Security door
10156428 ยท 2018-12-18
Inventors
Cpc classification
F41H5/263
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E06B2003/7063
FIXED CONSTRUCTIONS
F41H5/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E06B2003/7051
FIXED CONSTRUCTIONS
E06B3/26
FIXED CONSTRUCTIONS
F41H5/0407
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F41H5/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E06B5/10
FIXED CONSTRUCTIONS
F41H5/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41H5/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E06B3/26
FIXED CONSTRUCTIONS
Abstract
A stile and rail ballistic security door containing bullet proof materials within a metal or synthetic material frame including a plurality of window panes and thermal break means to eliminate condensation problems therein. The door contains a multi-layer exterior core providing extra strength and rigidity.
Claims
1. A projectile resistant security panel, comprising: a frame comprising structural members selected from the group consisting of steel, metal, stainless steel, copper, bronze, aluminum, titanium, wood, graphite polymer, graphene polymer, polyethylene polymers, nylon, and combinations thereof; an exterior muntin divide trim cover; an exterior veneer; an exterior wood core; an exterior flat grid comprised of a steel, a stainless steel, a copper, a bronze, an aluminum, a titanium, a graphite polymer, a graphene polymer, a polyethylene polymers, a polycarbonate, a carbon fiber, and combinations thereof; a layer of thermal break material; at least one pane of a projectile resistant transparent or translucent light transmitting material comprising a plurality of layers of a glass, a polycarbonate, a synthetic translucent material layer, and combinations thereof; said at least one pane of said projectile resistant transparent or translucent light transmitting material is disposed in a divider grid, said grid comprising a steel, a stainless steel, a copper, a bronze, an aluminum, a titanium, a graphite polymer, a graphene polymer, a polyethylene polymers, a polycarbonate, a carbon fiber, and combinations thereof; an interior wood core; an interior steel core panel member; an interior veneer; and an interior muntin divide trim.
2. The projectile resistant security panel of claim 1, said layer of thermal break material preventing condensation between said plurality of layers of glass and said exterior flat grid, flat grid comprises a strip of insulating material disposed between said at least one pane of projectile resistant transparent or translucent light transmitting material disposed in said divider grid and said exterior flat grid, comprising a glazing tape, a two sided adhesive polyvinyl chloride material, a neoprene material, a closed cell foam glazing tape, a semisolid chalk, and a silicone material.
3. The projectile resistant security panel of claim 1, including neoprene blocks or strips disposed between a lower edge of said at least one pane of said projectile resistant transparent or translucent light transmitting material and said divider grid.
4. The projectile resistant security panel of claim 1, wherein said exterior wood core comprises a multi-layer exterior wood core.
5. The projectile resistant security panel of claim 1, wherein said interior wood core comprises a multi-layer interior wood core.
6. The projectile resistant security panel of claim 1, including a door comprising a pair of horizontal rails joining a pair of vertical stiles, said pair of horizontal rails and said pair of vertical stiles connecting at respective corners forming a door panel.
7. The projectile resistant security panel of claim 6, wherein said door comprises at least one wood layer bonded to at least one steel layer.
8. A projectile resistant security panel, comprising: a frame comprising structural members selected from the group consisting of steel, metal, stainless steel, copper, bronze, aluminum, titanium, wood, graphite polymer, graphene polymer, polyethylene polymers, nylon, and combinations thereof; an exterior veneer; an exterior wood core; an exterior flat grid comprised of a steel, a stainless steel, a copper, a bronze, an aluminum, a titanium, a graphite polymer, a graphene polymer, a polyethylene polymers, a polycarbonate, a carbon fiber, and combinations thereof; a layer of thermal break material; at least one of pane of a projectile resistant transparent or translucent light transmitting material comprising a plurality of layers of a glass, a polycarbonate, a synthetic translucent material layer, and combinations thereof; said at least one pane of said projectile resistant transparent or translucent light transmitting material is disposed in a divider grid, said grid comprising a steel, a stainless steel, a copper, a bronze, an aluminum, a titanium, a graphite polymer, a graphene polymer, a polyethylene polymers, a polycarbonate, a carbon fiber, and combinations thereof; an interior wood core; an interior steel core panel member; and an interior veneer.
