Chrono: A Conceptual Design Framework for Temporal Entities

Author(s):  
Sonia Bergamaschi ◽  
Claudio Sartori
Procedia CIRP ◽  
2018 ◽  
Vol 72 ◽  
pp. 586-591
Author(s):  
Haibo Hong ◽  
Zhenhua Jiang ◽  
Yuehong Yin

2022 ◽  
pp. 1-28
Author(s):  
Mingyu Lee ◽  
Youngseo Park ◽  
Hwisang Jo ◽  
Kibum Kim ◽  
Seungkyu Lee ◽  
...  

Abstract Tire tread patterns have played an important role in the automotive industry because they directly affect automobile performances. The conventional tread pattern development process has successfully produced and manufactured many tire tread patterns. However, a conceptual design process, which is a major part of the whole process, is still time-consuming due to repetitive manual interaction works between designers and engineers. In the worst case, the whole design process must be performed again from the beginning to obtain the required results. In this study, a deep generative tread pattern design framework is proposed to automatically generate various tread patterns satisfying the target tire performances in the conceptual design process. The main concept of the proposed method is that desired tread patterns are obtained through optimization based on integrated functions, which combine generative models and tire performance evaluation functions. To strengthen the effectiveness of the proposed framework, suitable image pre-processing, generative adversarial networks (GANs), 2D image-based tire performance evaluation functions, design generation, design exploration, and image post-processing methods are proposed with the help of domain knowledge of the tread pattern. The numerical results show that the proposed automatic design framework successfully creates various tread patterns satisfying the target tire performances such as summer, winter, or all-season patterns.


Author(s):  
E-Ming Chan ◽  
Ah-Lian Kor ◽  
Kok Weng Ng ◽  
Mei Choo Ang ◽  
Amelia Natasya Abdul Wahab

Designs ◽  
2021 ◽  
Vol 6 (1) ◽  
pp. 3
Author(s):  
Faten Ezrin Azhar ◽  
Eujin Pei

This research investigates the communication barriers between designers and engineers in designing 4D Printing parts. We have proposed a conceptual design framework for 4D Printing symbols as the communication tool. Then, we have recruited sixty-fifty designers and engineers who participated in our online experiments. The focus of the online survey is to find out how designers and engineers understand reciprocal communication by using the proposed symbols. Our results showed that 85% of participants could understand the 4D Printing symbols correctly. The study concludes that using the conceptual framework can help designers and engineers communicate 4D Printing element information and stimulate design ideas effectively.


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