社,2022
[3] 《建築工程事故診斷與分析》,中國建材工業出版社,2021;
[4] 《鋼筋混凝土結構設計》,伟德官网bv出版社,2020;
[5] 《采動區超高壓輸電鐵塔破壞機理與變形控制技術研究》, 伟德官网bv出版社,2018。
(4)授權專利
[1] 一種老舊闆式陽台承重結構的加固方法,2023.3.10,ZL202210787644.4
[2] 一種筏闆基礎的修複加固方法,2022.5.6,ZL202111147021.2
[3] 一種柱下獨立基礎超載沖切破壞的加固方法,2022.6.7,ZL202111144765.9
[4]一種組合式高壓輸電線杆不均勻沉降的糾偏方法,2020.10.30,ZL201910323512.4
[5] 一種預應力鋼筋混凝土梁改造加固方法,2022.5.27,ZL202110950573.0 (已轉讓)
[6] 一種壓屈鋼筋混凝土柱的頂升加固方法.2020.3.13,ZL201811555781.5(已轉讓)
[7] 一種組合式框架結構抗火試驗系統及試驗方法,2019.3.29,ZL201710009880.2(已轉讓)
[8] 一種加固鋼筋混凝土闆極限承載力的計算方法,2021.10.19,ZL201811391791.X(已轉讓)
[9] 一種降低鋼筋混凝土框架結構高度的方法,2017.1.25,ZL201510052237.9(已轉讓)
(5)參編标準和圖集
[1] 江蘇省标準:《建築工程施工質量鑒定标準》,2021;
[2] 江蘇省圖集:《預制裝配式混凝土住宅标準化疊合樓闆圖集》,2021;
[3] 江蘇省标準:《建築物掏土糾傾技術标準》,2022。