9. The projectile resistant security panel of claim 8, said layer of thermal break material preventing condensation between said plurality of layers of glass and said exterior flat grid comprises a strip of insulating material disposed between said at least one pane of projectile resistant transparent or translucent light transmitting material disposed in said divider grid and said exterior flat grid, comprising a glazing tape, a two sided adhesive polyvinyl chloride material, a neoprene material, a closed cell foam glazing tape, a semisolid chalk, and a silicone material.
10. The projectile resistant security panel of claim 8, including neoprene blocks or strips disposed between a lower edge of said pane and said divider grid.
11. The projectile resistant security panel of claim 8, wherein said exterior wood core comprises a multi-layer exterior wood core.
12. The projectile resistant security panel of claim 8, wherein said interior wood core comprises a multi-layer interior wood core.
13. The projectile resistant security panel of claim 8, including a door comprising a pair of horizontal rails joining a pair of vertical stiles, said pair of horizontal rails and said pair of vertical stiles connecting at respective corners forming a door panel.
14. The projectile resistant security panel of claim 8, including an interior muntin divide trim.
15. The projectile resistant security panel of claim 8, including an exterior muntin divide trim.
16. A projectile resistant security panel, consisting essentially of: a frame comprising structural members selected from the group consisting of steel, metal, stainless steel, copper, bronze, aluminum, titanium, wood, graphite polymer, graphene polymer, polyethylene polymers, nylon, and combinations thereof; an exterior veneer; an exterior wood core; an exterior flat grid comprised of a steel, a stainless steel, a copper, a bronze, an aluminum, a titanium, a graphite polymer, a graphene polymer, a polyethylene polymers, a polycarbonate, a carbon fiber, and combinations thereof; a layer of thermal break material; at least one of pane of a projectile resistant transparent or translucent light transmitting material comprising a plurality of layers of a glass, a polycarbonate, a synthetic translucent material layer, and combinations thereof; said at least one pane is disposed in a divider grid, said grid comprising a steel, a stainless steel, a copper, a bronze, an aluminum, a titanium, a graphite polymer, a graphene polymer, a polyethylene polymers, a polycarbonate, a carbon fiber, and combinations thereof; an interior wood core; an interior steel core panel member; and an interior veneer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A better understanding of the present invention will be had upon reference to the following description in conjunction with the accompanying drawings in which like numerals refer to like parts throughout the several views and wherein:
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DESCRIPTION OF THE PREFERRED EMBODIMENT
(24) As used herein, the term about can be reasonably appreciated by a person skilled in the art to denote somewhat above or somewhat below the stated numerical value, to within a range of 10%.
(25) Unless the context clearly requires otherwise, throughout the description and the claims, the words comprise, comprising, and the like are to be construed in an inclusive sense as opposed to an exclusive or exhaustive sense; that is to say, in the sense of including, but not limited to. Words using the singular or plural number also include the plural or singular number respectively. Additionally, the words herein, above, below and words of similar import, when used in this application, shall refer to this application as a whole and not to any particular portions of this application. When the claims use the word or in reference to a list of two or more items, that word covers all of the following interpretations of the word: any of the items in the list, all of the items in the list and any combination of the items in the list
