Augmented Reality Machine Inspection With Interactive Models
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Solution Overview
Problem
Conventional methods of modeling building equipment rely on virtual modeling and physical operational parameters, lacking the integration of augmented reality applications to enhance equipment inspection and operation prediction.
Innovation Solution
An augmented reality application is provided that includes modules for decal recognition, operation detection, annual inspection, machine visualization, attachment visualization, and remote troubleshooting, enabling users to interact with equipment models and manuals through a user interface, facilitating detailed inspections and troubleshooting.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Reliability
If conventional virtual modeling and physical operational parameters are used for equipment modeling, then the modeling process is simple, but the predictive capability and reliability of equipment operation are insufficient
Solution Approach 1:
The patent merges virtual modeling with augmented reality technology to create an integrated equipment modeling system. The AR application combines virtual equipment models with real-world visualizations, allowing users to view equipment models in both virtual and augmented reality modes, thereby enhancing predictive capability while managing system complexity through unified architecture
Solution Approach 2:
The patent introduces augmented reality as a new dimension for equipment visualization. By displaying equipment models in AR mode, the system adds a spatial and interactive dimension to traditional virtual modeling, enabling more accurate predictive capability through immersive visualization without proportionally increasing system complexity
2Productivity
If detailed equipment models and additional material are provided, then inspection efficiency and troubleshooting accuracy improve, but information processing time and system complexity increase
Solution Approach 1:
The system performs preliminary actions by pre-processing and structuring equipment data into standardized models before user interaction. The AR application pre-loads equipment information and organizes it for rapid retrieval, enabling detailed inspection data to be accessed quickly during actual inspection tasks, thereby improving inspection efficiency without proportionally increasing processing time
Solution Approach 2:
The patent creates virtual copies of equipment models that can be displayed and interacted with in AR environment. These digital twins replicate equipment characteristics and behavior, allowing inspectors to examine detailed models without accessing physical equipment, thus improving inspection efficiency while minimizing additional processing time through reusable model instances
3Ease of operation
If augmented reality functionality is integrated into the system, then user interaction with equipment models is enhanced, but device complexity and development difficulty increase
Solution Approach 1:
The AR application implements multi-functionality by enabling users to switch between virtual and augmented reality modes, access different equipment views, and perform multiple inspection tasks through a single unified interface. This universal design enhances user interaction capability while managing complexity through consolidated functionality rather than separate specialized systems
Solution Approach 2:
The patent introduces an AR application as an intermediary layer between users and equipment data. This mediator translates complex equipment information into intuitive visual representations and handles AR rendering, user input, and data processing centrally, thereby enhancing ease of operation while containing system complexity within the intermediary layer rather than distributing it throughout the entire system
Data Source
AI summary
A method for optimizing equipment inspection for a machine using augmented reality (AR) is shown. The method includes providing an AR application to a user interface. The method further includes displaying one or more selectable widgets on the user interface via AR functionality. The method further includes receiving, via the user interface, a selection of the selectable widget, the selection providing instructions to provide additional material based on the selectable widget. The method further includes displaying a detailed model of the machine based on the additional material received.


