Overmolded Fenestration Building Product and Method of Manufacture
Claim Score by NHIP
Abstract
An overmolded building product having a frame and a thin shell base. The frame has a periphery and a first aperture. The frame further has an overmolding adapted to receive a pane, which has an interior side and exterior side in contact with the overmolding. The pane covers the first aperture and transmits light. The thin shell base has an exterior side opposed to a portion of an interior side forming a first cavity. The first cavity selectably receiving a filler. The thin shell has a first distal end of the exterior side which may be selectably positionable adjacent to and securable to a roof member. The roof member defines a second aperture leading to a room in a building. The interior side of the thin shell defines a second cavity adjacent to the pane. The frame is securable to the thin shell base. The frame and thin shell base are molded using a process selected from thermoforming, rotomolding, compression molding, or injection molding.

Term
2 yearsto projected expiry
Projected expiry 2 October 2028, counted from filing; an application has no term until it is granted.
- Priority and filed
- Published
- Today
- Projected expiry
49 claims: 3 independent, 46 dependent
- 1An overmolded building product, comprising:a frame having a periphery and defining a first aperture, the frame further having an overmolding adapted to receive a pane, the pane having an interior side and exterior side in contact with the overmolding, the pane covering the first aperture and transmitting light;and a thin shell base having an exterior side approximately opposed to a portion of an interior side forming a first cavity, the first cavity selectably receiving a filler, a first distal end of the exterior side being selectably positionable adjacent to and securable to a roof member, the roof member defining a second aperture leading to a room in a building, the interior side defining a second cavity adjacent to the pane, the frame being selectably securable to the thin shell base, wherein the frame and the thin shell base are molded using a process selected from thermoforming, rotomoldling, compression molding, or injection molding.
- 16Broadest claimClaim Score 64, broad(NHIP)An overmolded building product, comprising:a light-transmitting pane having a topside and a bottom side and a periphery;and a top formed from a moldable material, the top having an exterior side and an interior side and adapted to receive the light-transmitting panel during a molding process by encapsulating the periphery of the pane with the moldable material adjacent to a portion of the top side of the pane and a portion of the bottom side of the pane, the interior side further defining a light cavity, the light cavity cooperating with an aperture in a roof member and having a reflective surface to facilitate transmission of light through the aperture to a room below.
- 31A method for manufacturing an overmolded building product, the steps comprising:providing to a first portion of a first mold a light transmitting pane having an first side and an second side opposed to the first side, the pane further having a width and a length, positioning the first side of the pane on a first conformable seal having an interior width that measure less than the width of the pane, a difference defining a width of an overmold flange and an interior length that measures less than the length of the pane, a difference defining a length of an overmolded flange;introducing a first plastic material into a first cavity defined by the first mold and second mold;applying force greater than atmospheric pressure to the plastic material in the mold;encapsulating the overmolded flange of the light transmitting layer;solidifying the plastic material;opening the second portion of the mold;and removing the overmolded building product.
Independent claims3
47 paragraphs in 4 sections, as filed
BACKGROUND OF THE INVENTION
00011. Field of the Invention
0002The present invention relates to an overmolded fenestration building product and its method of manufacture.
00032. Background Art
0004Fenestration building products have been used to allow light into residential, commercial and industrial buildings. The fenestration buildings products typically fit in an opening in the building. Non-limiting examples include windows, doors, doorlites, sidelights, skylights and tubular skylights. The fenestration products will ideally allow light into the building while keeping other environmental elements out. However since the installation of the fenestration building products involves providing an opening in the building, sealing such units has presented a number of challenges.
0005In a typical fenestration building product installation, the opening is flashed with a sheet or part of a sheet to provide a leaktight seal between the fenestration product's frame and the wall section or door to which it is attached. Many of these fenestration products are fabricated during the installation of the fenestration product. Leaktight seals applied during field installation, which may have initially been effective, often degrade over time and begin to allow leaks of air and water. Minimizing the degradation of the seals or eliminating the sealing points all together, may improve the reliability of fenestration building products in terms of preventing air and moisture leakage.
0006The use of plastics to consolidate parts in an assembly is well known. Many of the joints which comprise a significant number of sealing points in certain fenestration building products can be eliminated by use of single-piece molded plastics. In general many objects can be overmolded by injecting plastic on to at least part of the edge of the object when it has been pressed between two platens of a mold. Experience has shown though that the use of this technique although satisfactory for many products, such as electrical equipment, poses a number of problems when applied to fragile materials, such as glass and thin sheets of relatively brittle plastic.
