Přehled o publikaci
	
		
		
		2014
			
	    
	
	
    Shape optimization of the current body located in the cooling canal
SALAČ, Petr a Václav DVOŘÁKZákladní údaje
Originální název
Shape optimization of the current body located in the cooling canal
	Autoři
SALAČ, Petr (203 Česká republika, garant, domácí) a Václav DVOŘÁK (203 Česká republika)
			Vydání
 AIP Conf. Proc. 1631. Melvill, NY, USA, AIP Conf. Proc. 1631, od s. 104-110, 7 s. 2014
			Nakladatel
American Institute of Physics Inc.
		Další údaje
Jazyk
angličtina
		Typ výsledku
Stať ve sborníku
		Obor
20000 2. Engineering and Technology
		Stát vydavatele
Spojené státy
		Utajení
není předmětem státního či obchodního tajemství
		Forma vydání
elektronická verze "online"
		Odkazy
Kód RIV
RIV/46747885:24510/14:#0001205
		Organizace
Fakulta přírodovědně-humanitní a pedagogická – Technická univerzita v Liberci – Repozitář
			ISBN
978-0-7354-1270-5
		ISSN
UT WoS
000346058100016
		Klíčová slova anglicky
Shape optimization; conduction of heat in stationary flow; incompressible potential flow
		Příznaky
Mezinárodní význam, Recenzováno
		Návaznosti
TA03010852, projekt VaV. 
			
				
				Změněno: 3. 4. 2015 11:30, Petr Salac
				
		Anotace
V originále
Shape optimization of the current body located in the cooling canalThe contribution is the second step of the optimization process introduced on AMEE’13 where the position of cooling canal was searched. In this paper the outward shape of the regulation current body located in the axis of the system is optimized to obtain required temperature on the outward surface of the tube. The algorithm was designed and debugged for simplified model, in which the plunger is replaced by the tube, which is surrounded by thermal source representing cooled glass moulded piece from outward, and the cooling water of temperature 15oC on input flowing through. The state problem is formulated as a stationary heat conduction process. The cost functional is taken as the second power of L2 distance of temperature from the given constant value on the outward boundary of the tube. The results of the numerical optimization to three required target temperatures 700, 750 and 800oC of the outward tube surface together with the distribution of temperatures on the interface between the tube and the heat source before and after the optimization process are presented