序号 专利名 申请号 申请日 公开(公告)号 公开(公告)日 发明人
21 Dispositif d'allumage d'une torchère EP82401229.8 1982-06-30 EP0069654A1 1983-01-12 Lerouge, André; André, Jean-Louis Résidence du Parc, Esc.F; Coutin, Pierre

L'invention est relative à l'allumage et réallumage des torchères pour évacuation des gaz de rejet.

Dans un tel dispositif, des cartouches pyrotechniques (22) sont disposées dans des boîtiers (4) placés à une distance (a), l'axe de la torchère sur une passerelle (5) située à une distance (b) au-dessous de l'orifice (3) de celle-ci, chaque boîtier étant muni d'un couvercle (11) apte à être déplacé d'une position de fermeture dans laquelle les cartouches sont situées dans un logement (18) étanche et isolé thermiquement, à une position d'ouverture dans laquelle les cartouches sont pointées vers un point (7) situé sur l'axe de la torchère à une distance (c) au-dessus de l'orifice de celle-ci, les distances (a), (b), (c) étant telles que (b) est plus grand que (c) et que (a)/(b) + (c) est compris entre les valeurs de tangente 45° et tangente 20°, chaque cartouche comportant un élément de propulsion et au moins un élément propulsé dont la combustion est achevée après un parcours compris entre 1,2 fois et 3 fois la distance du boîtier (4) au point (7).

22 Fireplace apparatus having remote automatic control function EP14189479.0 2014-10-20 EP2985531A1 2016-02-17 Chae, Soo-Lin

Disclosed is a fireplace apparatus having a remote automatic control function. The fireplace apparatus is capable of automatically controlling opening and closing of an air supply passage mounted below a combustion chamber corresponding to a detected temperature of the fireplace, displaying information related to an ignition state, a key selection state, a heating power setting state and key buttons for key selection, preventing foreign materials from being adhered to an electric heating member by a cover, and enabling a user to carry out remote ignition control, air amount control and temperature setting at a remote location. Accordingly, initial ignition can be stably achieved and the air supply amount is automatically controlled corresponding to the temperature of the combustion chamber. A user can achieve remote ignition or ignition reservation, and ignition and combustion are carried out at an optimum time according to the indoor temperature and time for returning home.

23 GEOLOGIC FRACTURING METHOD AND RESULTING FRACTURED GEOLOGIC STRUCTURE EP13772317 2013-01-14 EP2802840A4 2016-01-06 MACE JONATHAN L; BRADLEY CHRISTOPHER R; STEEDMAN DAVID W; GREENING DORAN R
Detonation control modules and detonation control circuits are provided herein. A trigger input signal can cause a detonation control module to trigger a detonator. A detonation control module can include a timing circuit, a light-producing diode such as a laser diode, an optically triggered diode, and a high-voltage capacitor. The trigger input signal can activate the timing circuit. The timing circuit can control activation of the light-producing diode. Activation of the light-producing diode illuminates and activates the optically triggered diode. The optically triggered diode can be coupled between the high-voltage capacitor and the detonator. Activation of the optically triggered diode causes a power pulse to be released from the high-voltage capacitor that triggers the detonator.
24 SYSTEM FOR FRACTURING AN UNDERGROUND GEOLOGIC FORMATION EP13775966 2013-01-14 EP2802736A4 2015-08-19 SEITZ GERALD J; BRONISZ LAWRENCE E; TAPPAN BRYCE C; MACE JONATHAN L
Detonation control modules and detonation control circuits are provided herein. A trigger input signal can cause a detonation control module to trigger a detonator. A detonation control module can include a timing circuit, a light-producing diode such as a laser diode, an optically triggered diode, and a high-voltage capacitor. The trigger input signal can activate the timing circuit. The timing circuit can control activation of the light-producing diode. Activation of the light-producing diode illuminates and activates the optically triggered diode. The optically triggered diode can be coupled between the high-voltage capacitor and the detonator. Activation of the optically triggered diode causes a power pulse to be released from the high-voltage capacitor that triggers the detonator.
25 EXPLOSIVE ASSEMBLY AND METHOD EP13773074 2013-01-14 EP2802735A4 2015-08-19 MACE JONATHAN L; TAPPAN BRYCE C
Detonation control modules and detonation control circuits are provided herein. A trigger input signal can cause a detonation control module to trigger a detonator. A detonation control module can include a timing circuit, a light-producing diode such as a laser diode, an optically triggered diode, and a high-voltage capacitor. The trigger input signal can activate the timing circuit. The timing circuit can control activation of the light-producing diode. Activation of the light-producing diode illuminates and activates the optically triggered diode. The optically triggered diode can be coupled between the high-voltage capacitor and the detonator. Activation of the optically triggered diode causes a power pulse to be released from the high-voltage capacitor that triggers the detonator.
26 SYSTEM FOR FRACTURING AN UNDERGROUND GEOLOGIC FORMATION EP13775966.8 2013-01-14 EP2802736A1 2014-11-19 SEITZ, Gerald, J.; BRONISZ, Lawrence, E.; TAPPAN, Bryce, C.; MACE, Jonathan, L.
Detonation control modules and detonation control circuits are provided herein. A trigger input signal can cause a detonation control module to trigger a detonator. A detonation control module can include a timing circuit, a light-producing diode such as a laser diode, an optically triggered diode, and a high-voltage capacitor. The trigger input signal can activate the timing circuit. The timing circuit can control activation of the light-producing diode. Activation of the light-producing diode illuminates and activates the optically triggered diode. The optically triggered diode can be coupled between the high-voltage capacitor and the detonator. Activation of the optically triggered diode causes a power pulse to be released from the high-voltage capacitor that triggers the detonator.
27 Control valves for heaters and fireplace devices EP07024044.5 2007-12-12 EP1939526A3 2013-07-31 Deng, David

