COMBINED HEAT-SMOKE DETECTOR WITH A SHIELDING CONTROLLED BY A THERMAL BOLT CONTAINING A THERMAL ELEMENT CHANGING ITS STATE AT A THRESHOLD TEMPERATURE
20230069373 · 2023-03-02
Inventors
Cpc classification
G08B17/02
PHYSICS
International classification
Abstract
A smoke detector system includes a shielding structure enclosing a smoke detector, smoke detector circuit board or other contents. The shielding structure seals the contents from smoke, exhaust gasses, dust, chemicals, moisture, insects and other airborne particulates. The shielding structure is maintained sealed by a thermal bolt containing a thermal element which changes its state at a threshold temperature indicative of a developing fire and breaks the sealing of the shielding structure once the predetermined temperature has been reached. A lid of the shielding structure is held in place against a mounting plate by the thermal bolt. When the thermal bolt reaches the threshold temperature, it loses the integrity and allows the lid separation from the mounting plate to automatically open the shielding structure, thus allowing an internally mounted smoke detector or smoke detector circuit board to monitor the presence of smoke.
Claims
1. A smoke detector system with a shielding controllable to cease once a threshold temperature indicative of a developing fire has been reached, the smoke detector system comprising: a shielding structure containing at least a smoke detector, said shielding structure operating in a protective mode of operation or a monitoring mode of operation; and a thermal bolt assembly operatively coupled to said shielding structure to transform said shielding structure from said protective mode of operation to said monitoring mode of operation, said thermal bolt assembly being configured with: a bolt head having a mating interface and a thermal element support structure, a threaded core having an externally threaded end and a mating interface end, a tensioner configured with an externally threaded portion and a thermal element capture portion, and a thermal element configured for sensing heat and changing a state of said thermal element upon exposure to a threshold temperature of a predetermined value, and captured between said thermal element support structure of said bolt head and said thermal element capture portion of said tensioner; wherein, prior to reaching the threshold temperature, the tensioner applies a tensile force to said thermal element and interlocks said bolt head with said threaded core by applying a compressive force thereto, thus controlling said shielding structure to operate in the protective mode of operation, and wherein, upon reaching the threshold temperature, said thermal element changes the state thereof, thus releasing the compressive force interlocking the bolt head and threaded core, thus releasing said bolt head from said threaded core, and thus controlling said shielding structure to transform into said monitoring mode of operation.
2. The smoke detector system of claim 1, wherein said thermal element changes the state thereof by rupturing, melting, or collapsing.
3. The smoke detector system of claim 1, wherein said mating interface end of said threaded core is maintained in a releasable mating engagement with said mating interface of said bolt head, thus maintaining the threaded core disposed substantially in perpendicular to a face of said bolt head distal to the thermal element support structure, and permitting rotational forces applied to said bolt head perpendicular to a longitudinal axis of said threaded core to be applied to the threaded core.
4. The smoke detector system of claim 1, wherein said threaded core is configured as an internally threaded hollow structure having internal threads, wherein the external threads on said externally threaded portion of said tensioner have a thread pitch matching a thread pitch of said internal threads of said internally threaded hollow structure of said threaded core, and wherein, when the tensioner is threadedly engaged in the mating interface of said threaded core with the thermal element captured by the tensioner and the bolt head, the thermal element is exposed to the tension, and the bolt head is pulled towards the threaded core until the mating interface of the threaded core mates with the mating interface of the bolt head, thereby forcing the bolt head into compression against the threaded core, and interlocking the bolt head with the threaded core.
5. The smoke detector system of claim 1, wherein the threaded core is a solid structure having a thermal element capture portion extending from the mating interface end, wherein the thermal element support structure of the bolt head is configured with a threaded hole distal to the mating interface and having internal threads, and wherein external threads on the externally threaded portion of the tensioner have a thread pitch matching a thread pitch of the internal threads of the threaded hole of the thermal element support structure of the bolt head, wherein the tensioner is threadedly engaged with the threaded hole of the thermal element support structure of the bolt head with the thermal element captured by the tensioner and the threaded core placing the thermal element into tension, pulling the threaded core towards the bolt head until the threaded core mating interface mates with the bolt head mating interface, thus forcing the bolt core into compression against the threaded core, and interlocking the bolt head with the threaded core.
