A concealed sprinkler including a body having a proximal portion and a distal portion. The distal portion includes an annular wall defining a chamber and an opening in communication with the chamber. A deflector assembly is disposed within the chamber. A trigger assembly having a lever assembly engaged with an inner surface of the annular wall supports the deflector assembly in the first position, the trigger assembly including and a thermally rated plate assembly having a lip portion to substantially circumscribe and substantially cover opening and chamber.
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0. 35. A sprinkler, comprising:
an internal passageway having an inlet and an outlet extending along a longitudinal axis;
an annular wall having an outer surface and an inner surface to further define a chamber in communication with the internal passageway, a distal edge of the annular wall further defining an opening distal of the outlet in communication with the chamber;
a deflector assembly including a deflector plate, the deflector plate having a first position distal of the outlet and disposed within the chamber and a second position distal of the distal opening;
a closure assembly including a closure element engaged with the deflector plate such that when the deflector plate is in the first position the closure element is disposed within the outlet of the passageway; and
a trigger assembly including:
a lever assembly engaged with the inner surface of the annular wall to support the deflector assembly in the first position; and
a thermally rated plate assembly having a substantially planar surface portion that is sized so as to substantially cover the distal opening and a lip portion framing the substantially planar surface portion, the plate assembly being engaged with the lever assembly such that the lip portion extends towards the inlet of the passageway beyond the distal edge of the annular wall.
29. A sprinkler comprising:
a body having a proximal portion defining an opening and a distal portion defining an outlet disposed along a longitudinal axis, the body defining an internal passageway between the proximal opening and the outlet defining a first diameter, the distal portion including an annular wall having an outer surface and an inner surface to further define a chamber distal of the outlet;
a deflector assembly including a deflector distal of the outlet disposed within the chamber; and
a closure assembly including: a closure element and a trigger assembly, the trigger assembly including:
a thermally responsive plate assembly;
a lever assembly engaged with the inner surface of the annular wall to support the deflector assembly including two lever members each having a surface angled with respect to the longitudinal axis, each of the two lever members having a first end engaged with the plate assembly and second end engaged with the distal portion of the body; and
a bridge element to support the deflector assembly within the chamber, the bridge element having a first end and a second end defining a length of the bridge element to bridge the two lever members and define a point of contact between the bridge element and the two lever members, wherein the bridge element includes a planar surface and a pair of walls about the planar surface to define a channel straddled about the two lever members, the surface including a central opening between the first and second end, the planar surface being disposed perpendicular to the longitudinal axis,
wherein the planar surface includes an entirely planar surface between the central opening and each of the first and second ends.
25. A sprinkler comprising:
a body having a proximal portion defining an opening and a distal portion defining an outlet disposed along a longitudinal axis, the body defining an internal passageway between the proximal opening and the outlet defining a first diameter, the distal portion including an annular wall having an outer surface and an inner surface to further define a chamber distal of the outlet;
a deflector assembly including a pair of arms and a deflector, the deflector assembly having a first position with the deflector disposed within the chamber and a second position with the deflector distal of the first position, the deflector including a face portion disposed perpendicular to the longitudinal axis and a hood portion extending substantially orthogonally to the face portion, the face portion including a central hole with two through holes disposed about the central hole, the pair of arms extending through the two holes to support the deflector in a telescopic manner; and
a closure assembly including:
a closure element; and
a trigger assembly including:
a lever assembly engaged with the inner surface of the annular wall to support the deflector assembly including two levers, each lever having a surface angled with respect to the longitudinal axis, each lever having a width with respect to the longitudinal axis;
a bridge element having a first outer edge and a second outer edge with an entirely planar surface between the first and second outer edges that is disposed perpendicular to the longitudinal axis, each outer edge engaging the surface of one of the two levers to provide a point of contact between the bridge element and the two levers for load transfer, the bridge element having a width with respect the longitudinal axis that is greater than the width of each lever; and
a thermally responsive plate assembly, each of the two lever members having a first end engaged with the thermally responsive plate assembly and a second end engaged with the distal portion of the body so that the two lever members engage the bridge element such that the closure element is disposed adjacent the outlet of the body.
1. A concealed sidewall sprinkler having an unactuated state and an actuated state, the sprinkler comprising:
a sprinkler body having a proximal portion defining an inlet and a distal portion having an internal surface forming an outlet, the body defining an internal passageway between the inlet and the outlet extending along a longitudinal axis, the distal portion including an annular wall having an outer surface and an inner surface having an internal shelf to define a chamber distal and an opening of the chamber distal of the outlet;
a deflector assembly including a pair of arms and a deflector, the deflector assembly having a first position with the deflector disposed within the chamber and a second position with the deflector distal of the first position, the deflector including a face portion disposed perpendicular to the longitudinal axis and a hood portion extending substantially orthogonally to the face portion, the face portion including a central hole with two through holes disposed about the central hole, the pair of arms extending through the two holes to support the deflector in a telescopic manner;
a closure assembly disposed within the outlet and including a biasing element in sealing engagement with the inner surface forming the outlet when the deflector is in the first position; and
a trigger assembly to support the deflector assembly in the first position, the trigger assembly including:
a thermally responsive plate assembly distal of the chamber opening to control the unactuated and actuated state;
a lever assembly including a pair of lever members diametrically disposed about the longitudinal axis with a first pair of diametrically opposed lever ends engaged with the shelf and a second pair of diametrically opposed lever ends engaged with the thermally responsive plate assembly;
a bridge element bridging the pair of lever members to support the deflector assembly in its first position, the bridge element defining a channel straddled about the diametrically opposed first ends of the pair of lever members, the bridge element having a first end and a second end with a plurality of outer planar surfaces about the channel extending from the first end to the second end of the bridge element, the plurality of planar surfaces including one entirely planar surface extending from the first end to the second end of the bridge element perpendicular to the longitudinal axis; and
a set screw axially aligned along the longitudinal axis and threaded through the one entirely planar surface of the bridge element extending perpendicular to the longitudinal axis to abut the deflector assembly with the deflector in the first position.