0007Overmolding of glass for a skylight has been disclosed in U.S. Patent Application 2005/0055901 filed by certain inventors of this application. The '901 application discloses a skylight frame molded about an insulated glass unit. The skylight frame assembly includes a frame section which has U-shaped channel molded by reaction injection molding (RIM). The U-shaped channel is adapted to hold one or more panels of glass. The skylight frame is then attached to a curb made by the (RIM) process using very expensive thermoset polyurethane material. The connection of the frame assembly and the curb provides a pathway for wind and water penetration if the seal is not effective.
0008The skylight of the '901 application does not fully transmit the light because the RIM material absorbs a significant amount of the light due to its relatively low surface reflectivity. This is particularly a problem when dealing with a tubular skylight where the light must travel at least one or more floors to reach the intended room.
0009What is needed is a building fenestration product that is suitable for all residential, commercial, and industrial uses and which minimizes the pathways that water can enter the building through the openings and which is economical to manufacture. It must also assist in transferring the light efficiently to the interior rooms and in particular in the rooms that are not adjacent to exterior walls or roofs.
SUMMARY OF THE INVENTION
0010The thin shell base has an exterior side opposed to a portion of an interior side forming a first cavity. The first cavity selectably receiving a filler. The thin shell has a first distal end of the exterior side which may be selectably positionable adjacent to and securable to a roof member. The roof member defines a second aperture leading to a room in a building.
0011The interior side of the thin shell defines a second cavity adjacent to the pane. The frame is securable to the thin shell base. The frame and thin shell base are molded using a process selected from thermoforming, rotomolding, compression molding, or injection molding.
BRIEF DESCRIPTION OF THE DRAWINGS
0012<figref idref="DRAWINGS">FIG. 1</figref> is a perspective view of a house having fenestration building products according to embodiments of the present invention;
0013<figref idref="DRAWINGS">FIGS. 2</figref><i>a</i>-<i>e </i>are fragmentary cross-sectional views of non-limiting examples of overmolded fenestration units according to certain embodiments of the present invention;
0014<figref idref="DRAWINGS">FIG. 3</figref> is a fragmentary cross-sectional view of a window according to an embodiment of the present invention;
0015<figref idref="DRAWINGS">FIG. 4</figref><i>a </i>is a fragmentary cross-sectional view of skylight according to an embodiment of the present invention;
0016<figref idref="DRAWINGS">FIGS. 4</figref><i>b </i>and <b>4</b><i>c </i>are fragmentary cross-sectional detail views of overmoldings according to certain embodiments of the present invention;
0017<figref idref="DRAWINGS">FIGS. 5</figref><i>a</i>-<i>b </i>are fragmentary cross-sectional views of tubular skylights according to certain embodiments of the present invention illustrating a light pipe sealing flange cooperating with a light pipe;
0018<figref idref="DRAWINGS">FIGS. 6</figref><i>a</i>-<i>b </i>are fragmentary cross-sectional views of a unitized tubular skylight according to embodiments of the present invention illustrating overmolded light-transmitting units and non-limiting examples of cooperation with a light pipe;
0019<figref idref="DRAWINGS">FIG. 7</figref> is a fragmentary cross-sectional view of a non-limiting example of an open mold for thermoforming an overmolded fenestration building unit according to certain embodiments of the present invention.
0020<figref idref="DRAWINGS">FIG. 8</figref> is a fragmentary cross sectional view of a non-limiting example of a closed mold for shaping molten plastic into an overmolded fenestration building unit according to certain embodiments of the present invention.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT(S)
0021Reference will now be made in detail to embodiments of the present invention according compositions and methods which constitute the best modes of practicing the invention presently known to the inventors. With reference to <figref idref="DRAWINGS">FIG. 1</figref>, a perspective view of a house <b>1</b> is illustrated. The house <b>1</b> includes a vertical wall <b>3</b> and a non-vertical wall <b>5</b>. Non-limiting examples of fenestration building products on the house <b>1</b> typically on the vertical wall <b>3</b> may include a window <b>7</b>, a door <b>9</b>, a doorlite <b>11</b>, and a sidelight <b>13</b>. On the non-vertical wall <b>5</b>, non-limiting examples of fenestration building products may include a skylight <b>15</b> and a tubular skylight <b>17</b>. The phantom lines indicate a light pipe <b>19</b> extending from the roof <b>21</b> to an interior room not immediately adjacent to the roof <b>21</b>. The flashing for the fenestration building products is covered over by shingles <b>23</b>, a siding <b>25</b>, and/or a housewrap <b>27</b>. The sash <b>29</b> of the window <b>7</b> may be all that is visible on the exterior of the building adjacent to the siding <b>25</b>.