6. The smoke detector system of claim 1, wherein said shielding structure further includes: an internal bridge, wherein the internal bridge is configured with a threaded hole with an internal thread having a pitch matching a pitch of external threads of the threaded core, a mounting plate configured with locking elements for releasable coupling with said internal bridge, a lid, the lid being configured with a central hole having a diameter exceeding a diameter of the threaded hole formed in the internal bridge and smaller than dimensions of the bolt head of the thermal bolt, wherein the threaded core of the thermal bolt passes through the central hole of the lid and threadedly engages with the threaded hole of the internal bridge with the bolt head covering the central hole of the lid, thus placing the lid in compression against the mounting plate, wherein the lid has a shaped edge fitting into a matching groove formed on the mounting plate, thus providing a sealing interface between the lid and the mounting plate while preventing lateral movement of the lid along the mounting plate surface, wherein the lid is secured against the mounting plate and is maintained in compression with the shaped edge of the lid received in the matching groove of the mounting plate by the internal bridge and the thermal bolt when the thermal element of the thermal bolt remains at a temperature below the threshold temperature, and wherein the lid is released from compression and separates from the mounting plate when the thermal element of the thermal bolt reaches the threshold temperature and changes the state thereof; and a safety tether coupled between the mounting plate and the lid.
7. The smoke detector system of claim 6, being mounted at a bottom surface of a horizontal support, wherein, upon the thermal element changes the state thereof due to a rise in temperature above the threshold temperature, the bolt head of the thermal bolt separates from the threaded core of the thermal bolt, thus eliminating the compressive force applied to the lid, and the lid is released from the mounting plate, thus ceasing the sealing of said at least smoke detector inside said shielding structure.
8. The smoke detector system of claim 6, being mounted on a non-horizontal supporting surface, further comprising: at least one lid ejection spring, wherein, upon the thermal element changing the state thereof due to a rise in temperature above the threshold temperature, the bolt head of the thermal bolt separates from the threaded core of the thermal bolt, thus eliminating the compressive force applied to the lid, and said at least one lid ejection spring pushes the lid away from the mounting plate.
9. The thermal case of claim 6, wherein the mounting plate is formed with a smoke detector mounting configuration, wherein the smoke detector is directly mounted to the mounting plate of said smoke detector mounting configuration.
10. The smoke detector system of claim 6, further comprising: a smoke detector circuit board, a test switch on the smoke detector circuit board, a smoke detector circuit board mounting configuration formed of said mounting plate to secure the smoke detector circuit board, a test button/activation indicator, wherein the test button/activation indicator is depressed to activate the test switch, and a lid test button guide, wherein the test button/activation indicator is disposed against the lid test button guide to keep the shielding structure sealed, and wherein the test button/activation indicator conveys a periodic light pulse generated by the smoke detector circuit board to indicate the operational status of the smoke detector circuit board; wherein the smoke detector circuit board is shielded while surrounding temperature remains below the threshold temperature, and wherein the smoke detector circuit board is unshielded when a temperature rise causes the thermal element to change the state thereof, thus releasing the bolt head and lid, and the lid falling away a sufficient distance from the mounting plate to no longer obstruct or shield the smoke detector circuit board.
11. A method of sealing a smoke detector or smoke detector circuit board until a threshold temperature is reached, comprising: mounting a smoke detector or smoke detector circuit board within a thermal case, mounting the thermal case to a supporting surface, wherein, the smoke detector or smoke detector circuit board, while mounted and sealed in the thermal case, being incapable of detecting the presence of smoke in the air external to the thermal case, and wherein the smoke detector or smoke detector circuit board remain sealed within the thermal case until the thermal element of the thermal bolt of the thermal case reaches the threshold temperature.
12. The method of claim 11, further comprising: operating said a thermal case in a protective mode of operation prior to reaching the threshold temperature, and operating said thermal case in a monitoring mode of operation upon reaching the threshold temperature.
13. The method of claim 12, further comprising: operatively coupling a thermal bolt assembly to said thermal case to transform said thermal case from said protective mode of operation to said monitoring mode of operation, and configuring said thermal bolt assembly with: a bolt head having a mating interface and a thermal element support structure, a threaded core having an externally threaded end and a mating interface end, a tensioner configured with an externally threaded portion and a thermal element capture portion, and a thermal element configured for sensing heat and changing a state of said thermal element upon exposure to a threshold temperature of a predeterminer value and captured between said thermal element support structure of said bolt head and said thermal element capture portion of said tensioner.
