Warehouse fire protection control system and method

A ceiling-only fire protection system with controlled fluid distribution addresses the inadequacies of NFPA 13 by suppressing fires in exposed foamed plastics at higher heights, effectively quenching and controlling fire impact without additional equipment.

JP7733636B2Active Publication Date: 2025-09-03TYCO FIRE PRODUCTS LP +1
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Patent Information

Application Number
JP2022211340
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2015-06-08
Filing Date
2022-12-28
Publication Date
2025-09-03
Estimated Expiration
2035-06-09

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Abstract

A fire protection system and method for ceiling-only high-stack storage protection is provided. The system includes a plurality of fluid distribution devices positioned below the ceiling above highly stacked stored goods having a nominal storage height ranging from a nominal 20 ft. to a maximum nominal storage height of 55 ft. The system also includes a means for suppressing a fire in the stored goods. The stored goods to be protected may include exposed foam plastic. The fluid distribution device includes a frame body having an inlet, an outlet, a sealing assembly, and an electronically operated release mechanism supporting the sealing assembly within the outlet.
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Description

[Technical Field]

[0001] Priority Data and Incorporation by Reference This application is a continuation of U.S. Provisional Patent Application No. 62 / 009,778, filed June 9, 2014; U.S. Provisional Patent Application No. 62 / 013,731, filed June 18, 2014; U.S. Provisional Patent Application No. 62 / 016,501, filed June 24, 2014; This international application claims priority to U.S. Provisional Patent Applications Nos. 62 / 172,281, 62 / 172,287, and 62 / 172,291, filed June 8, 2015, each of which is incorporated herein by reference in its entirety.

[0002]

[0002] The present invention relates generally to fire protection systems for warehouses, and more particularly to fire protection systems that generate a controlled response to a fire and spray a fixed volumetric flow rate of firefighting fluid to effectively suppress the fire. [Background technology]

[0003]

[0003] Industry-accepted system installation standards and definitions for warehouse fire protection are set forth in the National Fire Protection Association's publication, Standard for the Installation of Sprinkler Systems (2013 Edition) ("NFPA 13"). For example, with respect to the protection of stored plastics, such as Group A plastics, NFPA 13 limits the manner in which goods may be stored and protected. Specifically, Group A plastics, including expanded exposed and unexposed plastics, are protected by the protection of individual plastic goods. Depending on the product, storage is limited to palletized storage, solid-piled storage, bin-box storage, shelving, or back-to-back shelving to a maximum height of 25 feet under a maximum ceiling height of 30 feet. NFPA 13 does not address racking of plastic goods, but it does limit racking of Group A plastics to (i) cartoned, foamed or non-foamed plastics, and (ii) exposed non-foamed plastics. Furthermore, racking of applicable Group A plastics is limited to a maximum storage height of 40 feet under a maximum ceiling height of 45 feet. Under this installation standard, protection of Group A plastics in racks requires specific accommodations, such as horizontal barriers and / or in-rack sprinklers. Therefore, the current installation standard does not address the fire protection of exposed, foamed plastics in specific storage facilities, such as racking configurations with or without "ceiling-only" fire protection systems. Generally, systems installed under installation standards provide for flame "control" or "suppression." The industry-accepted definition of "fire suppression" for storage protection is the application of sufficient water flow through the fire plume directly to the burning fuel surface to rapidly reduce the heat release rate of the fire and prevent its regrowth. The industry-accepted definition of "fire control" is the limitation of the size of the fire by the distribution of water flow to reduce the heat release rate and pre-wet adjacent combustible materials while controlling the upper gas temperature to avoid structural damage. More generally, "control" according to NFPA 13 can be defined as "the suppression of a fire by a fire suppression system or until the fire is contained by the fire suppression system or by manual assistance."

[0004]

[0004] Dry system ceiling-only fire protection systems for rack storage containing Group A plastics are shown and described in U.S. Patent No. 8,714,274. These described systems use sprinklers to "surround and drown" the flame. This system combats fires in rack storage occupancies by delaying the release of fire-extinguishing fluid through a system compliant with the NFPT or U.S. Patent No. 8,714,2 Each of the systems described in No. 74 employs an "automatic sprinkler." An automatic sprinkler can be a fire suppression or control device that automatically activates when its heat-activated element heats above its heat rating, causing water to be released into a designated area upon delivery of fire-extinguishing fluid. Thus, these known systems employ sprinklers that are thermally activated in response to a flame.

[0005]

[0005] In contrast to systems that use purely thermal automatic responses, systems that use a controller to operate one or more sprinklers have been described. For example, Russian Patent No. RU95528 describes a system that controls the opening of sprinkler irrigation equipment in a fixed geographic area larger than the area of ​​the detected fire. In another example, Russian Patent No. RU2414996 describes a system that controls the operation of sprinkler irrigation equipment in a fixed zone near the center of the fire, but operation of this zone is believed to rely in part on visual detection by personnel who can remotely operate the sprinkler irrigation equipment. These systems are not believed to improve upon known methods of dealing with fire, and the described systems are not believed to enable fire protection of sensitive goods, particularly plastic goods. Summary of the Invention

[0006]

[0006] Preferred systems and methods are provided that provide improved fire protection over systems and methods that combat fires by control, suppression, and / or containment and flooding effects. Additionally, the preferred systems and methods described herein also provide for the protection of storage occupancies and merchandise by "ceiling-only" fire protection. As used herein, In this context, "ceiling-only" fire protection is defined as fire protection where fire protection devices, i.e., fluid distribution devices and / or detectors, are located in the ceiling above the stored items or materials, with no fire protection devices between these ceiling devices and the floor. The preferred systems and methods described include a means to quench a fire for the protection of stored goods and / or occupancies. As used herein, "quenching" or "quenching" a fire is defined as fire protection where fire protection devices, i.e., fluid distribution devices and / or detectors, are located in the ceiling above the stored items or materials, with no fire protection devices between these ceiling devices and the floor. The preferred systems and methods described include a means to quench or "quench" a fire for the protection of stored goods and / or occupancies. Quenching means substantially suppressing a fire and limiting its effects on stored goods. The present invention defines a method for providing a fire extinguishing fluid, preferably a water flow, to suppress fires, and in a preferred embodiment, provides ... In addition to or instead of suppressing a fire, the systems and methods described herein may also effectively combat a fire through fire control, fire suppression, and / or containment and flooding performance, or may reduce the impact of fires that are not covered by current installation designs, standards, or other described methods. A preferred suppression means may provide a fire protection system and method for stored goods not available under the present invention. Generally, a preferred suppression means includes a piping system, a plurality of fire detectors for detecting a fire, and a controller in communication with each of the detectors and fluid distribution devices, and preferably identifying a select number of fluid distribution devices that define an initial discharge array over or around the detected fire. The preferred means may control operation of the fluid distribution devices of the discharge array to deliver a preferably fixed and minimized flow rate of fire extinguishing fluid to preferably suppress the fire. In some embodiments, the preferred means controls the supply of fire extinguishing fluid to selected fluid distribution devices.

[0007] In a particularly preferred embodiment of the system and method described herein, the inventors provide a method for protecting exposed expanded plastics in a rack. To achieve this, the application of a preferred embodiment of the suppression means was determined. Specifically, the preferred suppression means provides ceiling-only fire protection for exposed foam plastic rack storage at heights not specified under the standards, without the use of equipment required under current installation standards, such as in-rack sprinklers, barriers, etc. Furthermore, the preferred suppression means effectively combats high challenge fires in test fires without the need to test equipment, such as vertical barriers that limit the lateral spread of flames in test arrays. It is believed that the preferred embodiment of the fire protection system for warehouse protection described herein is capable of controlling the response to a fire by delivering a fixed volumetric flow rate of fire extinguishing fluid at a threshold moment in the fire to limit, and more preferably reduce, the impact of the fire on stored goods.

[0008] A preferred embodiment of a fire protection system is provided for protecting a warehouse occupancy having a ceiling defining a nominal ceiling height greater than 30 feet. The system preferably includes a plurality of fluid distribution devices positioned below the ceiling and above the stored goods in the warehouse occupancy, and a means for suppressing a fire in the stored goods, the warehouse occupancy having a nominal storage height ranging from a nominal 20 feet (20 ft) to a maximum nominal storage height of 55 feet (55 ft). The stored goods to be protected can be any one of Class I, II, III, or IV, Group A, Group B, or Group C plastic, elastomeric, or rubber goods. In one specific embodiment of the fire protection system, the goods include exposed foam plastic, and in another embodiment, the goods include exposed foam plastic having a maximum nominal storage height of at least 40 feet (40 ft). The plurality of fluid distribution devices of the preferred system includes a fluid distribution device with a frame body having an inlet, an outlet, a sealing assembly, and an electronically operated release mechanism supporting the sealing assembly within the outlet. As used herein, "release mechanism" means an assembly of moving parts that perform a complete functional movement as part of a fluid delivery device component, such as a seal assembly, to release that component. One particular embodiment of a fluid delivery device is a 25.2 GPM / PSI 1 / 2 Includes ESFR sprinkler frame body and deflector with a nominal K-factor of .

[0009] A preferred suppression means includes a fluid distribution system including a conduit network interconnecting the fluid distribution devices to a water station, a plurality of detectors for monitoring the occupancy to detect fires, and a controller coupled to the plurality of detectors for detecting and locating the fire. The controller is coupled to the plurality of distribution devices for identifying and controlling the operation of a select number of fluid distribution devices, more preferably four, on and around the fire. A preferred embodiment of the controller includes an input component coupled to each of the plurality of detectors for receiving an input signal from each of the detectors, a processing component for determining a threshold timing in the growth of the fire, and an output component for generating an output signal for operation of each of the identified fluid distribution devices in response to the threshold timing. More particularly, a preferred embodiment of the controller enables the processing component to analyze the detection signals to locate the fire and preferably select the appropriate fluid distribution device for defining a discharge array on and around the fire for operation.

[0010] The preferred system can be installed below a nominal 45-foot ceiling height and above a nominal 40-foot storage height. Alternatively, the preferred system can be installed below a nominal 30-foot ceiling height and above a nominal 25-foot storage height. Stored goods can be arranged on the floor as either racks, multi-racks, and double-row racks, as well as any one of solid shelfless racks, palletized, pin box, shelving, or single-row rack storage. Furthermore, stored goods can include any one of Class I, II, III, or IV, Group A, Group B, or Group C plastic, elastomeric, or rubber goods.

[0011] In a preferred embodiment, the electrically operated release mechanism of a fluid dispensing device for use in the preferred systems and methods described herein comprises a post and lever assembly having a breakaway region, a hook in a latched arrangement, and a spring. and a support assembly, a hook and support having a link operated by resistance heating The assembly may be any one of a post assembly, a reactive post and link assembly, a hook and post assembly providing a defined electron flow path, a hook and post assembly having an electrically fusible wire link, an enclosed assembly including a retractable linear actuator, or a combination thereof.

[0012] In a preferred embodiment in which the electrically operated release mechanism is a post and lever assembly having a breakaway region, the assembly includes a hook member having a first end and a second end, and a post member having a first end and a second end. The first end of the post member contacts the hook member between the first and second ends of the hook member to define a fulcrum. A load member acts on the hook member on a first side of the fulcrum to define a first moment arm. A preferred link extends between the hook and the post. The preferred link has a breakaway region and maintains the hook member in a stationary position relative to the post member to define the unactuated state of the assembly. The link preferably engages with the hook member on a second side of the fulcrum, opposite the first side of the fulcrum relative to the load member, to define a second moment arm. The actuator is preferably coupled to one of the hook and the strut member to apply a force separating the breakable region of the link between the hook and the strut member so that the hook member pivots about the fulcrum to define the actuated state of the trigger assembly. In a preferred embodiment of the device, a frame body is disposed around the body, extending from the outlet to a second end of the frame body and converging toward a tip, and including a pair of frame arms axially aligned along the longitudinal direction, with a load member threadedly engaged with the tip. The actuator is preferably coupled to the hook member, with the frame arms defining a first plane. The actuator exerts its force in a second plane intersecting the first plane, with the longitudinal axis disposed along the intersection of the first and second planes. A preferred link has a first portion coupled to the strut member and a second portion coupled to the hook member. The hook member preferably has a recess, through which the actuator is coupled to the hook member. More preferably, the hook member includes an internally threaded portion that mates with an externally threaded portion of the actuator. The link has a third portion connecting the first portion to the second portion, the third portion defining the tensile load of the link and preferably defining a break zone created in the link. In one embodiment of the link, the thickness of the third portion is less than the thickness of at least one of the first and second portions.More preferably, the thickness of the third portion is less than half the thickness of at least one of the first and second portions. Additionally or alternatively, in one embodiment of the link, the width of the third portion is less than the width of at least one of the first and second portions of the link. In one preferred aspect, the third portion defines a notch at the connection between the first and second portions. In a preferred embodiment of this assembly, the actuator can be a solenoid actuator, more preferably a Metron actuator, in which case the actuator is coupled to the control panel. In another preferred aspect of the post and lever assembly with a break zone, a heat-insensitive link holds the assembly stationary to support the sealing assembly. The heat-insensitive link preferably includes a break zone having a maximum tensile load capacity ranging from 50 to 100 pounds.

[0013] Another embodiment of the release mechanism includes a hook and post assembly in a latching configuration. The assembly includes a preferred hook member having a first lever portion and a second lever portion, the second lever portion having a catch portion. Preferred Embodiments In this embodiment, the catch portion is integrally formed with the second lever portion. A load member contacts the first lever portion at a first location aligned with the longitudinal axis to apply a load on the first lever portion. A strut member has a first end that contacts the first lever portion at a second location spaced from the first location to support the first lever portion under a load from the load member and to define a fulcrum about which the hook member rotates during operation of the assembly. The strut member has a second end that contacts the closure. A portion of the strut member preferably prevents the hook member from pivoting about the fulcrum, transfers the load axially to the button, and supports the hook member within the outlet of the frame body. The hook member is preferably coupled to the support member and displaces the second lever portion relative to the support member in the extended configuration such that the catch portion disengages from the support member and the hook member rotates about a fulcrum. The hook member preferably includes a connecting portion between the first and second lever portions, and the support member includes an intermediate portion between the first and second ends that preferably defines a window, the second end defining a window through which the second lever portion extends. In a preferred embodiment of the latching configuration, the support member and the hook member define a direct interlocking engagement with each other, and the linear actuator acts on one of the support member and the hook member to release the direct interlocking engagement during operation of the mechanism. The support member preferably includes an inner edge that defines a slot in the support member, and the hook member has a portion that forms a catch that interlocks with the inner edge of the support member in the first configuration. Hook member is preferably substantially U-shaped.

[0014] In a preferred embodiment of the electrically operated release mechanism, the hook and post assembly with the link is operated by resistive heating. The link preferably includes a solder link having two metal members, with a heat-sensitive solder disposed between the two metal members to join the two metal members together and maintain hermetic support in a first configuration, and at least one electrical contact for heating the solder link to melt the solder so as to separate the two metal members and place the hermetic support in a second configuration. The electrical contact preferably defines a continuous electrical flow path across the solder link, and in one embodiment, the electrical contact is an insulated wire that repeatedly extends across one of the metal members to define the continuous electrical path. One of the metal members is preferably disposed between the electrical contact and the solder. Furthermore, one of the metal members preferably includes a conductive layer, with an insulator preferably disposed between a resistive material and the one metal member. In a preferred embodiment, the resistivity of the conductor is such that the solder can be melted by a 24-volt power supply.

[0015] Another embodiment of the electrically operated release mechanism is a reactive post and link assembly having two metal members, a deposited solder link with a thermally reactive solder disposed therebetween to join the two metal members together, and a reactive layer disposed between one of the metal members and the solder material. The reactive layer preferably includes a first insulating layer and a second insulating layer, the second insulating layer being bonded to a thermite structure disposed between the first and second insulating layers. At least one electrical contact ignites the thermite structure and preferably defines a continuous electrical path through the reactive layer. In a preferred embodiment, the electrical contact is a single contact that defines an ignition point in the thermite structure. The thermite structure can be a nano-thermite multilayer structure, more particularly comprising alternating oxidizing and reducing agents. In a preferred embodiment, the electrical contact is nichrome wire.

