When the digital twin meets the preventive conservation of movable wooden artifacts
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Dong Zhao | Jian Zhao | H. Zhang | Dong Zhao | Xueyi Ma | Lihua Fei | Puxiang Wang | Xueyi Ma | Hongye Zhang | Puxiang Wang
[1] Michael D. Todd,et al. A comprehensive review of digital twin — part 1: modeling and twinning enabling technologies , 2022, Structural and Multidisciplinary Optimization.
[2] H. Hosamo,et al. Digital Twin Technology for Bridge Maintenance using 3D Laser Scanning: A Review , 2022, Advances in Civil Engineering.
[3] Sehwang Kee. A Study on the Trends of Acceptance Criteria of the Relocation of Architectural Heritages and Priority Values of Monuments in Seoul , 2022, Sustainability.
[4] Qinglin Qi,et al. Digital twin modeling , 2022, Journal of Manufacturing Systems.
[5] P. Lourenço,et al. A Parametric Scan-to-FEM Framework for the Digital Twin Generation of Historic Masonry Structures , 2021, Sustainability.
[6] Fuying Liu,et al. A methodology for weighting indicators of value assessment of historic building using AHP with experts’ priorities , 2021, Journal of Asian Architecture and Building Engineering.
[7] Jian Zhao,et al. Experimental study on crack initiation and propagation of wood with LT-type crack using digital image correlation (DIC) technique and acoustic emission (AE) , 2021, Wood Science and Technology.
[8] Salvatore Gerbino,et al. Combining Integrated Informative System and Historical Digital Twin for Maintenance and Preservation of Artistic Assets , 2021, Sensors.
[9] Y. Song,et al. Digital Twin-driven framework for fatigue life prediction of steel bridges using a probabilistic multiscale model: Application to segmental orthotropic steel deck specimen , 2021, Engineering Structures.
[10] Xiaoyuan He,et al. Optimization of multiscale digital speckle patterns for multiscale deformation measurement using stereo-digital image correlation. , 2021, Applied optics.
[11] Rute C. Sofia,et al. A Performance Analysis of Internet of Things Networking Protocols: Evaluating MQTT, CoAP, OPC UA , 2021, Applied Sciences.
[12] G. Ormondroyd,et al. Gap-Fillers for Wooden Artefacts Exposed Outdoors—A Review , 2021, Forests.
[13] Tiejun Wang,et al. A novel and efficient method for wood–leaf separation from terrestrial laser scanning point clouds at the forest plot level , 2021, Methods in Ecology and Evolution.
[14] Zhanhu Guo,et al. Immobilization of graphitic carbon nitride on wood surface via chemical crosslinking method for UV resistance and self-cleaning , 2021, Advanced Composites and Hybrid Materials.
[15] Thomas Tannert,et al. Reinforcement of Light-Frame Wood Structures , 2021, RILEM State-of-the-Art Reports.
[16] David Heesom,et al. Implementing a HBIM approach to manage the translocation of heritage buildings , 2020, Engineering, Construction and Architectural Management.
[17] Juan Wang,et al. A review of the long-term effects of humidity on the mechanical properties of wood and wood-based products , 2020, European Journal of Wood and Wood Products.
[18] F. Frasca,et al. Investigation on the use of hygrothermal modelling for paper collections , 2020, IOP Conference Series: Materials Science and Engineering.
[19] Riparbelli Lorenzo,et al. Learning from Objects: the use of advanced numerical methods to exploit a complete set of information from experimental data, for the Mona Lisa’s Digital-Twin , 2020, IOP Conference Series: Materials Science and Engineering.
[20] W. Xu,et al. Effects of Shellac Treatment on Wood Hygroscopicity, Dimensional Stability and Thermostability , 2020, Coatings.
[21] Ru-yuan Yang,et al. Application and Progress of Reinforcement Technology for Chinese Ancient Buildings with Wood Structure , 2020, Geotechnical and Geological Engineering.
[22] Elena Lucchi,et al. Environmental Risk Management for Museums in Historic Buildings through an Innovative Approach: A Case Study of the Pinacoteca di Brera in Milan (Italy) , 2020, Sustainability.
[23] Meng Zhang,et al. Digital Twin Enhanced Dynamic Job-Shop Scheduling , 2020 .
[24] Pierre Hallot,et al. Digital Twin: Research Framework to Support Preventive Conservation Policies , 2020, ISPRS Int. J. Geo Inf..
[25] Sun Lei,et al. Dynamic Analysis of Digital Twin System Based on Five-Dimensional Model , 2020, Journal of Physics: Conference Series.
[26] Jay Lee,et al. Integration of digital twin and deep learning in cyber‐physical systems: towards smart manufacturing , 2020 .
