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A Discrete Manufacturing Workshop Scheduling Method Based on Improved Multi-objective Jaya Algorithm

A discrete manufacturing workshop, multi-target technology, applied in the field of intelligent manufacturing, can solve the problems of poor energy saving and emission reduction, unreasonable production scheduling plan, low production efficiency, etc., to improve energy saving and emission reduction, reduce the impact of human intervention, improve The effect of production efficiency

Active Publication Date: 2022-04-12
无锡思睿特智能科技有限公司
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Problems solved by technology

[0005] Aiming at the shortcomings of the existing discrete manufacturing workshop production planning and scheduling methods with low accuracy, unreasonable production scheduling scheme, poor energy saving and emission reduction effect, and low production efficiency, the present invention provides a discrete manufacturing based on the improved multi-objective Jaya algorithm. The production scheduling method in the workshop has high accuracy, effectively improves the rationality of production planning and production efficiency, and has a good effect on energy saving and emission reduction

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  • A Discrete Manufacturing Workshop Scheduling Method Based on Improved Multi-objective Jaya Algorithm
  • A Discrete Manufacturing Workshop Scheduling Method Based on Improved Multi-objective Jaya Algorithm
  • A Discrete Manufacturing Workshop Scheduling Method Based on Improved Multi-objective Jaya Algorithm

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Embodiment Construction

[0065] Below in conjunction with accompanying drawing, the present invention will be further described:

[0066] Such as Figure 1-8 As shown, the present invention provides a method for scheduling production in a discrete manufacturing workshop based on the improved multi-objective Jaya algorithm, which includes the following steps, as figure 1 as shown,

[0067] S1: Monitor the real-time status of the discrete manufacturing workshop through the Internet of Things system and collect data; for example, an IoT system based on RFID technology can be used to monitor the real-time status and process data.

[0068] S2: Preprocess the collected data and capture information about abnormal conditions to obtain effective workshop data.

[0069] S3: Use the abnormal event database to match the effective workshop data, analyze and judge whether the abnormal situation affects the processing time of the workpiece, and if the abnormal situation affects the processing time of the workpiece...

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Abstract

The present invention provides a production scheduling method for discrete manufacturing workshops based on the improved multi-objective Jaya algorithm, which has high accuracy, effectively improves the rationality and production efficiency of production plan layout, and has good energy saving and emission reduction effects. It includes the following steps , through the Internet of Things system to monitor the real-time status of discrete manufacturing workshops, and through data processing, analyze and judge the impact of abnormal conditions on the processing time of workpieces. If abnormal conditions affect the processing time of workpieces, the information of abnormal conditions will also be input to In the production scheduling system, through the evaluation system of the production scheduling system, the maximum completion time and the carbon emission of the workshop are at the minimum level at the same time, and the mathematical optimization model and the improved multi-objective Jaya algorithm for statistical optimization are mainly based on machine tools. Obtain the optimal production scheduling plan.

Description

technical field [0001] The invention relates to the technical field of intelligent manufacturing, in particular to a production scheduling method for a discrete manufacturing workshop based on an improved multi-objective Jaya algorithm. Background technique [0002] The machinery manufacturing industry provides technical equipment for the entire national economy, but at the same time it consumes a lot of resources and energy and generates carbon emissions in the production process, which has an impact on the environment. For example, carbon emissions will not only affect climate change, but also acidify the ocean and soil imbalance. Therefore, a reasonable production plan plays an important role in controlling energy consumption in production and processing, reducing carbon emissions, and realizing a green, low-carbon, and sustainable production model. [0003] In discrete manufacturing workshops, the main factors affecting energy consumption and carbon emissions include mac...

Claims

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Application Information

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Patent Type & Authority Patents(China)
IPC IPC(8): G05B13/04
Inventor 吉卫喜蔡酉勇吉伟伟孙琳
Owner 无锡思睿特智能科技有限公司
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