0022<figref idref="DRAWINGS">FIGS. 2</figref><i>a</i>-<i>e </i>are fragmentary cross-sectional views of certain overmolded fenestration unit embodiments of the present invention. <figref idref="DRAWINGS">FIG. 2</figref><i>a </i>illustrates a non-limiting example of an overmolded insulated unit <b>31</b> having opposed panes <b>33</b> separated by a spacer <b>35</b>. The panes <b>33</b> and spacer <b>35</b> are overmolded by an overmolding <b>37</b>. A pane-overmolding interface <b>39</b> has the pane <b>33</b> immediately adjacent to the overmolding <b>37</b>. The pane-overmolding interface <b>39</b> may be understood to have the pane <b>33</b> activated by a chemical or a physical means to improve adhesion of the overmolding <b>37</b> to the pane <b>33</b>. While the overmolding <b>37</b> may function as a sealant preventing moisture vapor achieving access to the interior of the insulated unit <b>31</b>, it should be understood that the insulated unit <b>31</b> may additionally have an insulated unit seal <b>41</b> non-limiting examples of which may include butyl rubber, silicone, polyurethane, or polysulfide materials, typically found in the insulated unit industry. The pane <b>33</b> may be made of a light-transmitting material. Non-limiting examples of the light-transmitting material include acrylic family plastics, glass, polycarbonate family plastics, and combinations thereof. <figref idref="DRAWINGS">FIG. 2</figref><i>b </i>illustrates another embodiment of the present invention where gasket <b>43</b> protects the edges of the insulated unit <b>31</b> from thermal and mechanical stresses accompanying the overmolding process. The gasket <b>43</b> may also provide additional sealing capabilities for the fenestration building product. The gasket <b>43</b> is adjacent to an interior side <b>45</b> of the insulated unit <b>31</b>, the insulated unit seal <b>41</b>, and an exterior side <b>47</b> of the insulated unit <b>31</b>. The gasket <b>43</b> may be formed of many materials known in the art. Non-limiting examples of the materials include relatively high melt temperature thermoplastics; thermoset polymers such as epoxy, nitrile rubber or EPDM; metal foil such as aluminum; or combinations of the above. In the embodiment illustrated in <figref idref="DRAWINGS">FIG. 2</figref><i>b, </i>the overmolding <b>37</b> entirely encapsulates the gasket <b>43</b>.
0023<figref idref="DRAWINGS">FIG. 2</figref><i>c </i>illustrates an embodiment of an overmolded single pane unit <b>49</b> having a plastic pane <b>51</b>. It should be understood that a single pane unit may also be employ the gasket. The overmolding <b>37</b> is connected to the plastic pane <b>51</b> to form a watertight seal. It should be understood that at an interface <b>53</b> primers and other adjuvants or mechanical, plasma, flame, and electrical surface treatments may be used to improve the adhesion of the overmolding <b>37</b> to the plastic pane <b>51</b> without violating the intent of this embodiment.
0024The plastic pane <b>51</b> may be formed by methods known in the art. The plastic pane <b>51</b> may include additional coextruded layers or applied coatings to augment features and enhance benefits without violating the intent of certain embodiments. Non-limiting examples may include an ultraviolet light resistant layer, a decorative film, an absorptive layer, light wavelength bandpass filter, or a tint.
0025Referring to <figref idref="DRAWINGS">FIG. 2</figref><i>d, </i>the plastic pane <b>55</b> is a single-paned skylight plastic dome according to an embodiment of this invention. The single-paned skylight dome has a top side <b>57</b>, a bottom side <b>59</b>, and is shaped so as to have a land <b>61</b> in an encapsulation zone <b>63</b>.
0026An overmolding <b>67</b> adapted to receive the plastic pane <b>55</b> and two-sided tape <b>65</b> contacts the pane <b>55</b> in the encapsulation zone <b>63</b> and encapsulates a portion of the encapsulation zone <b>63</b> including all of the two-sided tape <b>65</b> positioned on the top side <b>57</b> of the pane <b>55</b>.