14. The method of claim 13, further comprising: prior to reaching the threshold temperature, applying a tensile force from the tensioner to said thermal element, and interlocking said bolt head with said threaded core by applying a compressive force thereto, thus controlling said thermal core to operate in the protective mode of operation, and upon reaching the threshold temperature, changing the state of said thermal element, and releasing the compressive force interlocking the bolt head and threaded core, thus releasing said bolt head from said threaded core, and thus controlling said thermal core to transform into said monitoring mode of operation.
15. The method of claim 14, further comprising: configuring said thermal core with: an internal bridge configured with a threaded hole with an internal thread having a pitch matching a pitch of external threads of the threaded core, a mounting plate configured with locking elements for releasable coupling with said internal bridge, a lid configured with a central hole having a diameter exceeding a diameter of the threaded hole formed in the internal bridge and smaller than dimensions of the bolt head of the thermal bolt, wherein the threaded core of the thermal bolt passes through the central hole of the lid and threadedly engages with the threaded hole of the internal bridge with the bolt head covering the central hole of the lid, thus placing the lid in compression against the mounting plate.
16. The method of claim 15, further comprising: configuring the lid with a shaped edge, fitting said shaped edge of the lid into a matching groove formed on the mounting plate, thus providing a sealing interface between the lid and the mounting plate while preventing lateral movement of the lid along the mounting plate surface, wherein the lid is secured against the mounting plate and is maintained in compression with the shaped edge of the lid received in the matching groove of the mounting plate by the internal bridge and the thermal bolt when the thermal element of the thermal bolt remains at a temperature below the threshold temperature, and wherein the lid is released from compression when the thermal element of the thermal bolt reaches the threshold temperature and changes the state thereof; and ruptures, melts or separates.
17. The method of claim 15, further comprising: changing the state of the thermal element of the thermal bolt upon reaching the threshold temperature, releasing the bolt head of the thermal bolt and the lid of the thermal case, wherein the lid of the thermal case lid separates from the mounting plate of the thermal case by falling under gravity force or by pushing by a lid ejection spring, until the separation of the lid of the thermal case is arrested by a safety tether, unsealing the smoke detector or smoke detector circuit board to expose to surrounding atmosphere outside of the thermal case, and enabling the smoke detector or smoke detector circuit board to detect the presence of smoke in the air.
18. A method of assembling a system configured with at least two objects, comprising: (a) assembling a thermal bolt module containing: a bolt head having a mating interface and a thermal element support structure, a threaded core having an externally threaded end and a mating interface end, a tensioner configured with an externally threaded portion and a thermal element capture portion, and a thermal element configured for sensing heat and changing a state of said thermal element upon exposure to a threshold temperature of a predeterminer value, and captured between said thermal element support structure of said bolt head and said thermal element capture portion of said tensioner; (b) providing a first object and a second object, (c) configuring the first object with a threaded hole having a thread pitch matching a thread pitch of external threads on said externally threaded end of the threaded core, (d) configuring the second object with a hole, (e) screwing said thermal bolt module into said threaded hole of said first object through said hole formed in said second object, and (f) releasing the second object by unscrewing the thermal bolt module from the first object and removed from the hole in the second object, thus releasing the second object, or by exposing the thermal element to the threshold temperature and changing the state thereof, thus freeing the bolt head from the threaded core, and thus releasing the second object.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0065] Referring to
[0066] Referring to
[0067] The thermal bolt 180 further includes a tensioner 130, which includes a threaded portion 18 and a non-threaded portion 20. The threaded portion 18 of the tensioner 130 is externally threaded to form external threads 22 having a thread pitch that matches the thread pitch of the interior threads 15 on the interior surface 14 of the threaded core 110. The threaded portion 18 of the tensioner 130 is inserted, though the mating interface end 24 of the threaded core 110, into the threaded core 110 for a threading engagement between the interior threads 15 formed on the interior cylindrical surface 14 of threaded core 110 and the external threads 22 of the tensioner 130.
[0068] The thermal bolt 180 further includes a thermal element 140 which is embedded within the thermal bolt 180. The thermal element 140 serves as a heat sensor, and changes its state (ruptures, collapses, or melts) once it is exposed to a threshold temperature the value of which is indicative of a developing fire.