[27] Stefano Sfarra,et al. Measuring the Water Content in Wood Using Step-Heating Thermography and Speckle Patterns-Preliminary Results , 2020, Sensors.
[28] B. Mazela,et al. Dimensional Stability and Moisture Properties of Gap-Fillers Based on Wood Powder and Glass Microballoons , 2020, Studies in Conservation.
[29] I. Yasin,et al. Experimental Study of Patching Method on the Repair of Partially Decayed Teak (Tectona grandis) Wood Beams , 2019, IOP Conference Series: Earth and Environmental Science.
[30] Andrew Y. C. Nee,et al. Enabling technologies and tools for digital twin , 2019 .
[31] Dong Zhao,et al. The Song Dynasty Shipwreck Monitoring and Analysis Using Acoustic Emission Technique , 2019, Forests.
[32] S. Corbellini,et al. Environmental monitoring in the cultural heritage field⋆ , 2019, The European Physical Journal Plus.
[33] Andrew Y. C. Nee,et al. Digital Twins and Cyber–Physical Systems toward Smart Manufacturing and Industry 4.0: Correlation and Comparison , 2019, Engineering.
[34] A. Silva,et al. Protection value and functional service life of heritage timber buildings , 2019 .
[35] Samad M. E. Sepasgozar,et al. Numerical Analysis of the Creep and Shrinkage Experienced in the Sydney Opera House and the Rise of Digital Twin as Future Monitoring Technology , 2019, Buildings.
[36] Ekta Baranwal,et al. Application of Unmanned Aerial Vehicle (UAV) for Damage Assessment of a Cultural Heritage Monument , 2019 .
[37] He Zhang,et al. Digital Twin in Industry: State-of-the-Art , 2019, IEEE Transactions on Industrial Informatics.
[38] V. Meltzer,et al. Consolidation of very degraded cultural heritage wood artefacts using radiation curing of polyester resins , 2019, Radiation Physics and Chemistry.
[39] R. Fort,et al. Microclimatic monitoring in an historic church fitted with modern heating: Implications for the preventive conservation of its cultural heritage , 2018, Building and Environment.
[40] Dong Zhao,et al. Deformation Monitoring System Based on 2D-DIC for Cultural Relics Protection in Museum Environment with Low and Varying Illumination , 2018, Mathematical Problems in Engineering.
[41] Vivi Tornari,et al. On development of portable digital holographic speckle pattern interferometry system for remote‐access monitoring and documentation in art conservation , 2018, Strain.
[42] Valentina Zaccaria,et al. Fleet Monitoring and Diagnostics Framework Based on Digital Twin of Aero-Engines , 2018, Volume 6: Ceramics; Controls, Diagnostics, and Instrumentation; Education; Manufacturing Materials and Metallurgy.
[43] Fei Tao,et al. Digital twin-driven product design, manufacturing and service with big data , 2017, The International Journal of Advanced Manufacturing Technology.
[44] I. S. M. Radzuan,et al. AN EXPLORATION OF DISASTER RISK TO CULTURAL HERITAGE ASSETS: TOWARDS EFFECTIVE CONSERVATION , 2018 .
[45] Fei Tao,et al. Digital Twin Service towards Smart Manufacturing , 2018 .
[46] Andrew Y. C. Nee,et al. Digital twin driven prognostics and health management for complex equipment , 2018 .
[47] D. Theodossopoulos. Nineteenth-century housing preventive conservation in Edinburgh and its Western European context , 2017 .
[48] Elena Lucchi,et al. Review of preventive conservation in museum buildings , 2017 .
[49] Meng Zhang,et al. Digital Twin Shop-Floor: A New Shop-Floor Paradigm Towards Smart Manufacturing , 2017, IEEE Access.
[50] Lee Johnson,et al. A Simulation-Based Digital Twin for Model-Driven Health Monitoring and Predictive Maintenance of an Automotive Braking System , 2017, Modelica.
[51] Claudio Margottini,et al. Historical accesses to UNESCO cultural heritages: engineering geology for the sustainable conservation of Petra Siq , 2017, Innovative Infrastructure Solutions.
[52] Junrui Li,et al. Whole-field thickness strain measurement using multiple camera digital image correlation system , 2017 .
[53] Sankaran Mahadevan,et al. Dynamic Bayesian Network for Aircraft Wing Health Monitoring Digital Twin , 2017 .
[54] B. R. Seshadri,et al. Structural Health Management of Damaged Aircraft Structures Using the Digital Twin Concept , 2017 .
[55] Eros Agosto,et al. 3D Models in Cultural Heritage: Approaches for Their Creation and Use , 2017 .