0027Referring to <figref idref="DRAWINGS">FIG. 2</figref><i>e, </i>the insulated unit <b>69</b> is an insulated skylight plastic dome according to an embodiment of this invention. The insulated skylight plastic dome has two plastic panes <b>71</b> and <b>73</b> each having peripheral edges <b>75</b> and <b>77</b>. The peripheral edges are bonded together by an elongated two-sided plastic taped seal <b>79</b>, which is interposed between the peripheral edges <b>75</b> and <b>77</b> to form a seal enclosing a central region <b>81</b>. A non-limiting example of two-sided tape <b>79</b> is described in co-pending U.S. patent application Ser. No. 11/671,657 filed on Feb. 6, 2007 which is commonly owned and, which is incorporated in its entirety by reference. It should be understood that other two-sided adhesive products may be used and not depart from the spirit of this embodiment of the invention. The central region is provided with air or another suitable gas <b>83</b> to provide a relatively increased thermal barrier when the skylight is installed on the roof of the building. Non-limiting examples of the gas may include group eight gases such as argon, krypton, and xenon, or glass with a molecular weight in excess of <b>27</b> or having a molecular cross-sectional area greater than carbon dioxide.
0028<figref idref="DRAWINGS">FIG. 3</figref> is a fragmentary cross-sectional view of a window <b>85</b> according to an embodiment of the present invention. The window <b>85</b> has an exterior <b>87</b> and an interior <b>89</b>. The window <b>85</b> is fitted on to a vertical wall <b>91</b>. The wall <b>91</b> includes a framing header <b>93</b> and a base buck <b>95</b>. Adjacent to the exterior wall <b>97</b> is a flashing <b>99</b> for the window <b>85</b>. The flashing <b>99</b> is secured to the exterior wall <b>97</b> by means known in the art such as nails, staples, screws, or construction adhesive. A house wrap (not shown) and/or a flashing tape <b>101</b> are applied over the flashing <b>99</b> at a sill <b>103</b>, which sits adjacent to the buck <b>95</b>, opposed sides <b>105</b> and <b>107</b> of the window <b>85</b>, and the header <b>93</b>. A siding <b>109</b> is placed adjacent to a frame <b>111</b> of the window. The frame <b>111</b> includes the overmolding <b>113</b> and encapsulates the insulated unit <b>115</b>. The frame <b>111</b>, as illustrated in the non-limiting example of the <figref idref="DRAWINGS">FIG. 3</figref> embodiment, includes two sets of opposed sides <b>117</b> and <b>119</b> of a rectangle forming an aperture. It should be understood that any geometric shape may be used and not depart from the spirt of this embodiment of the invention. The opposed sides <b>117</b> and <b>119</b> include a channel <b>121</b> approximately parallel to the wall <b>94</b>, and suitable for supporting one or more window panes <b>123</b>. The channel is formed during overmolding of the window panes <b>123</b>. The channel <b>121</b> is adjacent to an overmolded land area <b>125</b>. It should be understood that the land area <b>125</b> may also include a gasket and other sealants. The frame <b>111</b> further includes a sill flashing <b>127</b> extending from the interior side of the window pane <b>123</b> toward an interior wall <b>129</b>. The sill flashing <b>127</b> may be secured to the buck <b>95</b>, the sides <b>105</b> and <b>107</b>, and the header <b>93</b> of the wall <b>94</b> using methods known in the art such as nails, staples, screws or construction adhesive. An interior trim piece <b>131</b> may be an L-shaped component that may be attached to the interior wall <b>129</b> and cover a portion of the sill flashing <b>127</b>.
0029<figref idref="DRAWINGS">FIGS. 4</figref><i>a</i>-<i>c </i>are fragmentary cross-sectional views of a skylight <b>133</b> according to certain embodiments of this invention. The skylight <b>133</b> includes a thin shell frame <b>135</b>. The thin shell frame includes an exterior side <b>137</b> and an interior side <b>139</b>, a light-transmitting pane <b>141</b>, and a filled cavity <b>143</b>. The interior side <b>139</b> may include an inside wall <b>145</b> which defines a light cavity <b>147</b>. The light cavity <b>147</b> may have an optional reflective surface <b>149</b> in order to improve the transmission of sunlight to the interior room <b>151</b> below. The exterior side <b>137</b> has a skylight flashing <b>153</b> located at the distal end of the thin shell frame <b>135</b> and adjacent to a roof member <b>155</b> in a non-vertical orientation. The skylight flashing <b>153</b> may be secured to the roof member <b>155</b> by conventional means, such as nails, staples, screws, or construction adhesive. The light-transmitting pane <b>141</b> may include a domed pane <b>157</b>. It should be understood that a planar pane or a pane having other non-planar configurations would not depart from the spirit of this embodiment of the invention. The pane <b>157</b> may comprise an upper end of the light cavity <b>147</b>. A lower end of the light cavity <b>147</b> may be defined by a telescoping L-shaped trim section <b>159</b>. The telescoping trim section <b>159</b> may extend from a room ceiling <b>161</b> of the room <b>151</b> below the skylight <b>133</b> and cover the interior side <b>139</b> of the thin shell frame <b>135</b>. The telescoping trim section <b>159</b> and an interior flashing <b>163</b> which is an integral part of the thin shell frame <b>135</b> located at the proximal end of the thin shell frame <b>135</b>, may be trimmed with interior molding or may reduce construction costs by integrating the trimming function into the skylight <b>133</b> design.
