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React, { HTMLAttributes } from 'react'\nimport cn from 'classnames'\n\nimport * as s from './List.module.scss'\n\nconst List: React.FC> = ({\n className,\n ...props\n}) => {\n return (\n \n )\n}\n\nexport default List\n","// extracted by mini-css-extract-plugin\nexport var wrapper = \"List-module--wrapper--pipEJ\";","// extracted by mini-css-extract-plugin\nexport var section = \"Section-module--section--t2Kke\";\nexport var bg_white = \"Section-module--bg_white--K-nBF\";\nexport var bg_light = \"Section-module--bg_light--kwwQL\";\nexport var bg_dark = \"Section-module--bg_dark--vZSrp\";","import React from 'react'\nimport cn from 'classnames'\n\nimport * as s from './Section.module.scss'\n\ninterface SectionProps {\n className?: string\n bgColor?: 'white' | 'light' | 'dark'\n id?: string\n}\n\nconst Section: React.FC = ({\n className,\n id,\n bgColor,\n children,\n}) => {\n return (\n \n {children}\n \n )\n}\n\nexport default Section\n","import React from 'react'\nimport Section from '../Common/Section'\nimport Container from '../Common/Container'\n\nimport * as s from './NewsSectionBlock.module.scss'\n\ninterface NewsSectionBlockProps {\n date?: string\n}\n\nconst NewsSectionBlock: React.FC = ({\n date,\n children,\n}) => {\n return (\n
\n \n {date &&
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\n )\n}\n\nexport default NewsSectionBlock\n","// extracted by mini-css-extract-plugin\nexport var section = \"NewsSectionBlock-module--section--TD9zu\";\nexport var date = \"NewsSectionBlock-module--date--P8Mos\";","import React from 'react'\nimport { StaticImage } from 'gatsby-plugin-image'\nimport cn from 'classnames'\nimport SEO from '../components/seo'\nimport NewsSectionBlock from '../components/NewsSectionBlock'\nimport Link from '../components/Common/Link'\nimport Typography from '../components/Common/Typography'\nimport List from '../components/Common/List'\n\nimport * as s from '../pages/news.module.scss'\n\nconst BimConstructionProjectManagement: React.FC = () => {\n return (\n <>\n \n \n \n BIM technology for construction project management\n \n
\n
\n \n Nikita Pospelov\n \n \n \n \n \n \n
\n \n Head of BIM Department at SIGNAX\n \n
\n \n Building Information Modeling (BIM) has become a ubiquitous tool in\n the construction industry, not only for digital construction but also\n for project management. As BIM continues to evolve, it is essential to\n understand its role in project management throughout the project life\n cycle. This article aims to provide a comprehensive review of the\n integration of BIM and project management in construction projects.\n While there has been a significant increase in research on this topic\n over the past decade, the relationship between BIM and project\n management could be more robust. To address this gap, I propose a BIM\n capabilities framework that summarizes BIM's potential for project\n management in the project life cycle. This framework will help\n construction project teams, and stakeholders integrate BIM with\n project management more effectively, ultimately improving project\n management efficiency in construction projects.\n \n
\n \n \n Fig.1 The Future is here\n \n
\n \n Project management Knowledge areas and Process groups*\n \n \n We typically categorize the project management process into these\n knowledge areas when discussing it:\n \n
    \n
  1. Scope
  2. \n
  3. Schedule
  4. \n
  5. Cost
  6. \n
  7. Quality
  8. \n
  9. Resource
  10. \n
  11. Communication
  12. \n
  13. Risk
  14. \n
  15. Procurement
  16. \n
\n \n The project management process comprises the following process groups:\n \n
    \n
  1. Initiating and Planning
  2. \n
  3. Executing
  4. \n
  5. Monitoring and controlling
  6. \n
  7. Closing and operating
  8. \n
\n \n *In the last iteration of PMBOKĀ® guide 7th edition, the Project\n Management Institute changed the structure of processes and knowledge\n areas. Nevertheless, the core principles of waterfall methodology for\n construction projects remain the same.\n \n
\n \n \n Fig.2 Aerial photogrammetry results\n \n
\n \n Use cases\n \n \n Let me outline the most demanded and valuable BIM use cases relevant\n to various construction project roles.\n \n Initiating and Planning\n Property Developer role\n \n
  • Site analysis
  • \n
  • Concept design review and approval
  • \n
  • Different design variants just in minutes
  • \n
  • Fast cost analysis for each design variant
  • \n
  • VR and AR technology for better visual understanding
  • \n
    \n Lead Consultant role\n \n
  • \n The efficient design process with a small price of a project design\n change\n
  • \n
  • \n Simultaneous multidisciplinary design process and engineering\n analysis\n