33. A sidewall sprinkler comprising:
a sprinkler body having a proximal portion defining an inlet and a distal portion having an internal surface forming an outlet, the body defining an internal passageway between the inlet and the outlet extending along a longitudinal axis, the distal portion including an annular wall having an outer surface and an inner surface having an internal shelf to define a chamber distal and an opening of the chamber distal of the outlet;
a deflector assembly including a deflector, the deflector assembly having a first position with the deflector disposed within the chamber and a second position with the deflector distal of the first position, the deflector including a face portion disposed perpendicular to the longitudinal axis and a hood portion extending substantially orthogonally to the face portion, the face portion including a central hole with two through holes disposed about the central hole, the deflector assembly including no more than two arms extending through the two holes to support the deflector in a telescopic manner;
a closure assembly including a biasing element placed in sealing engagement with the internal surface forming the outlet of the sprinkler body when the deflector assembly is in the first position; and
a trigger assembly to support the deflector assembly in the first position, the trigger assembly including:
a thermally responsive plate assembly distal of the chamber opening to control operation of the sprinkler between an unactuated and an actuated state of the sidewall sprinkler;
a lever assembly including a first lever member and a second lever member diametrically disposed from one another about the longitudinal axis, each lever member having with a first end engaged with the shelf and a second end engaged with the thermally responsive plate assembly in the unactuated state;
a bridge element having a first end and a second end with a planar surface and a pair of parallel walls extending between the first and second end to define a channel straddled about the first and second lever members to bridge the first and second lever members for support of the deflector assembly in its first position, each of the first end and the second end of the bridge element being in point of contact with the lever assembly, the planar surface including a central opening between the first and second end, the planar surface being imperforate between the walls and between the central opening and each of the first and second ends; and
a set screw and an intermediate member, the set screw being threaded through the central opening of the bridge element to abut the intermediate member in the unactuated state of the sprinkler and support the deflector assembly in its first position and place the biasing element in sealing engagement with the internal surface forming the outlet of the sprinkler body.
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0. 36. The sprinkler of claim 35, comprising:
the lip portion overlaps the distal edge of the annular wall.
0. 37. The sprinkler of claim 35, comprising:
the thermally rated plate assembly is formed by plate members coupled together by a fusible thermally sensitive material.
0. 38. The sprinkler of claim 35, comprising:
the lip portion is integral with the planar surface portion.
0. 39. The sprinkler of claim 35, comprising:
the lip portion defines a substantially circular perimeter of the thermally rated plate assembly.
0. 40. The sprinkler of claim 35, comprising:
a circumference of the lip portion is less than a circumference of the annular wall.
0. 41. The sprinkler of claim 35, comprising:
the outer surface defines one or more tool engaging surfaces to facilitate installation of the sprinkler.
0. 42. The sprinkler of claim 41, comprising:
an escutcheon having an inner wall disposed around the outer surface, wherein the one or more tool engaging surfaces are configured to receive portions of a tool inserted between the inner wall of the escutcheon and the outer surface.
0. 43. The sprinkler of claim 41, comprising:
the one or more tool engaging surfaces are oriented relative to at least one feature of the deflector plate to facilitate alignment of the deflector plate during installation of the sprinkler.
0. 44. The sprinkler of claim 43, comprising:
the tool engaging surfaces include a first tool engaging surface, a second tool engaging surface, and a third tool engaging surface, the first tool engaging surface and the second tool engaging surface defining a first angle around the longitudinal axis, the second tool engaging surface and the third tool engaging surface defining a second angle around the longitudinal axis, the first angle different than the second angle.
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This application is
where Ffluid is equal to the pressure of fluid multiplied by the area at the inlet 26, i.e. Ffluid=Pressure*[(Π/4)*Dia.2], and β is the angle formed between the longitudinal axis A-A and the lever member 68b.
In addition to the resultant force Fres, a normal force Fnormal acts on the lever member 68b, for example, by the friction engagement of the lever member 68b with the shelf 70 at the point P. These forces tend to bias and pivot the lever member about the point of engagement P, which results into a bias force transferred by the lever members 68a, 68b against the plate members 74, 76 of the cover plate assembly 16 at the edges forming the plate assembly opening 78. In order for the lever member 68b to support the bridge element 64 and hold the closure element 44 in its sealing position, the lever member 68b must be a static member. Accordingly, in response to the outward biasing force, the plate assembly 16 exerts an equal and opposite reaction force Fplate applied to the end of the lever member 68b. More specifically, the lever member 68b is static in its sealing configuration, and thus, the moments M about the point P at which the lever member 68b engages the shelf 70 must sum to zero. Looking at the location of the forces acting on the lever member 68b while in its static position engaged with the shelf 70 and the plate assembly 16, a moment equation can be derived and the plate assembly reaction force Fplate can be solved for as follows. From static mechanics, MP=F*d where M is moment about a point P, F is an applied force, and d is the orthogonal distance between the direction of the force F to the point P. For the lever member 68b in
ΣMP=FNormal*d1+FRes*d2+FPlate*d3 where
d1, d2, d3 are respectively the orthogonal distances from the direction of the respective forces FNormal, Fres, and FPlate to to the engagement point P preferably at the shelf 70, where further
d1=0
d2=x
d3=y
In the static situation where the lever members 68a, 68b are supporting the bridge and closure elements 64, 44 the total moment ΣMP for each lever member about the engagement point P equals zero and the reaction force required of the plate assembly can be determined as follows;
ΣMP=0=FNormal*0+FRes*x+FPlate*y
0=FRes*x+FPlate*y
applying a sign convention in which a force acting clockwise about a point P is negative and then solving for FPlate
0=FRes*x+(−FPlate)*y
FPlate*y=FRes*x
FPlate=FRes*x/y
Preferably for the sprinkler 10, the bridge element 64, lever assembly 66 and plate assembly 16 are configured and assembled to locate and direct the forces FNormal, Fres, and FPlate such that the Fres is applied in a direction orthogonally spaced at a distance x from the point P of about 0.05 inches, preferably 0.044 inches, and that the plate assembly or link force FPlate is applied in a direction orthogonally spaced at a distance y from the point P of about 0.4 inches and more preferably about 0.412 inches. Thus, where for example, the sprinkler 10 is uninstalled, no fluid force, i.e., Ffluid=0 and the only force transmitted to the link assembly 66 is the biasing spring force Fspring of about eighty pound force (80 lbs.) from the spring disc and the angle β is about 68°, the resolved force at one lever member Fres is thus [(80 lbs)/2]*sin(68) or about 37 lbs. and the plate assembly reaction force FPlate is
FPlate=37 lbs.*0.044 in./0.412 in.
FPlate≈4 lbs.