[0016] A preferred embodiment of the fluid delivery device and release mechanism defines an electrical actuation flow path. In one embodiment, the frame body is conductive for carrying an electrical signal and defines a first electrode, a hook and post assembly having a link, and a second electrode. Furthermore, the conductive member is adapted to define the second electrode, and the conductive member is insulated from the frame body so as to define the electrical actuation flow path. In a preferred aspect, the link is thermally responsive, and more preferably, is a thermally responsive soldered link. Alternatively, the link is an electrofusible link including a nickel-chromium alloy wire. In a preferred embodiment, the hook and post assembly includes a hook member having a first portion in electrical contact with the frame body and a post member having a first end and a second end. The first end of the post member defines a fulcrum for supporting the first portion of the hook member, and the second end of the post member is engaged with the closure. The link extends between the second portion of the hook member and a portion of the post member between the first and second ends. The first portion of the hook preferably includes an insulating region that contacts the first end of the strut member. The frame includes a pair of frame arms disposed about the frame body such that an electrical operating path is defined through the frame arms, the hook members, and between opposite ends of the link. The insulating region of the hook member preferably includes a recess formed in a first portion of the hook member, a post engagement plate received in the recess and having a notch formation for receiving the first end of the post member, and an insulator disposed between the recess and the post engagement plate. The conductive member of the fluid delivery device preferably includes an ejection spring engaged with the seal. The ejection spring preferably includes an insulating coating. In a preferred embodiment, the portion of the frame contacted by the ejection spring has the insulating coating, and more preferably includes an insulating coated portion of the frame arm that abuts the frame body.

[0017] Yet another embodiment of the electrically operated release mechanism includes a retracted linear actuator having an extended configuration that maintains the seal within the outlet and a retracted configuration that moves the seal away from the outlet. In a preferred embodiment of the fluid dispensing device, the seal is hinged relative to the frame body by a hinge connection for pivoting the seal from an inactivated state to an activated state of the device. In a preferred embodiment, the seal has a first surface and a second surface opposite the first surface, and the linear actuator is disposed within the seal between the first and second surfaces. The linear actuator preferably engages a recess formed along the inner surface of the frame body near the outlet in the inactivated state of the device. Upon activation, the linear actuator retracts, pivoting the seal away from the outlet. In a preferred embodiment of the fluid dispensing device, the frame body is one of a spray nozzle frame body and a sprinkler frame body. The frame body preferably includes an internal pin connection to form the hinged connection with the seal. Alternatively, the hinge connection can be external to the frame body. The hinged connection may be spring biased to the actuated state of the device.

[0018] Another embodiment of the release mechanism includes a ball-detent mechanism having at least one ball, a corresponding detent, and a linear actuator. The linear actuator applies pressure to the at least one ball in an extended configuration of the linear actuator to contact the corresponding detent, such that the ball-detent mechanism supports the seal near the outlet in the device's inactive state. The linear actuator releases pressure from the at least one ball in a retracted configuration of the linear actuator to release the pressure from the at least one ball to release the pressure from the corresponding detent in the retracted configuration of the linear actuator to space the seal away from the outlet in the device's active state. In one embodiment of this mechanism, the seal defines an internal passage for the at least one ball, and the frame body includes an inner surface near the outlet on which a corresponding detent is formed. The linear actuator is preferably coupled to the seal to apply pressure to the at least one ball to contact the corresponding detent. In one embodiment, the at least one ball translates in a direction perpendicular to the direction of motion of the linear actuator. More preferably, the linear actuator operates parallel to the longitudinal axis and the at least one ball translates radially relative to the longitudinal axis. The linear actuator may be embodied as a Metron actuator or alternatively as a solenoid actuator. For a preferred system installation, the actuator is coupled to a control panel.

[0019] In another preferred aspect, a method of fire protection for a storage occupancy is provided. The preferred method includes detecting a fire in stored goods within the storage occupancy and suppressing the fire in the stored goods. In a preferred method of ceiling-only fire protection for a warehouse occupancy having a ceiling with a nominal ceiling height of 30 feet or greater, the method includes detecting a fire in highly stacked stored goods in a warehouse occupancy having a nominal storage height ranging from a nominal 20 ft to a maximum nominal storage height of 55 ft, the goods including exposed foam plastic. The preferred method further includes electrically operating release mechanisms in a plurality of fluid dispensing devices to suppress the fire in the stored goods.

[0020] A preferred method includes determining a select plurality of fluid delivery devices to define a discharge array on and around the fire. The fluid delivery devices can be dynamically determined or may be uniformly determined. The determination preferably includes identifying any one of four, eight, or nine adjacent fluid delivery devices on and around the fire. The preferred method further includes identifying a threshold time in the fire for substantially simultaneous operation of the identified fluid delivery devices.

[0021] A preferred method of detecting a fire involves continuously monitoring a storage occupancy to define a fire profile and / or locate the source of the fire. A preferred embodiment of locating a fire includes defining an area of ​​fire growth based on data readings from a plurality of detectors monitoring an occupancy area, determining the number of detectors in the area of ​​fire growth, and determining the detector with the highest reading. A preferred mitigation method includes determining a number of emitting devices near the detector with the highest reading, and more preferably, determining four emitting devices around the detector with the highest reading. A preferred embodiment of this method includes determining a threshold moment in the fire growth to determine when to activate the emitting devices, and the mitigation step includes activating the preferred emitting array with a control signal.

[0022] While the present disclosure and preferred systems and methods address fire protection of exposed foam plastic stored commodities at heights not prescribed under current installation standards without the equipment required under those standards, it will be understood that the preferred systems and methods and their features are applicable to fire protection of other storage occupancies and commodities and their various configurations. The present disclosure is presented as a general introduction to several embodiments of the present invention and is not intended to be limited to any particular configuration or system. It will be understood that the various features and configurations of features described in the invention disclosure can be combined in any suitable manner to form any number of embodiments of the present invention. Several additional example embodiments, including modifications and alternative configurations, are also presented herein. [Brief explanation of the drawings]

[0023] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate example embodiments of the present invention and, together with the general description given above and the detailed description given below, serve to explain features of the present invention, it being understood that the preferred embodiments are some of the examples of the invention defined by the appended claims. [Figure 1]FIG. 1 is a representative diagram of one embodiment of a preferred warehouse fire protection system. [Figure 2] FIG. 2 is a schematic diagram of the operation of the preferred system of FIG. [Figure 2A] FIG. 2A is a schematic diagram of a preferred fluid delivery device arrangement for use in the preferred system of FIG. [Figure 2B] FIG. 2B is a schematic diagram of a preferred fluid delivery device arrangement for use in the preferred system of FIG. [Figure 3] FIG. 3 is a schematic diagram of the configuration of a controller used in the system of FIG. [Figure 4] FIG. 4 is a preferred embodiment of the controller operation of the system of FIG. [Figure 4A] FIG. 4A is another preferred embodiment of the controller operation of the system of FIG. [Figure 4B] FIG. 4B is another preferred embodiment of the controller operation of the system of FIG. [Figure 4C] FIG. 4C is another preferred embodiment of the controller operation of the system of FIG. [Figure 4D] FIG. 4D is another preferred embodiment of the controller operation of the system of FIG. [Figure 4E] FIG. 4E is another preferred embodiment of the controller operation of the system of FIG. [Figure 5A] FIG. 5A is a schematic diagram of a preferred installation of the system of FIG. [Figure 5B] FIG. 5B is a schematic diagram of a preferred installation of the system of FIG. [Figure 6A] FIG. 6A is a graphic illustration of damage to stored goods due to an inspection fire addressed by another embodiment of the preferred system. [Figure 6B] FIG. 6B is a graphic illustration of damage to stored goods due to an inspection fire addressed by another embodiment of the preferred system. [Figure 7] FIG. 7 is a schematic cross-sectional view of a preferred embodiment of a fluid delivery device in an unactuated state. [Figure 7A] FIG. 7A is a perspective view of a preferred embodiment of a heat-insensitive link used in the device of FIG. [Figure 7B] FIG. 7B is a top view of the link of FIG. 7A. [Figure 7C] FIG. 7C is a cross-sectional view of the tension link of FIG. 7B taken along line VIIC-VIIC. [Figure 8A] FIG. 8A is a schematic perspective view of an exemplary embodiment of a preferred sprinkler system having the sprinkler of FIG. 7 in an inoperative state. [Figure 8B] FIG. 8B shows the operation of the sprinkler of FIG. 8A. [Figure 9A] FIG. 9A is a schematic diagram of another embodiment of a fluid delivery device. [Figure 9B] FIG. 9B is a schematic perspective view of the installation of the device of FIG. 9A. [Figure 10A] FIG. 10A is an enlarged cross-sectional view of the releasing mechanism of the device of FIG. 9A in an unactuated state. [Figure 10B] FIG. 10B is a perspective view of a preferred embodiment of a strut with an actuator mount for the release mechanism of FIG. 10A. [Figure 11] FIG. 11 is a schematic diagram of another embodiment of a fluid delivery device equipped with a preferred release mechanism. [Figure 12A] FIG. 12A is a preferred embodiment of an actuator for use in the release mechanism of the device in FIG. [Figure 12B] FIG. 12B is another preferred embodiment of an actuator for use in the release mechanism of the device in FIG. [Figure 12C]FIG. 12C is yet another preferred embodiment of an actuator for use in the release mechanism of the device in FIG. [Figure 13] FIG. 13 is another preferred embodiment of an actuator for use in the release mechanism of the device of FIG. [Figure 14A] FIG. 14A is a cross-sectional view of another embodiment of a fluid delivery device having a preferred release mechanism. [Figure 14B] FIG. 14B is a perspective and schematic view of the device of FIG. 14A when installed. [Figure 15] FIG. 15 is an exploded view of a preferred hook member for use in the release mechanism of FIG. 14A. [Figure 16] FIG. 16 is a cross-sectional schematic diagram of the device of FIG. 14A in operation. [Figure 17A] FIG. 17A is another fluid delivery device having another preferred embodiment of a release mechanism. [Figure 17B] FIG. 17B is a cross-sectional schematic diagram of the device of FIG. 17A in operation. [Figure 18] FIG. 18 is another embodiment of a fluid delivery device having a preferred embodiment of a release mechanism. [Figure 18A] FIG. 18A is another embodiment of a fluid delivery device having a preferred embodiment of a release mechanism. [Figure 18B] FIG. 18B is yet another embodiment of a fluid delivery device having a preferred embodiment of a release mechanism. [Figure 19] FIG. 19 is a schematic installed view of another embodiment of a fluid delivery device having another preferred embodiment of a release mechanism. [Figure 19A] FIG. 19A is a schematic installation diagram of the device of FIG. 19 in operation. [Figure 20] FIG. 20 is an exemplary alternative embodiment of a fluid delivery device having the release mechanism of FIG. 19 in operation. DETAILED DESCRIPTION OF THE INVENTION

[0024]

[0063] 1 and 2 show a preferred embodiment of a fire protection system 100 for protecting a warehouse occupancy 10 and one or more stored items 12. The preferred system and method described herein utilizes two principles for fire protection of a warehouse occupancy: (i) fire detection and location, and (ii) responding to a fire at a threshold time by controlled release and delivery, preferably at a constant minimum volumetric flow rate, of a fire-extinguishing fluid such as water to the flame to effectively combat, and more preferably, suppress, the fire. Additionally, the preferred system and method includes a fluid delivery device coupled to the preferred means for combating, and more preferably suppressing, the fire.

[0025]

[0064] The preferred system shown and described herein has a fluid delivery subsystem 100a, a control subsystem 100b, and a detection subsystem 100c, and includes a means for suppressing a fire. Referring to FIG. 2, the fluid delivery and control subsystems 100a, 100b preferably cooperate through the communication of one or more control signals CS to control the operation of selectively identified fluid delivery devices 110. The fluid delivery devices 110 form a preferred discharge array that delivers and distributes a preferred fixed volumetric flow rate V of fire extinguishing fluid preferably substantially over and around the scene of a detected fire F to effectively combat the fire, and more preferably to suppress the fire. The fixed volumetric flow rate V can be defined by a collection of delivered discharges Va, Vb, Vc, and Vd. The detection subsystem Detection and control subsystems 100b, 100c, in conjunction with control subsystem 100b, directly or indirectly (i) determine the location and size of fire F in storage occupancy 10, and (ii) selectively identify and control the operation of fluid dispensing devices 110 in preferred embodiments as described herein. Detection and control subsystems 100b, 100c preferably cooperate to detect and locate fire F through communication of one or more detection signals DS. As shown in FIG. 1, the fluid dispensing devices are positioned for the distribution of fire extinguishing fluid from preferred locations below the ceiling of the storage occupancy and above the merchandise for "ceiling-only" fire protection of the merchandise. Detection subsystem 100c preferably includes multiple detectors 130 positioned below the ceiling and above the merchandise, preferably for support of a ceiling-only fire protection system. Control subsystem 100b preferably includes one or more controllers 120, and more preferably includes a centralized controller 120 coupled to the detectors 130 and fluid dispensing devices 110 for operational control of groups of selectively identified devices 110.

[0026]

[0065] Detector 130 of detection subsystem 100c monitors the occupancy to detect changes in any one of temperature, thermal energy, spectral energy, smoke, or other parameters indicative of the presence of a fire in the occupancy. Detector 130 may be any one or combination of thermocouples, thermistors, infrared detectors, smoke detectors, and the like. Known detectors that may be used in this system include SIMPLEX, TYCO FIRE PROTECTION PRODUCTS' TrueAlarm® Analog Sensing analog sensors. In a preferred embodiment of the ceiling-only system 100, as seen for example in Figure 1, one or more detectors 130 for monitoring the warehouse occupancy 10 are preferably located in close proximity to the fluid dispensing device 110, and more preferably located under and near the ceiling C. The detectors 130 are mounted in axial alignment with the sprinklers 110, as shown schematically in Figure 2A. 2 and 2B , or may be located above or offset from the dispensing device 110. Furthermore, the detectors 130 can be located at the same height or at any different height from the fluid dispensing device 110, provided they are positioned above the commodity to support ceiling-only protection. The detectors 130 are coupled to the controller 120 of the system 100 to communicate detected data or signals to the controller 120 for processing as described herein. The ability of the detectors 130 to monitor environmental changes indicative of a fire can vary depending on the type of detector used, the sensitivity of the detector, the coverage area of ​​the detector, and / or the distance between the detector and the fire source. Accordingly, the detectors 130 are individually and collectively mounted, spaced, and / or oriented appropriately to monitor the occupancy 10 and detect fire conditions in the described manner.

[0027]

[0066] A preferred centralized controller 120, which receives, processes, and generates various input and output signals from and / or to each of the detectors 130 and fluid delivery devices 110, is shown schematically in FIG. 3. Functionally, the preferred controller 120 includes a data input component 120a, a programming component 120b, a processing component 120c, and an output component 120d. The data input component 120a receives any of the detection data or signals, e.g., voltage, current, or digital signals indicative of measured environmental parameters of an occupancy, including raw detection data or calibrated data, such as continuous or intermittent temperature data, spectral energy data, smoke data, or raw electrical data representative of such parameters, from the detectors 130. Additional data parameters collected from the detectors 130 may include detector time data, address, or location data. The preferred programming component 120b allows for the input of user-defined parameters, criteria, or rules that may define threshold timing for fire detection, fire location, fire profile, fire size, and / or fire growth. Additionally, programming component 120b allows for input of selected or user-defined parameters, criteria, or rules for identifying fluid delivery devices or assemblies 110 to be activated in response to a detected fire. The parameters, criteria, or rules may include one or more of the following: Define relationships, e.g., proximity, adjacency, etc., between distribution devices 110; The controller 120 defines the number of devices, i.e., maximum and minimum limits, operation times, sequence of operations, device patterns and geometries for operation, and their release rates, and / or defines an association or relationship to the detector 130. As shown in the preferred control methods described herein, the detector 130 can be associated with the fluid delivery device 110 on a one-to-one basis, or alternatively, can be associated with more than one fluid delivery device. Additionally, the input and / or programming components 120a, 120b enable feedback or addressing between the fluid delivery device 110 and the controller 120 to execute the distribution device methods as described herein.

[0028]

[0067] Thus, the preferred process controller 120c processes inputs and parameters from the input and programming components 120a, 120b to detect and locate fires, select fluid delivery devices, prioritize fluid delivery devices, and / or identify and control operation of fluid delivery devices in a preferred manner. For example, the preferred process controller 120c generally determines when a threshold time has been reached and, in conjunction with the output component 120d of the controller 120, generates an appropriate signal to control operation of the identified, and preferably addressable, delivery device 110, preferably according to one or more of the methods described herein. One example of a known controller that can be used in the system 100 is the Simplex® 4100 Fire Control Panel from TYCO FIRE PROTECTION PRODUCTS. The programming is Signals between system components may be hardwired or logically programmed and may be one or more of analog, digital, or fiber optic data. Furthermore, communications between components of system 100 may be any one or more of wired or wireless communications.