[0069] One end 26 of the thermal bolt 140 is captured in place by a capturing opening 28 fabricated on the bottom 30 of the non-threaded portion 20 of the tensioner 130. An opposite end 32 of the thermal element 140 is engaged in the indentation 34 formed in the bottom 36 of the bolt head 120, which is distal to the threaded core 110.
[0070] As the threaded portion 18 of the tensioner 130 is inserted (screwed) into the threaded core 110, the tensioner 130 pulls the thermal element 140 towards the threaded core 110. At the same time, the thermal element 140 which is exposed to the tension force, pulls the bolt head 120 towards the threaded core 110, pushing the mating interface end 24 of threaded core 110 into the mating interface 38 of the bolt head 120, thus interlocking the bolt head 120 and the threaded core 110.
[0071] The non-threaded portion 22 of the tensioner 130 is configured with features 40 that allow a screwdriver or other tool (not shown in the Drawings) to be used to tighten the tensioner 130 as it is advancing into the threaded core 110.
[0072] The subject smoke detector system 10 uses tensile forces applied to the thermal element 140 by the tensioner 130 when it is inserted into and threadedly engaged with the threaded core 110 to be applied to the bolt head 120, keeping the bolt head 120 compressed against the threaded core 110. The mating interfaces 24 and 38 of the threaded core 110 and the bolt head 120, respectively, are shaped in a manner that allows the threaded core 110 to interlock with the bolt head 120, thus holding the threaded core 110 perpendicular to the face 42 of the bolt head 120, and allowing for the passage of the tensioner 130 though the bolt head 120 mating interface 38, while permitting rotational forces applied to the bolt head 120 to be transmitted to the threaded core 110 without rotational forces being applied to the tensioner 130 or the thermal element 140. When rotational forces applied to the bolt head 120 are transmitted to the threaded core 110, the thermal bolt 180, as an entire assembly, can be screwed into or unscrewed from a part of the subject smoke detector system 10 (as will be detailed in further paragraphs) that has threads matching the exterior threads 17 on the exterior cylindrical surface 16 of the threaded core 110. For example, such part of the smoke detector system 10 may be in the form of an internal bridge 160 of a shielding structure (also referred to herein as a thermal case) 44 shown in
[0073] The thermal element 140 changes its state when exposed to a predetermined temperature. The thermal element 140 may rupture, melt or collapse at a predetermined temperature, referred to herein as a threshold temperature. Thermal elements, such as the thermal element 140, are known in the related art, and are not detailed herein. For example, the thermal element 140 may be in the form of a liquid filled glass ampoule typically used in residential sprinkler heads and may rupture once the surrounding temperature rises to 135, 155, 175 or 200 degrees Fahrenheit. To change the threshold temperature of the thermal bolt 180, a tool (not shown in the Drawings) may be inserted into the features 40 formed in the non-threaded portion 20 of the tensioner 130 through the threaded hole 46 of the threaded core 110 distal to the tensioner 130 to unscrew the tensioner 130 just far enough to disengage the thermal element 140 from the tensioner 130 and the bolt head 120. Subsequently, a replacement thermal element with a different threshold temperature is embedded into both the tensioner 130 and the bolt head 120 in a manner described in previous paragraphs. Once the replacement thermal element has been engaged on each end 26,32 in the proper position, the tensioner 130 is screwed back into the threaded core 110 until the replacement thermal element 140 is under the tension to pull the bolt head 120 back into compression state against and interlocking with the threaded core 110.
[0074] The shielding structure 44 of the subject smoke detector system 10 serves as a shield (screen) for the smoke detector 200. In one of the preferred embodiments depicted in
[0075] The internal bridge 160 is configured with a threaded hole 60 having internal threads 58 formed therein. The external threads 17 formed on the exterior cylindrical surface 16 of the of the threaded core 110 of the thermal bolt 180 and the internal threads 58 of the threaded hole 60 configured centrally in the internal bridge 160 are matching threads.
[0076] The shielding structure 44 further includes a lid 170 which serves as the thermal case. The lid 170 is secured against the mounting plate 150 by the thermal bolt 180 which passes through a hole 62 in the center of the lid 170 and is screwed into the threaded hole 60 of the internal bridge 160.