Where the sprinkler 10 is installed having an inlet diameter Dia of about 0.441 inches and under a fluid (liquid or gas) working pressure of up to about 175 psi., adding the 4 lbs. of reaction for force due to the spring with the reaction force due to the working fluid pressure, the plate assembly reaction force FPlate is
FPlate=[Ffluid*sin 68]*0.044 in./0.412 in+4 lbs.
FPlate=[175 psi.*(Π/4)*(0.441 in.)2)/2*sin 68]*0.044 in./0.412 in.+4 lbs.
FPlate≈1.3 lbs.+4 lbs.
FPlate≈5.3 lbs.
Thus for two levers, the total plate assembly reaction force FPlateTotal=2*5.3≈10.6 lbs. in response to a total force FTotal applied to the sprinkler, Ffluid and Fspring respectively being about 80 lbs. and 26 lbs. or a total of about 106 lbs.
Thus, the sprinkler 10 and its cover plate assembly 16 is preferably configured to define a load to reaction force FPlateTotal ratio (FTotal:FPlate Total), where FTotal=FFluid+FSpring, ranging from about 5:1 to about 20:1, preferably from about 8:1 to about 12:1 and more preferably about 10:1. Accordingly, because the lever and cover plate assemblies 66, 16 are configured to effectively support the closure element 44 in its sealing position a separate screw member is not needed to engage the closure element 44 to seal the passageway, and thus the cover plate assembly 16 can present a substantially contiguous sealing face to prevent access to the chamber 38 of the sprinkler body 12. Moreover, because the closure element 44 is preferably sealed by the frame formed by the lever assembly 66 in conjunction with the cover plate assembly 16, attempts to dislodge either the cover plate assembly 16 or the lever assembly 66 while the sprinkler 10 is installed would likely actuate the sprinkler.
In another alternate embodiment of the sprinkler 10, a load screw is applied to closure element at the time of sprinkler assembly, however no access is provided to the load screw via the cover plate assembly 16 or by its engagement with the body 12. More specifically shown in
Accordingly, it should be understood that the cover plate assembly 16 can be disposed about the distal edge 40 of the sprinkler body 12 to effectively conceal and prevent access to the interior of the chamber 38 and at the same time engage the body 12 or an internal component of the sprinkler 10 to form a desired trigger assembly 62. Although, the lever assembly 66 is a preferred embodiment for coupling the trigger assembly to the closure element 44, other assembly configurations are possible provide the concealing and triggering functions are fulfilled.
Referring again to
In service, a fluid (liquid or gas) pressure ranging from about 7 psi. to about 175 psi. is applied at the closure element 44 of the sprinkler 10. Higher pressures could be applied provided the cover plate assembly 16 and lever assembly 66 were appropriately sized and configured. The installed sprinkler 10 preferably operates by thermally activation of the trigger assembly 62. Operation of the trigger assembly 62 permits displacement of the deflector assembly 14 and the closure assembly 44 thereby allowing fluid, and preferably liquid, supplied to the inlet of the body 12 to be discharged from the outlet 28 of the passageway 24 and distributed upon impact with the deflector plate 54. More specifically, in the presence of a sufficient level of heat, the thermally sensitive material coupling the first and second plates 74, 76 of the cover plate assembly melts. Unable to resists the biasing force exerted by the pivot of the lever members 68a, 68b, the second plate member 76 separates from the first plate member 74. With the second plate member 76 displaced or removed, the cover plate assembly opening 78 is enlarged to the exposed first plate opening 78a. As a result, the first plate member 74 is freed from the snap fit engagement with the lever assembly 62, and therefore first plate member 74 is separable from the distal portion 22 of the body 12. Without the restraint of engagement with the first and second plate members 74, 76, the lever members 68a, 68b are free to continue to pivot about their engagement point with the shelf 70 formed along the inner surface 36 of the annular wall 30. The pivot of the lever members 68a, 68b further preferably frees the lever members from engagement with the bridge element 64, and the lever members can be separated from the sprinkler assembly. Without the rigid support of the lever members 68a, 68b and the bridge element 64, the deflector plate assembly 14 and the closure element 44 are axially translated to the second position under the load of the fluid pressure, and fluid is permitted to flow through the passageway 24 for discharge out the outlet 28. Due to the arrangement of the lever assembly 66 with the cover plate assembly 16, attempts to tamper with the sprinkler 10 while under static load, so as to improperly remove the cover plate assembly 16 or expose the internal components of the chamber, can result in displacement of the lever members 68a, 68b causing the sprinkler 10 to operate.
The trigger assembly 62 and the cover plate assembly 16 can be further altered to provided different embodiments of the sprinkler 10. Described below are varying configurations of the cover plate assembly opening 78 and arrangements of the bridge element 64 and lever assembly 66. Accordingly, where possible or not otherwise expressly excluded, the variations to the sprinkler body 12, deflector assembly 14, the escutcheon 18, lever assembly 66, closure assembly 44, cover plate assembly 16, other components and subcomponents, the various special relations, manner of assembly, and the manner of operation described are applicable to each of the various embodiments described throughout. Common terms are used throughout where applicable. Shown for example in
The distal portion 22′ preferably includes an annular wall 30′ having a proximal edge 32′ contiguous and more preferably integral with the proximal portion 20′. The annular wall 30′ includes an outer surface 34′ and an inner surface 36′ to further define a chamber 38′ distal of the outlet 28′. The outer surface 34′ preferably defines a maximum diameter of about W4 of about 1.375 to provide a close fit within the escutcheon 18′. The body 12′ is preferably constructed such that the chamber 38′ is in communication with the passageway 24′. The annular wall 30′ further includes a proximal edge 32′ and a distal edge 40′ defining a distal opening 42′ in communication with the chamber 38′. The annular wall 30′ preferably defines a first wall thickness, and the distal edge of the annular wall 40′ defines a second wall thickness that is preferably less than the first wall thickness. Moreover, the annular wall 30′ further preferably defines a first diameter W1 of the chamber 38′ of ranging from about 1.160 inches to about 1.175 inches and more preferably from about 1.162 to about 1.172 inches. The inner surface 36′ proximate the distal edge 40′ includes a shelf 70′ for engagement with the one end of each of the lever members 68′. The shelf 70′ defines an internal diameter W2 of the chamber 38′ ranging from about 1.09 inches to about 1.15 and more preferably ranges from about 1.098 to about 1.102 inches. The chamber 38′ further preferably defines a chamber height Depth proximal of the shelf 70′ to the outlet 28′ ranging from about 0.305 inches to about 0.315 and more preferably from about 0.308 inches to about 0.312 inches.
