Patent classifications
H05B2203/037
Transparent pane with an electrical heating layer and production method thereof
A transparent pane is described, having an electrical heating layer extending at least over part of the pane surface and divided into a main heating region and an additional heating region electrically insulated therefrom. The transparent pane has connection means, which can be electrically connected to a voltage source and which has at least a first collecting conductor and a second collecting conductor. The collecting conductors are each electrically connected to the heating layer in the main heating region in direct contact such that upon application of a supply voltage, a heating current flows across a heating field formed by the heating layer. The transparent pane has at least one electrical line heating element, which is arranged, at least in sections, in the additional heating region of the heating layer.
Method for assembling a cartridge for a smoking article
- Frederic Philippe Ampolini ,
- Timothy Brian Nestor ,
- Jack Gray Flinchum, Jr. ,
- Wayne Douglas Brown ,
- Nicholas Harrison Watson ,
- Charles Jacob Novak, III ,
- Paul Andrew Brinkley ,
- James Robert Covino ,
- John DePiano ,
- Edward Louis Dickinson ,
- Eugene R. Harris ,
- Kevin Edward Keough ,
- David Jay Smith ,
- John Hook ,
- Michael LaCourse ,
- Robert Metcalf ,
- Steven Hart ,
- David Pelletier ,
- Marc Bourque ,
- Nathaniel Cambray ,
- John William Wolber ,
- James William McClellan ,
- Steven R. Mongillo ,
- Frank S. Silveira ,
- Michael Laine ,
- Quentin Paul Guenther, Jr.
The present disclosure relates to systems, apparatuses, and methods for assembling cartridges for aerosol delivery devices. The cartridges may be assembled by transporting carriages between various substations at which parts are added to a base. In another assembly method, the base may be moved between a plurality of robots which direct the base downwardly into contact with components to couple the components therewith. An inspection system may inspect the cartridges at various stages of completion.
Method for assembling a cartridge for a smoking article
- Frederic Philippe Ampolini ,
- Timothy Brian Nestor ,
- Jack Gray Flinchum, Jr. ,
- Wayne Douglas Brown ,
- Nicholas Harrison Watson ,
- Charles Jacob Novak, III ,
- Paul Andrew Brinkley ,
- James Robert Covino ,
- John DePiano ,
- Edward Louis Dickinson ,
- Eugene R. Harris ,
- Kevin Edward Keough ,
- David Jay Smith ,
- John Hook ,
- Michael LaCourse ,
- Robert Metcalf ,
- Steven Hart ,
- David Pelletier ,
- Marc Bourque ,
- Nathaniel Cambray ,
- John William Wolber ,
- James William McClellan ,
- Steven R. Mongillo ,
- Frank S. Silveira ,
- Michael Laine ,
- Quentin Paul Guenther, Jr.
The present disclosure relates to systems, apparatuses, and methods for assembling cartridges for aerosol delivery devices. The cartridges may be assembled by transporting carriages between various substations at which parts are added to a base. In another assembly method, the base may be moved between a plurality of robots which direct the base downwardly into contact with components to couple the components therewith. An inspection system may inspect the cartridges at various stages of completion.
Apparatus, system and method of operating an additive manufacturing nozzle
Apparatuses, systems and methods of providing heat to enable an FDM additive manufacturing nozzle having refined print control and enhanced printing speed. The heating element may include at least one sheath sized to fittedly engage around an outer circumference of the FDM printer nozzle; at least one wire coil at least partially contacting an inner diameter of the sheath; and at least one energy receiver associated with the at least one wire coil.
Apparatus, system and method of operating an additive manufacturing nozzle
Apparatuses, systems and methods of providing heat to enable an FDM additive manufacturing nozzle having refined print control and enhanced printing speed. The heating element may include at least one sheath sized to fittedly engage around an outer circumference of the FDM printer nozzle; at least one wire coil at least partially contacting an inner diameter of the sheath; and at least one energy receiver associated with the at least one wire coil.
SUBSTRATE PROCESSING APPARATUS AND METHOD OF ADJUSTING SUBSTRATE PROCESSING APPARATUS
A substrate processing apparatus includes plural heating modules each including a table on which a substrate is placed to be heated, the substrate having plural heated zones. The table has plural heaters each assigned to heat respective ones of the heated zones. Heat generation of the heaters is controlled independently. A control unit controls the heaters such that integrated quantities of heat of the respective heated zones given by the corresponding heaters from first to second time point are substantially identical to each other in each of the heating modules, and are substantially identical to each other among the heating modules. The first time point is set when a temperature transition profile of the substrate is rising toward a process temperature after placing the substrate on the table under a condition where heat generation of the heaters is stable. The second time point is set after the temperature transition profile reaches the process temperature.
ELECTRIC HEATER AND COOKING APPLIANCE HAVING SAME
An electric heater includes a substrate; a first plane heating element disposed on a surface of the substrate; and a second plane heating element disposed on the surface of the substrate so as to be located outside the first plane heating element. The first plane heating element includes a first pattern portion having a start point and an end point, and a pair of first electrode portions connected to the first pattern portion. The second plane heating element includes a second pattern portion that surrounds a portion of an outer circumference of the first pattern portion, has a start point and an end point, and has an opening portion at one side thereof; and a pair of second electrode portions connected to the second pattern portion.
Integration of distributed thermoelectric heating and cooling
A thermoelectric device including a panel, formed of a thermally insulating material, and having a plurality of thermoelectric elements including compacted conductors inside the insulating material and expanded conductors outside the insulating material wherein the thermoelectric elements run substantially parallel to or at an acute angle relative to the long dimension of the panel. The thermoelectric device may be integrated into a variety of surfaces or enclosures needing heating or cooling with controls and configurations to optimize the application.
ELECTRIC HEATERS WITH LOW DRIFT RESISTANCE FEEDBACK
A heater system is provided. The system includes a resistive element with a temperature coefficient of resistance (TCR) of at least about 1,000 ppm such that the resistive element functions as a heater and as a temperature sensor and the resistive element is a material having greater than about 95% nickel. The system also includes a heater control module including a two-wire controller with a power control module that is configured to periodically compare a measured resistance value of the resistive element against a reference temperature to adjust for resistance drift over time during operation such that a temperature drift of the resistive element is less than about 1% over a temperature range of about 500 C.-1,000 C.
ELECTRICALLY CONDUCTIVE MATERIALS FOR HEATING AND DEICING AIRFOILS
Composite airfoils of the present disclosure comprise a root section including a first surface. The airfoils comprise an intermediate section having a first surface and coupled with the root section at a first end. The airfoils comprise a tip section having a first surface and coupled at a first end with a second end of the intermediate section. The airfoils comprise a conductive material layer adjacent at least one of the first surface of the root section, the first surface of the intermediate section, and the first surface of the tip section. The conductive material comprises a first polymer, a second polymer, and a sulfonic acid.