Citation: Bin Hu, Yong Zhang, Ying Liu, Rao Li. Research on Zoning Allocation Method of Earthwork Based on 3D Real Scene and BIM Model. Journal of Information Technologyin Civil Engineering and Architecture, 2021, 13(6): 1-7. doi: 10.16670/j.cnki.cn11-5823/tu.2021.06.01
2021, 13(6): 1-7. doi: 10.16670/j.cnki.cn11-5823/tu.2021.06.01
Research on Zoning Allocation Method of Earthwork Based on 3D Real Scene and BIM Model
1. | Shantui Construction Machinery Co., Ltd., Ji′ning 272073, China |
2. | Wuhan Municipal Construction Group Co., Ltd., Wuhan 430023, China |
3. | School of Civil & Hydraulic Engineering, Huazhong University of Science & Technology, Wuhan 430074, China |
Using traditional CAD drawings for earthwork calculation not only requires a lot of manpower and material resources, the calculated earthwork amount is quite different from the actual. In the actual construction, most project managers make earthwork allocation plans based on actual engineering experience which cann′t meet the earthwork deployment of large and complex projects. Therefore, it is very important to establish an earthwork allocation model based on the accurate calculation of the earthwork volume to satisfy the principle of digging and filling balance and global optimization, and to formulate an earthwork allocation plan. This article relies on an airport project to provide the most optimized earthwork allocation plan. It mainly introduces the basic ideas and methods for calculating the amount of earthwork based on the three-dimensional real scene and BIM model, and uses MATLAB to calculate the earthwork based on the mathematical model of operations research linear programming. The deployment plan is used to verify the feasibility of the method through an engineering example at an airport.
[1] |
邓朗妮, 罗日生, 郭亮, 等. 基于线性规划数学模型算法的土方调配[J]. 土木工程与管理学报, 2018, 35(2): 25-31.doi: 10.3969/j.issn.2095-0985.2018.02.004 |
[2] |
曹明振, 李岩松, 王江悦. 无人机实景建模辅助BIM+3DGIS在建筑改造设计中的应用研究[C]. 2020年工业建筑学术交流会论文集(中册), 2020, 399-402. |
[3] |
杨海霞, 郭清. 应用数字高程模型(DEM)实时查询地面任意点高程的新方法[J]. 华北自然资源, 2020(1): 72-73. |
[4] |
罗杨. 数字高程模型发展与应用前景概述[J]. 化工管理, 2019(9): 21.doi: 10.3969/j.issn.1008-4800.2019.09.011 |
[5] |
侯铁, 王大铭, 冉巧. 基于遥感影像的三维地形场景模拟及其在市政工程领域的应用探索[A]. 第五届全国BIM学术会议论文集[C]. 2019, 5. |
[6] |
席靖智. 基于DEM的工程土方计算方法优化分析及应用研究[D]. 重庆交通大学, 2013. |
[7] |
李钦荣. 数字高程模型在不规则区域土方计算中的应用[J]. 科技资讯, 2009(26): 70-71.doi: 10.3969/j.issn.1672-3791.2009.26.056 |
[8] |
黄富强. 数字高程模型在金堆城矿山工程量计算中的应用[J]. 矿山测量, 2018, 46(5): 107-108, 118.doi: 10.3969/j.issn.1001-358X.2018.05.025 |
[9] | |
[10] |
BASZCZAK-BAK W, JANOWSKI A, KAMIN'SKI W, et al. Application of the Msplit Method for Filtering Airborne Laser Scanning Data-sats to Estimate Digital Terrain Models[J]. International Journal of Remote Sensing, 2015, 36(9): 2421-2437.doi: 10.1080/01431161.2015.1041617 |
[11] |
苏永涛, 邢艳秋, 焦义涛, 等. 机载激光雷达林区数字高程模型的建立[J]. 东北林业大学学报, 2017, 45(10): 30-34.doi: 10.3969/j.issn.1000-5382.2017.10.008 |
[12] |
景明, 白中科, 崔艳, 等. 基于线性规划和数字高程模型的排土场复垦土方调配优化[J]. 金属矿山, 2013(2): 130-134.doi: 10.3969/j.issn.1001-1250.2013.02.035 |
[13] |
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