The chamber 38′ is preferably configured for housing internal components of the sprinkler 10′ such as, for example, the deflector assembly 14′ and the closure element or assembly 44′. The deflector assembly 14′ is coupled to the body 12′ and is more preferably suspended in a telescoping manner from the proximal edge 32′. More specifically, the proximal edge 32′ preferably includes a pair of through holes 46a′, 46b′ in communication with the chamber 38′. Each of the through holes 46a′, 46b′ have a diameter ranging in size from about 0.125 in. to about 0.150 in. and more preferably ranging from about 0.1285 in. to about 0.1325 in. The deflector assembly 14′ preferably includes a pair of arms 48a′, 48b′ engaged in the through holes 46a′, 46b′. Shown in
Coupled to the distal end 52′ of each arm 48a′, 48b′ of the deflector assembly 14′ is a deflector plate 54′. The arms 48a′, 48b′ preferably locates the deflector plate 54′ at a first position within the chamber 38′ distally adjacent the outlet 28′. The deflector plate 54′ further preferably includes a central hole, and engaged therein is the closure element or assembly 44′. With the deflector plate 54′ located at its first position, the closure element 44′ is preferably located in the outlet of the passageway 28′ to prevent the flow of a fluid (liquid or gas) from the outlet of the passageway 24b′. The closure element 44′ preferably includes a closure button 56′, shown in greater detail in
The axial travel of the arms 48a′, 48b′ locates the deflector plate 54′, as shown more specifically in
Shown in
In an alternate embodiment, shown for example in
Referring again to
To locate the deflector assembly 14′ in the first position and the closure element in the sealed position, the bridge element 64′ is appropriately axially located within the chamber 38′. To appropriately locate the bridge element 64′, the bridge element 64′ is preferably supported by the lever assembly 66′, which is further preferably in pivoted engagement with the shelf 70′. The lever assembly 66′ includes a pair of single lever members 68a′, 68b′. A preferred lever member 68′, shown for example in
The engagement of the lever members 68a′, 68b′ with the cover plate assembly 16′ forms an angled frame member for directly and indirectly supporting the bridge element 64′, closure element 44′ and deflector assembly 14′. The bridge element 64′ defines a channel 72′ to receive the end portion of the lever member 68′ so as to be straddled about the end of the lever member 68′. Upon actuation of the sprinkler 10′, the lever members 68a′, 68b′ pivots about the point of engagement with the shelf 70′, and thereby axially displacing the bridge element 64′ so as to permit the axial translation of the deflector assembly 14′ and the closure element 44′.
The relative angular relation of the lever member 68′ relative to the cover plate assembly 16′ is preferably defined by the lever members' engagement with the cover plate assembly 16′. Disposed between the lever members 68a′, 68b′ is a retaining member or plug 82′ having a recess for holding or housing the set screw 45′ which is engaged with the bore 58′ of the button 56′. During assembly and with the internal components in place, the set screw 45′ is accessed from the distal end of the sprinkler for loading and setting of the closure assembly 44′ in the sealed position. The set screw 45′ is accessed via the opening 78′ in the plate assembly 16′. The opening 78′ is in communication with the passageway of the plug 82′ which leads to the set screw 45′ and its tool engagement end. The width of the passageway of the plug 82′ is preferably about 0.07 inches and more preferably about 0.069 inches, and the recess of the plug ′82 housing the set screw 45′ is preferably about 0.140 inches in diameter. Threading of the set screw advances the set screw 45′ axially through the threaded opening in the bridge 64′ to abut the button bore 58′ and load the sprinkler 10′.
The cover plate assembly 16′ preferably includes a first plate member 74′ and a second plate member 76′ coupled to the first plate member 74′ to further form a trigger assembly as previously described. The second plate member 76′ is preferably coupled to the first plate member 74′ to further preferably define the cover plate assembly opening 78′ which further preferably engages the ends of the lever member 68′ in a close fit relation with the plug 82′. The opening 78′ preferably defines an opening length of about 0.277 inches. The first plate member 74′ preferably include as substantially planar surface portion sized so as to substantially cover the distal opening 42′ of the body 12′. An out of plane, raised or lip portion 80′ of the first plate member 74′ is contiguous and more preferably integral with the planar surface portion. The raised or lip portion 80′ preferably defines a substantially circular perimeter of the plate member 74′. The lip portion 80′ further has a diameter of a sufficient length so as to further define a circumference larger than the circumference of the distal edge 40′ of the annular wall 30′ forming the distal opening 42′. Thus, the engagement of the lever member 68′ with the cover plate assembly 16′ preferably locates the first plate member 74′ distally adjacent the distal opening 42′ of the body 12′, the lip portion 80′ preferably overlaps and circumscribes the distal edge 40′. The sprinkler 10′ can further include a ring member 21′ configured substantially similar to the ring member 21′ previously described. The assembly sprinkler 10′ is preferably pressure rated to maintain a static fluid pressure of about 500 pounds per square inch (psi).
Shown for example in
The distal portion 122 preferably includes an annular wall 130 having a proximal edge 132 contiguous and more preferably integral with the proximal portion 120. The annular wall 130 includes an outer surface 134 and an inner surface 136 to further define a chamber 138 distal of the outlet 128. The body 112 is preferably constructed such that the chamber 138 is in communication with the passageway 124. The annular wall 130 further includes a distal edge 140 defining a distal opening 142 in communication with the chamber 138. The annular wall 130 preferably defines a first wall thickness, and the distal edge of the annular wall 140 defines a wall thickness that is preferably less than the first wall thickness.
The chamber 138 is preferably configured for housing internal components of the sprinkler 110 such as, for example, the deflector assembly 114 and the closure element 144. The deflector assembly is coupled to the body 112 and is more preferably suspended in a telescoping manner from the proximal edge 132. More specifically, the proximal edge 132 preferably includes a pair of through holes 146a, 146b in communication with the chamber 138. The deflector assembly 114 preferably includes a pair of arms 148a, 148b engaged in the through holes 146a, 146b. The arms 148a, 148b each preferably include an enlarged proximal end 150 for engaging the proximal edge 132 of the annular wall 130 so as to limit the distal and axial travel of the arms 148a, 148b in the through holes 146a, 146b. The proximal edge 132 can include additional openings to provide a sprinkler assembler/installer access or view to the chamber 138, for example, the proximal edge 132 can include two substantially semi-circular openings disposed about the proximal portion 120 of the body 112.
