ROTATING TORQUE ESTIMATING SYSTEM FOR MOLTEN METAL CONTAINER AND HEIGHT ESTIMATING METHOD FOR MOLTEN METAL SURFACE IN MOLTEN METAL CONTAINER

PROBLEM TO BE SOLVED: To provide a rotating torque estimating system for a molten metal container for producing sufficient estimating accuracy while reducing a calculating load. SOLUTION: The system uses a first computing means 100 for numerically determining a space in a container from input data f...

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description PROBLEM TO BE SOLVED: To provide a rotating torque estimating system for a molten metal container for producing sufficient estimating accuracy while reducing a calculating load. SOLUTION: The system uses a first computing means 100 for numerically determining a space in a container from input data for a surface position in the container and outputting it, and a second computing means 200 for calculating the shape, volume, surface position, and gravity center position of liquid when entering into the space from input space shape data and attribute data for the liquid entering into the space and outputting them. From the masses and gravity center positions of a container lined refractory 22 and a melt (molten metal 12 and slag 13) calculated by using them and the masses and gravity center positions of hardware 21 and scull 31 calculated separately therefrom, rotating torque is calculated in total for every tilting angle. The system can use a third computing means 300 having a corresponding table for the input and output of the second computing means, instead of using the first and second computing means, and furthermore the system can estimate the height of the molten metal from the output of the second computing means. COPYRIGHT: (C)2005,JPO&NCIPI
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SOLUTION: The system uses a first computing means 100 for numerically determining a space in a container from input data for a surface position in the container and outputting it, and a second computing means 200 for calculating the shape, volume, surface position, and gravity center position of liquid when entering into the space from input space shape data and attribute data for the liquid entering into the space and outputting them. From the masses and gravity center positions of a container lined refractory 22 and a melt (molten metal 12 and slag 13) calculated by using them and the masses and gravity center positions of hardware 21 and scull 31 calculated separately therefrom, rotating torque is calculated in total for every tilting angle. The system can use a third computing means 300 having a corresponding table for the input and output of the second computing means, instead of using the first and second computing means, and furthermore the system can estimate the height of the molten metal from the output of the second computing means. 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The system can use a third computing means 300 having a corresponding table for the input and output of the second computing means, instead of using the first and second computing means, and furthermore the system can estimate the height of the molten metal from the output of the second computing means. 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SOLUTION: The system uses a first computing means 100 for numerically determining a space in a container from input data for a surface position in the container and outputting it, and a second computing means 200 for calculating the shape, volume, surface position, and gravity center position of liquid when entering into the space from input space shape data and attribute data for the liquid entering into the space and outputting them. From the masses and gravity center positions of a container lined refractory 22 and a melt (molten metal 12 and slag 13) calculated by using them and the masses and gravity center positions of hardware 21 and scull 31 calculated separately therefrom, rotating torque is calculated in total for every tilting angle. The system can use a third computing means 300 having a corresponding table for the input and output of the second computing means, instead of using the first and second computing means, and furthermore the system can estimate the height of the molten metal from the output of the second computing means. COPYRIGHT: (C)2005,JPO&amp;NCIPI</abstract><edition>7</edition><oa>free_for_read</oa></addata></record>
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subjects BLASTING
CASTING
CASTING OF METALS
CASTING OF OTHER SUBSTANCES BY THE SAME PROCESSES OR DEVICES
DETAILS OR ACCESSORIES OF FURNACES, KILNS, OVENS, OR RETORTS,IN SO FAR AS THEY ARE OF KINDS OCCURRING IN MORE THAN ONE KINDOF FURNACE
FURNACES
HEATING
KILNS
LIGHTING
MEASURING
MEASURING FORCE, STRESS, TORQUE, WORK, MECHANICAL POWER,MECHANICAL EFFICIENCY, OR FLUID PRESSURE
MEASURING VOLUME, VOLUME FLOW, MASS FLOW OR LIQUIDLEVEL
MECHANICAL ENGINEERING
METERING BY VOLUME
OVENS
PERFORMING OPERATIONS
PHYSICS
POWDER METALLURGY
RETORTS
TESTING
TRANSPORTING
WEAPONS
title ROTATING TORQUE ESTIMATING SYSTEM FOR MOLTEN METAL CONTAINER AND HEIGHT ESTIMATING METHOD FOR MOLTEN METAL SURFACE IN MOLTEN METAL CONTAINER
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