• Laser & Optoelectronics Progress
  • Vol. 59, Issue 17, 1700003 (2022)
Chenlu Wang1, Yuanyuan Feng1, Wenhao You2, and Xue Ling1、*
Author Affiliations
  • 1College of Cultural Heritage, Northwest University, Xi’an 710069, Shaanxi , China
  • 2School of Archeology and Museology, Peking University, Beijing 100871, China
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    DOI: 10.3788/LOP202259.1700003 Cite this Article Set citation alerts
    Chenlu Wang, Yuanyuan Feng, Wenhao You, Xue Ling. Application of Laser Technology in Cultural Relics Protection[J]. Laser & Optoelectronics Progress, 2022, 59(17): 1700003 Copy Citation Text show less
    References

    [1] Ling X, Wu M L, Liao Y et al. Nondestructive techniques in the research and preservation of cultural relics[J]. Spectroscopy and Spectral Analysis, 38, 2026-2031(2018).

    [2] Dong Y H. Application of laser technology in different fields[J]. Electronic Technology & Software Engineering, 99(2019).

    [3] Song F, Wu Y X, Liu S J. History of laser cleaning development[J]. Cleaning World, 21, 37-40(2005).

    [4] Wang Z M, Zeng X Y, Huang W L. Status and prospect of laser cleaning procedure[J]. Laser Technology, 24, 68-73(2000).

    [5] Ai S F, Wang F S, Wang Q et al. Laser cleaning mechanism and process of high-temperature-oxidized titanium alloy[J]. Laser & Optoelectronics Progress, 58, 2114012(2021).

    [6] Zhang Y, Chen Y Q, Zhu G Z et al. Research of the superposed pulsed Nd: YAG laser in a single beam[J]. Laser Technology, 40, 311-314(2016).

    [7] Li Y L, Jia K, Gu X S et al. Study on an acousto-optical Q-switched Nd∶YVO4 laser with 25 kHz repetition rate and about 2 ns pulse duration[J]. Laser Technology, 42, 34-38(2018).

    [8] Song Q L, Hu Z F, Liang X B et al. Development and application of laser cleaning technology[J]. New Technology & New Process, 1-5(2019).

    [9] Asmus J F, Murphy C G, Munk W H. Studies on the interaction of laser radiation with art artifacts[J]. Proceedings of SPIE, 0041, 19-30(1974).

    [10] Andreotti A, Brown W P, Camaiti M et al. Diagnosis of materials and effectiveness of Er∶YAG laser cleaning as complementary treatment in a panel painting attributed to Lluís Borrassà (fifteenth century)[J]. Applied Physics A, 122, 122(2016).

    [11] Qi Y, Zhou W Q, Chen J et al. Laser cleaning of contaminants on the surface of Yungang grottoes[J]. Safety and Environmental Engineering, 22, 32-38(2015).

    [12] Ye Y Y, Qi Y, Qin L et al. Laser cleaning of contaminations on the surface of stone relics[J]. Chinese Journal of Lasers, 40, 0903005(2013).

    [13] Qi Y, Zhou W Q, Zhou P et al. Technology of laser cleaning stone cultural relics[J]. Jianghan Archaeology, 112-117(2015).

    [14] Zhou W Q, Qi Y, Ye Y Y. Study on the removal of pollutants from the surface of Huashan rock paintings in Guangxi[J]. Cultural Relics of Central China, 97-100(2013).

    [15] Zhang B J, Yin H Y. Cleaning technology and effect detection of stone cultural relics[J]. Stone, 23-25(2000).

    [16] Wang H, Fu Y H. Experimental study on laser cleaning of surface contaminants in marine stone sculptures cultural relic[J]. Applied Laser, 38, 623-629(2018).

    [17] Jiang D B, Luo Y, Gao M. A research for removing rust on the surface of the bronze relics by the pulse laser[J]. Journal of Northwest University (Natural Science Edition), 16, 19-23, 136(1986).

    [18] Zhang X T, Zhang P Y, Yang C et al. Laser cleaning technology in the conservation of gilt bronze[J]. Sciences of Conservation and Archaeology, 25, 98-103(2013).

    [19] Li Q, Shen Y P. Analysis and discussion of cleaning away powdery rust of bronze by laser technology[J]. Sciences of Conservation and Archaeology, 2, 22-25(1990).