In certain embodiments, a control valve assembly for gas heaters and gas fireplace devices includes a housing. The housing can define an inlet for accepting fuel from a fuel source, a first outlet for delivering fuel to an oxygen depletion sensor, and a second outlet for delivering fuel to a burner. The assembly can include a valve body configured to selectively provide fluid communication between the inlet and one or more of the first outlet and the second outlet, and can include an actuator configured to move the valve body relative to the housing. The actuator can be configured to transition between a resting state and a displaced state. The assembly can include an igniter that includes a sensor, the igniter electrically coupled with an electrode and configured to repeatedly activate the electrode when the sensor senses that the actuator is in the displaced state. The assembly can include a shutoff valve electrically coupled with the oxygen depletion sensor and configured to operate in response to an electrical quantity communicated by the oxygen depletion sensor.

28 Système d'allumage laser EP06291930.3 2006-12-14 EP1798397A1 2007-06-20 Gaborel, Gaël; El-Rabii, Hazem; Lapios, Jean-Paul; De La Bardonnie, Jean

L'invention concerne un système d'allumage laser (2) d'un carburant pulvérisé dans une chambre de combustion, le système comportant une source laser (4) adaptée pour générer un faisceau laser, une fibre optique (8) propre à transmettre le faisceau laser généré dans la chambre de combustion et des moyens de couplage (12, 16, 17) de la source laser (4) à la fibre optique (8).

Les moyens de couplage (12, 16, 17) comprennent une lentille de focalisation propre à focaliser le faisceau laser en un point focal situé en amont de la fibre optique (8), un connecteur (17) de raccordement de la source laser (4) à la fibre optique (8), et des moyens (16) de maintien rectilignes d'un tronçon d'entrée de la fibre optique (8) disposés en aval du connecteur (17) et s'étendant sur une distance prédéfinie de la fibre optique (8).

Application aux turbomachines industrielles et aéronautiques.