(26) A list of reference numbers used to describe the elements in the drawings is as follows: 2. Bottom rail assembly 4. Top rail assembly 5. Stile assembly (vertical) 6. Jamb assembly 7. Deleted/not used 8. Half lap meeting stile assembly 9. Deleted/not used 10. Security door assembly 11. Insert panel assemblymetal, polymer, glass (clear, translucent, opaque), or combination 12. Exterior veneer 13. Exterior muntin divide trim 14. Interior muntin divide trim 15. Interior veneer 31. Bullet resistant glass panes/panels 41. Thermal break material 42. Neoprene setting block/shim material 43. Adhesive back structural glazing tape 44. Magnetic strip tape 51. Hinges (top, bottom & intermediate) 61. Stainless steel 5-point semi-concealed lock/latch/handle assembly 69 Barrel nut through bolt 71. Weather stripping 73. Weather seal T reglet track 75. Slip resistant grooves/ridges/sill plate 80. Weather stripping/door sweep 81. Threshold assembly 82. Stainless steel structural stop block 83. White oak stop block cover 91. Door frame 92. Interior frame door stop block 111. Exterior wood core assembly 112. Interior wood core assembly 211. Exterior steel core flat grid plate 2112 Flat head stainless steel threaded fastener 212. Steel core middle egg crate 213. Interior steel core flat grid plate 609. deleted/not used 611. Active leaf reinforced lock/set/handle housing 612. Top and bottom horn hooks 613. Top and bottom horn hook keepers 614. Inactive leaf reinforced keeper/handle set housing 615. Multipoint lockset strike stile escutcheon plate 616. Top and bottom shoot bolts 811. Stainless steel sill lug/pivot hinge mounting plate 812. Slip resistant bronze plate 813. Extended threshold sill horn 1111. T-shaped edge band block (top/inner) 1112. (inner layer of core 111) 1113. (inner layer of core 111) 1114. (inner layer of core 111) 1115. (inner layer of core 111) 1116. (inner plug layer of core 111) 1117. T-shaped edge band block (bottom/outer)
(27) As shown in
(28) The rail and stile, single or paired security doors are built as a bonded, layered frame and panel construction. The stiles (5) comprise vertical boards that run the full height of a door and compose its right and left edges. The top and bottom offset pivot hinges and intermediate butt hinges (51) are mounted to the top, bottom and midpoint edges. The multipoint latch/lock assembly (61) including the handle, lock, top and bottom shoot bolts (616), and integral horn hooks/keepers (612) are mounted on the swinging side (known as the latch stile). The rails (2, 4), comprise horizontal boards at the top, bottom, and optionally in the middle of a door that join the two stiles and spit the door into one or more rows of panels. The top rail (4) and bottom rail (2), (sometimes referred to as the kick rail), joins the stiles (5). A middle rail may optionally be disposed at about the height of the handle set providing a lock rail, and/or other horizontal rails commonly known as cross rails, may be used as well. It is also contemplated that mullions and/or muntin divides defining smaller optional vertical and horizontal TDL (true divided lights) that run between both rails and stiles and divide the door into single or multiple vertical and horizontal framed lights may be used to provide light/vision openings in the doors. The figures illustrate a plurality of TDL muntin divides which are optional vertical and horizontal members that divide the door into smaller panels. Panel (11) is composed of a selected material such as metal, polymer, bullet resistant transparent, translucent, one-way reflective glass, polycarbonate, synthetic material or combinations thereof, fill the space between the stile, rails, and muntin divides. The preferred embodiment utilizes decorative opaque panels or an arrangement comprise layers of clear or translucent bullet resistant glass (31) and/or clear or translucent polymers defining lights which fit into the rigid steel frame surrounds thus, becoming an integral component of the bullet resistant property of the door. Panels (31) may be flat, or in raised decorative panel designs and can be secured in place with adhesive back glazing tape (43), non-adhesive insulating membrane tapes or stay as a floating panel.
(29) More particularly, as shown in
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(33) The interior and exterior muntin divides comprise a solid wood Sapele Mahogany TDL (true divided lights) muntin divide grill (13 and 14) applied trim which is attached to an exterior steel plate (211) and interior steel plate (213) with a two-sided adhesive tape (43), such as 3M VHB structural glazing tape. Grid trims may also be attached with adhesive back magnetic tape (43). The threshold assembly (81) includes the multi-piece overlapping plate assembly with slip resistant grooves or ridges (75) and structural stop block (82) covered with a weather-seal (71) set in a reglet track (73).
(34) For exterior applications, thermal break material (41) such as for example, a thermal glazing tape or adhesive back rigid or semi rigid thermal insulating material is to be disposed between the exterior steel core grid (211) and the steel grid divides (212). The thermal break material (41) provides thermal and physical separation of the steel components thus resisting interior condensation forming therein or thereon.