[0029]

[0068] 4 illustrates a generalized preferred embodiment of operation 160 of controller 120 in system 100. In the system's operational state, processing component 120c processes input data to detect (1162) and locate (1164) a fire F. According to a preferred method herein, processing component 120c identifies and controls (1166) the discharge of a preferred array of fluid dispensing devices 110 on and around the located fire F based on detection and / or other input data or signals from detection subsystem 100c. Processing component 120c preferably determines (1168) a threshold timing in the fire for the operation and discharge of a selected array of fluid dispensing devices. In step 1170, processing component 120c, in conjunction with output component 120d, notifies accordingly to operate the identified fluid dispensing devices to combat, or more preferably suppress, the fire (1170).

[0030]

[0069] The discharge array is preferably initially defined by a selected and prioritized number of fluid delivery devices 110 and an outline preferably centered over the detected fire. As described herein, the number of delivery devices 110 in the discharge array can be preprogrammed or user-defined, and more preferably is limited to a preprogrammed or user-defined maximum number of devices forming the array. Furthermore, the selected or user-defined number of delivery devices may depend on, for example, the type of delivery device 110 in the system 100, its installation configuration, including spacing and hydraulic requirements, the type and / or sensitivity of the detector 130, the type or category of hazard for the protected commodity, the warehouse arrangement, the height of the warehouse, and The number of discharge devices may be based on one or more of the parameters of the system 100 and / or the commodity being protected, such as the maximum ceiling height of the warehouse occupancy. For example, for high-risk commodities, such as Group A exposed foam plastic stored under a linear grid of dispensing devices, the preferred number of fluid dispensing devices forming the discharge array may preferably be eight (a 3×3 square perimeter of eight devices), or even more preferably nine (a 3×3 grid array of devices). In another example, for Group A boxed non-foam plastic, the preferred number of discharge devices may be four (a 2×2 grid array of devices), as shown schematically in FIG. 2. Alternatively, for low-risk commodities, the number of discharge devices in the array may be one, two, or three, centered substantially over and positioned around the fire F. Again, the particularized number of devices in the discharge array may depend on the various parameters of the system and the commodity being protected. Preferably, the resulting discharge array delivers and distributes a fixed volumetric flow rate V of fire extinguishing fluid substantially over and around the scene of a detected fire F to effectively combat and more preferably extinguish the fire.

[0031]

[0070] The identification of fluid delivery devices 110 for a discharge array and / or the geometry of the array can be dynamically determined, or alternatively, may be uniformly determined. As used herein, "dynamically determined" means that the selection and identification of specific delivery devices 110 to form a discharge array is preferably determined as a function of detector readings over a period of time, from the time the first detection of a fire is defined until a threshold time in the fire is determined. In contrast, in a "uniform" determination, the number of delivery devices in the discharge array and their geometry are predetermined, and the center or location of the array is preferably determined after a certain level of detection or other threshold time. Discharge Array Dynamic and unified decision making is illustrated by the following preferred controller operations for the identification and operation of:

[0032]

[0071] 4A and 4B are flowcharts of another preferred exemplary operational embodiment 1200 of the controller 120 of the system 100. In a first step 1200a, the controller 120 continuously monitors the environment of the occupancy based on the detection or sensing output from the detector 130. In step 1200b, the controller 120 processes the data to determine the presence of a fire F. An indication of a fire may be based on a sudden change in the sensing data from the detector 130, such as a sudden increase in temperature, a sudden increase in spectral energy, or a sudden increase in other measured parameters. If the controller 120 determines the presence of a fire, the controller 120 develops a profile of this fire in step 1200c, and more preferably, based on the incoming sensing data. Based on this, a "hot zone" of growth or fire growth area is defined. Having determined the preferred profile or "hot zone," the controller 120 then locates the origin or location of the fire in step 1200d. In one particular embodiment, the preferred controller 120 determines all detectors 130 and dispensing devices 110 that are within the fire profile or "hot zone" in step 1200d1. In a next step 1200d2, the controller 120 determines the detector 130 or dispensing device 110 that is closest to the fire. In one preferred embodiment, this determination can be based on identifying the detector 130 that measured the highest reading in the hot zone. Preferably, the controller 120 can determine the proximity of the fluid dispensing device 110 to the highest-reading detector 130 in step 1200e.

[0033]

[0072] More preferably, controller 120 identifies fluid dispensing devices 110 on, around, and more preferably closest to the fire to form a preferred dispensing array. For example, controller 120 preferably dynamically and repeatedly identifies the four closest dispensing devices 110 around the detection device with the highest reading, or other selection criteria, in step 1200f. Alternatively, controller 120 can select and identify any other, preferably user-defined, number of dispensing devices 110, such as eight or nine dispensing devices, based on selection criteria. Then, in step 1200g, controller 120 identifies the four closest dispensing devices 110 to operate around and on the fire. In step 1200h, controller 120 preferably determines threshold moments for operating these four dispensing devices 110 on and around the fire. Controller 120 can preferably be programmed with user-defined thresholds, moments or criteria related to temperature, heat release rate, temperature rise rate, or other detection parameters. The threshold timing may be determined from any one or combination of system parameters, such as the number of detectors having data readings above a user-defined threshold, the number of fluid dispensing devices within a "hot zone" reaching a user-defined volume, a temperature profile reaching a threshold level, a temperature profile reaching a user-specified slope over a time period, a spectral energy reaching a user-defined threshold level, and / or a smoke detector reaching a particular user-defined level. Once the threshold timing is reached, the controller 120 notifies the four dispensing devices 110 to operate in step 1200i. More preferably, the controller 120 operates the selected four dispensing devices 110 of the emission array substantially simultaneously to combat, and more preferably, suppress, the fire.

[0034]

[0073] 5A shows a plan view of a preferred ceiling-only system 100 positioned above goods stored in a rack arrangement. In particular, an example grid of fluid dispensing devices 110a-100p and detectors 130a-103p is shown. In one example of method 1200, detectors 130a-103p are detects a fire, and processor 120 determines the location of fire F. For example, if detector 130g is identified as the detector with the highest reading, fluid delivery devices 110f, 110g, 110j, and 11k are identified by controller 120 as being above and around the fire in the "hot zone." Controller 120 operates fluid delivery devices 110f, 110g, 110j, and 110k to combat the fire based on detectors meeting or exceeding user-defined thresholds within the "hot zone."

[0035]

[0074] 4C is a flowchart illustrating another preferred exemplary operational embodiment 1300 of the controller of system 100. In initial step 1300a, controller 120 monitors the occupancy environment to determine an indication of, and preferably the location of, a fire based on sensing or detection input from detectors 130 that read values ​​that match or exceed a first threshold timing for a fire. For example, one or more detectors 130 may return readings that match or exceed a temperature rise rate threshold, a threshold temperature, or other measured parameter. Controller 120 processes the data to preferably determine, from step 1300b, a first dispensing device 110 that is closest to or associated with one or more detectors 130, and more preferably, the first dispensing device 110 that is closest to the determined fire location. In step 1300c, controller 120 identifies a preferred emission array to combat the detected fire by identifying a dispensing device preferably immediately adjacent to, and more preferably surrounding, the previously identified first dispensing device 110. The identification of adjacent dispensing devices is preferably based on programming in controller 120, which provides an address or location for each device that can be correlated with the identified proximity or relative positioning between the devices. Additionally, the number of devices in the preferred array may be user-defined or pre-programmed. Controller 120 then, in step 1300d, preferably determines a second threshold time for the fire, preferably using the same parameters or criteria used in determining the initial detection in step 1300a, or preferably using a higher threshold. The second threshold time may be determined by readings returned from one or more detectors 130. Once the second threshold time is detected, controller 120 then, in preferred step 1300e, operates all identified devices 110 in the preferred array to address the detected fire.

[0036]

[0075] Referring again to FIG. 5, for example, if detector 130k and associated dispensing device 110k are initially identified under this method at a first threshold, eight immediately adjacent and surrounding dispensing devices 110f, 110g, 110h, 110j, 110l, 110n, 110o, and 110p can be automatically identified for selection of a preferred emission array. Following determination of a second threshold timing for a fire, for example, detected by first detector 130k at a second threshold, preferably higher than the first, the preferred array can be activated by the controller for emission to address and preferably suppress the detected fire. Alternatively, the second threshold timing can be detected, for example, by second detector 130g, reading at the same or higher threshold as first detector 130k. In such a preferred embodiment, identification of adjacent and surrounding devices is preferably independent of temperature detection or other measured thermal parameters and instead is based on preset locations or preprogrammed device addresses to determine adjacency or relative positioning.

[0037]

[0076] Alternatively or additionally, if the user-defined parameters specify a smaller number of delivery devices 110 in the preferred emission array, such as four delivery devices, the identification of the second detector 130 can be used to determine how to locate and center the preferred delivery array. Referring to FIG. 1, if detector 130k and associated dispensing device 110k are initially identified under a first threshold, eight immediately adjacent and surrounding dispensing devices 110f, 110g, 110h, 110j, 110l, 110n, 110o, and 110p may be identified for possible selection of a preferred water discharge array. If detector 130f is identified under a user-defined or preprogrammed second threshold, the controller may statically identify and control operation of four fluid dispensing devices 110f, 110g, 110j, and 110k as a preferred four-device discharge array. Thus, in one aspect, the method provides for providing for a preferred user-defined, preset, fixed, or preprogrammed operation of a group or zone of dispensing devices 110 upon a heat detection identifying the first dispensing device. can be done.

[0038]

[0077] Illustrated in FIG. 4D is an alternative embodiment of another method for use in system 100. This embodiment of the method dynamically identifies and operates an array of fluid dispensing devices 110 on and around the point of origin of the fire, and more preferably, centered around and surrounding the point of origin of the fire, based on fire monitoring and detection at each detector 130. Each detector 130 is preferably associated with one discharge device 110. The method employs two different detector sensitivity thresholds, one more sensitive or lower than the other. The lower threshold establishes a preferred pre-alarm threshold for identifying and controlling the operation of a preferred number of dispensing devices on and around a detected fire. The lower sensitivity or higher threshold determines the moment for activation of the identified group of fluid dispensing devices.

[0039]

[0078] In this embodiment of the system and method, the controller 120 is programmed to define a preferred pre-alarm threshold and a preferred upper alarm threshold. These thresholds can be one or more combinations of rate of rise, temperature, or any other detection parameters of the detector 130. Preferably, the controller 120 is programmed with a minimum number of dispensing devices identified for the preferred emission array. Preferably, a device queue is defined that is comprised of dispensing devices associated with detectors that have met or exceeded a pre-alarm threshold. The programmed minimum number of devices 110 defines the minimum number of devices that must be in the queue before the array is activated or operated by the controller 120 at the programmed alarm threshold. Preferably, a maximum number of dispensing devices 110 in the device queue is programmed into the controller 120 to limit the number of devices operated by the controller 120.

[0040]

[0079] In an example embodiment of a controller 120 programmed to protect a double-row rack storing exposed foam plastic up to 40 feet below a 45-foot ceiling, the alarm threshold may be set at 135°F, and the pre-alarm threshold may be set at a rate of rise of 20°F per minute, assuming a minimum and maximum number of devices of 4 and 6, respectively. In the example embodiment of method 1400 shown in FIG. 4D , in step 1402, the controller 120 receives temperature information from the detectors 130. In step 1404, the controller 120 reviews historical temperature information from each of these detectors 130 and the current temperature detected by each of the detectors 130 to determine the temperature rise rate at each of these detectors. In step 1406, a determination is made as to whether the rate of rise of any detector 130 is greater than the pre-alarm rise rate threshold. If a detector determines that the pre-alarm threshold has been met or exceeded, in step 1408, the dispensing device 110 associated with that detector 130 is placed in a device queue. In step 1410, detector 130 continues to monitor the occupancy window to detect a rate of increase above the alarm threshold. If the alarm threshold is met or exceeded, and the number of serving devices 110 in the device queue is greater than or equal to the minimum number of devices and less than the maximum number of serving devices in the device queue, the detector 130 continues to monitor the occupancy window to detect a rate of increase above or equal to the alarm threshold. If so, the device in the queue is notified of the operation in step 1412. Again, the controller 120 may limit or control the total number of device operations, up to a maximum number specified in the controller 120's programming.

[0041]

[0080] 5A and fire event example F, detectors 130 monitor warehouse occupancy. For example, if eight detectors 130 detect a temperature and / or rate of rise exceeding a programmed pre-alarm threshold, a queue of devices is sequentially built up to a maximum of six dispensing devices 110, with each device associated with one of the eight detectors 130. The dispensing devices 110 in this queue may include, for example, 110b, 110c, 110f, 110g, 110j, and 110k. Once the alarm threshold is met or exceeded, the six devices forming the device queue are activated, and preferably simultaneously, to respond to fire F.

[0042]

[0081] Additionally or optionally, the controller 120 can be programmed with a backup threshold. The backup threshold is a sensed or derived parameter that can be the same or different from the pre-alarm and alarm thresholds and defines the conditions or timing for activating additional devices for operational control after the device cue has been activated. An example backup threshold for the previously described protection system can be 175°F. Additionally, the controller can be programmed with a desired maximum number of additional dispensing devices 110 to activate after activation of the initial device cue for a total of nine devices, such as three devices. Optionally, as shown in FIG. 4D of a method of operation 1400, if the detector 130 directly or indirectly detects a value equal to or exceeding the backup threshold after activation of the dispensing device 110 cue, steps 1414 and 1416, respectively, can identify, activate, and control the operation of additional devices up to the maximum number of additional devices. Thus, if a maximum of six rationing devices and a maximum of three additional devices are programmed into the device queue, a total of eight devices can be activated by the controller 120 when a detector 130 continues to detect a fire parameter above the backup threshold. For example, devices 110a, 110e, and 110i can be activated when their associated detectors 130 meet or exceed the backup threshold.

[0043]

[0082] 4E illustrates another embodiment of a method 1500 of operation of controller 120 in system 100. In this embodiment of the method, the fire status is continuously monitored and, if necessary, the fire is combated by a desired fixed group of fluid delivery devices that preferably combat the fire and minimize the volume of water dispensed. The operation of the fluid delivery devices in method 1500 can be controlled by controller 120, and more preferably, the fluid delivery devices are preferably configured for fluid control, allowing controller 120 to halt and resume water dispense, and more preferably, to control the flow rate from fluid delivery devices 110.

[0044]

[0083] In a preferred first step 1501, a first detector 130 is preferably identified by the controller 120 in response to a detection reading equaling or exceeding a programmed alarm threshold condition, such as, for example, a threshold temperature, rate of rise, or other detection parameter. In step 1502, one or more fluid delivery devices 110 are preferably operated based on a programmed association or programmed proximity to the identified first detector 130. A detector 130 may be associated one-to-one with a fluid delivery device, or alternatively, more than one fluid delivery device may be associated, such as, for example, a group of four delivery devices 110 arranged around and centered around a single detector 130. Referring to Figures 4E and 5A, in one preferred embodiment of the method and step 1502, the fluid delivery device being controlled is Preferably, the combination includes one primary delivery device 110g associated with the identified first detector 130g and eight secondary delivery devices 110b, 110c, 110d, 110f, 110h, 110j, 110k, 110l arranged around the primary delivery device 110g. In step 1502, the primary and secondary devices 110 are activated to define a first emission pattern for an operating period, such as two minutes.

[0045]

[0084] Following the first water discharge pattern period, a determination is made in step 1504 as to whether the fire has been suppressed, controlled, or otherwise effectively addressed. The detector 130 and controller 120 of the system continue to monitor the occupancy window to make this determination. If it is determined that the fire has been effectively addressed, or more preferably, suppressed, all operation of the fluid delivery device 110 is stopped and method 1500 ends. However, if it is determined that the fire has not been effectively addressed, the fluid delivery device 110 is reactivated with the same first water discharge pattern, or more preferably, a different second water discharge pattern in step 1506 continues to target the fire with extinguishing fluid. The fluid delivery device 110 defining the second pattern is maintained open by the controller 120 for a programmed period, e.g., 30 seconds. The total amount of water used to address the fire is preferably minimized. Thus, in one preferred embodiment, the second water discharge pattern is preferably defined by four secondary distribution devices 110c, 110f, 110h, 110k arranged centrally about primary distribution device 110g. Additionally or alternatively, the second water discharge pattern can be differentiated from the first water discharge pattern by varying the flow rate or duration of the fire extinguishing fluid from one or more distribution devices 110 to achieve a preferred minimum fluid flow rate.