29 원격제어가 가능한 자동점화 양초 및 그 제어 시스템 KR1020160116307 2016-09-09 KR101787540B1 2017-10-19 한국현
본발명은원격제어가가능한자동점화양초및 그제어시스템에관한것으로서, 더욱상세하게는, 점화후 연소가이루어지며, 전도성소재를함유하는심지를포함하는심지부, 사용자의단말기와유선또는무선으로통신하는제1 통신부, 상기제1 통신부를통해전달받은제어신호에따라심지부의점화상태를제어하는제어부및 상기제어부의제어에따라상기심지부가점화되도록상기심지에방전을일으키는점화수단을포함하는, 원격제어가가능한자동점화양초에관한것이다.
30 원격 자동 제어가 가능한 벽난로 장치 KR1020140105992 2014-08-14 KR1020160020794A 2016-02-24 채수린
본발명은원격자동제어가가능한벽난로장치에관한것으로, 벽난로의온도를감지하고그 온도에대응하여연소실하부의개방부를자동으로개폐조절하며, 점화나현 상태, 화력조절에대한각종키버튼과상태정보를화면에표시하고, 전기발열부재에이물질부착을방지하는커버가장착되어져있으며, 원격지에서원격점화제어및 공기량조절, 온도설정을수행할수 있도록함으로써편의성을높이고안전성을강화시킨원격자동제어가가능한벽난로장치를제공함에그 목적이있다. 본발명을적용하면, 점화시안정적인점화가이루어지게되며연소실의온도를감안하여연소실이가열되었을때 연료효율이높게급기량제어가자동으로이루어지므로편의성이높고, 경제적이다. 또한, 원격점화나예약점화설정이가능하고실내온도와귀가시간이반영되어최적의시간에점화와연소가이루어지게되므로편의성이더욱높다는장점이있다.
31 REMOTE CONTROLLABLE AUTO-IGNITION CANDLE AND CONTROL SYSTEM THEREOF US15699924 2017-09-08 US20180072965A1 2018-03-15 Kuk Hyun HAN
Provided are a remote controllable auto-ignition candle and a control system thereof, and more particularly, a remote controllable auto-ignition candle including a wick portion performing combustion after ignition and including a wick made of a conductive material; a first communication unit communicating with a user terminal in a wired or wireless manner; a control unit controlling an ignition state of the wick portion according to a control signal received through the first communication unit; and an ignition means generating a discharge to the wick so that the wick portion is ignited according to a control of the control unit.
32 AUTO-IGNITION UNIT FOR CANDLES AND CANDLES CONTAINING THEREOF US15381458 2016-12-16 US20180038587A1 2018-02-08 Kuk Hyun HAN; Yea Won Shim; Ji Ho Kim; Kyung Hwa Ji
Provided is an auto-ignition unit for a candle including a wick containing a conductive material, wherein the wick is ignited by a discharge (electric discharge). Further, provided is a candle containing the auto-ignition unit for a candle to thereby be automatically ignited by an electric signal.
33 Detonation command and control US15167777 2016-05-27 US09835428B2 2017-12-05 Jonathan Lee Mace; Gerald J. Seitz; John A. Echave; Pierre-Yves Le Bas
The detonation of one or more explosive charges and propellant charges by a detonator in response to a fire control signal from a command and control system comprised of a command center and instrumentation center with a communications link therebetween. The fire control signal is selectively provided to the detonator from the instrumentation center if plural detonation control switches at the command center are in a fire authorization status, and instruments, and one or more interlocks, if included, are in a ready for firing status. The instrumentation and command centers are desirably mobile, such as being respective vehicles.
34 Detonation command and control US14878969 2015-10-08 US09354029B2 2016-05-31 Jonathan L. Mace; Gerald J. Seitz; John A. Echave; Pierre-Yves Le Bas
The detonation of one or more explosive charges and propellant charges by a detonator in response to a fire control signal from a command and control system comprised of a command center and instrumentation center with a communications link therebetween. The fire control signal is selectively provided to the detonator from the instrumentation center if plural detonation control switches at the command center are in a fire authorization status, and instruments, and one or more interlocks, if included, are in a ready for firing status. The instrumentation and command centers are desirably mobile, such as being respective vehicles.
35 DETONATION COMMAND AND CONTROL US14370209 2013-01-14 US20140338552A1 2014-11-20 Jonathan L. Mace; Gerald J. Seitz; John A. Echave; Pierre-Yves Le Bas
The detonation of one or more explosive charges and propellant charges by a detonator in response to a fire control signal from a command and control system comprised of a command center and instrumentation center with a communications link therebetween. The fire control signal is selectively provided to the detonator from the instrumentation center if plural detonation control switches at the command center are in a fire authorization status, and instruments, and one or more interlocks, if included, are in a ready for firing status. The instrumentation and command centers are desirably mobile, such as being respective vehicles.
36 CONTROL VALVES FOR HEATERS AND FIREPLACE DEVICES US13683855 2012-11-21 US20130209944A1 2013-08-15 David Deng
A dual fuel heating apparatus can include a safety control system having a shutoff valve, a thermocouple solenoid assembly, a first nozzle, and a second nozzle. The first nozzle can be positioned to direct heat from combustion of a first gas, liquid, or combination thereof towards the thermocouple solenoid assembly when the first gas, liquid, or combination thereof is being combusted. The second nozzle can be positioned to direct heat from combustion of a second gas, liquid, or combination thereof towards the thermocouple solenoid assembly when the second gas, liquid, or combination thereof is being combusted. The thermocouple solenoid assembly can be configured to maintain the shutoff valve in an open position based on heat from combustion directed to the thermocouple solenoid assembly or in a closed position based on an absence of heat from combustion directed to the thermocouple solenoid assembly.