[0077] A safety tether 190 (shown in
[0078] When the thermal bolt 180, as an assembled module, is screwed to the internal bridge 160, the threaded core 110 and the tensioner 130 of the thermal bolt 180 do not come in contact with the lid 170. Only the upper flat portion 42 of the bolt head 120 of the thermal bolt 180 contacts the lid 170 on the exterior surface 66 of the lid 170 adjacent to and around the central hole 62 of the lid 170. The thermal bolt 180, along with the internal bridge 160, apply a compressive force to the lid 170, holding the lid 170 in place against the mounting plate 150, thus sealing the contents of the shielding structure 44, including the smoke detector 200 (as shown in
[0079] A circular “V” shaped groove 68 formed in proximity to the periphery in the mounting plate 150 seen in cross-sectional views in
[0080] The lid 170, when held in place against the mounting plate 150 by the thermal bolt 180, screens the contents of the shielding structure 44 from exposure to exhaust gases, smoke, dust, dirt, moisture and other airborne particulates, and thus prevents the subject smoke detector system 10 from triggering the internally mounted smoke detector 200 and/or a smoke detector circuit board 270 (best shown in
[0081] The air movement is also restricted through any slots and/or punch outs present in the mounting plate 150 by a flat surface of the ceiling or a horizontal surface 220 to which the mounting plate 150 is adjacent when the shielding structure 44 is mounted properly, as shown in
[0082] During a developing fire, when the thermal element 140 of the thermal bolt 180 ruptures, melts or separates due to the thermal element's temperature rising above the thermal element's rated temperature threshold, the bolt head 120 of the thermal bolt 180 is no longer held in compression against the threaded core 110 of the thermal bolt 180, and the force of gravity causes the bolt head 120 to drop away from the threaded core 110 and the lid 170. Subsequent to the bolt head 120 of the thermal bolt 180 falling away from the lid 170, the lid 170 is no longer held in compression by the thermal bolt 180, and the force of gravity causes the lid 170 to drop away from the mounting plate 150. As the lid 170 falls away from the mounting plate 150, the shielding of the smoke detector 200 and/or the smoke detector circuit board 270 mounted within the thermal shielding structure 44 ceases and the smoke detector 200 or smoke detector circuit board 270 becomes exposed to the surrounding air and/or smoke that was previously external to the sealed shielding structure 44. Once the lid 170 falls a distance equal to the length of safety tether 190, safety tether 190 arrests the further fall of the lid 170, thus preventing the lid 170 from damaging objects or injuring persons positioned directly beneath the lid 170, as shown in
[0083] Following the dropping of the lid 170 and the bolt head 120 of the thermal bolt 180, if smoke is present in the air surrounding the internally mounted smoke detector 200 (
[0084] In one of the embodiments, the mounted smoke detector 200 or smoke detector circuit board 270 may contain a temperature sensing circuitry. In this implementation, an alarm may be triggered if the air temperature is above the temperature sensing circuitry's threshold temperature with or without the presence of smoke. If the smoke detector or smoke detector circuit board is connected wirelessly to other smoke detectors or an alarm base station, a wireless alert signal may be transmitted. If the smoke detector or smoke detector circuit board is hard wired to a central smoke detector alarm circuit, an alarm signal may be transmitted to the smoke detector alarm circuit via wire connection. Any contemporary methodology used by a smoke detector, or a smoke detector circuit board mounted within the subject shielding structure/thermal case to detect smoke and/or excessive heat, to sound an alarm or to transmit an alarm signal are applicable for use in the present smoke detector system.
[0085] In an alternative embodiment presented in
[0086] Although
[0087] In another alternative embodiment shown in
[0088] In the additional embodiment of the thermal case shown in
[0089] The embodiment presented in
[0090] In the alternative embodiment of the thermal bolt 180′ shown in
[0091] The alternative embodiment of a thermal bolt shown in
[0092] Although aspects of the present disclosure have been described in connection with specific forms and embodiments thereof, it will be appreciated that various modifications other than those discussed above may be resorted to without departing from the spirit or scope of the present disclosure as defined in the appended claims. For example, functionally equivalent elements may be substituted for those specifically shown and described, certain features may be used independently of other features, and in certain cases, particular locations of the elements may be reversed or interposed, all without departing from the spirit or scope of the present disclosure as defined in the appended claims.