[0046]

[0085] In preferred step 1508, the controller again preferably modifies the secondary delivery devices 110 around the primary delivery device to define a third water discharge pattern. For example, secondary delivery devices 110b, 110d, 110j, and 110l are activated to define the third water discharge pattern. The third pattern is a discharge of water for 30 seconds (30 seconds) or other programmed water discharge period. The preferred sequential activation of the second and third water discharge patterns preferably facilitates the creation and maintenance of a perimeter of the fluid delivery devices over and around the fire while minimizing water use and therefore potential water damage to others. In steps 1506 and 1508, It is then again determined whether the fire has been effectively combated in step 1510. If the fire has been effectively combated, and preferably extinguished, all operation of the dispensing device is stopped in step 1505. However, if it is determined that the fire has not been effectively combated, the controller repeats steps 1506 through 1508, continuing to dispense extinguishing fluid in the sequential second and third patterns previously described.

[0047]

[0086] In the preferred ceiling-only fire protection system, the ability to effectively combat and, more particularly, suppress a fire depends on the configuration of the warehouse occupancy and the stored goods being protected. Occupancy and stored commodity parameters that affect system installation and performance may include the ceiling height HI of the warehouse occupancy 10, the height of the commodity 12, the classification of the commodity 12, and the storage arrangement and height of the commodity 12 to be protected. Thus, a preferred fire suppression means in a ceiling-only system is capable of detecting and locating a fire to activate a preferred number and pattern of fluid delivery devices forming a preferred water discharge array to combat and preferably suppress a fire at the highest ceiling and storage height for commodity of the most hazardous commodity classification, up to and including exposed foam Group A plastics.

[0048]

[0087] Referring to Figure 1, the ceiling C of the occupancy frame 10 can be of any configuration, including a flat ceiling, a horizontal ceiling, a sloped ceiling, or any combination thereof. The height H1 is preferably defined by the distance between the floor of the storage occupancy 10 and the underside of the upper ceiling C (or roof deck) within the protected storage area, and more preferably defines the maximum height between the floor and the underside of the upper ceiling C (or roof deck). The product array 12 can be characterized by one or more of the parameters set forth and defined in Chapter 3.9.1 of NFPA-13. The array 12 can be stored up to a storage height H2, which preferably defines the maximum height of the storage and the nominal ceiling-to-item clearance CL between the ceiling and the top surface of the highest stored product. The ceiling height H1 can be 20 feet or greater, and can be even higher, such as up to 30 feet or greater, e.g., nominally 45 feet (45 ft), or even higher, e.g., nominally 50 feet (50 ft), 55 feet (55 ft), 60 feet (60 ft), or higher, specifically up to 65 feet (65 ft). Thus, the storage height H2 can be 12 feet or greater, and can range from nominally 20 feet or greater, e.g., nominally 25 feet (25 ft) to nominally 60 feet or greater, preferably between nominally 20 and 60 feet. For example, the storage height can be up to a maximum nominal storage height H2 of 45 feet (45 ft), 50 feet (50 ft), 55 (55 ft), or 60 feet (60 ft). Additionally or alternatively, the storage height H2 can be maximized below the ceiling C to define a minimum nominal ceiling-storage clearance CL of preferably 1 foot, 2 feet, 3 feet, 4 feet, or 5 feet, or any one of any number therebetween.

[0049]

[0088] The array 12 of stored goods preferably defines a high-stack storage (greater than 12 feet) racking arrangement, such as, for example, a single-row racking arrangement, preferably a multi-row racking arrangement, and even more preferably a double-row racking arrangement. Other high-stack storage configurations may also be protected by the system 100, such as, for example, palletized, solid-piled (stacked goods), bins and boxes. 5A and 5B, the array 12 may include a primary array 12a and one or more target arrays 12b, 12c, each defining an aisle width W1, W2 relative to the primary array, as seen in FIGS. 5A and 5B.

[0050]

[0089] The stored commodity 12 can include Class I, II, III, or IV commodities as defined by NFPA-13, or any of Group A, Group B, or Group C plastics, elastomers, and rubbers, or alternatively, any type of commodity whose combustion behavior can be characterized. Regarding the protection of Group A plastics, preferred embodiments of the present system and method can be adapted for protecting foamed and exposed plastics. According to NFPA 13, Chapter 3.9.1.13, "foamed (or cellular) plastic" is defined as "a plastic whose density is reduced by the presence of numerous small cavities (cells), which may or may not be interconnected, dispersed throughout its mass." NFPA 13, Chapters 3.9.1.14, defines "exposed Group A plastic commodity" as "a plastic that is not wrapped or coated in a way that absorbs water or appreciably retards the risk of combustion."

[0051]

[0090] By responding to, and more particularly suppressing, fires in stored goods in the manner described herein, the preferred system 100 provides a level of fire protection that significantly limits, and more preferably reduces, the impact of the fire on the stored goods. This provides a level of fire protection that is superior to known protection methods, such as suppression or fire control. It is believed to reduce damage to stored goods compared to fire performance Furthermore, in protecting exposed foam plastic goods, the preferred systems and methods allow for ceiling-only protection at heights and locations that are not available under current installation standards. Additionally or alternatively, the preferred systems and methods allow for ceiling-only protection of exposed foam plastic goods without the provision of, for example, vertical or horizontal barriers. As described herein, actual fire tests can be performed to demonstrate the favorable fire suppression performance of the preferred systems and methods described herein.

[0091] In a preferred ceiling-only configuration of the preferred system 100, as shown schematically in FIGS. 1, 5A, and 5B, the fluid distribution device 110 is installed between the ceiling C and a plane defined by the stored merchandise. The fluid distribution subsystem 100a includes a conduit network 150 having a portion suspended below the ceiling of the occupancy and above the merchandise to be protected. In a preferred embodiment of the system 100, multiple fluid distribution devices 110 are attached to or connected to the conduit network 150 to enable ceiling-only protection. Preferably, the conduit network 150 includes one or more main conduits 150a from which one or more branch conduits 150b, 150c, 150d exit. The distribution devices 110 are preferably attached to and spaced along the spaced branch conduits 150b, 150c, 150d to form the desired device-to-device spacing a×b. A detector 130 is preferably located on each distribution device 110, and more preferably axially aligned with each distribution device 110. The distribution devices 110, branch lines, and main conduit(s) may be organized to form either a grid or a tree-like conduit network. Additionally, the conduit network may include conduit fittings, such as connectors, elbows, risers, and the like, for interconnecting the fluid distribution portions of the system 100 and the fluid distribution devices 110.

[0052]

[0092] The conduit network 150 connects the fluid distribution device 110 to a source of fire-fighting fluid, such as a water main 150e or a water tank. The fluid distribution subsystem may further include additional devices (not shown), such as a fire pump or backflow preventer, to deliver water to the distribution device 110 at a desired flow rate and / or pressure. The fluid distribution subsystem also preferably includes a riser pipe 150f extending from the fluid source 150e to the conduit main 150a. The riser 150f may include additional components or assemblies to direct, detect, measure, or control fluid flow through the water distribution subsystem 110a. For example, the system may include a check valve to prevent fluid flow from the sprinklers back toward the fluid source. The system may also include a flow meter to measure the flow rate through the riser 150f and the system 100. Additionally, the fluid distribution subsystem and riser 150f may include a fluid control valve, such as, for example, a differential fluid-type fluid control valve. The fluid delivery subsystem 100a of the system 100 is preferably a wet pipe system (where the fluid is immediately released upon device operation) or or variations thereof, i.e., non-interlocking, single-interlocking, or double-interlocking preaction systems (system piping is initially a gas charge and then a fire extinguishing fluid charge in response to signaling from the detection subsystem such that the fluid is released from the dispensing device at its operating pressure upon device operation.

[0053]

[0093] A preferred embodiment of the fluid distribution device 110 includes a fluid deflection member coupled to a frame body, as shown schematically in FIGS. 2A and 2B. The frame body includes an inlet for connection to a piping network and an outlet, with an internal passageway extending therebetween. The deflection member is preferably axially spaced from the outlet in a fixed spaced relationship. Water or other fire-fighting fluid delivered to the inlet is expelled from the outlet to impact the deflection member. The deflection member distributes the fire-fighting fluid to deliver a volumetric flow rate that contributes to a desired aggregate volumetric flow rate for fighting, and more preferably suppressing, a fire. Alternatively, the deflector member can translate relative to the outlet port, provided that upon activation, the deflector member distributes the fire-extinguishing fluid in a desired manner. In the ceiling-only systems described herein, fluid delivery device 110 can be mounted such that its deflector member is preferably positioned a desired deflector-to-ceiling distance S from the ceiling, as shown schematically in FIG. 5B. Alternatively, device 110 can be mounted any distance from ceiling C, provided that device 110 is positioned above the protected commodity in a ceiling-only configuration.

[0054]

[0094] Thus, the fluid delivery device 110 may be structurally embodied in the frame body and deflector members of a "fire sprinkler," as understood in the art, and configured or modified accordingly to enable controlled actuation as described herein. This configuration may include known fire sprinkler frames and deflectors, with the modifications described herein. The sprinkler frame and deflector components used in preferred systems and methods may include known sprinkler components that have been tested and certified by an industry-accepted organization as acceptable for specified sprinkler performance, such as, for example, standard spray, suppression, or extended reach, and equivalents. For example, a preferred fluid delivery device 110 for installation in system 100 includes a Model ESFR-25 Early Suppression, Fast Response, Droop Sprinkler 25.2 K-Factor from TYCO FIRE PRODUCTS, LP, having a nominal 25.2 K-factor and configured for electrical control operation, as shown and described in Technical Data Sheet "TFP312: November 2012."

[0055]

[0095] As used herein, K-factor is defined as a constant representing the sprinkler discharge coefficient, and is quantified by dividing the fluid flow rate in gallons per minute from the sprinkler outlet by the square root of the pressure of the fluid flow rate delivered to the sprinkler passage in pounds per square inch (PSI). K-factor is calculated as GPM / (PSI) 1 / 2 NFPA 13 specifies the rated or nominal K-factor or rated discharge coefficient of a sprinkler as an average value over a K-factor range. For example, for K-factors of 14 or greater, NFPA 13 specifies the following nominal K-factors (with the K-factor ranges shown in parentheses): (i) 14.0 (13.5-14.5) GPM / (PSI) 1 / 2 ,(ii)16,8(16.0~17.6)GPM / (PSI) 1 / 2,(iii)19.6(18.6~20.6)GPM / (PSI) 1 / 2 ,(iv)22.4(21.3~23.5)GPM / (PSI) 1 / 2 ,(v)25.2(23.9~26.5)GPM / (PSI) 1 / 2 , and (vi) 28.0 (26.6-29.4) GPM / (PSI) 1 / 2 , or approximately (31.8~34.8GPM / (PSI) 1 / 2 ) ranges from 33.6 GPM / (PSI) 1 / 2 Alternate embodiments of the fluid delivery device 110 may include sprinklers having the aforementioned nominal K-factors or greater.

[0056]

[0096] U.S. Patent No. 8,176,988 shows other exemplary fire sprinkler constructions for use in the systems described herein. Specifically shown and described in U.S. Patent No. 8,176,988 are embodiments of an early suppression, fast response sprinkler (ESFR) frame body and deflector member or deflector for use in the preferred systems and methods described herein. The sprinklers shown in U.S. Patent No. 8,176,988 and Technical Data Sheet TFP312 are drop-type sprinklers. However, upright sprinklers can be configured or modified for use in the systems described herein. Alternative embodiments of the fluid delivery device 110 for use in the system 100 include nozzles, spraying devices, or other devices capable of controlled operation to deliver a volumetric flow rate of fire-extinguishing fluid as described herein. The present invention may include any other device configured to function.

[0057]

[0097] A preferred dispensing device 110 of system 100 may include, for example, a sealing assembly such as found in the sprinkler of U.S. Patent No. 8,176,988, or other internal valve structure disposed and supported within the outlet to control the release from dispensing device 110. However, the operation of the dispensing fluid dispensing device 110 or sprinkler is not directly or primarily triggered or operated by a thermal or heat-activated response to a fire in the warehouse occupancy. Instead, the operation of fluid dispensing device 110 is controlled by a preferred controller 120 of the system, as described herein. More specifically, fluid dispensing device 110 is directly or indirectly coupled to controller 120 to control the release and distribution of fluid from device 110. Shown in FIGS. 2A and 2B are schematic diagrams of a preferred electromechanical coupling configuration between dispensing device assembly 110 and controller 120 Technical Data Sheet TFP312. 2A shows a fluid delivery device assembly 110 including a sprinkler frame body 110x having an internal containment assembly supported in place by a removable structure, such as a thermally responsive glass bulb trigger. A transducer and preferably electrically operated actuator 110y is internally or externally disposed, coupled, or assembled with the sprinkler 110x to displace the support structure by breaking, destroying, expelling, and / or otherwise removing the support structure and its support for the containment assembly to permit fluid discharge from the sprinkler. The actuator 110y is preferably electrically coupled to a controller 120, which directly or indirectly provides an electrical pulse or signal that signals operation of the actuator to displace the support structure and containment assembly for controlled discharge of fire-extinguishing fluid from the sprinkler 110x.

[0058]

[0098] Alternative or equivalent electromechanical configurations of delivery devices for use in the present system are shown in U.S. Patent Nos. 3,811,511, 3,834,463, or 4,217,959. Shown and described in Figure 2 of U.S. Patent No. 3,811,511 is a sprinkler and electrically responsive explosive actuator arrangement in which an explosive device is electrically operated to displace a slidable plunger to rupture a bulb supporting a valve closure in the sprinkler head. Shown and described in Figure 1 of U.S. Patent No. 3,834,463 is a sensitive sprinkler having an outlet orifice and a rupture disc valve upstream of the orifice. The electrically responsive explosive conduit includes a control A conductive wire is provided that can be coupled to the sprinkler 120. Upon receiving the appropriate signal, the detonator explodes, producing expanding gases that break the disc and open the sprinkler. U.S. Pat. No. 4,217,959, Figure 2, shows and describes an electrically controlled fluid dispenser for a fire suppression system, including a valve disc supported by a frangible safety device for closing the outlet orifice of the dispenser. A striking mechanism having an electrical lead is supported against the frangible safety device. The patent states that an electrical pulse can be sent through the lead to release the striking mechanism and break the safety device, thereby removing the support for the valve disc and allowing the extinguishment material to flow from the dispenser.

[0059]

[0099] 2B shows another preferred electromechanical configuration for controlling actuation, including an electrically operated solenoid valve 110z for controlling discharge from the device frame. This electrically operated solenoid valve 110z is in line with and upstream of an open sprinkler or other frame body 110x. The frame outlet is free of a sealing assembly, and an electrical signal is sent to the solenoid valve 110z, configured accordingly to open the solenoid valve, depending on whether the solenoid valve 110z is normally closed or normally open. When valve 110z receives a signal from controller 120, it causes water to flow out of open sprinkler frame body 110x. Valve 110z is preferably positioned relative to frame body 110x so that opening valve 110z causes negligible delay in delivering fluid at its operating pressure to the frame inlet. Examples of known electrically operated solenoid valves for use in system 100 include:<http: / / http: / / www.ascovalve.com / Common / PDFFiles / Product / 8210R6.pdf> Available at This may include electric solenoid valves as described in ASCO® Technical Data Sheet "2 / 2 Series 8210: Pilot Operated General Service Solenoid Valves Brass or Stainless Steel Bodies 3 / 8 to 2 1 / 2 NPT" and their equivalents. In one particular solenoid valve configuration with a 1:1 valve-to-frame body ratio, the system effectively provides a controlled micro-deluge system to combat and preferably suppress fires, thereby further limiting and preferably reducing damage to occupancies and stored goods compared to known flood configurations.

[0060]

[0100] A preferred system 100 as described above was installed and subjected to an actual fire test. A plurality of preferred fluid dispensing devices 110 and detectors 130 were installed above boxed, non-foamed Group A plastic rack storage stored to a nominal storage height of 40 feet (40 ft) below a 45 ft (45 ft) horizontal ceiling to define a nominal clearance of 5 feet (5 ft). More specifically, for example, as shown in FIG. 2B, a 19.2 GPM / PSI 1 / 2 To determine the actual K-factor, respectively, 1 / 2 Sixteen open sprinkler frame bodies and deflectors of ESFR-type sprinklers, each with a nominal K-factor of 25 GPM / PSI, were arranged in a fluid delivery assembly along with a solenoid valve. A pair of detectors 130 were located on and around each fluid delivery assembly. The delivery devices 110 were spaced 10 ft x 10 ft apart and provided a 25 GPM / PSI 1 / 2 Water was supplied from each sprinkler at an operating pressure of 35 psi to provide a flow rate equivalent to the nominal K-factor of The assemblies were installed below the ceiling so that the sprinkler deflector was located 20 inches below the ceiling.

