Quaternary Fission as a Virtual Process

2021 ◽  
Vol 85 (5) ◽  
pp. 569-573
Author(s):  
S. G. Kadmensky ◽  
L. V. Titova
Author(s):  
David E. Lee ◽  
H. Thomas Hahn

Abstract A process specification language is being developed for virtual manufacturing that provides a structured portable definition of a given manufacturing process as well as the ability to specify the temporal relationships between individual operation steps that compose a process. Based on the concepts embodied in markup languages such as HTML, SGML and XML, a portable process definition structure is defined. This structure provides a template from which virtual process specifications can be created. Subsequently, these structures can be exchanged between development environments for virtual process engineering and the actualized manufacturing facilities where processes are implemented. In addition, dependencies in time between the operation steps of a process such as common start times and operation serialization can be represented to allow for a complete specification of temporal behavior of a given manufacturing process. By providing this explicit mechanism for representing temporal constraints, a virtual manufacturing process can be viewed and utilized both in a localized application on a single virtual factory floor as well as distributed across multiple, interlinked virtual environments.


Author(s):  
David E. Lee ◽  
H. Thomas Hahn

Abstract In order to address the computational costs of modeling and analyzing manufacturing processes, a novel approach to virtual manufacturing process engineering using generic modular operations is presented. Relying on a state based representation of operation control for a simplified virtual manufacturing workcell, the valid states for each sequence of generic modular operations are aggregated and both operation state and processing constraints applied to specify the subtasks required to complete each step in a product’s process plan. By adopting this state based control approach, virtual process engineering provides a direct mechanism to map virtual process representations onto actualized processes. Using these generic modular operations and their temporal and processing dependencies, the computationally complex elements of virtual manufacturing process simulation can be directly identified and an architecture for virtual process development specified. Examples from both machining and assembly processes are provided.


Author(s):  
Jinghai Li ◽  
Wei Ge ◽  
Wei Wang ◽  
Ning Yang ◽  
Xinhua Liu ◽  
...  

Author(s):  
XinMei Shi ◽  
Daan M. Maijer ◽  
Guy Dumont

Controlling and eliminating defects, such as macro-porosity, in die casting processes is an on-going challenge for manufacturers. Current strategies for eliminating defects focus on the execution of a pre-set casting cycle, die structure design or the combination of both. To respond to process variability and mitigate its negative effects, advanced process control methodologies may be employed to dynamically adjust the operational parameters of the process. In this work, a finite element heat transfer model, validated by comparison with experimental data, has been developed to predict the evolution of temperatures and the volume of liquid encapsulation in an experimental casting process. A virtual process, made up of the heat transfer model and a wrapper script for communication, has been employed to simulate the continuous operation of the real process. A stochastic state-space model, based on data from measurements and the virtual process, has been developed to provide a reliable representation of this virtual process. The parameters of the deterministic portion result from system identification of the virtual process, whereas the parameters of the stochastic portion arise from the analysis and comparison of measurement data with virtual process data. The resulting state-space model, which can be extended to a multi-input multi-output model, will facilitate the design of a model-based controller for this process.


Author(s):  
F. GÖNNENWEIN ◽  
P. JESINGER ◽  
M. MUTTERER ◽  
A. M. GAGARSKI ◽  
G. A. PETROV ◽  
...  
Keyword(s):  

Mechatronics ◽  
2020 ◽  
Vol 72 ◽  
pp. 102445
Author(s):  
Mustafa Hakan Turhan ◽  
Ginette Wei Get Tseng ◽  
Kaan Erkorkmaz ◽  
Baris Fidan

2019 ◽  
Vol 126 ◽  
pp. 68-82 ◽  
Author(s):  
Wei Ge ◽  
Li Guo ◽  
Xinhua Liu ◽  
Fanyong Meng ◽  
Ji Xu ◽  
...  

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