(35) The panels of glass (31) may include film disposed between multiple layers of glass to achieve the desired bullet resistant properties and/or a tint, low emission film, and/or reflective, low ultraviolet and/or infrared radiation coatings, low emissivity silver coatings, low emissivity pyrolytic coatings, frosted, opague, or translucent material. An adhered sheet of polycarbonate material, which may be clear or transparent, or other impact resistant polymer comprises the interior surface of the bullet and projectile resistant panel (31) of assembly (11) in order to prevent explosive glass shards, or particles thereof resulting from high velocity projectile and/or intruder mass/force impact. It is anticipated that products such as Corning's GORILLA glass may also be incorporated in the present invention. It should be noted that in a preferred embodiment, the middle steel grid comprising spacers/dividers (212) are welded to the surface of the interior flat steel plate egg crate grid (213) so as to provide and maintain the structural integrity of the vision components.
(36) A more detailed description of the component materials of construction for the ballistic door of the security door Is as are as follows:
(37) Rail and Stile Door Frame
(38) The preferred embodiment of the rail (2, 4) and stile (5) comprises an exterior multi-layer core (111) and an interior multi-layer wood core (112) of laminated Sapele Mahogany, chemically bonded under pressure. Other core materials may be utilized including various hardwood species, laminated veneer lumber (LVL), stave core laminated wood comprising of either a hardwood or a softwood species, and/or combinations thereof.
(39) The rail and stile finished surface of the preferred embodiment is Sapele Mahogany veneer (12). Alternate finished surface materials may be as specified including any available wood veneer species suitable (in finished form) for exterior exposure, high density PVC veneer, any +/ thick wood or metal veneer material suitable as bonded base for stain/clear coat finish, hard/spray paint finish, or LUMINORE type spray metallic finish.
(40) The muntin divides trims (13, 14) of the preferred embodiment are CNC profiled Sapele Mahogany applied to TDL exterior (211) and interior (213) steel applied grids. Muntin divides attach to steel core plates (211, 213) with 3M VHB (43) 2-sided adhesive tape. Alternate muntin divide trim materials may be utilized including those matching/compatible with selected rail and stile finished material listed above. Exterior muntin trim grid may be attached with adhesive back magnetic strip tape (44) for future maintenance and/or repair access to steel core (211) and TDL glass panels (31).
(41) Metal Core
(42) An effective amount of a metal, for instance, 5/16 armor plate steel can be used in the instant invention; however, other materials including flat plate steel, stainless steel, titanium, aluminum, copper, brass, graphite materials, ceramic materials, and polymers and/or combinations thereof can be used so long as they maintain the prescribed bullet resistant properties. Typically, the least expensive available material is flat plate steel. However, consideration as to total assembled door weight and desired security performance levels will impact the selection of component materials.
(43) As shown in the drawings, the exterior steel core grid member (211), middle divider steel core egg crate member (212), and interior steel core panel member (213) comprised of armor plate steel in various thickness as appropriate for specific ballistic resistance requirements. The middle egg crate grid spacer/divides (212) hold the TDL (true divided lights) glass in position. Alternate materials for these components include stainless steel, bronze, aluminum plate material in thickness as appropriate for specific ballistic resistance, weight and/or corrosive resistant requirements.
(44) Panels
(45) The preferred embodiment glass panel assembly (11) includes a plurality of glass TDL panes (31) that are ballistic resistant Level 5 laminated glass with a sheet of impact resistant material such as polycarbonate adhered to or disposed onto the interior face of the glass (31). Alternate materials include ballistic resistant laminated clear or one-way reflective glass, full thickness single or multi-layer polycarbonate clear or translucent panels, film laminate, decorative steel and/of/or laminated opaque flat, raised, or sculpted panels of as specified various security levels. The laminated glass typically includes a clear polymer film between layers to prevent/reduce shattering on the secure side. The present invention glass panes (31) also include a polycarbonate interior surface layer for positive protection against impact generated explosive glass projectiles.
(46) Thermal Break/Glazing Material
(47) A novel feature of the instance invention is the utilization of a thermal break/glazing material (41) such as VHB (3M VHB), a 2-sided structural glazing tape in thicknesses appropriate for the desired thermal separation. Alternately, high density, 2-sided adhesive Polyvinyl Chloride (PVC), neoprene strips, adhesive back cork strips, and/or closed cell foam glazing tapes may be utilized to provide separation, sound abatement, and as a glass to steel isolator. High density neoprene blocks/strips (42) are used between lower edge of glass panels (31) and steel dividers (212) as a positioning support shim and component isolation pad. However, the same high density neoprene block/strip material (42) in thickness as appropriate for shimming the glass may be used on any or all four edges providing additional thermal separation and isolation of glass panels (31) and steel frame components (211, 212, 213).