  • \n
  • \n Online collaboration with various stakeholders using RFI and Issues\n connected to the BIM model\n
  • \n
  • Identify potential design flaws
  • \n
  • Clash free detailed BIM model and design drawings
  • \n
  • WBS generation for phase planning
  • \n
    \n General Contractor role\n \n
  • \n A convenient way to analyze a project in 3D during the bidding stage\n
  • \n
  • BOQ export based on multiple rules and filters
  • \n
  • \n Resource planning with WBS codes integrated with a 4D BIM model\n
  • \n
  • Create accurate estimates and schedules
  • \n
  • \n Collaborate with developers and consultants to resolve issues\n quickly\n
  • \n
  • \n Plan QA/QC procedures with checklists connected to the BIM model\n
  • \n
    \n Executing\n Property Developer role\n \n
  • Cost and schedule change management
  • \n
  • Design change management
  • \n
    \n Lead Consultant role\n \n
  • Cost and schedule change implementation
  • \n
  • Scope tracking
  • \n
  • Baseline/actual BIM model comparison
  • \n
  • Issue management in the cloud
  • \n
  • Communication management
  • \n
    \n General Contractor role\n \n
  • \n The procurement process, including BIM quantity takeoffs and\n estimates\n
  • \n
  • Daily work progress planning between subcontractor teams
  • \n
  • Construction supervision
  • \n
  • Digital fabrication (CNC and 3D printing)
  • \n
    \n Monitoring and controlling\n Property Developer role\n \n
  • Cost and schedule change control
  • \n
  • Mobile applications for real-time BIM data
  • \n
    \n Lead Consultant role\n \n
  • QA/QC monitoring and controlling
  • \n
  • Online analytics reports and forecasts
  • \n
    \n General Contractor role\n \n
  • Quality control and issue management
  • \n
  • Tracking and marking implemented scope
  • \n
  • Dashboard reports with BIM progress data
  • \n
  • Laser scanning and point clouds comparison
  • \n
    \n Closing and operating\n Property Developer role\n \n
  • Facility operations planning and implementing
  • \n
  • Facility management documentation
  • \n
  • Security management
  • \n
    \n Lead Consultant role\n \n
  • Digital twin development
  • \n
    \n General Contractor role\n \n
  • As-built BIM model development
  • \n
    \n \n As we see, project stakeholders can utilize various BIM use cases at\n any stage of a construction project. The validity of the\n implementation or adoption of each process should always be calculated\n and justified using the ROI ratio.\n \n
    \n
    \n \n \n
    \n \n Fig. 3 Construction BIM model\n \n
    \n \n Developer's Perspective\n \n \n For developers, BIM technology offers a comprehensive view of a\n project, empowering them to make informed decisions from the earliest\n stages. By utilizing BIM during the planning and design phases,\n developers can visualize the final product in a virtual environment,\n allowing for better communication with architects, engineers, and\n various consultants. The technology facilitates the exploration of\n various design options, enabling developers to assess the feasibility,\n cost implications, and potential risks associated with different\n alternatives. BIM also plays a vital role in identifying and resolving\n clashes or conflicts between various building systems before\n construction commences, saving time and money in the long run.\n \n \n Moreover, BIM technology enhances collaboration between developers and\n stakeholders throughout the project lifecycle. By providing a\n centralized digital repository (cloud-based CDE software like Autodesk\n Construction Cloud, Procore, Aconex, Asite, Trimble Connect, Bentley\n ProjectWise, and others), it allows for seamless communication,\n document sharing and coordination of tasks among all parties involved.\n This transparency improves accountability and ensures everyone is on\n the same page regarding project milestones, budgets, and timelines.\n Developers can access real-time updates and monitor the project's\n progress, making timely adjustments when necessary. BIM's ability to\n provide accurate data and simulations enables developers to mitigate\n risks, optimize resources, and ensure the successful completion of\n projects within set parameters.\n \n
    \n \n \n Fig.4 QA/QC monitoring and controlling\n \n