    [20] Shen Y J, Zhou H, Shen J Y. Applied research on the agar gel-mediated laser cleaning of bronze objects[J]. Sciences of Conservation and Archaeology, 30, 1-13(2018).

    [21] Raza M S, Das S S, Tudu P et al. Excimer laser cleaning of black sulphur encrustation from silver surface[J]. Optics & Laser Technology, 113, 95-103(2019).

    [22] Zhang L C, Zhou H. Restoration of a polychrome female pottery figurine from Han Dynasty using laser cleaning techniques[J]. Sciences of Conservation and Archaeology, 29, 67-75(2017).

    [23] Zhang H. Experimental study on laser cleaning of condensate on outlet porcelain of the "Nanao" sunken ship[J]. China Cultural Heritage, 23-30(2019).

    [24] Gaetani C, Santamaria U. The laser cleaning of wall paintings[J]. Journal of Cultural Heritage, 1, S199-S207(2000).

    [25] Wang J, Huo X T, Yang W Z. Preliminary research on laser cleaning of mural contaminants[J]. Sciences of Conservation and Archaeology, 32, 61-69(2020).

    [26] Belli R, Miotello A, Mosaner P et al. Laser cleaning of ancient textiles[J]. Applied Surface Science, 247, 369-372(2005).

    [27] Kolar J, Strlič M, Müller-Hess D et al. Laser cleaning of paper using Nd: YAG laser running at 532 nm[J]. Journal of Cultural Heritage, 4, 185-187(2003).

    [28] Zhao Y. Research on laser cleaning of Chinese painting and galligraphy[D], 17-45(2009).

    [29] Lin X H, Yao W Q, Ma R X et al. Three dimensional reconstruction of the Great Wild Goose Pagoda based on massive point cloud data[J]. Sciences of Conservation and Archaeology, 29, 67-72(2017).

    [30] Liu X Y. Architecture research on the great Huayan monastery and its sutras hall in Datong City[D], 219-264(2015).

    [31] Li Y Q, Liu H Y, Feng M et al. Research on 3D digitization protection of large historic building relic take great white horse temple’s Qiyun pagoda for exampole[J]. Journal of Henan Polytechnic University (Natural Science), 31, 186-190(2012).

    [32] Li W W, Zhang Y K, Liu K. Discussion on the application of word technology in the protection and utilization of cultural relics: centered on the Enlightenment of Notre Dame fire in Paris[J]. Beijing Cultural Relics and Museums, 110-117(2019).

    [33] Li L H. Application of 3D laser scanning technology in the digitization of Yungang Grottoes[J]. Survey World, 41-43, 47(2018).

    [34] Xia G F, Hu C M, Fan L. A method for reconstructing precise 3D models for statues[J]. Dunhuang Research, 131-140(2018).

    [35] Zhao G, Huang N Q, Long L S. Exploration and practice of digital surveying and mapping of Dazu rock carvings[J]. Studies of the Cave Temples, 387-394(2017).

    [36] Sun B Y, Weng Y Y, Zhou X J. Application of Remake-based 3D modeling technology to digital reconstruction of cliff carvings[J]. Sciences of Conservation and Archaeology, 30, 110-114(2018).

    [37] Jing Z F, Wang W F, Wang K et al. Application of 3D laser scanning in conservation of cultural relics: a case study of 3D modeling of great big buddha in Gangu county[J]. Studies of the Cave Temples, 407-416(2017).

    [38] Nan J X, Liang S, Li H Q et al. The measurement accuracy analysis of Qinshu Road 3D scanning[J]. Geomatics & Spatial Information Technology, 40, 213-214, 217, 220(2017).

    [39] Sun Y C. Three dimensional survey and disease investigation of stone and animal cultural relics in Chengdu museum[D](2020).

    [40] Yang S. Application of 3D laser scanning technology in the survey of historic building[J]. Construction Technology, 49, 15-17(2020).

    [41] Xu C, Li M, Jiao G Y. Application of three-dimensional laser scanning in late stage of archaeological information acquisition: taking Huadizui ceramic high-collar tank as an example[J]. Popular Archaeology, 36-39(2018).