[56] M. Malagodi,et al. Shellac/nanoparticles dispersions as protective materials for wood , 2016 .
[57] Elena Lucchi,et al. Multidisciplinary risk-based analysis for supporting the decision making process on conservation, energy efficiency, and human comfort in museum buildings , 2016 .
[58] Xavier Romão,et al. A framework for the simplified risk analysis of cultural heritage assets , 2016 .
[59] Elena Lucchi,et al. Simplified assessment method for environmental and energy quality in museum buildings , 2016 .
[60] Kyriacos Themistocleous,et al. Risk assessment of cultural heritage sites clusters using satellite imagery and GIS: the case study of Paphos District, Cyprus , 2016, Natural Hazards.
[61] Min Ji Kim,et al. Predicting influence of changes in indoor air temperature and humidity of wooden cultural heritages by door opening on their conservation environment , 2015 .
[62] K. Balen. Preventive Conservation of Historic Buildings , 2015 .
[63] Andreas J. Brunner,et al. Damage evolution in wood – pattern recognition based on acoustic emission (AE) frequency spectra , 2015 .
[64] D. Gregory,et al. Selective attack of waterlogged archaeological wood by the shipworm, Teredo navalis and its implications for in-situ preservation , 2015 .
[65] Michael A. Sutton,et al. Recent Advances and Perspectives in Digital Image Correlation , 2015 .
[66] Publisher Kunderi Mahaboob,et al. International Relations and Diplomacy , 2014 .
[67] Yang Chang-ming,et al. Weights of the Value Assessment Indicators in Integrated Conservation of Modern Architectural Heritage , 2014 .
[68] Simon Lambert. The Early History of Preventive Conservation in Great Britain and the United States (1850–1950) , 2014 .
[69] Danijel Rebolj,et al. Systematic approach for sustainable conservation , 2014 .
[70] K. Przybył. Fungi and bacteria associated with the wet and brown wood in trunk of Betula pendula trees , 2014 .
[71] F. Palla,et al. Exotic insect pests: The impact of the Red Palm Weevil on natural and cultural heritage in Palermo (Italy) , 2013 .
[72] M. Colombini,et al. The role of organic and inorganic indoor pollutants in museum environments in the degradation of dammar varnish. , 2013, The Analyst.
[73] LU An-jin,et al. Application of Scanning Electron Microscope Technologies in Wood Industry , 2013 .
[74] U. Tang,et al. Risk assessment of traffic-related air pollution in a world heritage city , 2013, International Journal of Environmental Science and Technology.
[75] Anouk Stulens,et al. Heritage Recording and Information Management as a Tool for Preventive Conservation, Maintenance, and Monitoring: The Approach of Monumentenwacht in the Flemish Region (Belgium) , 2012 .
[76] Heidi Wirilander,et al. Preventive Conservation: a Key Method to Ensure Cultural Heritage s Authenticity and Integrity in Preservation Process , 2012 .
[77] Mario Santana Quintero,et al. Risk management at heritage sites: A case study of the Petra world heritage site , 2012 .
[78] Marion F. Mecklenburg,et al. An evaluation of daylight distribution as an initial preventive conservation measure at two Smithsonian Institution Museums, Washington DC, USA , 2011 .
[79] W. Boer,et al. Phylogenetic composition and properties of bacteria coexisting with the fungus Hypholoma fasciculare in decaying wood , 2009, The ISME Journal.
[80] Masamitsu Ohta,et al. Deterioration Character of Aged Timbers , 2008 .
[81] A. Preston,et al. A brief review of the past, present and future of wood preservation. , 2007, Pest management science.
[82] Bo Karlsson,et al. Extraction of features from ultrasound acoustic emissions: a tool to assess the hydraulic vulnerability of Norway spruce trunkwood? , 2006, The New phytologist.
[83] V. Cnudde,et al. Detection and distribution analysis of organosilicon compounds in wood by means of SEM-EDX and micro-CT , 2006 .
[84] Norishige Chiba,et al. CG Representation of Wood Aging with Distortion, Cracking and Erosion , 2004 .
[85] Hilde van der Togt,et al. Publisher's Note , 2003, J. Netw. Comput. Appl..
[86] P Barker,et al. Principles for the Conservation of Heritage Sites in China , 2002 .
[87] A. Schniewind,et al. Corrosion Behavior of Wood , 2001 .
[88] R. W. Berry,et al. Recognising Wood Rot and Insect Damage in Buildings , 1992 .
[89] L. Guo-qing. Archaeological evidence for the use of‘chu‐nam’on the 13th century Quanzhou ship, Fujian Province, China , 1989 .
[90] Anthony E.A. Werner,et al. The conservation of antiquities and works of art : treatment, repair and restoration , 1957 .