Coupled to the distal end 152 of each arm 148a, 148b of the deflector assembly 114 is a deflector plate 154. The arms 148a, 148b preferably locates the deflector plate 154 at a first position within the chamber 138 distally adjacent the outlet 128. The deflector plate 154 further preferably includes a central hole, and engaged therein is the closure element 144. With the deflector plate 154 located at its first position, the closure element 144 is preferably located in the outlet of the passageway 128 to prevent the flow of a fluid (liquid or gas) from the outlet of the passageway 124b. The closure element 144 preferably includes a closure button 156 having a preferably frustroconical tip with a partial bore 158. Disposed about the frustroconical tip and engaged with a flange of the closure button 156 is a biasing element 160, preferably a Belleville spring disc having a spring force ranging from about 50 lbs. (222 Newtons) to about 120 lbs. (534 Newtons). With the closure element 144 in its sealing position, the frustroconical tip is preferably disposed within the passageway 124 and the biasing element 160 engages a preferably counter sunk surface forming the outlet 128 to the distal portion 124b of the passageway 124.
The axial travel of the arms 148a, 148b locates the deflector plate 154 to at least a second position distal of its first position and preferably distal of the distal opening 142. With the deflector plate in its second position spaced from the first position, the closure element 144 is preferably spaced from the outlet 128 so as to permit any fluid (liquid or gas) supplied to the body 112 of the sprinkler 110 to discharge from the outlet 128. Liquid discharge from the outlet 128 can impact the axially displaced deflector plate 154 and therefore be distributed about an area beneath the sprinkler. To facilitate a distribution of fire fighting fluid in an area being protected by the sprinkler 110, the deflector plate can include a pattern of closed or open ended slits, slots, through holes, openings, cut-outs or any combination thereof to satisfy any one of a vertical or horizontal fluid distribution test. Preferably the sprinkler body 112 and deflector assembly 114 can be configured for standard coverage or extended coverage.
The sprinkler 110 is preferably a thermally actuated sprinkler so as to permit the passage of fluid from the outlet 128 in the presence of a sufficient amount of heat. Accordingly, the sprinkler 110 includes a trigger assembly 162. The trigger assembly 162 preferably includes a bridge element 164 and a lever assembly 166. The bridge element 164 preferably includes a surface for supporting the deflector assembly 114 in its first position and the closure element 144 in its sealed position engaged with the outlet 128. More preferably, the bridge element 164 includes a substantially planar upper surface to engage a portion of the closure element 144 which is preferably fixed within the central through hole of the deflector plate 154.
To locate the deflector assembly 114 in the first position and the closure element in the sealed position, the bridge element 164 is appropriately axially located within the chamber 138. To appropriately locate the bridge element 164, the bridge element 164 is preferably cantilevered or supported at one end by an annular shelf 170 formed along the inner surface 136 of the annular wall 130, and the other end of the bridge element 164 is supported by the lever assembly 166, which is further preferably in pivoted engagement with the shelf 170. In one embodiment, the lever assembly 166 includes a singe lever member 168. The lever member 168 preferably includes one end for engaging the shelf 170 and another end for engaging the cover plate assembly 116. The end of the lever member 168 preferably includes a flat for frictional engagement with the shelf 170. The engagement of the lever member 168 with the cover plate assembly 116 forms an angled frame member for directly and indirectly supporting the bridge element 164, closure element 144 and deflector assembly 114. To support itself against the shelf 170, one end of the bridge element 164 forms a preferably right angle notch for engaging the shelf 170, and to support itself about the lever member 168, the bridge element 164 defines a channel 172 to receive the end portion of the lever member 168 so as to be straddled about the end of the lever member 168. The shelf 170 is located proximal of the distal opening 142 such that the bridge element 164 is located within the chamber at a position that supports the deflector assembly 114 in its first position and further locates the closure element 144 in its sealing position. Upon actuation of the sprinkler 110, the lever member 168 pivots about the point of engagement with the shelf 170, and thereby axially displacing the bridge element 164 so as to permit the axial translation of the deflector assembly 114 and the closure element 144.
The relative angular relation of the lever member 168 relative to the cover plate assembly 116 is preferably defined by the lever members' engagement with the cover plate assembly 116. More preferably, the angular relation is defined by engagement of one end of the lever member with the shelf 170 of the body 112 and the engagement of the other end of the lever member with the cover plate assembly 116. The cover plate assembly 116 is also configured to conceal the components of the sprinkler 110 container within the chamber 138 such as for example, the deflector plate 154 or the lever member 168. The cover plate assembly 116 preferably includes a first plate member 174 and a second plate member 176 coupled to the first plate member 174. The first plate member 174 preferably include as substantially planar surface portion sized so as to substantially cover the distal opening 142 of the body 112. An out of plane, raised or lip portion 180 of the first plate member 174 is contiguous and more preferably integral with the planar surface portion. The raised or lip portion 180 preferably defines a substantially circular perimeter of the plate member 174. The lip portion 180 further has a diameter of a sufficient length so as to further diameter a circumference larger than the circumference of the distal edge 140 of the annular wall 130 forming the distal opening 142. Thus, the engagement of the lever member 168 with the cover plate assembly 116 preferably locates the first plate member 174 distally adjacent the distal opening 142 of the body 112, the lip portion 180 preferably overlaps and circumscribes the distal edge 140. The overlap of the lip portion 180 provides a parallel wall in combination with the distal edge 140 of the annular wall 130 to further limit radial access to the chamber 138. More preferably, the lip portion 180 presents a continuous outer surface to circumscribe the distal edge 140 of the body 112. Alternatively, the lip portion 180 may include periodic gaps or slots of a sufficient frequency to define the lip portion and prevent radial access to the chamber 138. Accordingly, the preferred embodiment of the first plate member 174 and the cover plate assembly 116 further enhances the concealed nature of the sprinkler 110 by further limiting access to the chamber 138. The sprinkler 110 can further include a ring member 121 configured substantially similar to the ring member 21 previously described.