    [42] Ma J. Application of 3D laser scanning in 3D modeling of terra cotta figurine[J]. Standardization of Surveying and Mapping, 33, 39-41(2017).

    [43] Yang Y, Wang Y M, Huang M. Three-dimensional reconstruction and application of smooth valentine ding based on depth image[J]. Bulletin of Surveying and Mapping, 187-189, 208(2014).

    [44] Cheng H W, Gao Z H, Chen X. Talking about the application of three-dimensional digital technology in the protection of ancient bronzes: taking the three-dimensional scanning of bronzes in the western zhou cemetery in Hengshui county as an example[J]. World of Antiquity, 57-60(2013).

    [45] Cui L P. Design and implementation of cultural relics protection management system based on GIS and 3D laser scanning technology[D], 15-65(2019).

    [46] Wang Z J. Application of 3S-technology and its integration in protection of cultural relics[J]. Sciences of Conservation and Archaeology, 14, 52-58(2002).

    [47] Liu B, Zhang J, Lu M et al. Research progress of laser radar applications[J]. Laser & Infrared, 45, 117-122(2015).

    [48] Shen D W, Zheng F, Wu N et al. Trend analysis of Raman application in cultural relics and archaeological research[J]. Spectroscopy and Spectral Analysis, 38, 2657-2664(2018).

    [49] Zhao L W, Chen H L, Zhao H X et al. A scientific research of the painted potteries of the Yangshao culture from the Miao-di-Gou site[J]. Spectroscopy and Spectral Analysis, 38, 1420-1429(2018).

    [50] Wang R, Shuo Z, Cheng H S. Non-destructively scientific research on the prehistoric jades unearthed from the Sunjiacheng and Huangjiayan site of Anhui Province[J]. Journal of Fudan University (Natural Science), 50, 121-130, 253(2011).

    [51] Cheng X L, Pan L. Research on the mineral phase and component of non-crystalline and nano-crystalline corrosion products on bronzes unearthed from Shang tomb in Xingan[J]. Spectroscopy and Spectral Analysis, 32, 1270-1273(2012).

    [52] Chen D M, Si C D, Long S J. Research progress of spectral technologies of binding media used in paintings[J]. Spectroscopy and Spectral Analysis, 40, 961-966(2020).

    [53] Wang X P, Zhao H X, Liu S et al. Research method and spectral analysis of ancient polychromatic silicate artifacts[J]. Spectroscopy and Spectral Analysis, 36, 4045-4051(2016).

    [54] Wu F Q, Yang W N, Li D. Research on art painting pigment composition recognition based on hyperspectral imaging technique and Raman spectra[J]. Acta Mineralogica Sinica, 34, 166-170(2014).

    [55] Si Y, Jiang H E, Wang B et al. Raman microspectroscopic analysis of polychrome wooden artifact from the Astana tomb of the Tang dynasty, Xinjiang, China[J]. Spectroscopy and Spectral Analysis, 33, 2607-2611(2013).

    [56] Zeng Q G, Zhang G X, Tan J H. Raman analysis of the raw materials of the plaster sculpture and fresco pigments in Kaiping Diaolou tower[J]. The Journal of Light Scattering, 23, 158-161(2011).

    [57] Chang J J. Raman spectra of the pigments in ancient wall paintings[C], 279-280(2010).

    [58] Edwards H G M, Wolstenholme R, Wilkinson D S et al. Raman spectroscopic analysis of the enigmatic Comper pigments[J]. Analytical and Bioanalytical Chemistry, 387, 2255-2262(2007).

    [59] Burgio L, Clark R J H. Library of FT-Raman spectra of pigments, minerals, pigment media and varnishes, and supplement to existing library of Raman spectra of pigments with visible excitation[J]. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 57, 1491-1521(2001).

    [60] Cui Y L, Zheng G M, Li J X et al. Raman spectra and elements evaluation of a Tang dynasty Buddha[J]. Journal of Analytical Science, 27, 431-434(2011).

    [61] McCann L I, Trentelman K, Possley T et al. Corrosion of ancient Chinese bronze money trees studied by Raman microscopy[J]. Journal of Raman Spectroscopy, 30, 121-132(1999).

    [62] Frost R L, Martens W, Kloprogge J T et al. Raman spectroscopy of the basic copper chloride minerals atacamite and paratacamite: implications for the study of copper, brass and bronze objects of archaeological significance[J]. Journal of Raman Spectroscopy, 33, 801-806(2002).