0030<figref idref="DRAWINGS">FIG. 4</figref><i>b </i>is an illustration of another embodiment of the skylight <b>133</b> in which a non-limiting example of a skylight insulating unit having a skylight sealing gasket <b>165</b> is illustrated. The sealing gasket <b>165</b> covers the vulnerable edge of an insulated light-transmitting pane <b>167</b>. The sealing gasket <b>165</b> also provides weathertightness for the skylight <b>133</b>. A skylight insulated unit overmolding <b>169</b> entirely encapsulates the sealing gasket <b>165</b> and is adjacent to the light-transmitting pane <b>167</b> at a portion of an encapsulation zone <b>171</b>. It should be understood that the overmolding <b>169</b> may incorporate a portion of the sealing gasket <b>165</b> or the insulating unit <b>163</b>. It is not a requirement that the overmolding <b>169</b> be a continuous layer of plastic. It should be understood that the overmolding <b>169</b> may be discontinuous. Non-limiting examples of structures that may make the overmolding <b>169</b> discontinuous include a portion of the gasket, an insert, a tail of a polyvinylbutylene layer when a laminated glass is used in the pane <b>167</b>, or an incomplete molding.
0031<figref idref="DRAWINGS">FIG. 4</figref><i>c </i>is a fragmentary cross-sectional view of the skylight <b>133</b> having a single acrylic pane <b>171</b> in a skylight light-transmitting pane. In this non-limiting embodiment, the overmolding <b>173</b> is adjacent to the acrylic pane <b>171</b> in an encapsulation zone <b>175</b>. It should be understood that the acrylic pane <b>171</b> may also include adhesion promoting means to improve the adhesion of the overmolding <b>169</b> in the encapsulation zone <b>175</b>. It should be understood that the overmolding <b>169</b> may be discontinuous particularly when surrounding the periphery of the pane <b>173</b>. It should be further understood that the pane may include optional coatings and/or surface treatments. A non-limiting example may be a ceramic frit for aesthetic purposes.
0032<figref idref="DRAWINGS">FIGS. 5</figref><i>a</i>-<i>b </i>illustrate embodiments of a tubular skylight <b>177</b>. Referring to <figref idref="DRAWINGS">FIG. 5</figref><i>a, </i>the tubular skylight <b>177</b> includes three components: a cap assembly <b>179</b>, a thin shell base <b>181</b> and a light pipe <b>183</b>, which extends through an aperture <b>185</b> in a roof member <b>187</b> and leads to an interior room <b>189</b>, which the ceiling of which is located a relatively long distance from the roof member <b>187</b>. The cap assembly <b>179</b> includes a frame <b>191</b> housing the light-transmitting pane <b>193</b>. The light-transmitting pane <b>193</b> is secured to the frame <b>191</b> by a tubular skylight overmolding <b>195</b> which forms a channel <b>197</b> that entirely encapsulates a top side <b>199</b> of the light-transmitting pane <b>193</b>, as well as a bottom side <b>201</b> of the light-transmitting pane <b>193</b>. The cap assembly <b>179</b> further includes a downstanding flange <b>203</b> that provides extra coverage and weatherproofing for the protection of an interface when the cap assembly <b>179</b> is connected to a thin shell base <b>205</b>. The weathertight seal between the cap assembly <b>179</b> and the thin shell base <b>205</b> is enhanced with an optional sealing notch <b>207</b> in the cap assembly <b>179</b>. The sealing notch <b>207</b> is positioned to cooperate with an upstanding rib <b>209</b> located on the thin shell base <b>205</b>. The joint between the cap assembly <b>179</b> and the thin shell base <b>205</b> may optionally be sealed, in addition, with conventional material such as fasteners, caulking, foam tape, or construction adhesives. It should be understood that other cooperating features would not depart from the spirit of this embodiment of the invention. Non-limiting examples of cooperating features besides the notch <b>207</b> and the upstanding rib <b>209</b> include a tongue-and-groove configuration, an inclined plane, embedded magnets, or a weep channel. It should be understood that the thin shell base <b>205</b> may include bases comprised of a skin layer and a bulk layer without departing from the spirit of the embodiment. The bulk layer may, as non-limiting example, comprise a reduced density layer. A non-limiting example of the reduced density layer may be foamed thermoplastic. The bulk layer may also, as a non-limiting example, comprise a filled thermoplastic, an example of which is calcium carbonate filled polystrene.