[0061]

[0101] The sprinkler assembly is installed on a Group A plastic item The product contained a 21 in x 21 in double-sided corrugated cardboard carton containing 125 empty crystal polystyrene 16ox cups in separate compartments. Each pallet of product was supported by a two-way 42 in x 42 in x 5 in slatted hardwood deck pallet. The product was stored in a racking arrangement with a central double-row rack and two single-row target arrays arranged around the central rack. The central array was positioned to define a four-foot (4 ft) wide aisle width W1, W2 between the central and target arrays, as seen in Figure 5B. The central double-row rack array contained 40 ft high, 36 inch wide rack members arranged with four 96 inch bays, with eight tiers in each row, providing a nominal 6 inch longitudinal and transverse flue space across the test array.

[0062]

[0102] The geometric center of the central rack is located below the four fluid delivery assemblies 110. Two half-standard cellulose cotton ignition devices were installed using a 3-inch by 3-inch long cellulose bundle soaked in 4 ounces of gasoline and wrapped in a polyethylene bag. The ignition device was positioned on the floor, offset 21 inches from the center of the central double row rack main array. The ignition device was ignited and a single fire F test of the system 100 was conducted. The system 100 and preferred method located the test fire and identified a fluid delivery device 110 to combat the fire as previously described. The system 100 was tested for a period of 32 minutes. The fire continued to be dealt with and the goods were assessed at the end of the inspection.

[0063]

[0103] This test fire is to be carried out in a manner that the preferred system configured for fire suppression is kept This demonstrates the ability of the system to significantly reduce the impact of a fire on the goods being ignited. A total of nine fluid distribution devices were identified and activated within two minutes of ignition. The nine identified devices included four distribution devices 110q, 110r, 110s, and 110t located directly above and around the fire. These four activated devices 110q, 110r, 110s, and 110t defined a discharge array that effectively suppressed the ignition by limiting fire propagation vertically toward the ceiling, forward and backward toward the ends of the central array 12a, and laterally toward the target arrays 12b and 12c. Thus, the fire was contained or surrounded by the four most direct and proximate fluid distribution devices 110q, 110r, 110s, and 110t above and around the fire.

[0064]

[0104] Damage to the main array is shown graphically in Figures 5B, 6A, and 6B. Damage to merchandise was concentrated in the core of the central array defined by the centrally located pallets. This damage is indicated by shading. Toward the ends of the array, fire damage was limited to the two central bays. Minimal damage to cartons was observed. Thus, in one preferred embodiment, the fire suppression system contained the fire within the cross-sectional area defined by the four preferred fluid distribution devices located closest to and around the fire. Referring to Figures 6A and 6B, fire damage was also limited, or contained, vertically by the preferred fire suppression system. More specifically, fire damage was limited vertically from the bottom of the array to no more than the bottom sixth layer of stored merchandise. Assuming fire suppression performance limited fire propagation, fire suppression performance can also be further characterized by the preferred system's ability to prevent the test fire from spreading across the aisle to the target arrays 12b and 12c.

[0065]

[0105] Sedation performance is determined by whether one or more parameters or a combination of parameters are met. Damage to the sedation performance can be observed by determining whether the sedation performance is significant. For example, vertical damage can be limited to six or fewer layers of the product. Alternatively or additionally, vertical damage can be limited to 75% or fewer of the total number of layers of the inspected product. Horizontal damage can also be quantified to characterize sedation performance. For example, horizontal damage subject to sedation performance can be limited to two pallets or fewer, and more preferably, one pallet or fewer in a direction toward the end of the array.

[0066]

[0106] Additional fire testing has confirmed that the preferred systems and The system and method have also been shown to be usable for ceiling-only protection of exposed foam plastic goods at heights and locations not available under current installation standards. For example, in one preferred system installation, multiple preferred fluid dispensing devices 110 and detectors 130 can be installed above rack storage of exposed foam Group A plastic. The exposed foam Group A plastic is stored at a nominal storage height ranging from 25 to 40 feet (25 ft) below a forty-five foot (45 ft) horizontal ceiling to define a nominal clearance ranging from five feet (5 ft) to twenty feet (20 ft). Provided the ceiling is sufficiently high, preferred embodiments of the system and method herein can provide protection up to fifty to fifty-five feet (50-55 ft). In one preferred storage configuration, the ceiling height is forty-eight (48 ft) and the nominal storage height is forty-three feet (43 ft).

[0067]

[0107] In one particular embodiment of the preferred system, an ESFR type splicer The casing frame body group preferably has an internal sealing assembly and a deflector, as shown in FIG. 2A, each of which is rated at 25.2 GPM / PSI. 1 / 2 Nominal K-F The drainage devices 110 are preferably installed at 10 ft x 10 ft intervals in a looped piping system, with an electrical actuator in each fluid delivery assembly having a drainage factor of 1.95 gpm·ft. 2 The water is supplied at an operating pressure of 60 psi to achieve a preferred discharge density of 18 inches (S). The fluid distribution devices are preferably installed below the ceiling to position the deflector at a preferred deflector-to-ceiling distance S of 18 inches (S) below the ceiling. Each deflector and fluid distribution device is preferably coupled to a centralized controller for detecting fires and operating one or more fluid distribution assemblies as described herein. The system and its controller 120 are preferably programmed to identify nine distribution devices 110 to form an initial discharge array to address a detected fire.

[0068]

[0108] As previously discussed, the preferred embodiment of the fluid delivery device 110 is structured Typically, the fluid delivery device may be embodied as a fire sprinkler, nozzle, misting device, or any other device configured to be electronically controlled in operation to deliver a volumetric flow rate of fire-extinguishing fluid as described herein. Described below are preferred and / or alternative embodiments of fluid delivery devices for use in system 100. Unlike the prior art sprinklers or fluid dispensers described above, which require rupturing a sealing valve disc or partition or fracturing its supporting bulb or frangible safety device to open the sprinkler, the preferred fluid delivery devices described below incorporate preferred embodiments of an innovative electronically operated release mechanism that collapses or contracts to unsupport its sealing assembly within the sprinkler or nozzle frame and open the preferred fluid delivery device.

[0069]

[0109] Illustrated in FIG. 7 is a flow sprinkler system preferably embodied as a fire sprinkler 310. 1 is a schematic cross-sectional view of one embodiment of a body delivery device shown in an inactivated state. Sprinkler 310 includes a sprinkler frame 345 having a first end and a second end. Sprinkler 310 includes a frame body 322. Frame body 322 has an inlet 330 at the first end of the frame and an outlet 332 located between the first and second ends of frame 345. Inlet 330 may be connected to a piping network as previously described. In the inactivated state of sprinkler 310, outlet 332 is closed or sealed by a sealing assembly 324 to control discharge from device 310. Generally, the seal assembly 324 includes a seal button, seal, or plug 323 disposed within the outlet 332 and coupled or engaged with a biasing member, such as, for example, a Belleville spring or other resilient ring, that operates to bias the button 323 away from the outlet 332. Supporting the seal assembly 324 within the outlet 332 is a preferred powered release mechanism 328. The preferred release mechanism 328 defines a first unactuated configuration or arrangement for maintaining the release assembly 324 within the outlet 332. Release mechanism 328 also defines a second operating configuration or state in which release mechanism 328 operates to release its support for seal assembly 324 and allow ejection of seal assembly 324 from outlet 332 and discharge of fire extinguishing fluid from outlet 332.

[0070]

[0110] In general, the preferred release mechanism 328 is a unique A hook and post assembly is provided. A preferred link couples the hook and post with a preferably motorized linear actuator that breaks the link to uncouple the hook and post. In a preferred embodiment The release mechanism 328 is embodied as a post member 342, preferably a hook member 344. The release mechanism 328 includes a lever member, a tension link 346, a screw or other threaded member 353, and an actuator 314. A preferred tension link 346 includes a breakaway region designed to control breakage and allow the release mechanism 328 to operate upon breakage. The screw 353 forms a threaded engagement with the frame 345 and applies an axial load aligned with the longitudinal axis AA. The hook and post arrangements 342, 344 transfer the axial load of the screw 353 to the seal assembly 324 to hold it stationary against a seal seat formed therein. More specifically, in the unactuated configuration of the release mechanism 328, the first end 352 of the post 342 contacts the hook member 344 at a notch 358 to define a fulcrum, and the second post end 354 is engaged with a groove 356 formed on the button 323 of the seal assembly 324 and preferably positioned along the longitudinal axis AA. Axially acting screw 353 applies its load on hook member 344 at second notch 360 to a first side of the fulcrum, defining a first moment arm relative to the fulcrum defined by first end 352 of support member 342. Accordingly, first end 352 of support member 342 is preferably positioned slightly offset from longitudinal axis AA. Countering the moment generated by load screw 353 is link 346. Link 346 couples hook member 344 to support member 342 and maintains the hook and support arrangement stationary to support seal assembly 324 against the bias force of the seal spring or fluid pressure delivered to the sprinkler. More specifically, link 346 engages hook member 344 with first end 352 of support member 342 at a location between first end 371 and second end 373 of hook member 344, defining a second moment arm. The second moment arm is sufficient to maintain the hook member 344 in a stationary position relative to the post 342 in the unactuated state of the release mechanism 328 .

[0071]

[0111] As shown in FIG. 7, the hook member 344 is preferably 7. The actuator 314 includes an opening or recess 366 having an internal thread that mates with the externally threaded portion of the support post 342. Alternatively, the actuator 314 may be coupled to the hook member 344 in a different manner, for example, using a bolt, strap, clip, or the like. In the unactuated state, the piston 381 of the actuator 314 is in a retracted position, and the actuator 314 is spaced from the support post 342 by a distance preferably less than 10 mm. The actuator 314 is positioned such that the actuator 314 forms an angle A° with the longitudinal axis AA that is less than 90° in the embodiment shown in FIG. 7, although the angle A° may be 90° or greater in other embodiments. The profile of the hook member 344 may be varied to accommodate various angles A° to meet design requirements without departing from the spirit of this disclosure. do.

[0072]

[0112] Actuator 314 is electronically actuated to move piston 381 to the extended position. 342. When the applied force exceeds the maximum tensile load of the tension link 346, the tension link 346 breaks (or splits into two or more pieces), allowing the hook member 344 to pivot about the first end 352 of the pivoted engagement strut member 342, causing the release mechanism 328 to collapse and release the sealant assembly 324 from the outlet 332. That is, the release mechanism 328 transitions from a first configuration (or inactivated state) to a second configuration (or activated state). Water contained within the frame body can then be released to combat a fire in the preferred manner described herein. The actuator 314 can be one of various types of actuators, such as, for example, a pyrotechnic actuator or a solenoid actuator. Preferably, actuator 314 is a pyrotechnic actuator, such as a Metron Protractor™ manufactured by Chemring Energetics UK Ltd, e.g., DR2005 / C1 Metron Protractor™. A Metron™ actuator (or Metron™ protractor) is a pyrotechnic actuator that utilizes a small charge to drive a piston. The device is designed to produce mechanical work by high velocity movement when a piston is driven by the combustion of a small amount of explosive material.

[0073]

[0113] FIG. 7A is a perspective view of a preferred embodiment of tension link 346. FIG. 7B is a top view and a cross-sectional view of tension link 346 taken along line IA-IA. Preferably, tension link 346 includes a first portion 372 and a second portion 374. First and second portions 372, 374 are connected by a third (or intermediate) portion 376. In a non-activated state of sprinkler and release mechanism 328, in a first configuration, first portion 372 is engaged with post 342 and second portion 374 is engaged with hook member 344. Preferably, first and second portions 372, 374 include first and second apertures 382, ​​384, respectively. As shown in FIG. 7, first portion 372 is coupled to post 342 via first aperture 382, ​​and second portion 374 is coupled to hook member 344 via second aperture 384.

[0074]

[0114] The third section (or middle section) 376 is supported by the actuator 314. Third portion 376 is designed to collapse (or fail) when the force applied to 342 exceeds a threshold value. That is, third portion 376 is designed to become a break point or area when the tensile load on tension link 346 caused by actuator 314 exceeds a predetermined design value or capacity of the break area. Preferably, the maximum tensile load or capacity that the third portion 376 can withstand is less than the maximum tensile load that either the first or second portion 372, 374 can withstand before fracture. Stated differently, the maximum tensile force or capacity of the third portion 376 is less than the maximum tensile force of either the first or second portion 372, 374. This design can be achieved in a variety of ways. For example, the third portion 376 may have a thinner thickness than the first and / or second portion, a narrower width than the first and / or second portion, one or more perforations, cutouts, notches, grooves, or any combination thereof. For example, to facilitate fracture due to impact or explosive forces from a Metron™ actuator, brittle materials such as ceramics or gray cast iron may be used for the tension link 346 in some cases. Any design can be used for the tension link, as long as the maximum tensile force of the third portion 376 is less than the maximum tensile force of either the first or second portion 372, 374.

[0075]

[0115] As shown in FIGS. 7A-7C, a preferred tension link 346 includes a first and a third portion 376 having a thickness TH3 less than the thicknesses TH1, TH2 of the first and second portions 372, 374, and a width WT3 less than the widths WT1, WT2 of the first and second portions 372, 374. Preferably, the thickness TH3 of the third portion 376 is less than half the thicknesses of the first and second portions 372, 374, i.e., ½ × TH1, ½ × TH2. In a plan or top view of the link 346, a notch 369 is preferably formed around the periphery of the middle third portion 376, which may define or experience a stress concentration when a tensile load is applied. Thus, the preferred tension link 346 has a thinner thickness, narrower width, and a notched configuration to induce a stress concentration in the middle portion 376, to ensure that fracture occurs in the middle portion 376 at a predetermined tensile force from the actuator 314.

[0076]

[0116] The design of the tension link 346 may be such that: i) the actuator 314 Based on determining the desired breaking load applied to the tension link 346 by the posts 342 and hook members 344 when actuated, and ii) the tensile strength of the material selected for the tension link 346. The cross-sectional area of ​​each section of the tension link 346 can then be calculated to derive the appropriate dimensions to achieve failure at the intermediate section 376. The tensile link 346 may be made of a single component or material, such as steel, plastic, alloy, ceramic, etc. Alternatively, the tensile link 346 The tensile link 346 may be constructed of more than one material. For example, the middle portion 376 may be made of a material that has a lower tensile strength than the first and second portions 372, 374. The tensile link 346 may be formed by any suitable technique, such as, for example, stamping, casting, deep drawing, or a combination of stamping, casting, deep drawing, or machining.

[0077]

[0117] The operation of the preferred fluid delivery device or sprinkler 310 is thermally responsive or is not induced by a heat-activated response, but operates Alternatively, operation of the sprinkler 310 can be controlled electronically, for example, by the preferred system controller 120 described above. FIGS. 8A-8B show schematic perspective views of the sprinkler 310 in a preferred system installation and operation. More specifically, FIG. 8A shows the sprinkler 310 in an unactuated state, coupled to the controller 120, which communicates with a detector (not shown), as previously described. The actuator 314 can communicate with the control panel 120 through one or more lines or through a suitable communications interface, such as, for example, telephone, wireless digital communications, or through an internet connection. Upon receiving an appropriate control or command signal from the controller 120, the actuator 314 operates as previously described to apply a force to the support pole 342 to activate the sprinkler 310. Preferably, the actuator 314 is configured to apply its force in a second plane P2 that intersects a first plane P1, preferably defined by a pair of frame arms 336.

[0078]

[0118] FIG. 8B shows sprinkler 320 in an activated state. 8B, the actuator 314 is actuated and applies a force to the strut 342. In the preferred actuator 314 shown in FIG. 8B, the piston 381 extends and applies a force to the strut 342, thereby applying a tensile load to the tension link 346. If the applied tensile load exceeds a predetermined design failure load or capacity (e.g., a maximum tensile load preferably ranging from 50 to 100 pounds (lbs)), the tension link 346 will break. This failure preferably begins at the mid-section 376 of the tension link 346, causing the tension link 346 to break into two separate pieces. Once the tension link 346 breaks, the hook member 344 pivots about the fulcrum and is ejected, along with the actuator 314, out of or away from the sprinkler frame 345, then the strut 342, and then the closure assembly. The assembly 324 is expelled or released, opening the internal passageway for the release of fluid from the outlet 332 .

[0079]

[0119] Therefore, the preferred sprinkler 310 and its release mechanism Unlike known strut-and-link sprinklers that include a heat-sensitive element, e.g., a metal laminate joined with a low-melting-point metal by solder, the preferred embodiment of release mechanism 328 of sprinkler 310 does not include a sensitive link or a sensitive element for its operation. That is, tension link 346 is preferably a heat-insensitive link. The elimination of a heat-sensitive link from release mechanism 328 allows greater control of operation by controller 120 and prevents inadvertent operation.