    [63] Yi C Z. Applications of Raman spectroscopy to the analysis of paper relics[J]. Sciences of Conservation and Archaeology, 30, 135-141(2018).

    [64] Zhang H, Zhang J P, Zhu Q G. The application of modern analysis technology in the protection and restoration of ancient paper calligraphy and painting[J]. Restoration and Research of Cultural Relics, 393-398(2014).

    [65] Li T. Technical investigation of ancient Chinese paper based materials with non-destructive chemical methods[D], 53-62(2010).

    [66] Zhou W H, Gan Q, Ji J X et al. Non-destructive identification of pigments printed on six Imperial China Engraved Coiling Dragon stamps[J]. Journal of Raman Spectroscopy, 47, 316-320(2016).

    [67] Chen L, Pei K M, Kang X J et al. Rapidly detection of alizarin and purpurin in textile relics by surface-enhanced Raman spectroscopy[J]. Journal of Textile Research, 40, 76-82(2019).

    [68] Fu Q L. Simulation experiment study on ancient mineral pigment quantitative analysis by Raman spectroscopy[D], 7-48(2016).

    [69] Ling X, Jia L J, Liu X M et al. Trace elements in Qin bronzes from the spring and autumn period determined by laser ablation inductively coupled plasma mass spectrometry[J]. Journal of Lanzhou University (Natural Sciences), 48, 8-14(2012).

    [70] Siqin B L G, Li Q H, Gan F X. Analysis of ancient Chinese potash glass by laser ablation inductively coupled plasma-atomic emission spectrometry/mass spectrometry[J]. Chinese Journal of Analytical Chemistry, 41, 1328-1333(2013).

    [71] Chen K Y, Fan C, Yuan H L et al. High-precision in situ analysis of the lead isotopic composition in copper using femtosecond laser ablation MC-ICP-MS and the application in ancient coins[J]. Spectroscopy and Spectral Analysis, 33, 1342-1349(2013).

    [72] Iñañez J G, Bellucci J J, Rodríguez-Alegría E et al. Romita pottery revisited: a reassessment of the provenance of ceramics from Colonial Mexico by LA-MC-ICP-MS[J]. Journal of Archaeological Science, 37, 2698-2704(2010).

    [73] Zhang D C, Feng Z Q, Wei K et al. Remote laser-induced breakdown spectroscopy and its application[J]. Acta Photonica Sinica, 50, 1030001(2021).

    [74] Lu F Q, Shi Y C, Wang F R et al. Element analysis of blue brick and tile of ancient architecture with laser-induced breakdown spectroscopy[J]. Guangzhou Chemical Industry, 46, 80-82(2018).

    [75] Wu W H, Yao Z Q, Wang J et al. Quick classification of pottery from Lingjiatan site (3000BC) based on laser induced breakdown spectroscopy and principal component analysis[J]. Spectroscopy and Spectral Analysis, 40, 628-631(2020).

    [76] Liu H, Chen H. Effect of laser power on microstructure and properties of dissimilar steel’s laser welded joint[J]. Laser & Optoelectronics Progress, 58, 2314007(2021).

    [77] Ye X S, Zhang J S, Chen J et al. Controlled laser beam welding used in restoration of thin-wall ancient bronzes[J]. Sciences of Conservation and Archaeology, 15, 10-13, 66(2003).

    [78] Hu J X, Zeng X Y, Zhang X et al. Recovery both the morphological and acoustic characteristics of JIU-LIAN-DUN chimes in the warring states period[J]. Sciences of Conservation and Archaeology, 21, 17-26(2009).

    [79] Ye X S, Zhang J S, Liu L X et al. Repairing bronze ear cup of Han Dynasty by laser welding[J]. Relics and Museolgy, 51-55(2004).

    [80] Tang Y L, Guo Z Y. The application and development of Raman spectroscopy on biological molecule DNA[J]. Acta Laser Biology Sinica, 13, 386-393(2004).

    Chenlu Wang, Yuanyuan Feng, Wenhao You, Xue Ling. Application of Laser Technology in Cultural Relics Protection[J]. Laser & Optoelectronics Progress, 2022, 59(17): 1700003
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