F27B3/20

Fiber oxidation oven with multiple independently controllable heating systems
09598795 · 2017-03-21 · ·

One embodiment is directed to an oven for heating fibers. The oven comprises a plurality of walls forming a chamber and a supply structure disposed within the chamber between first and second ends of the chamber. The supply structure is in communication with a first heating system and is configured to direct heated gas from the first heating system into a first portion of the chamber. The supply structure is in communication with a second heating system and is configured to direct heated gas from the second heating system into a second portion of the chamber.

METHODS OF MELTING FEEDSTOCK USING A SUBMERGED COMBUSTON MELTER
20170074506 · 2017-03-16 ·

Methods of maximizing mixing and melting in a submerged combustion melter (SCM) are described. One method includes melting an inorganic feedstock in an SCM using an arrangement of two or more submerged combustion (SC) burners, the SCM having a length (L) and a width (W), a centerline (C), a north side (N) and a south side (S), and operating the arrangement of SC burners such that a progressively higher percentage of a total combustion flow from the SC burners occurs from SC burners at progressively downstream positions in the SCM. Other methods include operating the N and S SC burners with more combustion flow than the central burners. Other methods include strategic placement of fuel lean SC burners and fuel rich SC burners.

IMMERSION HEATER FOR MOLTEN METAL
20170038146 · 2017-02-09 ·

The invention relates to a device for heating molten metal by the use of a heater that can be immersed into the molten metal. This immersion heater includes an outer cover formed of one or more materials resistant to the molten metal in which the immersion heater is to be used, and a heating element inside of the outer cover, where the heating element is protected from contacting the molten metal.

METALLURGICAL FURNACE
20170030646 · 2017-02-02 ·

An electrode seal for use in a metallurgical furnace, the furnace comprising a furnace space heated by electrodes extending through an aperture into the furnace space. The electrode seal comprises at least three sets of shoes in consecutive lateral contact, each shoe having a biasing member for biasing a surface of the shoe toward one of the electrodes thereby allowing the one electrode to longitudinally move within the electrode seal while providing electrical insulation between the electrode and the aperture.

METALLURGICAL FURNACE
20170030646 · 2017-02-02 ·

An electrode seal for use in a metallurgical furnace, the furnace comprising a furnace space heated by electrodes extending through an aperture into the furnace space. The electrode seal comprises at least three sets of shoes in consecutive lateral contact, each shoe having a biasing member for biasing a surface of the shoe toward one of the electrodes thereby allowing the one electrode to longitudinally move within the electrode seal while providing electrical insulation between the electrode and the aperture.

Tapping device and method using induction heat for melt

A tapping device and method using induction heat for melt comprises melting furnace made of steel; heating unit disposed in the upper part in the melting furnace and made of graphite material; induction coil wound around the heating unit; insulator disposed adjacent to the bottom surface of the lower part of the melting furnace; supporter disposed outside the insulator; and firebricks disposed on the bottom surface of melting furnace and outside the supporter.

Tapping device and method using induction heat for melt

A tapping device and method using induction heat for melt comprises melting furnace made of steel; heating unit disposed in the upper part in the melting furnace and made of graphite material; induction coil wound around the heating unit; insulator disposed adjacent to the bottom surface of the lower part of the melting furnace; supporter disposed outside the insulator; and firebricks disposed on the bottom surface of melting furnace and outside the supporter.

GLASS MELTING FURNACES AND VESSELS WITH IMPROVED THERMAL PERFORMANCE

Glass melting furnaces include a melting vessel that includes a floor, a feeding mechanism configured to feed raw materials into the melting vessel, a heating mechanism configured to convert raw materials fed into the melting vessel into molten glass, and a cooling mechanism extending within the floor and configured to flow a cooling fluid therethrough.

HYBRID RECYCLING FURNACE USING IMMERSION MELTING EQUIPMENT
20250172338 · 2025-05-29 ·

Examples of the present disclosure relate to a recycling furnace that may include a heating chamber configured to receive solid metal and an immersion heating unit adjacent to the heating chamber. The solid metal may undergo a thermolysis pre-treatment in the heating chamber, and the heating chamber may include a furnace that is configured to create liquid metal by melting the solid metal after the thermolysis pre-treatment. The immersion heating unit is configured to receive and heat the liquid metal, and each immersion heater is immersed in liquid metal.

HYBRID RECYCLING FURNACE USING IMMERSION MELTING EQUIPMENT
20250172338 · 2025-05-29 ·

Examples of the present disclosure relate to a recycling furnace that may include a heating chamber configured to receive solid metal and an immersion heating unit adjacent to the heating chamber. The solid metal may undergo a thermolysis pre-treatment in the heating chamber, and the heating chamber may include a furnace that is configured to create liquid metal by melting the solid metal after the thermolysis pre-treatment. The immersion heating unit is configured to receive and heat the liquid metal, and each immersion heater is immersed in liquid metal.