(48) The thermal break material (41) may be applied in adhesive or non-adhesive back sheets or strips to prevent potential interior surface condensation problems on exterior installations. For interior only applications, a single piece structural glazing tape (43) may replace the thermal break material (42) between steel components (211) and (212) to secure the glass/panel components assembly (11) within the steel core assembly. It is anticipated that a semisolid chalk or silicone material which can be applied from a tube may also be applicable as a suitable thermal break material.
(49) Hinge Assembly
(50) A preferred embodiment as shown in the attached figures includes tamper resistant balance adjustable top offset pivot hinge (51), bottom offset pivot hinge (51), and one or more intermediate offset butt hinges (51) comprised of stainless steel or available suitable materials with or without applied finish wherein, the pivot hinge design load rating exceeds the door leaf design weight. Alternative hinges can be constructed based on the door leaf design weight and aesthetic requirements of the door assembly. Bronze or stainless steel wide swing, clear swing gorilla type butt hinges of 1 pair, 2 pair, or more as required per leaf weight and installation requirements may be utilized. A full height stainless steel or plated finish piano type hinge may be used following verification of the hinge fasteners holding capacity of the jamb material. Industry standard (i.e. brass, nickel, oil rubbed bronze, painted, etc.) in polished, satin, gloss, matte finishes/colors/textures to compliment specific design/aesthetic requirements are acceptable.
(51) Multi-Point Locking
(52) As illustrated in
(53) Weather Stripping
(54) Weather stripping (71), as illustrated in
(55) Threshold
(56) The preferred threshold assembly (81), as shown in
(57) Alternate materials for the stainless steel/bronze threshold (81) include a single piece or multi-piece, machined, all bronze or all stainless steel plate assembly with slip resistant grooves or ridges (75) along the walk surface or machined single piece or, multi-piece all aluminum plate assembly with slip resistant grooves along the walk surface. Other materials for the stop block (82) include an all metal stop block compatible with adjacent threshold material and suitable for welded or threaded fastener attachment. Select species hardwood may be used as a stop block cover (83).
(58) Door Frame
(59) The preferred door frame (91) into which the operable door panels are installed (hung) is a Sapele Mahogany milled head and jamb frame with concealed fasteners into suitable adjacent building frame components. Applied interior trim component (92) is preferably Sapele Mahogany head and jamb profiled trim stop block with reglet track (73) weather-seal (71) installation. Alternative materials for the door frame (91) include exterior suitable hardwood compatible with selected door finish veneers, welded steel frame assembly of plate, channel or tube shapes, paint or applied veneer finish, with compatible stainless steel, bronze, or aluminum built-up/welded interior stop assembly with compatible (per adjacent door) applied finish or veneer covers. Alternative materials for the stop block trim (92) include steel, aluminum bar stock, or other appropriate materials suitable for welded or threaded fastening to a concealed steel frame assembly covered with a finished wood overlay per the selected door finish.
(60) As illustrated in
(61) Component Assembly Description:
(62) With reference to
(63) Separate interior (112) and exterior (111) wood core laminates are bonded under pressure into individual rail and stile components in size and shape as required per design criteria. Exterior steel grid plate (211) and interior steel grid plate (213) are fabricated to required dimensional specifications using a CAD/CAM plasma cutter to insure exacting dimensional control, clean, precise 90 degree inside corners, and proper final assembly alignment of light divides and fasteners. The use of a CAD/CAM plasma cutter affords high degree of flexibility in producing custom/unique straight, curved or free form grid patterns within anticipated final assembly alignment tolerances. Steel middle core (212) flat bar stock components are fabricated to size/lengths required so as to be assembled into an egg crate like grid assembly as containers and structural dividers for the individual glass panes (31). The egg crate grid assembly (212) aligns along the centerline and inner perimeter of both flat grid plates (211 and 213) providing a pre-determined offset plane depth to be used as the structural glazing stop. Egg crate divider (212) is welded to interior flat plate grid (213) which has been fabricated to extend a pre-determined dimension short of or flush with both rail and stile perimeter edges. Proximity to each edge relates to the threat angle necessary for a clear shot path. The combined egg crate (212) and flat plate (213) constitute the primary structure component resisting a blunt force attack to the view portion of door.