[0080]

[0120] Furthermore, at least a portion of the actuator is located inside the sprinkler frame. Unlike known actuator-driven sprinklers, the preferred actuator 314 of device 310 is located external to sprinkler frame 345, i.e., external to frame body 322 and frame arms 336. Actuator 314 is mounted on hook member 344, and therefore does not require a separate mounting on sprinkler frame 345 for installation of actuator 314. When actuator 314 is actuated, actuator 314 and release mechanism 328 engage spring 316. The actuator 314 and / or release mechanism 328 are ejected from the deflector frame 345. Therefore, there is no obstruction (or disruption) in the water path due to the actuator 314 and / or release mechanism 328. Furthermore, the actuator 314 can be easily attached to conventional post-and-link sprinklers without requiring major structural modifications. Upon activation of the release mechanism 328 and sprinkler 310, water is expelled to impact the deflector assembly 326 and be redistributed as described herein. The deflector assembly 326 preferably includes a deflector positioned longitudinally a fixed distance from the outlet 32. The frame 345 preferably includes a pair of frame arms 336 positioned around the frame body 322 and outlet 32 ​​in the first plane P1. The pair of frame arms 336 converge toward a distal end 351. The distal end 351 includes an internally threaded portion through which a screw or load member 353 threadably engages.

[0081]

[0121] 9A and 9B show a preferred electrically operated release mechanism 416. 1 is another fluid delivery device 410 for use in the system 100 having a different alternative embodiment. A preferred release mechanism 416 includes an electrically operated linear actuator for unlatching the hook and post members and a hook and post assembly in a latched configuration. Including Mumbri.

[0082]

[0122] The sprinkler 410 preferably includes a frame 432. Sprinkler 410 includes a frame body 412 having an inlet 420, an outlet 422, and an inner surface 424 defining a passageway 426 extending between the inlet 420 and the outlet 422. The inlet 420 may be connected to a piping network as previously described. Frame 432 preferably includes at least one frame arm, and more preferably includes two frame arms 413a, 413b disposed about the periphery of body 412. Frame arms 413a, 413b converge toward a tip 438. Tip 438 is preferably integrally formed with the frame arm, axially aligned along the longitudinal axis AA of the sprinkler. As shown in the inactivated state of sprinkler 410, outlet 422 is shielded or sealed by a sealing assembly to prevent the release of fire-extinguishing fluid from outlet 422. The seal assembly 414 generally includes a seal, plug, or button disposed within the outlet 422 and coupled or engaged with a biasing member (not shown), such as a Belleville spring or other resilient ring, that assists in expulsion of the seal from the outlet 422.

[0083]

[0123] Supporting the closure assembly within outlet 422 is a preferred release mechanism. 416. The release mechanism 416 defines a first inoperative configuration or arrangement that maintains the seal assembly 414 within the outlet 422 and in proper engagement with a seal seat (not shown) formed around the outlet 422. The release mechanism 416 also defines a first inoperative configuration or arrangement that allows the release mechanism 416 to disengage the seal assembly 414 and remove the seal assembly from the outlet 422. The release mechanism 416 also defines a second actuation configuration or state that allows for the ejection of the bridge 414 and the release of fluid. In a preferred embodiment, the release mechanism 416 includes a post member 442, a lever member preferably embodied as a hook member 444, a screw 440, and a linear actuator 446. The post member 442 has a first post end 448 and a second post end 450. The screw 440 forms a threaded engagement with the frame 432 and applies a load axially, preferably aligned with the longitudinal axis AA. The preferred hook and post configuration 442, 444 transfers the axial load of the screw 440 to the seal assembly while the assembly remains stationary.

[0084]

[0124] In the unactuated configuration of the release mechanism 416, the first end 448 of the strut member 442 The post member 442 preferably is aligned parallel to and offset from the longitudinal sprinkler axis AA. The axially acting screw 440 engages the hook member 444 at a first notch 458 to define a fulcrum, and the second post end 450 of the post member 442 is engaged with a groove formed on the button of the seal assembly 414. The post member 442 is preferably aligned parallel to and offset from the longitudinal sprinkler axis AA. The axially acting screw 440 engages the hook member 444 at a second notch 460. The screw 440 applies its load to the first lever portion 454 on a first side of the fulcrum, defining a first moment arm with respect to the fulcrum defined by the first end 452 of the post member 442. The amount of load applied by the screw 440 to the first lever portion 454 can be controlled by adjusting the torque of the screw 440 via the internally threaded portion of the tip 438. In this manner, the screw (or compression screw member) 440 applies a sealing force to a seal at the outlet 442 in the unactuated state.

[0085]

[0125] As shown, the hook member 444 is preferably U-shaped. The release mechanism 444 has a first lever portion 454, a second lever portion 456, and a connecting portion 455 connecting the first and second lever portions 454, 456. The connecting portion 455 preferably extends parallel to the longitudinal axis AA. The first and second lever portions 454, 456 preferably extend parallel to one another and perpendicular to the longitudinal axis AA in the unactuated state. The screw 440 acts on the first lever portion 454 on a first side of a fulcrum defined by the first end 448 of the strut member 442. In the unactuated state of the release mechanism 416, the second lever portion 456 is in frictional engagement with the strut member 442. Preferably, the second lever portion 456 includes a catch portion 466. The stop portion 466 is in frictional engagement with a portion of the post member 442 to prevent the hook 444 from pivoting about the fulcrum and maintain the release mechanism stationary in the unactuated, loaded condition of the screw 440. Thus, in a preferred embodiment, the post member 442 and the hook member 444 are in direct interlocked engagement with one another in the first configuration of the release mechanism. The preferred trigger assembly further includes a trigger lever 466 for disengaging the direct interlocked engagement in the second configuration of the trigger assembly. The second lever portion 456 includes a linear actuator that acts on one of the post member and the hook member. In this manner, the load (or sealing force) from the screw 440 is transferred to the sealing assembly 414, thereby supporting the sealing assembly within the outlet 422. The stop portion 466 may be integrally formed with the second lever portion 456. Alternatively, the stop portion 466 may be made separately from the hook 44 and attached to it.

[0086]

[0126] FIG. 10A shows a cross-sectional view of the release mechanism 416, and FIG. 10B shows a cross-sectional view of the strut member 416. 4 shows a perspective view of a preferred embodiment of release mechanism 416. The preferred post member 442 has an intermediate portion 480 between a first end 448 and a second end 450. The intermediate portion 480 preferably defines a window, slot, or opening 474 therein through which the second lever portion 456 of the hook member 444 passes in the first configuration (or in the unactuated state). Specifically, post 442 has an inner edge 482 that defines the window 474, and the catch portion 466 preferably latches onto or couples with the inner edge 482 of post 442 by directly contacting the post 442 in the first configuration or in the unactuated state of the release mechanism 416.

[0087]

[0127] The preferred release mechanism 416 includes a linear actuator 446 to operate the release mechanism and actuate the sprinkler 410. 1 and 2, the actuator 446 includes a movable piston 472 that extends axially, preferably substantially parallel to the sprinkler axis AA, from the first portion 458 of the hook member 444 to the hook portion 460. The linear actuator 446 defines a retracted configuration when the sprinkler 410 is in an inactivated state and an extended configuration when the sprinkler 410 is activated. The actuator 446 is preferably attached to or coupled to the support member 442. In a preferred embodiment, the support member includes a mount or platform 468 for mounting the linear actuator 446. More preferably, the mount 468 is formed from an intermediate portion 480 between the first and second ends 448, 450 of the support member 444. The linear actuator 446 is attached to or coupled to the mount 468 by any suitable means that allows the movable member 472 of the linear actuator 446 to translate linearly as described herein. As shown in FIGS. 1 and 2, the actuator 446 includes a movable piston 472 that extends axially, preferably substantially parallel to the sprinkler axis AA, preferably from the first portion 458 of the hook member 444 to the hook portion 460. An actuator 446 is mounted to translate from a retracted configuration to an extended configuration in a direction toward the second portion 456 of the hook member 444. Further, the actuator 446 is mounted such that linear axial translation of the movable piston 472 contacts and displaces the second portion 456 of the hook member 444, such that the release mechanism operates as described herein. The actuator 446 may be embodied by any one of a variety of types of actuators, such as, for example, a pyrotechnic actuator or a solenoid actuator. In one application, the actuator 446 is a pyrotechnic actuator, such as a Metron Protractor™ manufactured by Chemring Energetics UK Ltd, e.g., the DR2005 / C1 Metron Protractor™.

[0088]

[0128] Preferably, the sprinkler 410 has a thermal trigger, a link, or The sprinkler 410 is not passively activated by exposure to rising temperatures from a fire, as do automatic sprinklers with valves. Instead, the sprinkler 410 is actively activated, allowing for controlled activation and release from the fire sprinkler 410. Shown in FIG. 9A is a schematic diagram of a preferred exemplary installation of the sprinkler 410, in which the release mechanism 416 and its actuator 446 are coupled to, for example, the controller 120 of the system 100 described above. The connection or communication between the release mechanism 416 and the controller 120 can be a wired or wireless communication connection. To activate the sprinkler 410, the controller 120 signals the preferred actuator 446 to switch from its retracted configuration to its extended configuration. In the preferred system 100, the electrical signal from the controller 120 can be automatically initiated from a detector 130 coupled to the controller 120.

[0089]

[0129] Upon receiving the appropriate actuation signal, the preferred actuator 446 activates the release mechanism. 10A , the actuator 446 operates to disengage the hook member 444 from the post member 442 to change the mechanism 416 from its first, unactuated configuration to its second, actuated configuration. More specifically, as shown in dotted lines in FIG. 10A , the preferred piston 472 of the actuator 446 extends to contact and depress the second lever portion 456 of the hook member, displacing or bending the second lever portion 456 such that the catch portion 466 disengages or releases from the post member 442. Additionally, the hook member 444 rotates about the fulcrum under the load of the screw 440.

[0090]

[0130] In the activated configuration, the release mechanism 416 collapses to release its force against the seal assembly. The removal of support frees the containment assembly 414 from the outlet 422, allowing fluid to be released to combat the fire as described herein. The extinguishing fluid is released to impact a deflector assembly 436 coupled to the sprinkler frame 432 and redirected in a desired manner to combat the fire. The deflector assembly 436 preferably includes a deflector member (shown generally), which is preferably longitudinally positioned a fixed distance from the outlet 422. Frame arms disposed about the periphery of the body 412 extend and converge toward a tip 438, which is axially aligned along the longitudinal axis AA. The deflector member is preferably supported by the arms and tip of the sprinkler frame a fixed distance from the outlet 422.

[0091]

[0131] In the preferred release mechanism 416, the actuator 446 422, so that a separate mounting is not required on the sprinkler frame 432 for installation of the actuator 446. Furthermore, upon activation of the sprinkler, the actuator 446 and release mechanism 416 are expelled from the sprinkler frame 432, meaning that there is no obstruction (or disruption) caused by the actuator 446 and / or release mechanism 416 in the water passage between the outlet 422 and the deflector assembly 436. Furthermore, the preferred release mechanism 416 of the present disclosure does not require a hook to be attached to the post. Instead, the hook and its preferred catch portion also function as the link between the hook member and the post member, thereby eliminating the need for a separate link and simplifying the design of the release mechanism.

[0092]

[0132] 11 and 12A-12C show the system 100. 11 is a schematic diagram of an exemplary embodiment of a sprinkler 510, including a preferred release mechanism 524, for controlling the operation of the sprinkler 510. The sprinkler includes a sprinkler frame body 512 having an inlet 516 for connection to the piping network of the system 100, for example, and an outlet 518. When the sprinkler 510 is in an inoperative state, the outlet is shielded or sealed by a sealing assembly 520. The sealing assembly 520 generally includes a plate or other plug disposed within the outlet and coupled to or engaged with a biasing member, such as a disc spring or other resilient ring, that acts to bias the plate or plug away from the outlet 518. Preferably axially spaced a preferably fixed distance from outlet 518 is a deflector 522 for distributing fluid discharged from the outlet upon actuation of the sprinkler. Supporting seal member 520 within outlet 518 is a preferred release mechanism 524. Release mechanism 524 defines a first configuration or arrangement that maintains seal assembly 520 stationary within outlet 518. Release mechanism 524 also defines a second configuration or state that allows expulsion of seal assembly 520 from outlet 518 and discharge of fluid therefrom.

[0093]

[0133] Specifically shown is a stud 524a and a hook or lever 524b. 5, a preferred release mechanism 524 is shown. In a first, unactuated configuration or arrangement, post 524a acts on one end toward seal assembly 520 and is supported and loaded at the other end by a load screw. As previously described for other embodiments of the post and lever actuator assembly, the load screw threads into a boss or tip formed away from the outlet. Post 524a and lever 524b can be configured with frame 512 and seal assembly 520 similar to the posts and levers shown and described in U.S. Pat. Nos. 7,819,201 and 7,165,624. Shown in dotted lines is support assembly 524 in its second actuated state, disengaged from seal assembly 520, allowing ejection of seal assembly 520 from outlet 518 and release of fluid therefrom.

[0094]

[0134] A release mechanism 524, shown in FIG. 11, controls the operation of the sprinkler 10. The preferred release mechanism 524 has an actuator, and more preferably a link arrangement 560, to enable actuation to switch the release mechanism 524 between its first configuration and its second configuration. More specifically, the preferred release mechanism and installation allows actuation to switch the release mechanism 524 between its first configuration and its second configuration. Generally, the preferred release mechanism 524 includes a link 560 in which two metal members are held together around the support assembly 24 to hold the preferred post and lever members 524a, 524b in their first configuration and support the sealant assembly 20 within the outlet 18 of the sprinkler body 12. In a preferred electrically controlled operation, the two metal members separate, causing the release mechanism to collapse, releasing its support for the sealant assembly 520 and allowing fluid to be released from the sprinkler outlet 518.

[0095]

[0135] The preferred actuator 524 has two modes of actuation: separating the metal members; The actuator has a passive mode in which the solder melts in response to a fire or other sufficient heat source to separate the metal members, and an active mode in which a controlled electrical signal is sent to link 560 to heat the actuator so as to melt the solder and allow the metal members to separate. The code allows for control of sprinkler 510 activation, for example, by sending electrical signals to sprinkler 510 and link 560 by controller 120. Alternatively, link 560 and release mechanism 524 can be configured for active activation only via appropriate electrical control signals. Referring again to FIG. 11 , actuator 100 is shown, with optional insulation 561 around link 560 shown schematically in dotted lines to illustrate the link. When the link is insulated, heat transfer from the fire cannot melt the solder to passively activate actuator assembly 564. Thus, a fully active mode release mechanism 524 can only be activated by an appropriate electrical control signal to melt the solder and allow separation of the link metal members.

[0096]

[0136] Shown in FIG. 12A is a link having a first end 560a and a second end 560b. 5 is a schematic diagram of a preferred embodiment of actuator 560. The preferred actuator preferably includes a solder link 562 having two metal members 562a, 562b with a heat-sensitive solder 562c disposed between the two metal members 562a, 562b to provide for the preferred passive operation of release mechanism 524. Additionally, preferred link 560 includes one or more electrical contacts 564 for heating link 560 and preferably for heating and melting solder 562c such that the two metal members 562a, 562b switch release mechanism 524 to its second configuration and release hermetic assembly 520, as previously described. Electrical contacts 564 are preferably positioned to define a continuous electrical path on the solder link.

[0097]

[0137] In a preferred embodiment of link 560, a conductive layer 566 is formed on link 562. The conductive layer 566 is formed or deposited on one of the metal members 562a. The conductive layer 566 preferably has a defined resistivity defined by the thickness, width, and length of the conductor according to the following relationship:

[0098]

[0138] R=ρ·W / (L*t)

[0139] wherein in a preferred embodiment, the width (W) defines a preferred direction of the current path; This current path preferably extends perpendicular to the length (L) of the actuator from the first end 560a to the second end 560b. The conductor 566 has a preferred resistivity (p) so that solder can be melted by a preferred 24-volt power supply applied across the electrical contacts 564. In a preferred embodiment, the electrical contacts 564 are located at opposite ends of the width of the link 560. Thus, with the first and second ends 560a, 560b and the conductive layer 566 preferably defining a plane, the continuous current path is preferably oriented parallel to this plane. Additionally, the link 560 includes an insulator layer 568 disposed between the conductor 566 and the single metal member 562a on which the conductor 566 is deposited. The insulator layer 568 is preferably configured to prevent electrical signals from passing directly through the link 560. In preferred operation, a preferred voltage of 24 volts or less can be applied between electrical contacts 564 to heat preferred link 560 and melt solder 562c, allowing separation of metal members 562a, 562b.