0033The thin shell base <b>205</b> includes an exterior side <b>211</b> and an interior side <b>213</b>. A distal end <b>215</b> of the exterior side <b>211</b> forms a securing flange <b>217</b> which may be secured to the roof member <b>187</b> by means well known in the art. The exterior side <b>211</b> has an inside face <b>221</b>. An inside face <b>223</b> of the interior wall of the thin shell <b>213</b> is positioned approximately opposite the inside face <b>221</b> of the exterior thin shell wall. Together they form a cavity <b>225</b>. The cavity <b>225</b> has an upper end at least partially formed by the inside face <b>221</b> at a proximal end <b>229</b> of the thin shell exterior wall <b>211</b>. The cavity <b>225</b> may optionally be filled with a material <b>231</b> to provide insulation, structural strength, or a combination thereof. Non-limiting examples of the material <b>231</b> include inexpensive fillers, especially inexpensive fillers that reduce relative thermal conductivity, such as packaging foam, adhered reflective glass spheres, and/or relatively low density polyurethane foam. It is advantageous if the material <b>231</b> additionally increases structural strength.
0034The interior wall <b>213</b> of the thin shell base <b>181</b> includes a sealing flange <b>233</b> at a distal end <b>235</b> which optionally may cooperate with an upper end <b>237</b> of the light pipe <b>183</b>. The light pipe <b>183</b> may extend to the interior room <b>189</b> located a relatively long distance from the roof member <b>187</b>. The light pipe <b>183</b> allows some light to be directed to the interior room <b>189</b> which would otherwise not have exposure to sunlight. The light pipe <b>183</b> may be trimmed out with an L-shaped trim section <b>243</b>, which has a flange <b>245</b> that may be secured to a ceiling <b>247</b> of the interior room <b>189</b>. An optional diffuser <b>249</b> may be applied to the light pipe <b>183</b> to enhance the dispersion of the sunlight.
0035The thin shell base <b>215</b> is relatively easily shaped in a relatively few number of processing steps. Non-limiting examples of materials for the thin shell base may include polyolefins, polyvinyl chloride, polyalkyl terephthalates, liquid silicone rubber, bulk molding compound, polystyrene, and reinforced plastics. These materials may be shaped by open and close mold methods. Non-limiting examples of methods may include thermoforming, injection molding, rotomolding, and compression molding.
0036<figref idref="DRAWINGS">FIG. 5</figref><i>b </i>illustrates a fragmentary cross-sectional view of a tubular skylight <b>251</b> having an insulated unit <b>253</b>. In this non-limiting example, the diameter of a light pipe <b>255</b> exceeds the diameter of a light cavity <b>257</b> defined by an interior wall <b>259</b> of a thin shell base <b>261</b>. A distal end <b>263</b> of the interior wall <b>259</b> includes a light pipe sealing flange <b>265</b>. The light pipe sealing flange <b>265</b> cooperates with the light pipe <b>255</b> and lies adjacent to a roof member <b>267</b>. The thin shell base <b>261</b> includes the interior wall <b>259</b> and an exterior wall <b>269</b>. The exterior wall <b>269</b> is opposed to the interior wall <b>259</b> and defines a filler cavity <b>271</b>. The filler cavity <b>271</b> is filled with a compliant filler <b>273</b> such as a polyurethane foam. The compliant filler <b>273</b> allows the light pipe sealing flange <b>265</b> to embed itself into the filler <b>273</b> allowing the tubular skylight <b>251</b> to remain approximately flush with the roof member <b>267</b>. This may assist in assuring weathertightness. It should be understood that the filler <b>273</b> may comprise more than one layer. A non-limiting example may include a polyrethane foam layer capped by a putty layer which is covered by a peel-off layer to protect the compliant putty layer from dirt and debris during installation.
0037The interior wall <b>259</b> of the thin shell base <b>261</b> defines the light cavity <b>257</b>. In certain embodiments, to enhance the ability of the light cavity <b>257</b> to transmit sunlight to the room below, the light cavity <b>257</b> includes a reflective coating <b>275</b>. It should be understood that the reflective coating <b>275</b> may also be optionally applied to the light pipe sealing flange <b>265</b> and the light pipe <b>235</b>.
