scholarly journals A Pattern Generation Technique for Maximizing Power Supply Currents

Author(s):  
Kunal Ganeshpure ◽  
Alodeep Sanyal ◽  
Sandip Kundu
2020 ◽  
Vol 5 (4) ◽  
pp. 121
Author(s):  
Sisca Octarina ◽  
Devi Gusmalia Juita ◽  
Ning Eliyati ◽  
Putra Bahtera Jaya Bangun

Cutting Stock Problem (CSP) is the determination of how to cut stocks into items with certain cutting rules. A diverse set of stocks is called multiple stock CSP. This study used Pattern Generation (PG) algorithm to determine cutting pattern, then formulated it into a Gilmore and Gomory model and solved by using Column Generation Technique (CGT). Set Covering model was generated from Gilmore and Gomory model. Based on the results, selected cutting patterns in the first stage can be used in the second stage. The combination of patterns generated from Gilmore and Gomory model showed that the use of stocks was more effective than Set Covering model.  


1975 ◽  
Vol 12 (6) ◽  
pp. 1246-1250 ◽  
Author(s):  
F. S. Ozdemir ◽  
C. R. Buckey ◽  
E. D. Wolf

2003 ◽  
Vol 20 (2) ◽  
pp. 248 ◽  
Author(s):  
T. Idé ◽  
M. Suzuki ◽  
M. Noguchi ◽  
H. Mizuta ◽  
H. Numata ◽  
...  

Author(s):  
Kosuke Sugimoto ◽  
Satoshi Ogata

Abstract A dielectric-barrier-discharge plasma actuator (DBD-PA) is an active flow-control device that uses ionic wind generated by electrohydrodynamic (EHD) forces. A DBD-PA controls fluid motion and offers quick response without the need for moving parts. Previous studies have proposed methods for generating various flow patterns with a DBD-PA for fluid control. This paper presents a method for generating multiple flow patterns using a multi-electrode DBD-PA that is driven by a single-channel high-voltage power supply with a relay circuit. In contrast, conventional methods of realizing multiple flow patterns involve the use of a multi-channel power supply. Hence, they have the disadvantage of requiring a complicated power supply system. The proposed method succeeded in realizing several induced-flow modes involving the generation of a directionally controllable wall jet, various sizes of vortices, and an upward jet by altering the switching frequency and switching ratio. In addition, our experimental results indicate that the proposed method can control the flow pattern with a significantly short response time. The direction of the wall jet can be switched within tens to hundreds of milliseconds. Therefore, the proposed method combines simplicity and versatility and is expected to facilitate the realization of multifunctional active flow control in various flow fields, such as flow turbulent boundary layer control, thermal diffusion control, gas mixing, and flame-stability enhancement.


2012 ◽  
Vol 61 (7) ◽  
pp. 986-998 ◽  
Author(s):  
Kunal Ganeshpure ◽  
Alodeep Sanyal ◽  
Sandip Kundu

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