The second plate member 176 is preferably coupled to the first plate member 174 to further preferably define the cover plate assembly opening 178 which further preferably engages the end of the lever member 168 in a close fit relation. More specifically, shown in the exploded view of
Referring again to
The second plate member 176 is preferably thermally coupled to the first plate member 178. The first and second plate members 174, 176 are preferably coupled together by a thermally sensitive material such as a solder material rated to melt in the presence of sufficient heat generated by, for example, a fire event. Accordingly, the trigger assembly 162 preferably incorporates or includes the cover plate assembly 116. Referring again to
The assembly sprinkler 110 is preferably pressure rated to maintain a static fluid pressure of about 500 pounds per square inch (psi). In one preferred method of assembling the sprinkler 110, the body 112 is positioned in an upright position to allow gravity to position the closure and deflector assemblies 144, 114 into their initial sealed and first positions. More preferably, a threaded tool engages the threaded partial bore 158 of the button 156 in a manner previously described with respect to the assembly of sprinkler 10 so as to pull the closure element 144 toward the proximal end 120 of the sprinkler 110 so as to substantially flatten the biasing element 160 against the portion of the body 112 forming the outlet 128. With the closure element partially engaged in the passageway 124b and the deflector plate 154 in the retracted first position, the bridge element 164 can be lowered and its preferred central hole can be placed into engagement with the upward projection of the closure element 144. One end of the bridge element 164 can engage the shelf 170 and the other end can be disposed about the end of the lever member 168. The lever member 168 can further be wedged into a pivotable engagement with the annular shelf 170 formed along the inner surface 136 of the annular wall 130. The opposite end of the lever member 168 is then preferably brought into position for engagement with the cover plate assembly 116. The first and second plates are preferably arranged and thermally coupled together to form the preferably substantially circular cover plate assembly 116 with the opening 178. The cover assembly 116 is disposed over the distal end of the body 112 such that the opening is then brought into close tolerance engagement about the lever member 168. Preferably, the gap clearance between the lever member and the edges forming the opening 178 is about 0.005 inches. It is believed that the single lever member 168 presents a simplified assembly over other embodiments and known sprinklers that use two lever members. The installation and manner of operating the sprinkler 110 is substantially similar to the installation and operation of sprinkler 10 previously described.
In an alternative embodiment of the preferred sprinkler as shown in
In addition, as particularly shown in
Referring again to
As with the other preferred cover plate assemblies and in a manner as previously described, the second plate member 176′ is preferably thermally coupled to the first plate member 178′ by a thermally sensitive material such as a solder material rated to melt in the presence of sufficient heat generated by, for example, a fire event. Upon exposure to a sufficient level of heat, the thermally sensitive material melts thereby allowing the first and second plate members 174′, 176′ to separate, thus allowing the lever assembly 166′ to pivot and actuate the sprinkler 110′ in manner of operation as previously described.
In one preferred method of assembling the sprinkler 110′, the body 112 is positioned in an upright position to allow gravity to position the closure and deflector assemblies 144, 114 into their initial sealed and first positions in a manner substantially similar to the assembly 10 previously described above. With the closure element partially engaged in the passageway 124b and the deflector plate 154 in the retracted first position, the bridge element 164 can be lowered and its preferred central hole can be placed into engagement with the upward projection of the closure element 144, thereby exposing the channel 172 of the bridge element 164. The ends of the lever members 168a, 168b can then be positioned in the channel 172 and preferably wedged into a pivotable engagement with the annular shelf 170 formed along the inner surface 136 of the annular wall 130. The opposite end of the lever members 168a, 168b are then preferably brought into position for engagement with the cover plate assembly 116′. The first and second plates are preferably arranged and thermally coupled together to form the preferably substantially circular cover plate assembly 116′ with the separate openings 178′, 179′. The cover assembly 116′ is disposed over the distal end of the body 12 such that the openings 178′, 179′ are then brought into close tolerance engagement about the lever members 168a, 168b. Preferably, the gap clearance between the lever members, and the edges forming the openings 178′, 179′ is about 0.005 inches.
Each of the above described embodiments of the preferred sprinkler were configured for pendant installation. Alternatively, any of the above embodiments can be configured as a concealed sidewall sprinkler 210 as shown, for example, in
The sprinkler body 212 has a proximal portion 220 and a distal portion 222. The outer surface of the proximal portion 220 preferably includes a threaded end fitting for coupling the sprinkler 210 to a branch line of a sprinkler system containing a fire fighting fluid such as, for example, water or a pressurized gas such as compressed air. An inner surface portion of the body 212 further defines an internal passageway 224 extending between an inlet 226 and an outlet 228 along a longitudinal axis A2-A2. The inlet 226 is preferably in communication with tapering portion 224a of the passageway 224. The tapering passageway 224a is further preferably in communication with a portion 224b having a constant diameter and terminating at the outlet 228. The passageway 224, inlet 226 and outlet 228 further preferably define a sprinkler constant or K-factor ranging from about 3 gpm/(psi)1/2 to about 5.8 gpm/(psi)1/2 and is preferably about 5.6 gpm/(psi)1/2.
The distal portion 222 preferably includes an annular wall 230 having a proximal edge 232 contiguous and more preferably integral with the proximal portion 220. The annular wall 230 includes an outer surface 234 and an inner surface 236 to further define a chamber 238 distal of the outlet 228. The body 212 is preferably constructed such that the chamber 238 is in communication with the passageway 224. The annular wall 230 further includes a distal edge 240 defining a distal opening 242 in communication with the chamber 238. The annular wall 230 preferably defines a first wall thickness, and the distal edge of the annular wall 240 defines a wall thickness that is preferably less than the first wall thickness.
The chamber 238 is preferably configured for housing internal components of the sprinkler 210. More specifically, the chamber 238 is preferably configured for housing the deflector assembly 214 and a closure element 244. The deflector assembly is coupled to the body 212 and is more preferably suspended in a telescoping manner from the proximal edge 232. More specifically, the proximal edge 232 preferably includes a pair of through holes 246a, 246b in communication with the chamber 238. The deflector assembly 214 preferably includes a pair of arms 248a, 248b engaged in the through holes 246a, 246b. The arms 248a, 248b each preferably include an enlarged proximal end 250 for engaging the proximal edge 232 of the annular wall 230 so as to limit the distal and axial travel of the arms 248a, 248b in to the through holes 246a, 246b. The proximal edge 232 can include additional openings to provide a sprinkler assembler/installer access or view to the chamber 238, for example, the proximal edge 232 can include one or more substantially semi-circular openings 231 disposed about the distal portion 222 of the body 212. More preferably, the semi-circular openings are configured to provide overflow space for a sidewall deflector 254.
