[1] 钱海平,杨晓龙,杨秉德.中国建筑的现代化进程[M].北京:中国建筑工业出版社,2012.
QIAN Haiping,YANG Xiaolong,YANG Bingde.The course of the modernization of Chinese architecture[M].Beijing:China Architecture & Building Press,2012.
[2]刘思铎.沈阳近代建筑技术的传播与发展研究[D].西安:西安建筑科技大学,2015.
LIU Siduo.Communication and development of Shen-yang modern architecture[D].Xi'an:Xi'an University of Architecture and Technology,2015.
[3]郭湖生.中国近代建筑总览·厦门篇[M].北京:中国建筑工业出版社,1993.
GUO Husheng.The architectural heritage of modern China·Xiamen[M].Beijing:China Architecture & Building Press,1993.
[4]张兴斌,张文革.文物建筑预防性保护技术与工程实例[M].北京:中国建材工业出版社,2020.
ZHANG Xingbin,ZHANG Wenge.Preventive protection technology and engineering examples of cultural relics buildings[M].Beijing:China Building Materials Press,2020.
[5]赵福灵.钢筋混凝土学[M].北京:中国工程师学会,1935.
ZHAO Fuling.The study of reinforced concrete[M].Beijing:Chinese Society of Engineers,1935.
[6]钢筋混凝土用钢 第2部分:热轧带肋钢筋:GB/T 1499.2—2007[S].北京:中国标准出版社,2008.
Steel for the reinforcement of concrete — part 2:hot rolled ribbed bars:GB/T 1499.2—2007[S].Beijing:Standards Press of China,2008.
[7]Steel for the reinforcement of concrete — weldable reinforcing steel — general:BS EN 10080—2005[S].London:CEN,2005.
[8]Standard specification for deformed and plain carbon-steel bars for concrete reinforcement:ASTM A615/A615M[S].West Conshohocken:ASTM International,2009.
[9]淳 庆,王建国,冯世虎,等.民国时期混凝土建筑中钢筋的物理力学性能[J].东南大学学报(自然科学版),2014,44(4):817-821.
CHUN Qing,WANG Jianguo,FENG Shihu,et al.Physical and mechanical performances of reinforcements in reinforced concrete buildings built during Republic of China[J].Journal of Southeast University(Natural Science Edition),2014,44(4):817-821.
[10]金属材料 拉伸试验 第1部分:室温试验方法:GB/T 228.1—2021[S].北京:中国标准出版社,2021.
Metallic materials — tensile testing — part 1:method of test at room temperature:GB/T 228.1—2021[S].Beijing:Standards Press of China,2021.
[11]金属显微组织检验方法:GB/T 13298—2015[S].北京:中国标准出版社,2016.
Inspection methods of microstructure for metals:GB/T 13298—2015[S].Beijing:Standards Press of China,2016.
[12]碳素钢和中低合金钢 多元素含量的测定 火花放电原子发射光谱法(常规法):GB/T 4336—2016[S].北京:中国标准出版社,2016.
Carbon and low-alloy steel — determination of multi-element contents — spark discharge atomic emission spectrometric method(routine method):GB/T 4336—2016[S].Beijing:Standards Press of China,2016.
[13]原 超.不同化学元素对建筑钢材性能影响分析[J].山西化工,2020,40(2):31-33.
YUAN Chao.Analysis of the influence of different chemical elements on the properties of building steel[J].Shanxi Chemical Industry,2020,40(2):31-33.
[14]HAO L,ZHANG S,DONG J,et al.Atmospheric corrosion resistance of MnCuP weathering steel in simulated environments[J].Corrosion Science,2011,53(12):4187-4192.
[15]ZHOU G P,ZHANG S,DONG J,et al.The improvement of weathering resistance by increasing P contents in cast strips of low carbon steels[J].Materials and Design,2009,30(10):4342-4347.
[16]陆文华.铸铁及其熔炼[M].北京:机械工业出版社,1981.
LU Wenhua.Cast iron and its melting[M].Beijing:China Machine Press,1981.
[17]DILLMANN P H.Advances in understanding atmospheric corrosion of iron.I.rust characterisation of ancient ferrous artefacts exposed to indoor atmospheric corrosion[J].Corrosion Science,2004,46(6):1401-1429.
[18]王 刚.全珊瑚混凝土中钢筋锈蚀机理及锈蚀产物微观形貌研究[D].镇江:江苏科技大学,2020.
WANG Gang.Study on corrosion mechanism of steel bars in all-coral concrete and microstructure of corrosion products[D].Zhenjiang:Jiangsu University of Science and Technology,2020.
[19]胡红梅,朱 杰,刘 涛,等.鼓浪屿历史建筑混凝土构件劣化现状及原因分析[J].厦门大学学报(自然科学版),2022,61(2):298-307.
HU Hongmei,ZHU Jie,LIU Tao,et al.Analysis of the deterioration status and causes of concrete members in Gulangyu historical buildings[J].Journal of Xiamen University(Natural Science Edition),2022,61(2):298-307.
[20]刘 玉.钢筋腐蚀机理及氯离子影响机制的研究[D].厦门:厦门大学,2007.
LIU Yu.Study on corrosion mechanism of steel bar and influence mechanism of chloride ion[D].Xiamen:Xiamen University,2007.
[21]尹业雄.碳化条件下混凝土中钢筋的腐蚀行为研究[D].大连:大连理工大学,2020.
YIN Yexiong.Study on corrosion behavior of steel bars in concrete under carbonation condition[D].Dalian:Dalian University of Technology,2020.
[22]周大元.耐蚀钢筋组织及合金元素对耐蚀性能影响的研究[D].马鞍山:安徽工业大学,2017.
ZHOU Dayuan.Study on the influence of microstructure and alloy elements of corrosion-resistant steel bars on corrosion resistance[D].Maanshan:Anhui University of Technology,2017.
[23]DUFFOG S,MORRIS W,RASPINI I,et al.A study of steel rebars embedded in concrete during 65 years[J].Corrosion science,2004,46(9):2143-2157.
[24]JAEN J A,IGLESIAL J,HERNADEZ C.Analysis of short-term steel corrosion products formed in tropical marine environments of Panama[J].International Journal of Corrosion,2012(1):162729.
[25]VERA R,VILLARROEL M,CARVAJAL A M,et al.Corrosion products of reinforcement in concrete in marine and industrial environments[J].Materials Chemistry and Physics,2009,114(1):467-474.
[26]商百慧.混凝土劣化历程对两种钢筋腐蚀行为影响的研究[D].合肥:中国科学技术大学,2019.
SHANG Baihui.Study on the influence of concrete deterioration process on corrosion behavior of two kinds of steel bars[D].Hefei:University of Science and Technology of China,2019.
[27]SUZUKI S,TAKAHASHI Y,SAITO M,et al.Atomic-scale structure of α-FeOOH containing chromium by anomalous X-ray scattering coupled with reverse Monte Carlo simulation[J].Corrosion science,2005,47(5):1271-1284.
[1]石建光,郑雪锋,林树枝,等.灰缝厚度及水泥砂浆抹面对历史建筑砌体
结构性能的影响[J].建筑科学与工程学报,2020,37(01):67.[doi:10.19815/j.jace.2019.01017]
SHI Jian-guang,ZHENG Xue-feng,LIN Shu-zhi,et al.Influence of Mortar Thickness and Cement Mortar Surface Strengthening
on Behavior of Masonry Structure in Historical Buildings[J].Journal of Architecture and Civil Engineering,2020,37(06):67.[doi:10.19815/j.jace.2019.01017]