[0099]

[0140] Another preferred embodiment of the link 560 for use in the release mechanism 524 is shown in FIG. An embodiment is shown in Figure 12B. This link also includes two metal members 572a, 572b with a heat-sensitive solder 572c disposed between the two metal members 572a, 572b to provide for passive operation of the link 570. Additionally, the link 570 includes a conductive layer 576 of defined resistivity between one of the metal members 572a and the solder material 572c. The two spaced apart metal members 572a, 572b function as a pair of electrical contacts that define a continuous current path 574 routed perpendicular to the plane defined by the metal members 572a, 572b, and more particularly, perpendicular to the plane defined by the width and length of the actuator. In preferred operation, the link 570 is heated to melt the solder 572c and melt the metal member 572a. An electrical control signal, such as a voltage signal, is preferably applied across metal members 572a, 572b to enable separation of metal members 572a, 572b. Electrical conductor 576 preferably has a uniform, and more preferably constant, thickness to minimize or eliminate heat buildup in link 570. Furthermore, the resistivity of conductor 576 is determined so that a power source of 24 volts or less applied between metal members 572a, 572b can melt the solder. Furthermore, conductor 576 preferably defines a preferred resistivity of 50 ohms. Schematically shown in FIG. 12B is insulating coating 571. Insulating coating 571 may be incorporated into any one of the preferred embodiments of the actuator described herein, if desired. Optional insulation 571 prevents heat transfer from a fire from melting the solder that passively operates actuator 524 via link 570. Thus, a fully active mode link 570 can only be operated by a suitable electrical control signal to melt the solder and allow separation of the link metal members.

[0100]

[0141] Another preferred embodiment of a link 580 for use in the release mechanism 524 is shown in FIG. An embodiment is shown in Figure 12. Again, link 580 includes two metal members 582a, 582b with heat-sensitive solder 582c disposed between the two metal members 582a, 582b. Link 580 provides for passive mode operation of release mechanism 524. An electrical contact is provided, preferably embodied as an insulated wire 584, which preferably extends repeatedly over one of metal members 582a between first and second ends 580a, 580b of link 580 to preferably define a continuous electrical path. Insulated contact 584 is preferably embodied as an electrical foil affixed to the outer surface of one of metal members 582a. In one preferred embodiment, In an embodiment, one metal member 582a is disposed between conductive foil 584 and solder 582c. In one preferred configuration, electrical contact 584 is positioned to begin at one end 590a of the actuator and terminate at the opposite end 590a. In preferred operation of link 580 of release mechanism 524, an electrical signal, and preferably an electric current, is passed through electrical contact 584 to generate heat. Resistive heating causes solder 582c to melt, separating metal members 582a, 582b and enabling discharge from the sprinkler as previously described.

[0101]

[0142] In another alternative embodiment of the release mechanism 524, the post and lever assembly The bridge preferably becomes a reactive strut and link assembly that is actuated, i.e., collapsed, by a reactive link. Shown in FIG. 13 is a preferred embodiment of a preferred link 600 for incorporation into release mechanism 524. Preferred link 600 includes two metal members 602a, 602b with a heat-sensitive solder material 602c disposed between the two metal members 602a, 602b. Thus, the link provides for passive mode operation of release mechanism 524. More preferably, preferred link 600 includes a reactive layer 606 disposed between one of metal members 602a and solder material 602c. Reactive layer 606 preferably includes a first insulating layer 606a and a second insulating layer 606b bonded to a thermite structure 606c. The thermite structure 606c is disposed between the first and second insulating layers 606a, 606b. One or more electrical contacts or wires 604 pass through the thermite structure 606c, preferably defining a continuous electrical path. Alternatively and more preferably, the link 600 can have one contact or ignition point 604 through which an electrical signal is sent. The thermite structure 606c is preferably a nano-thermite multilayer structure. A preferred embodiment of the nano-thermite multilayer structure includes alternating oxidizing and reducing agents. In one preferred embodiment, the oxidizing agent is copper oxide, and the reducing agent is preferably aluminum (Al). In another preferred embodiment of the reactive layer 106, the second insulating layer preferably includes a wetting layer coating for adhesion to solder.

[0102]

[0143] In a preferred operation of the release mechanism 524 and link 600, an electrical signal, An electric current is then preferably applied to the electrical contact or wire 504 to heat the contact. The heat at the contact ignites the thermite structure 606c. The resulting combustion This generates a heat release sufficient to melt the solder 602c, separating the metal members 602a, 602b and opening the sealed structure 520, allowing release from the sprinkler 510 as previously described. The preferred first and second insulators 606a, 606b are made of SiO2 and minimize or prevent the passage of actuation current through the link 102, so that electrical current alone does not heat and melt the solder 602c, causing premature separation of the metal members 602a, 602b and activation of the sprinkler. A preferred electrical contact or wire 604 for igniting the thermite layer comprises nichrome wire.

[0103]

[0144] The above-described embodiments of the actuator assembly may be electrically controlled or This allows an actuation signal to be directed through the link of the release mechanism. Alternate preferred embodiments of the fluid delivery device and release mechanism can define a preferred electronic flow path through which an electrical signal can flow to activate the sprinkler. Shown in FIGS. 14A and 14B is an alternate preferred embodiment of an electrically operated release mechanism 750 for use in other fluid delivery devices and systems 100 embodied as fire sprinklers 710. Typically, release mechanism 750 has an inactive state that supports seal assembly 730 within outlet 722. Release mechanism 750 also has an active state that releases the support from the seal. The preferred release mechanism 750 also includes a link 752, preferably heat-sensitive, for controlling actuation of the trigger assembly from its inactive state to its active state. Link 752 is responsive to an appropriately configured electrical control signal. Once a control signal is received, link 752 operates to change the configuration of release mechanism 750, removing its support from sealant assembly 730 and allowing the release of fire-extinguishing fluid from outlet 722, similar to the previously described embodiment. A preferred embodiment of sprinkler 710 and its release mechanism 750 provides an electrical actuation path. As used herein, " An "electrical actuation path" is defined as a controlled flow path for an electrical or other actuation signal to link 752 to electrically actuate or operate release mechanism 750 from its unactuated state to its actuated state. The electrical actuation path preferably runs from the first electrode to the second electrode through link 752. Link 752 is located between the first and second electrodes along the electrical actuation path. Referring to FIG. 14B, sprinkler frame 712 is fabricated, formed, cast, and / or machined from an electrically conductive material. A portion of frame 712 provides first electrode 719a. In a preferred embodiment, body 718 includes an appropriate contact or lead that serves as first electrode 719a for coupling to an electrical control signal. Sprinkler 710 includes a second electrically conductive component or member that serves as second electrode 719b at a lower or different potential than first electrode 719a. In a preferred embodiment, ejection spring 740b functions as second pole 719b and preferably includes a portion or lead coupled to the lower electrode, such as, for example, an electrical ground connection. In the preferred embodiment described herein, the electrical actuation path runs from sprinkler frame body 718, through release mechanism 750 and its link 752, to ejection spring 740b and its ground connection.

[0104]

[0145] Define a preferred electrical actuation path and prevent short circuits between the first and second electrodes In order to achieve this, these electrodes are electrically insulated from one another. In a preferred embodiment, the ejection spring 740b is electrically insulated from the sprinkler frame 712. For example, the ejection spring 740b can have an insulating jacket to insulate the spring 740b from the sprinkler frame 712. Alternatively and more preferably, the sprinkler frame 712 has an insulating jacket around the portion engaged by the end of the ejection spring. Referring to FIG. 14B, a preferred embodiment of the sprinkler frame 712 includes a pair of frame arms 713a, 713b that depend axially from and around the frame body 718. Each of the frame arms 713a, 713b has a bore 713b at the region engaged by the end 740bi, 740bii of the ejection spring 740b. In the inoperative state of sprinkler 710, the ejection spring is engaged with seal button 3, which is seated against a valve seat formed within outlet 722 of frame body 718. Thus, seal assembly 730 is insulated from sprinkler frame 718. For example, a Teflon coating on disc spring 740a is sufficient to insulate seal assembly 730 from sprinkler frame 718.

[0105]

[0146] The preferred release mechanism 750 includes a post member 754, a hook member 756, and a spring. The release mechanism 750 includes a screw or other threaded member 758 and a heat-sensitive solder link 752. The screw 758 forms a threaded engagement with the frame 718 and applies an axial load aligned with the longitudinal axis AA. More specifically, the screw 758 preferably threadably engages a tip 715 integrally formed with the frame arms 713a, 713b. As with the previously described embodiments, the hook and post arrangement 754, 756 transfers the axial load of the screw 758 to the sealant assembly 730 to hold the sealant assembly 730 in the unactuated configuration of the release mechanism 750. The preferred solder link 752 couples the hook member 756 to the post member 754 and maintains the hook and post arrangement stationary to support the sealant assembly 730 against the bias of the sealant spring or water pressure delivered to the sprinkler.

[0106]

[0147] A preferred embodiment of the release mechanism 750 includes an electrical actuation path (partially indicated by an arrow). The direction of the electrical current (shown in the figure) is directed along the length of the preferred heat-sensitive link 752. Therefore, to eliminate undesirable shorting of the electrical actuation path from the tip through the support member 754 to the ejection spring 740b, the preferred release mechanism 750 preferably includes an insulated contact between the hook member 756 and the first end 754a of the support member 754. In one preferred embodiment, the first portion 756a of the hook member 756 includes an insulated region 760 that contacts the first end 754a of the support member 754 in the unactuated state of the release mechanism 750, such that an electrical path is defined between the ends of the heat-sensitive link 752, passing through the frame arm 713a and the hook member 756. Referring to the exploded view of hook member 756 in FIG. 15 , insulating region 760 of hook member 756 includes a recess 762 formed in a first portion 756 a of hook member 756, a post engagement plate 764 received in the recess and having a notch formation for receiving first end 574 a of post member 754, and an insulator 766 made of an appropriate electrical insulator and positioned between recess 762 and post engagement plate 764.

[0107]

[0148] Referring again to Figure 14B, a preferred installation of sprinkler 710 is shown. Frame body 718 is coupled to the piping network, and controller 120 is preferably coupled to sprinkler 710 at a first electrode located along frame body 718 for sending an electrical actuation signal to sprinkler 710. Release spring 740b is preferably connected to a ground wire or, alternatively, coupled to an opposite lead wire from controller 120. Controller 120 can be coupled to a power source for generating the appropriate desired electrical actuation signal. In operation, controller 120 can automatically send an actuation signal to sprinkler 710 in response to detector 130, similar to the operation of system 100 described above.

[0108]

[0149] In response to the detection or manual signal, the controller of the system 100 120 sends a controlled electrical actuation signal to sprinkler 710. The electrical signal travels a preferred electrical actuation path, as shown in FIG. 16, from body 718, up frame arms 713a, 713b to tip 715, down load spring 758, through hook member 756 and preferred solder link actuator 752, preferably along its entire length. The preferred electrical actuation signal is sufficient to melt the solder in link 752 to separate or operate the link. Release mechanism 750 assumes an actuated configuration and releases its support from seal assembly 730. The ejection spring 740b, delivered water pressure and / or under the bias of Belleville spring 40a, sealing assembly 730 is ejected to allow pressure to be released.

[0109]

[0150] 17A and 17B show an alternative embodiment of a sprinkler 710, and a release mechanism 750 having an alternative link 752'. Again, sprinkler 710 includes a preferred sprinkler frame 712 having a first electrode, a preferred seal assembly 730, and an electrically conductive ejection spring member 40b, as previously described. As with the previous embodiment, sprinkler 710 includes a release mechanism 750 having a hook and post assembly. However, instead of including a thermally sensitive link-type actuator, release mechanism 750 includes an electrically fusible link. This link is thermally insensitive to temperatures up to 1000°F, which are anticipated for high challenge fires. Thus, sprinkler 710 and its release mechanism 750 are actuated only by an actuation electrical signal sent to sprinkler 710, more preferably through a preferred electrical actuation path.

[0110]

[0151] The preferred release mechanism 750 is another unique hook and post configuration. The release mechanism 750 is embodied as a support member 754, a hook member 756, a screw or other threaded member 758, and an electrically fusible link 752'. The screw 758 forms a threaded engagement with the frame 718 at its tip 715 and applies a load axially aligned with the longitudinal axis AA. In the unactuated configuration of the release mechanism 750, a first end 754a of the support member 754 contacts a first portion 756a of the hook member 756 and defines a fulcrum preferably offset from the longitudinal axis AA, and a second support end 754b is engaged with the seal assembly 730 and preferably lies along the longitudinal axis AA. Countering the moment generated by the load screw 758 is a preferred electrically fusible link 752'. An electrically fusible link 752' couples the hook member 756 to the post member 754 to maintain the hook and post arrangement stationary in its unactuated state and support the sealant assembly 730 against the bias of the sealant spring or the water pressure delivered to the sprinkler. The link 752' engages a second portion 756b of the hook member 756 with a first end 754a of the post member 754, defining a second moment arm. The second moment arm is sufficient to maintain the hook member 756 in a stationary position relative to the post member 754 in the unactuated state of the release mechanism 750.

[0111]

[0152] The electrofusible link 752' is preferably made of nickel chromium (NiCh The wire link 752' is a metal wire, preferably a resistive metal wire, of a (RoMe) alloy, which is held in tension to hold the release mechanism 750 stationary in its unactuated state and support the closure assembly within the outlet 722. Upon receiving an electrical actuation signal of appropriate power, the wire link 752' breaks, allowing the hook member 756 to pivot about a fulcrum and collapse the release mechanism 750. To attach the link 752' to each of the hook member 756 and the support member 754, the wire 752' can be threaded through respective openings or perforations formed in each of the hook and support members 754, 756 and held in place under tension by appropriate fastening members 760a, 760b, such as crimps, buckles, or other devices. Alternative forms for fastening the wire link 752' to each of the post and hook members 754, 756 are possible, such as, for example, soldering, so long as the wire link is held under appropriate tension to maintain the trigger assembly in its unactuated configuration.

[0112]

[0153] Preferably, once installed, release mechanism 75, as previously described, An electrical actuation signal can be sent to sprinkler 710 and its first electrode to actuate sprinkler 710. The preferred embodiment of release mechanism 750 preferably directs or controls the electrical actuation path so that it is directed along the length of the preferred electrically fusible link 752'. To eliminate undesired shorting of the electrical actuation path, the preferred release mechanism 75 15. 15A includes an insulated contact between hook member 756 and first end 754a of post member 754 such that an electrical actuation path is defined through frame 712, e.g., through frame arms 713a, 713b, through hook member 756, and between opposite ends of electronically fusible link 752', as previously described. Accordingly, first portion 756a of hook member 756 preferably includes an insulating region configured as shown and described for insulating region 760 on hook member in FIG. 15. Additionally, in a preferred embodiment, electronically fusible link 752' is also insulated to reduce heat loss in the link, thereby reducing the required power needed to actuate or de-energize link 752'.

[0113]

[0154] Again, when actuation is desired, the link is pulled to the point where it loses its tensile properties. An electrical current of sufficient power can be sent through the preferred electrically fusible link 752' in a manner sufficient to rapidly heat the sprinkler, disrupting it and allowing the actuator assembly to collapse and release its support from the containment assembly. Upon operation of the release mechanism 750, water is expelled from the outlet 722 to impact the deflector assembly 723 and be redistributed in a desired manner to combat the fire. Preferably, the deflector assembly 723 is coupled to the frame 712 and further preferably includes a deflector member. The deflector member is shown generally and is preferably positioned a fixed distance longitudinally from the outlet 722 by a pair of frame arms 713a, 713b. Additionally, each of the sprinkler 710 embodiments is shown with the release mechanism 750 and deflector assembly 723 positioned below or axially spaced from the frame body 718 and expulsion spring 740b. Thus, the wires connected to the preferred first and second electrodes can be routed or positioned outside the operating area of ​​the sprinkler 710 about its longitudinal axis without interfering with the operating components of the sprinkler. Not interfering with the operating components of the sprinkler includes not interfering with the flow path that would cause the release mechanism 750 to collapse, the sealing assembly 730 to be ejected, or the deflector assembly 723 to be impacted.