0038<figref idref="DRAWINGS">FIGS. 6</figref><i>a</i>-<i>b </i>illustrate fragmentary cross-sectional views of the tubular skylight <b>277</b> according to embodiments of this invention. <figref idref="DRAWINGS">FIG. 6</figref><i>a </i>illustrates a single-paned unitized tubular skylight top <b>279</b>. The top <b>279</b> may be positioned on a roof member <b>281</b> having an aperture <b>283</b>. The unitized tubular skylight top <b>279</b> includes an encapsulated light-transmitting pane <b>285</b> which is encapsulated in a channel <b>287</b> formed during the molding process of the unitized top <b>279</b>. The unitized top <b>279</b> has an exterior side <b>291</b> and an interior side <b>293</b>, where the exterior side is approximately opposed to the interior side <b>291</b> and forms a filler cavity <b>295</b>. The inside face <b>297</b> of the exterior side and the interior face <b>299</b> of the interior side may be coated with a thermally reflective coating <b>301</b>, of which aluminum paint is a non-limiting example. The filler cavity <b>295</b> may then be filled with a filler <b>303</b> that reduces the thermal conductivity and/or increases the structural rigidity of the unitized tubular skylight top <b>279</b>, of which expanded polystyrene foam is a non-limiting example.
0039Referring to <figref idref="DRAWINGS">FIG. 6</figref><i>a, </i>the distal end <b>305</b> of the single-paned unitized tubular skylight top <b>277</b> may be secured to a top side <b>307</b> of the roof member <b>281</b>, while the distal end <b>311</b> of the interior side <b>293</b> may cooperate with a light pipe <b>313</b>. The light pipe <b>313</b> may be below, even with, or extend above (as shown) the top side <b>307</b>.
0040<figref idref="DRAWINGS">FIG. 6</figref><i>b </i>illustrates an insulated pane unitized tubular skylight top <b>315</b> having an insulated unit <b>317</b>. The unitized tubular skylight top <b>315</b> has an exterior side <b>319</b> and an interior side <b>321</b>. The exterior side <b>319</b> may further have a capstock <b>323</b> which may optionally be continued to the interior side <b>321</b>. The capstock <b>323</b> may provide protection from ultraviolet degradation as well as provide a relatively reflective surface for both the exterior and a light cavity <b>325</b> defined by the interior side walls <b>321</b>. A non-limiting example of the capstock <b>323</b> material may include vapor-deposited metal film. A distal end <b>327</b> of the interior side <b>321</b> may include a light pipe seal flange <b>329</b>. The light pipe seal flange <b>329</b> assists to seal a light pipe <b>331</b> to the light cavity <b>325</b> to avoid loss of light being reflected from the light cavity <b>325</b>, as well as prevent debris from entering the light pipe <b>331</b>.
0041<figref idref="DRAWINGS">FIG. 7</figref> illustrates one embodiment of a method for making the fenestration building product such as the window <b>3</b>, the skylight <b>5</b> and the tubular skylight <b>7</b> according to certain embodiments of this invention. The method involves providing a light-transmitting pane <b>333</b> such as the pane <b>33</b> (<figref idref="DRAWINGS">FIG. 2</figref><i>a</i>), the insulated unit <b>115</b> (<figref idref="DRAWINGS">FIG. 3</figref>), and the insulated unit <b>253</b> (<figref idref="DRAWINGS">FIG. 5</figref><i>b</i>). The light-transmitting pane <b>333</b> has a interior side <b>335</b> and an exterior side <b>337</b>. The light-transmitting pane <b>333</b> has a length and a width according to the design of the fenestration building product.
0042An open mold <b>339</b> has a cavity side <b>341</b> and a core side <b>343</b>. The cavity side has a conformable seal <b>345</b>. The conformable seal <b>345</b> contacts the exterior side <b>337</b> of the light-transmitting pane <b>333</b>. This conformable seal <b>345</b> provides a barrier to a dispersion of a molten plastic from an encapsulation land <b>347</b> such as illustrated in the encapsulation zone <b>171</b> (<figref idref="DRAWINGS">FIG. 4</figref><i>b</i>). This provides an aesthetically pleasing finish to the plastic making it appear like a snapped-on bezel. The core side has another conformable seal <b>349</b> contacting the interior side <b>335</b> of the light-transmitting pane <b>333</b>. These conformable seals <b>345</b> and <b>349</b> may be selectively positioned and generally are approximately opposed on the interior side <b>335</b> and the exterior side <b>337</b> of the light-transmitting pane <b>333</b>. An inside dimension of the seals relative to a length and width of the light-transmitting pane <b>333</b> is less than the respective length and width of the light-transmitting panel <b>333</b>. The encapsulation land <b>347</b> may include the annulus resulting from overlaying the conformable seals <b>345</b> and <b>349</b> on the light-transmitting panel <b>333</b>.