Coupled to the distal end 252 of each arm 248a, 248b of the deflector assembly 214 is the deflector plate 254 as seen, for example in
The axial travel of the arms 248a, 248b locates the deflector plate 254 to at least a second position axially spaced from its first position and preferably axially spaced from the distal opening 242 to a location outside the chamber 238. With the deflector plate 254 in its second position, the closure element 244 is preferably spaced from the outlet 228 so as to permit any fluid (liquid or gas) supplied to the body 212 of the sprinkler 210 to discharge from the outlet 228. Liquid discharge from the outlet 228 can impact the axially displaced deflector plate 254 and therefore be distributed horizontally and vertically about an area beneath the sidewall sprinkler 210. To facilitate a distribution of fire fighting fluid in an area being protected by the sprinkler 210, the deflector plate 254 can include additional surfaces, a pattern of closed or open ended slits, slots, through holes, openings, cut-outs or any combination thereof to satisfy any one of a vertical or horizontal fluid distribution test.
Shown in
The chamber 238′ is configured for housing internal components of the sprinkler 210′ including the deflector assembly 214′ and a closure element 244′. The deflector assembly is coupled to the body 212′ and is more preferably suspended in a telescoping manner from the proximal edge 232′ by the of arms 248a, 248b engaged in the through holes 246a′, 246b′. Shown in
Shown in
The face portion 254a′ includes a central hole 251′ for engagement with the button 244 and two through holes disposed about the central hole 257a′, 257b′ for engagement with the distal ends 252′ of the arms 248′. Shown in
Referring again to
The sprinkler 210 is preferably a thermally actuated sprinkler so as to permit the passage of fluid from the outlet 228 in the presence of a sufficient amount of heat. Accordingly, the sprinkler 210 includes a trigger assembly 262. The trigger assembly 262 preferably includes a bridge element 264 and a lever assembly 266. The bridge element 264 and lever assembly 266 can be constructed and configured in a manner substantially similar to the previously described embodiments of bridge elements and lever assemblies. In particular, a preferred sidewall sprinkler 210′ having body 212′ and deflector 254′ is assembled in a manner substantially similar as described with respect to preferred pendent sprinkler 10′. More specifically, the sprinkler 10′ preferably uses a plug 82′ and set screw 45′ with a cover plate assembly 16′ as described above to load and seat the sprinkler 210′. Accordingly, the bridge element 264 preferably includes a surface for supporting the deflector assembly 214 in its first position and the closure element 244 in its sealed position engaged with the outlet 228. More preferably, the bridge element 264 includes a substantially planar surface to engage a portion of the closure element 244 which is preferably fixed within the central through hole of the deflector plate 254.
To locate the deflector assembly 214 in the first position and the closure element 244 in the sealed position, the bridge element 264 is appropriately axially located within the chamber 238. Accordingly the lever assembly 266, by a preferably pivoted engagement with the inner surface 236 of the annular wall 230, is configured to support the bridge element 264 in the desired location within the chamber 238. Preferably, the lever assembly 266 includes one or more lever members or lever members 268 diametrically disposed about the central axis A2-A2. The lever members 268 preferably include one end for engaging the inner surface 236 and another end for engaging the cover plate assembly 216. To facilitate the pivoted engagement between the annular wall 234 and the levers 268, the inner surface 236 preferably defines an annular shelf 270, and the engaging end of the lever member 268 preferably includes a flat for frictional engagement with the shelf 270. In the preferred body of
The relative angular relation of the lever members 268 is preferably defined by the members' engagement with the cover plate assembly 216, which is preferably configured as the cover plate assembly 16′ described above. The cover plate assembly 216 is also configured to conceal the components of the sprinkler 210 contained within the chamber 238 such as for example, the deflector plate 254 or the lever member 268. The cover plate assembly 216 can be configured in a manner substantially similar to any one of the previously described cover plate assemblies. Accordingly the cover plate assembly 216 can include openings to engage any number of lever member ends of the trigger assembly. For example, the cover plate member can include a first plate member 274 and a second plate member 276 coupled to the first plate member 274. The first plate member 274 preferably includes a substantially planar surface portion that is sized so as to substantially cover the opening 242 of the body 212. An out of plane, raised or lip portion 280 of the first plate member 274 is contiguous and more preferably integral with the planar surface portion. The raised or lip portion 280 preferably defines a substantially circular perimeter of the plate member 274. The lip portion 280 further has a diameter of a sufficient length so as to further define a circumference larger than the circumference of the distal edge 240 of the annular wall 230 forming the opening 242. Thus, where the engagement of the lever members 268 with the cover plate assembly 216 locate the first plate member 274 distally adjacent the opening 242 of the body 212, the lip portion 280 preferably overlaps and circumscribes the distal edge 240. The overlap of the lip portion 280 provides a parallel wall in combination with the distal edge 240 of the annular wall 230 to further limit radial access to the chamber 238. More preferably, the lip portion 280 presents a continuous outer surface to circumscribe the distal edge 240 of the body 212. Alternatively, the lip portion 280 may include periodic gaps or slots of a sufficient frequency to define the lip portion and prevent radial access to the chamber 238. Accordingly, the preferred embodiment of the first plate member 274 and the cover plate assembly 216 further enhances the concealed nature of the sprinkler 210 by further limiting access to the chamber 238.
The second plate member 276 is preferably coupled to the first plate member to further define one or more cover plate assembly openings 278 which engage the ends of the lever members 268. The first plate member 274 includes an opening 278a, and the second plate member 276 includes a plate opening 278b. In one preferred assembly, the opening 278a of the first plate member 274 is an elongated closed formed opening, and the opening 278b of the second plate member is an open ended slot. Upon the assembly and overlap of the first and second plate members 274, 276, the respective opening and slot 278a, 278b cooperate to form the preferred closed form elongated single opening 278 as seen in
For example, the opening 278 is preferably dimensioned such that ends of the levers 268 engage the axial ends of the opening 278 so as to locate the lever members 268 within the chamber 238 to support the deflector and closure assemblies under load. Preferably, the plate engaging ends of the lever members 268 are configured so as to engage the plate assembly opening 278 in a substantially normal direction to the surface of the plate assembly 216. Thus, the end portion of the lever members preferably define an obtuse included angle with the remainder of the lever members 268 such as, for example, the included angle α previously described with respect to
The ends of the lever members 268 preferably occupy only a portion of the entire area of the opening 278, for example, 30 to 50 percent of the entire available spaced defined by the opening 278. Thus to fully occupy the opening 278 and maintain the concealed nature of the complete sprinkler assembly 210, the lever assembly 214 can further include a plug or retaining member 282 to horizontally space the ends of the lever member 268 into close engagement with the ends of the opening 278. The central plug 282 can be embodied as a small resilient member for installation into the plate assembly opening 278 after locating the plate assembly 216 about the distal portion of the body 212. Alternatively, the plug can be embodied as an enlarged retaining bar located between the lever members 268 prior to locating the plate assembly 216 about the distal portion of the body 212. Preferably, the retaining bar 282 is configured as the retaining member 82′ described above providing support and access to a set screw engaged in the recess 245b of the button 244′.