[0114]

[0155] Alternative embodiments of fluid delivery devices for use in system 100 are shown. 18-18C, 19-19A, and 20, in which the device includes a frame body having a sealed outlet. The outlet is opened by movement of a linear actuator from an extended configuration to a retracted configuration. Shown in FIG. 18 is a first preferred embodiment of a fire fluid distribution device 810. The device 810 has a frame body 812 having an inlet 814, an outlet 816, and an inner surface 813 defining an internal passageway 818 extending from the inlet 814 to the outlet 816 and defining a longitudinal axis AA. An example of the frame body 812 of the fire protection device 810 can be substantially configured and / or dimensioned as a nozzle body similar to, for example, a TYCO TYPE HV HIGH VELOCITY directional spray nozzle or a MULSIFYRE NOZZLE directional spray nozzle, provided that the nozzle is configured for automatic or controlled operation, as described in detail herein. Each of these is manufactured by Tyco Fire Products, LP. These well-known nozzles are sold by the Company of Lansdale, PA. These nozzles are shown and described in the following technical data sheets, respectively: (i) "TFP815: Type HV High Velocity Directional Spray Nozzles, Open, Non-Automatic" (Aug. 2013); (ii) "TFP810: Model F822 through F834 Mulsifyre Directional Spray Nozzles, Open, High Velocity (Feb. 2014) (TFP810: Model F822 through F834 Mulsifyre Directional Spray Nozzles, Open, High Velocity) "Play nozzle, release, high speed" (February 2014). Each of these<http: / / www.tyco-fire.com> Available from Tyco Fire Products, LP at

[0115]

[0156] Shown is a preferred enclosure, preferably disposed within frame body 812. This is a preferred embodiment of the sealing assembly. The device 810 includes a closure 830, which defines the non-activated state of the fire protection device, blocking the passageway and preventing fluid flow along the discharge path from the inlet 814 through the passageway 818 to the outlet 816. The discharge path includes any portion of the resulting spray pattern formed by fluid discharged from the outlet under the operating or design pressure of the device 810. In a preferred embodiment of the device 810, a shoulder is preferably formed along the inner surface 813 to define the sealing surface 820 and the outlet 816. The sealing body 830 includes a first surface 830a and an opposite surface 830b spaced apart along the longitudinal axis AA, which define the thickness or height of the preferred sealing body 830. In the non-activated state of the device 810, the first surface 830a is configured to form a fluid-tight seal with the sealing surface 820. More specifically, seal 830 includes a sealing member 832 centered on a first surface 830a of seal 830 and forming a fluid-tight seal with sealing surface 820 in the non-actuated state of device 810. One example of sealing member 832 may be a Belleville spring seal, centered or secured to a central post, protrusion, or other formation on first surface 830a.

[0116]

[0157] FIG. 18 also illustrates the use of outlet 816 to define the operating state of device 810. A preferred closure 830 is also shown in dotted lines in a position spaced apart from the outlet 816. To control the position of closure 830 and the state of device 810, closure assembly further includes linear actuator 840. Linear actuator 840 supports and / or secures closure 830 in an extended configuration in a position near outlet 816 in the unactuated state of device 810, and releases closure 830 in a retracted configuration in a position spaced apart from outlet 816 in the actuated state of device 830.

[0117]

[0158] In a preferred embodiment of the fire protection device 810 of FIG. , shown pivoted outward from its rest position to the outside of the discharge passage by the dotted lines. Accordingly, the preferred embodiment of device 810 in FIG. 18 provides a hinged connection 825 between frame body 812 and enclosure 830. Within preferred enclosure 830, a linear actuator provides preferred release mechanism 840. Release mechanism 840 preferably includes a shaft or member, more preferably a piston 842, housed within an internal chamber or passage 830c formed between first and second surfaces 830a, 830b of enclosure 830. Preferably, associated with, disposed about, or coupled to piston 842 is an electrical solenoid or contact 844 of release mechanism 840 that, when energized, controls movement of piston 842 from its extended configuration to its retracted configuration. Alternatively, or more specifically, the linear actuator of mechanism 840 may be embodied as an electrically operated pull-type Metron actuator. This actuator is sold by Chemring Energetics UK, of Ayrshire, Scotland, UK.<http: / / www.chemringenergetics.co.uk> For example, a control signal or energizing pulse may be provided to the release mechanism 840 by the controller 120 of the system 100 through an external cable or wiring 850.

[0118]

[0159] In its extended configuration, the piston 842 contacts the outlet 816 and the preferred sealing surface 8 8. Preferably, the seal 830 extends radially beyond the seal 830 to engage a groove, recess, or detent 824 formed along the inner surface 813 of the frame body 812 near the sealing surface 820. Engagement of a piston 842 in the recess 824 supports the seal in its inactivated position and, more preferably, loads or secures the seal 830 against the sealing surface 820, compressing the seal 832 and resisting fluid pressure delivered to the device 810 upon installation. To activate the device 810, an activation signal is sent to the electrical contact or solenoid. In response, the piston 842 retracts and releases from engagement with the recess 824 such that the seal 830 pivots from the device's discharge passage to its activated position under the force of fluid delivered to the device 810. Additionally or alternatively, a hinged connection 825 may be provided to, for example, secure the seal 830 to the outside of the discharge passage. The pivoting mechanism may include a biasing element, such as a torsion spring, to bias the pivoting mechanism to its full pivot position.

[0119]

[0160] The hinge connection 825 is shown in FIG. 18 as connecting the enclosure 832 to the frame body 812. and is shown schematically as a pin connection internal to at least the exterior surface of frame body 812. Internal hinge connection 825 may be, for example, a pin or ring disposed along interior surface 813 of frame body 812 about which closure 830 may pivot. Furthermore, while closure 830 is shown as being of unitary construction, it should be understood that the closure may be assembled with only as many components as necessary to accommodate linear actuator 840 and its associated components, and to provide sufficient openings to position and translate the piston from each of its extended and retracted configurations.

[0120]

[0161] For example, FIG. 18A shows an alternative embodiment of device 810', which Here, the enclosure 830' includes a first member 830'a that forms a seal with the frame body 812 in the unactuated state of the device 810', and a second member 830'b that houses the linear actuator 840. In one preferred configuration, the first and second enclosure members 830'a, 830'b are secured to one another so that they pivot together about an internal hinge connection 825 upon retraction of the piston 842 of the release mechanism 840, as previously described. Alternatively, the first member can be secured within the frame body 812 as an insert to define the preferred sealing surface 820' and outlet 816' of the device 810'. The second member 830'b then forms a fluid-tight seal with the first member 810'a in the unactuated state of the device 810', and pivots about the hinge connection 825 independently of the first member 830'a in the actuated state. Further alternatively, the sealing assembly 830' may provide for a complete sealing surface, linear actuator, and hinged connection. The first and second members 830'a, 830'b are arranged to provide an insert. There may be a hinge connection 825' therebetween. In other alternative configurations, either the closure 830, 830' may be used to provide an external hinge connection. FIG. 18B is a schematic diagram of an alternative configuration in which the hinge 825' is located external to the exterior surface of the frame body 812. In this example embodiment, the device 10 may include an external bracket 812a disposed around the frame 812. The external bracket 812a includes a pivot pin connection 825' and a recess 824'. The recess 824' is external to the frame body 812 for the closure 830 to engage accordingly in the extended and retracted states. To facilitate the external hinge connection, the closure 830 must be of sufficient size to pivot into and out of sealing engagement with the interior sealing surface 820.

[0121]

[0162] FIG. 19 illustrates a preferred fluid delivery device 810 including a sealing assembly 930. 8A illustrates another preferred embodiment of a seal assembly having a release mechanism that releases the seal assembly and moves it away from the outlet in the actuated state of device 810a. In this preferred embodiment, the seal assembly includes a seal 930. The seal 930 is held in place near the outlet by a release mechanism that includes one or more ball-detent mechanisms 950. The ball-detent mechanisms 950 are pressurized by a linear actuator 940 in its extended configuration to maintain the seal 930 near the outlet 816 in the unactuated state of device 810a. In the retracted configuration of the linear actuator 940, pressure is released on the ball-detent mechanisms 950, allowing ejection of the seal 930 in the actuated state of device 810a.

[0122]

[0163] As shown, the seal 930 is attached to the inner sealing surface 820 of the frame body and and a first surface 930a engaging an opposite second surface 930b. The closure 930 may include a closure member 932, such as, for example, a Belleville spring, centered about a central post or formation in the first surface 930a. Formed between the first and second surfaces 930a, 930b of the closure 930 are one or more radially extending interior passages 930c for accommodating one or more spherical balls 952 and corresponding biasing members 954 of the ball-detent mechanism 950. The radial passages form openings along the periphery or radial surface of the closure 930. The biasing members 954 transfer pressure to the balls 952 such that the balls extend from the interior passages 930c and the periphery of the closure 930. The biasing members 954 may be spring elements, such as, for example, coil springs or leaf springs. Preferably formed along inner surface 813 of frame body 812 is a corresponding detent, recess, or groove 824 of ball-detent mechanism 950 that receives a portion of ball 952 extending from the radial opening of passageway 930c under transferred pressure. The engagement of the ball of release mechanism 950 within detent 924 supports the closure in place near outlet 816 in the unactuated state of device 810a.

[0123]

[0164] The pressure applied to the transferred ball-detent mechanism 950 is linear. The pressure is preferably supplied by the actuator 940 in its extended configuration. Retraction of the linear actuator 940 releases the pressure and opens the seal 930. The seal 930 preferably includes an axially extending passage 930d for receiving or coupling to the linear actuator 940. More preferably, the displacement of the axial passage 930d and the linear actuator 940 is parallel and axially aligned with the longitudinal axis AA. Similar to the previously described embodiment, the linear actuator 940 preferably includes an axial rod, member, or piston 942 and associated electrical contacts or solenoid 944. As shown schematically, the piston 942 is preferably coupled, connected, or mechanically associated with the biasing member(s) 954 of the ball-detent mechanism 950 such that, in the extended configuration of the linear actuator, pressure is applied to the biasing member(s) 954 and transferred to the ball(s) 952. As piston 942 retracts, pressure is released on ball(s) 952, causing the ball(s) to retract or contract into interior passageway 930c. Thus, in this preferred configuration, ball(s) 952 translate orthogonally to the direction of movement of linear actuator 910 and its piston 942, and radially relative to longitudinal axis AA.

[0124]

[0165] When pressure is released against the ball-detent mechanism 950, FIG. As seen in FIG. 19, the enclosure 930 can be expelled from the frame body outlet 816 by its own weight, gravitational force, or fluid pressure delivered to the inlet 14 of the device 810a. To retain the enclosure 930, the device 810a preferably includes a harness between the enclosure 930 and the frame body 812 to keep the enclosure 930 coupled to the frame body in the device's activated state. Thus, in a preferred embodiment, the enclosure can be reused when resetting the fire protection device or system. For the device 810a, an external cable or wiring coupled to the controller 120 can double as a harness to retain the enclosure 930 to the frame 812 in the device's activated state.

[0125]

[0166] Preferred closure assemblies having the release mechanisms described herein 830, 930 may also be incorporated into other types of fluid dispensing devices of the present system, such as, for example, a fire sprinkler having a frame and an outlet, provided that the sealing assembly and actuator do not interfere with the spray or discharge action of the device. For example, the preferred sealing assembly and release mechanism described herein may be implemented as a frame body 1012 having a pair of frame arms 1013, as shown, for example, in FIG. 12. Frame arms 1013 are disposed around outlet 316 and converge towards tip 1015. When frame arms 1013 define a first plane P1, a sealing assembly, such as pivotable sealing body 830, is preferably located outside of plane P1 in the operative state of device 1010 and is more preferably pivoted in a second plane P2.

[0126]

[0167] Although the present invention has been disclosed with reference to certain embodiments, the described embodiments Numerous modifications, changes, and variations are possible to the present invention without departing from the sphere and scope of the present invention as defined in the appended claims. Accordingly, it is intended that the present invention not be limited to the described embodiments, but rather have the fullest scope defined by the language of the following claims and their equivalents.

Claims

1. a plurality of fluid dispensing devices located below the ceiling and above any stored goods in a warehouse occupancy having a nominal storage height of at least 20 feet but not more than 55 feet, each of said plurality of fluid dispensing devices having a pressure of 14.0 GPM / PSI; 1/2 a plurality of fluid delivery devices having a K-factor equal to or greater than a plurality of detectors, each detector of the plurality of detectors detecting a fire and outputting a detection signal in response to detecting the fire; a controller, determining the location of the fire based on the detection signal; determining when a threshold time has been reached to initiate operation of the fluid delivery device based on at least one of the temperature or rate of temperature rise indicated by the detection signal; determining a first fluid delivery device of the plurality of fluid delivery devices associated with a first detector corresponding to the threshold time and a group of fluid delivery devices of the plurality of fluid delivery devices adjacent to the first fluid delivery device; controlling operation of the first fluid dispensing device and the group of fluid dispensing devices based on the location of the fire and the determined threshold timing. A controller; A fire protection system comprising:

2. The fire protection system of claim 1 , wherein the plurality of fluid delivery devices are arranged as a grid of eight fluid delivery devices or nine fluid delivery devices.

3. the plurality of fluid delivery devices are arranged as a grid of eight fluid delivery devices or nine fluid delivery devices; the controller determines a location of the fire based on the detection signal and controls operation of four of the eight fluid delivery devices or grid of nine fluid delivery devices based on the determined location.

10. The fire protection system of claim 1.

4. 2. The fire protection system of claim 1, wherein the controller determines a second threshold timing of the fire growth and operates the first fluid delivery device and the group of fluid delivery devices in response to determining the second threshold timing.

5. 10. The fire protection system of claim 1, wherein each of the plurality of fluid distribution devices comprises a frame body having an inlet and an outlet, a seal coupled to the outlet, and an actuator responsive to a control signal to cause the seal to disengage from the outlet.

6. 10. The fire protection system of claim 1, wherein the stored goods include at least one of Class I goods, Class II goods, Class III goods, Class IV goods, Group A plastics, Group B plastics, Group C plastics, elastomeric goods, or rubber goods.

7. 10. The fire protection system of claim 1, wherein the stored goods are arranged in at least one of the following forms: racks, multi-racks, double row racks, on the floor, racks without solid shelves, palletized, pins, boxes, shelves, or single row racks.

8. 10. The fire protection system of claim 1, comprising a conduit network coupling the plurality of fluid distribution devices to a fluid supply source, the conduit network arranged to form at least one of a grid network or a tree network.

9. Each of the plurality of fluid delivery devices comprises: a strut and lever assembly with a breakaway area; a hook and post assembly in a hanging configuration; a hook and post assembly operated by resistive heating; reactive strut and link assemblies; a hook and post assembly providing a defined electron flow path; a hook and post assembly having an electrically fusible wire link; or an enclosed assembly including a retractable linear actuator; 10. The fire protection system of claim 1, comprising:

10. outputting, by at least one detector of the plurality of detectors, a detection signal in response to detecting a fire; determining, by a controller, a location of the fire based on the location of the at least one detector; determining, by the controller, when a threshold time has been reached to initiate operation of the fluid delivery device based on at least one of the temperature or rate of rise of temperature indicated by the detection signal; determining a first fluid delivery device associated with a first detector corresponding to the threshold time and a group of fluid delivery devices adjacent to the first fluid delivery device; controlling, by the controller, operation of the first fluid dispensing device and the group of fluid dispensing devices based on the location of the fire and the determined threshold timing, wherein the first fluid dispensing device and the group of fluid dispensing devices are below a ceiling and above any stored goods in a warehouse occupancy, the warehouse occupancy having a nominal storage height of not less than 20 feet and not more than 55 feet, and each fluid dispensing device of the plurality of fluid dispensing devices has a fluid pressure of 14.0 GPM / PSI. 1/2 having a K-factor greater than or equal to A method comprising:

11. The method of claim 10 , wherein the plurality of fluid delivery devices are arranged as a grid of eight or nine fluid delivery devices.

12. the plurality of fluid delivery devices are arranged as a grid of eight fluid delivery devices or nine fluid delivery devices; determining, by the controller, a location of the fire based on the detection signal, and controlling operation of four of the eight fluid delivery devices or grid of nine fluid delivery devices based on the determined location. The method of claim 10.

13. A step of determining, by the controller, a second threshold timing of the fire growth; operating, by the controller, the first fluid delivery device and the group of fluid delivery devices in response to determining the second threshold timing; The method of claim 10, comprising:

14. 11. The method of claim 10, wherein each of the plurality of fluid delivery devices comprises a frame body having an inlet and an outlet, a seal coupled to the outlet, and an actuator responsive to a control signal to cause the seal to be released from the outlet.

15. 11. The method of claim 10, wherein the stored goods include at least one of Class I goods, Class II goods, Class III goods, Class IV goods, Group A plastics, Group B plastics, Group C plastics, elastomeric goods, or rubber goods.

16. 11. The method of claim 10, wherein the stored goods are arranged in at least one of the following forms: rack, multi-rack, double row rack, on the floor, rack without solid shelves, palletized, pin, box, shelf, or single row rack.

Citation Information

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