(64) The security door (10) component assembly procedure comprises of consists of the steps of a bonding connect edge (stile) to the end (rail) at four corners (with alignment dowels/biscuit) of the individual interior and exterior rail (2, 4) and stile (5) components forming separate four sided door panel frames. Prior to final rail and stile assembly, wood core components (111, 112) receive as required milling for inner and outer edge band blocks (1111, 1117). Half-lap meeting stile (8) weather-strip reglets (73), mortise lock/handle set housings (611, 614) shoot bolts (616) horn hooks/keepers (612, 613), and pre-drill for concealed barrel nut bolts (69) are applied to the door. Structural steel plate/egg crate combined assembly (213, 212) is chemically bonded to a mill prepared interior wood core (112) immediately followed by alignment jig overlapping and perimeter bonding to mill prepared exterior wood core (111). Chemically bonded, inserted and mechanically fastened mill prepared edge band blocks (1111, 1117) are inserted/secured with barrel nut bolts (69). The multi-point clamping pressure is applied to the door assembly surface/edges and re-tighten barrel nut through bolts.
(65) Selected structural glazing tape (43) is placed on the glass contact face of the interior steel plate (213) structural glazing stop surface to all four sides of each separate divide. The pre-fabricated (size, shape and thickness) bullet resistant glass panes (31) are placed in appropriate egg crate divided sections, verifying that polycarbonate layer of glass pane (31) is the interior surface. At a minimum, two semi-rigid neoprene setting blocks/shims (42) are provided along the bottom (weight bearing) edge of the glass/steel egg crate grid interface. Optionally, similar neoprene setting blocks/shims may be placed along the other three edge surfaces of the glass/steel egg crate to restrict lateral movement or provide additional thermal separation of the glass component.
(66) Selected thermal break material (41) is placed onto the edge of egg crate grid (212) providing a physical/material separation between steel core components (211 and 213). Optionally structural glazing tape (43) can be applied to the inside grid and perimeter of the exterior flat plate steel grid (211). The exterior flat plate grid (211) is aligned and placed over thermal break material providing the exterior structural glazing stop. The exterior plate (211) is secured to divide the egg crate grid core (212) with countersunk stainless steel flat head screws (2112). The screws (2112) are tightened to slightly compress thermal break material (41) providing a positive glazing stop and weather seal.
(67) For ease of field installation, the present invention allows for the entire glazing assembly components (which constitutes the largest percentage weight component of the security door) to be field installed following on site door panel installation, alignment, and finished hardware component installation. The assembly design allows for on-site glazing from interior structural glazing tape (43) through all subsequent assembly components, applied exterior veneers (12), and the final applied exterior muntin divide trim (13). Additionally, this same field glazing flexibility allows in-place future access to the entire glazing assembly if required for maintenance or replacement of damaged glass panes.
(68) Whether to be hinge set glazed or field glazed, or unglazed, the finishing of the (visual/aesthetic) component material assembly procedure consists of bonding of the interior (15) veneer and exterior (12) veneer or as specified finished adhered skin, paint, metallic coating or other alternate exterior and interior materials described elsewhere are applied as shop or field finishes. Installation of the selected flush hardware, hinges, locksets and subsequent alignment and balancing of door are concurrent with the field installation of frame and door assembly. If the field glazing option is selected, exterior muntin divide trim (13) requires use of the adhesive back magnetic strip alternate for future removal and reinstallation of the trim assembly.
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(70) As best illustrated in
(71) An alternate muntin divide detail assembly using adhesive back magnetic strip tape allowing access to steel panels for maintenance or replacement of individual glass panels (31) is shown in
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(73) The half lap meeting stile details are shown in
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(78) The foregoing detailed description is given primarily for clearness of understanding and no unnecessary limitations are to be understood, for modification will become obvious to those skilled in the art upon reading this disclosure and may be made without departing from the spirit of the invention and scope of the appended claims. Accordingly, this invention is not intended to be limited by the specific exemplification presented herein above. Rather, what is intended to be covered is within the spirit and scope of the appended claims.