37 APPARATUS, SYSTEM, AND METHOD FOR SYNCHRONIZING A REMOVABLE TIMER KEY US12952025 2010-11-22 US20120125218A1 2012-05-24 Reston A. Condit; Michael A. Daniels; Gregory P. Clemens; Eric S. Tomberlin; Joel A. Johnson
A timer key relating to monitoring a countdown time of a countdown routine of an electronic device is disclosed. The timer key comprises a processor configured to respond to a countdown time associated with operation of the electronic device, a display operably coupled with the processor, and a housing configured to house at least the processor. The housing has an associated structure configured to engage with the electronic device to share the countdown time between the electronic device and the timer key. The processor is configured to begin a countdown routine based at least in part on the countdown time, wherein the countdown routine is at least substantially synchronized with a countdown routine of the electronic device when the timer key is removed from the electronic device. A system and method for synchronizing countdown routines of a timer key and an electronic device are also disclosed.
38 Control valves for heaters and fireplace devices US11943359 2007-11-20 US07654820B2 2010-02-02 David Deng
In certain embodiments, a control valve assembly for gas heaters and gas fireplace devices includes a housing. The housing can define an inlet for accepting fuel from a fuel source, a first outlet for delivering fuel to an oxygen depletion sensor, and a second outlet for delivering fuel to a burner. The assembly can include a valve body configured to selectively provide fluid communication between the inlet and one or more of the first outlet and the second outlet, and can include an actuator configured to move the valve body relative to the housing. The actuator can be configured to transition between a resting state and a displaced state. The assembly can include an igniter that includes a sensor, the igniter electrically coupled with an electrode and configured to repeatedly activate the electrode when the sensor senses that the actuator is in the displaced state. The assembly can include a shutoff valve electrically coupled with the oxygen depletion sensor and configured to operate in response to an electrical quantity communicated by the oxygen depletion sensor.
39 Automatic gaslight igniter/controller and burners US11643123 2006-12-21 US20070160944A1 2007-07-12 Arnold Knight; Andrew Knight
A method and apparatus is defined for automatically igniting and controlling a gaslight to turn ON the gaslight in the evening and turn OFF the gaslight in the morning or alternatively, using a switch or timer to turn the gaslight on and off. The gaslight may be either a mantle type burner or an open flame type burner. The igniter consists of a high voltage spark generator that is controlled by a microcontroller to enable the spark when the microcontroller senses that darkness has occurred or a preset time of day has occurred. The spark is generated across a spark probe gap that is positioned in an optimum location to ignite the gas/air mixture. We and others have been manufacturing gaslight igniters for several years and this patent pertains to recent concepts and implementations that greatly improve the automatic igniter/burner utility and operation. The physical parameters of the device are also important. The device is sized so that it will fit easily inside of a 3-inch lamppost, or install easily within most gas lamp heads. The device is flexible in configuration to allow the burner/probe to be oriented axially with the igniter, or oriented perpendicular to the igniter to provide great flexibility in using the igniter with various burners and gas light heads. Quick disconnect fittings for gas and low voltage electric make the igniter/burner assembly easy to change without tools, similar to changing a light bulb.
40 Device for igniting a torch US393797 1982-06-30 US4449920A 1984-05-22 Andre Lerouge; Jean-Louis Andre; Pierre Coutin
A device for igniting a torch by means of pyrotechnical cartridges, wherein each cartridge is placed in a casing located at a first distance of one to ten meters from the geometrical axis of the torch and at a second distance of two to twenty meters below the orifice of said torch, said casing being provided with a cover adapted to be moved from a closed position wherein the cartridges within the casing are contained in a thermally isolated tight compartment to an open position wherein each cartridge is aimed at a selected point located on the torch axis at a third distance of one to ten meters above the torch orifice, said second distance being greater than said third distance, and said first, second and third distances being selected in such a manner that a/(b+c) has a value comprised between tangent 45.degree. and tangent 20.degree., wherein a represents said first distance, b represents said second distance, and c represents said third distance.
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