    \n \n Consultant's Perspective\n \n \n For consultants, BIM technology has transformed how they contribute to\n construction projects. BIM offers consultants a collaborative platform\n where they can integrate their expertise and contribute to the design\n and planning process more effectively. By utilizing BIM authoring\n tools such as Revit, Archicad, Tekla, Building Designer, and Allplan,\n consultants can create accurate 3D models and simulations to visualize\n the proposed designs and identify potential conflicts or issues early\n on. This capability enables consultants to provide valuable insights\n and recommendations to optimize the building's performance, energy\n efficiency, and sustainability.\n \n \n BIM technology also improves coordination and communication between\n consultants, reducing the likelihood of errors or discrepancies in the\n project documentation. Consultants can work concurrently on the same\n BIM model, accessing and updating information in real-time, ensuring\n all stakeholders have the most up-to-date data. This collaborative\n approach fosters efficient decision-making, minimizes design changes\n during construction, and improves overall project outcomes.\n \n \n Additionally, BIM technology enables consultants to streamline their\n workflows and increase productivity. By automating repetitive tasks\n and utilizing BIM's data-driven approach, consultants can spend less\n time on manual drafting and more time on value-added activities such\n as analysis, problem-solving, and innovation. This shift in focus\n allows consultants to deliver higher-quality designs, meet project\n objectives more efficiently, and provide better value to their\n clients.\n \n
    \n \n \n Fig.5 Laser scanner point cloud and BIM workflow\n \n
    \n \n Contractor's Perspective\n \n \n BIM technology has significantly impacted the role of contractors on\n construction sites. It provides contractors with a comprehensive and\n coordinated virtual model of the project, enabling them to plan better\n and execute construction activities. Using BIM technology, contractors\n can simulate and optimize construction sequences, identify potential\n clashes or interferences, and plan logistics efficiently. This level\n of precision and foresight reduces the likelihood of rework, delays,\n and cost overruns during construction.\n \n \n BIM software such as the SIGNAX suite enhances contractor and\n stakeholder collaboration. Contractors can share the BIM model in the\n cloud-specific work scope with subcontractors, enabling them to\n visualize the project's requirements and constraints accurately. This\n facilitates better coordination and communication, reducing conflicts\n and ensuring the smooth execution of construction tasks. Contractors\n can also leverage BIM's ability to generate accurate quantity\n take-offs, enabling them to estimate material requirements and costs\n more accurately, leading to optimized procurement and cost control.\n \n \n Furthermore, BIM technology enables contractors to manage construction\n progress in real-time. By integrating BIM with project management ERP\n software and cloud-based CDE systems, contractors can track the\n progress of different construction activities, identify bottlenecks,\n and make data-driven decisions to optimize productivity. BIM's\n visualization AR/VR capabilities and 360-degree images also aid in\n communicating construction plans to workers, enhancing safety and\n reducing errors on-site.\n \n
    \n \n \n Fig 6. 360-degree aerial photo comparison\n \n
    \n \n As per each new workflow implementation or business process\n optimization, requirements must be fulfilled.\n \n \n There are three critical prerequisites to maximizing the efficiency of\n BIM technology throughout all stages of construction project\n management.\n \n \n
  • \n To ensure the optimal effectiveness of BIM technology throughout the\n project lifecycle, initiating its continuous usage from its\n inception is crucial. If project phases or stakeholders' tasks are\n omitted from utilizing BIM technology, the value of BIM data for all\n project participants may be compromised.\n
  • \n
  • \n The second crucial requirement is standardization. We have to\n provide arrangements for standardized software implementation.\n Ensure that a process flow for model development, exchanging\n information, archiving, and updating data in real-time is\n established so that no critical information is lost or corrupted.\n
  • \n
  • \n The third necessity is proficient BIM and digital skills among all\n stakeholders. Each project role should receive appropriate training\n to efficiently execute tasks using relevant digital tools.\n
  • \n
    \n \n Drawing from our experience in adopting and implementing digital\n technologies in the construction industry, engaging all stakeholders\n and establishing effective project management workflows can be\n challenging. However, once these fundamental digital requirements are\n successfully implemented, every participant will experience\n substantial value and enhanced work efficiency, benefiting each\n stakeholder involved in the project.\n \n
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