The second plate member 276 is preferably thermally coupled to the first plate member 278. The first and second plate members 274, 276 are preferably coupled together by a thermally sensitive material as previously described. Accordingly, the trigger assembly 262 preferably incorporates or includes the cover plate assembly 216. Upon exposure to a sufficient level of heat, the thermally sensitive material melts thereby allowing the first and second plate members 274, 276 to separate, thus allowing the lever assembly to pivot and actuate the sprinkler 210. The first plate member 274 preferably defines a larger surface area than the second plate member 276. Where each of the first and second plate members 274, 276 or their assembly is substantially circular, the second plate member 276 is preferably located eccentrically relative to the first plate member 274 such that the center points of the first and second plate members 274, 276 are coaxially aligned along an axis skewed relative to the longitudinal axis A2-A2. Alternatively, each of the first and second plate members 274, 276 can define a center point, which can further be coaxially aligned in the cover plate assembly 216 and substantially parallel to the longitudinal axis A2-A2.
The assembled sprinkler 210 is preferably pressure rated to maintain a static fluid pressure of about 500 pounds per square inch (psi). In one preferred method of assembling the sprinkler 210, the body 212 is positioned in an upright position to allow gravity to position the closure and deflector assemblies 244, 214 into their initial sealed and first positions. With the closure element partially engaged in the passageway 224b and the deflector plate 254 in the retracted first position, the bridge element 264 can be lowered and its preferred central hole can be placed into engagement with the upward projection of the closure element 244, thereby exposing the channel 272 of the bridge element 274. The ends of the lever members 268 can then be positioned in the channel 272 and preferably wedged into a pivotable engagement with the annular shelf 270 formed along the inner surface 236 of the annular wall 230. The opposite end of the lever members 268 are then preferably brought into position for engagement with the cover plate assembly 216. The first and second plates are preferably arranged and thermally coupled together to form the preferably substantially circular cover plate assembly 216 with the central opening 278. The lever members 268 are preferably spaced apart by a retaining member 282. The retaining member 282 is preferably generally triangular in shape with two substantially converging surfaces configured to cradle the lever members 268. Extending between the converging surfaces is a planar surface for engagement with the channel 272 of the bridge element 264. The cover assembly 216 disposed over the distal end of the body 212 such that the opening is then brought into close tolerance engagement about the lever members 268 and the retaining member 282. Preferably, the gap clearance between the lever members, the plug and the edges forming the opening 278 is about 0.005 inches. In an alternative method, the ends of the lever members 268 are held close together without the use of a retaining member 282. Instead, the cover plate assembly 216 is disposed over the distal end of the body 212, and the opening 278 is brought into engagement with the lever members 268. With the ends of the lever members 268 disposed in the central opening 278, the central plug 282′ is inserted between the lever member ends to bring the opening 278 and the ends of the lever members 268a, 268b into a close fit engagement. Further in the alternative, the cover plate assembly can have separate openings to separately engage each lever member 268 in a close fit arrangement to hold the lever members in the desired supporting position within the chamber 238.
The sprinkler 210 is preferably disposed within a mounting element or escutcheon 218 for flush mount installation against a wall surface. To install the sprinkler 210, the sprinkler 210 is preferably threaded into an appropriately sized tee-type or other pipe fitting that is preferably mounted along a branch supply line of a sprinkler system. To facilitate installation of the sprinkler 210, the outer surface of the 234 of the annular wall 230 preferably includes one or more tool engaging surfaces 287, as seen for example in
Preferably, the end face of the preferred body 210, shown for example, in
A preferred tool 288′ is shown in
The completely assembled and installed sprinkler 210 is preferably configured to maintain a static pressure of fluid of about 500 pounds per square inch (psi). More specifically, the arrangement of the lever assembly 266 is configured to maintain the deflector assembly 214 in the first position and the closure element 244 in the sealed position within the outlet 228 under a static fluid pressure load of up to about 500 pounds per square inch (psi). The manner in which the lever assembly 266 provides sealing support is substantially similar to that which was previously described with regard to the lever assembly 66 of
Referring to
The installed sprinkler 210 preferably operates by thermally activation of the trigger assembly 262. Operation of the trigger assembly 262 permits displacement of the deflector assembly 214 and the closure assembly 244 thereby allowing fluid, and preferably liquid, supplied to the inlet of the body 212 to be discharged from the outlet 228 of the passageway 224 and distributed upon impact with the deflector plate 254. More specifically, in the presence of a sufficient level of heat, the thermally sensitive material coupling the first and second plates 274, 276 of the cover plate assembly melts thereby permitting the second plate member 276 to separate from the first plate member 274. With the second plate member 276 removed, the cover plate assembly opening 278 is enlarged to the exposed first plate opening 278a. As a result first plate member 274 is freed from the snap fit engagement with the lever assembly 262, and therefore first plate member 274 is separable from the distal portion 222 of the body 212. Without the restraint of engagement with the first and second plate members 274, 276, the lever members 268 are free to pivot about their engagement point with the shelf 270 formed along the inner surface 236 of the annular wall 230. The pivot of the lever members 268, as described with respect to the sprinkler 10 of
While the present invention has been disclosed with reference to certain embodiments, numerous modifications, alterations, and changes to the described embodiments are possible 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 that it has the full scope defined by the language of the following claims, and equivalents thereof.
Silva, Jr., Manuel R., Chavez, Marcelo J., Abels, Bernhard
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Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
Jun 03 2009 | ABELS, BERNHARD | Tyco Fire Products LP | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 051824 | /0637 | |
Jun 03 2009 | SILVA, MANUEL R , JR | Tyco Fire Products LP | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 051824 | /0637 | |
Jun 03 2009 | CHAVEZ, MARCELO J | Tyco Fire Products LP | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 051824 | /0637 | |
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