H05B2203/019

HEATING MODULE

A heating module includes at least one cold conductor element and at least one electrical heating element that is different from the at least one cold conductor element. The at least one cold conductor element and the at least one heating element are electrically connectable in parallel. The at least one cold conductor element and the at least one heating element are connected with one another thermally in a heat-transferring manner.

Electric heater based electronic smoking device
10993476 · 2021-05-04 · ·

The present invention discloses an electronic smoking device, comprising a power supply, a controller and a heater, wherein the heater is a cylindrical shape having in the middle a heating chamber into which a cigarette is inserted, and the heater comprises at least one heating unit comprising an electronic switch and an annular electric heating element; and the electric heating element is connected to the power supply by the electronic switch, and a control terminal of the electronic switch is connected to a control signal output terminal of the controller. In the present invention, tobacco in a cigarette is heated by an electric heater so that a smoker can just smoke nicotine produced by heating the tobacco. The electric heater will not produce naked flame and therefore the heated tobacco will not produce tar and carbon monoxide, so that the harm of the tobacco to the smoker can be reduced.

Heater-actuated flow bypass

A fluid control system is provided that in one form includes a first flow channel, a second flow channel, a heater disposed in the second flow channel, and a fluid control device disposed upstream from the first and second flow channels. When the heater is turned on, the fluid control device changes a fluid flow rate through at least one of the first flow channel and the second flow channel. In another form, the fluid control system includes a bypass conduit, a heater disposed within the bypass conduit, and a fluid control device disposed near the inlet and outlet of the bypass conduit. In still another form, the fluid control system includes a regeneration device disposed downstream from at least one exhaust aftertreatment system and closes an outlet of the exhaust pipe.

METHOD FOR OPERATING A HEATING SYSTEM AND KITCHEN MACHINE

A method for operating an electric heating system of a kitchen machine and a kitchen machine for carrying out the method are proposed, wherein a measuring temperature of the heating system is determined by means of a temperature element in order to carry out a calibration of a heating element and/or to compare the measuring temperature with a heating temperature of the heating element determined by means of the heating element for identifying a critical heating state.

FOOD PREPARATION APPARATUS WITH ELECTRICAL PTC THERMISTORS CONNECTED IN PARALLEL
20210144814 · 2021-05-13 ·

The present disclosure relates to food preparation apparatus with an electrical heating device comprising at least two electrical PTC thermistors for heating a food in a food preparation room, wherein the electrical PTC thermistors are electrically connected in parallel. The parallel-connected PTC thermistors are electrically connected to one another by one or more electrical bridges.

ELECTRICALLY CONDUCTIVE PTC INK WITH DOUBLE SWITCHING TEMPERATURES AND APPLICATIONS THEREOF IN FLEXIBLE DOUBLE-SWITCHING HEATERS
20210134496 · 2021-05-06 ·

An article comprising a double-switching heater that comprises a double-switching PTC ink deposited on a flexible substrate to form one or more resistors. The double-switching PTC ink comprises a first resin and a second resin; the first resin provides a first PTC effect within a first temperature range (T1, T2); the second resin provides a second PTC effect within a second temperature range (T3, T4), where T3T2; the first resin has an NTC effect above the first temperature range; the second PTC effect is greater than the first PTC effect; and the second PTC effect overlaps with, and is greater than, the NTC effect of the first resin. The substrate can be either thermal polyurethane, nylon or a polyester blend.

Heater element as sensor for temperature control in transient systems

A method of predicting the temperature of a resistive heating element in a heating system is provided. The method includes obtaining resistance characteristics of resistive heating elements and compensating for variations in the resistance characteristics over a temperature regime. The resistance characteristics of the resistive heating element include, but are not limited to, inaccuracies in resistance measurements due to strain-induced resistance variations, variations in resistance due to the rate of cooling, shifts in power output due to exposure to temperature, resistance to temperature relationships, non-monotonic resistance to temperature relationships, system measurement errors, and combinations of resistance characteristics. The method includes interpreting and calibrating resistance characteristics based on a priori measurements and in situ measurements.

Electrically conductive PTC ink with double switching temperatures and applications thereof in flexible double-switching heaters

A double-switching heater includes a double-switching PTC ink deposited on a substrate to form one or more resistors. The double-switching PTC ink has a first resin that provides a first PTC effect at a first temperature range and a second resin that provides a second PTC effect at a second temperature range, where the second temperature range is higher than the first temperature range. The substrate may be a flexible substrate or a rigid substrate, and may bedeformable to generate a three-dimensional structure. The substrate may be: polyester, polyimide, polyamide, polypropylene, thermoplastic polyurethane, fiberglass, cement board, carbon composite materials, polyethylene terephthalate, polyethylene, aluminum, steel, glass composite, molded plastic, high-density polyethylene or styrene ethylene butylene styrene.

VIRTUAL SENSING SYSTEM

A heating system includes at least one electric heater disposed within the fluid flow system. A control device includes a microprocessor and is configured to determine a temperature of the at least one electric heater based on a model and at least one input from the fluid flow system. The control device is configured to provide power to the at least one electric heater based on the temperature of the at least one electric heater.

Exhaust system with actuated flow bypass and thermal storage device

An exhaust system is provided that includes an exhaust aftertreatment unit, first and second exhaust pathway in communication with and upstream of the exhaust aftertreatment unit, a thermally activated flow control device operable in a first and second mode, and a thermal storage device. In the first mode, the flow control device permits exhaust to flow to the aftertreatment unit through the first pathway and inhibits flow through the second pathway. In the second mode, the flow control device permits exhaust flow to the aftertreatment unit through the second pathway and inhibits flow through the first pathway. The flow control device may switch between the first and second modes based on a change of temperature. The thermal storage device is within the second pathway, stores thermal mass, and provides thermal insulation to enable a catalyst of the aftertreatment unit to maintain a predetermined temperature for a predetermined time.