0043Referring to <figref idref="DRAWINGS">FIG. 7</figref>, a shaping method for forming the fenestration building product may also use a sheet of plastic <b>351</b> and the open mold <b>339</b>. The sheet of plastic <b>351</b> may be the single thermoplastic or a composite material including the thermoplastic. A non-limiting example of such a composite thermoplastic includes a plastic with a capstock that is resistant to ultraviolet light. A non-limiting example of such a capstock is an acrylate-styrene-acrylonitrile (ASA) layer which is co-extruded on the thermoplastic, a non-limiting example being polyvinyl chloride (PVC). Additional layers may be co-extruded or applied to a sheet such as a physical vapor deposited metal film or a spray paint. It may be advantageous to have a metal film on the exterior side of the products because the metal could assist in forming the reflective cavity such as reflective cavity <b>149</b> (<figref idref="DRAWINGS">FIG. 4</figref><i>a</i>). The metal film would also provide good ultraviolet light protection to the exterior side <b>137</b> (<figref idref="DRAWINGS">FIG. 4</figref><i>a</i>).
0044In forming an overmolded window for a fenestration building product as illustrated in <figref idref="DRAWINGS">FIG. 3</figref> using an open mold method, non-limiting examples of typical methods would include various thermoforming methods. Non-limiting examples of thermoforming methods include free forming, plug-assist forming, drape forming, match mold forming, slip forming, snap-back forming, simultaneous twin sheet pressure forming, encapsulation thermoforming, and combinations thereof.
0045Of particular concern in the open mold process is developing sufficient pressure differential to get the molded plastic to go around the edge of the light-transmitting layer to form an overmolded edge. Further, the overmolded edge must adhere to the light-transmitting layer without causing distortion or breakage of the light-transmitting layer. Non-limiting examples of such techniques are known in the art and may include practical placement of a vent opening <b>353</b> to draw the plastic <b>351</b> into the encapsulation area, the use of surge tanks to provide extra pressure differential relative to that which can be developed simply by a vacuum pump, the use of differential cooling to cause the plastic to snap back into overmolded areas, and/or combinations thereof.
0046Referring to <figref idref="DRAWINGS">FIG. 8</figref>, if closed mold methods are used, non-limiting examples of which are reaction injection molding (RIM), injection molding, low pressure injection molding, casting or rotomolding, the mold closes to form a mold cavity <b>355</b> into which materials are provided. The formable material may include thermoplastics, thermosets, or combinations thereof classified by grades appropriate to each shaping method. Sufficient pressure is applied to the formable material to form the material over the encapsulation zone <b>345</b> and bond the material to the encapsulation land <b>343</b> of the light-transmitting pane <b>333</b>. The mold is then cooled to a temperature allowing the formable material to solidify. The mold is opened and the fenestration building product is removed from the mold.
0047While embodiments of the invention have been illustrated and described, it is not intended that these embodiments illustrate and describe all possible forms of the invention. Rather, the words used in the specification are words of description rather than limitation, and it is understood that various changes may be made without departing from the spirit and scope of the invention.
Contents4
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| US20070671726 | – | – | – |
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56 transactions on the USPTO file
Allowed after 2 non-final rejections, 2 final rejections and 1 RCE.
- Non-final rejections
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| Date Forwarded to ExaminerFWDX | FWDX | |
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Numbers
- Publication
- 20080184635
- Publication, DOCDB
- 2008184635
- Publication, EPODOC
- US2008184635
- Application
- 11671726
- Application, DOCDB
- 67172607
- Application, EPODOC
- US20070671726
Titles
- English
- Overmolded Fenestration Building Product and Method of Manufacture
Patent term adjustment
- A delay
- +490 daysthe office missed an examination deadline
- B delay
- +269 dayspendency past three years
- Applicant delay
- −155 days
- Net adjustment
- 604 days
Classification
- CPC, 3
- E04D13/0315
- B29C70/76
- E04D2013/0345
- IPC, 1
- E04D13 03
- USPC, 3
- 052200000
- 052204500
- 052745190