CN107068794A - 一种用于家禽养殖建筑物的透光性屋顶 - Google Patents
一种用于家禽养殖建筑物的透光性屋顶 Download PDFInfo
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Abstract
本发明涉及一种用于家禽养殖建筑物的透光性屋顶,属于家禽养殖技术领域,所述透光性屋顶包括多个紧密排列的透光性光伏组件,所述透过性光伏组件包括从下到上依次包括透光性玻璃盖板、光转换封装胶层、绝热封装胶层、太阳能电池片层、导热封装胶层、抗老化封装胶层、透明玻璃背板;所述太阳能电池片层包括多个呈矩阵排列的正方形太阳能电池片,相邻正方形太阳能电池片之间的间距与所述正方形太阳能电池片的边长之间的比值大于1.5且小于3。与现有技术相比,本发明的有益效果为:本发明的透光性屋顶可以为家禽养殖建筑物提供电能,同时具有优异的采光功能。
Description
技术领域
本发明涉及属于家禽养殖技术领域,具体涉及一种用于家禽养殖建筑物的透光性屋顶。
背景技术
农业,是指国民经济中一个重要产业部门,是以土地资源为生产对象的部门。为通过培育动植物生产食品及工业原料的产业。农业的劳动对象是有生命的动植物,获得的产品是动植物本身,我们把利用动物植物等生物的生长发育规律,通过人工培育来获得产品的各部门,统称为农业。养殖,培育和繁殖(水产动植物),养殖包括生猪养殖,家禽养殖,水产养殖,特种养殖几大类。而传统的家禽养殖建筑物不能够有效的通风透气,不能够自供电,且白天的采光也不够好等问题。
发明内容
本发明的目的是克服上述现有技术的不足,提供一种用于家禽养殖建筑物的透光性屋顶。
为实现上述目的,本发明提出的一种用于家禽养殖建筑物的透光性屋顶,所述透光性屋顶包括多个紧密排列的透光性光伏组件,所述透过性光伏组件包括从下到上依次包括透光性玻璃盖板、光转换封装胶层、绝热封装胶层、太阳能电池片层、导热封装胶层、抗老化封装胶层、透明玻璃背板;所述太阳能电池片层包括多个呈矩阵排列的正方形太阳能电池片,相邻正方形太阳能电池片之间的间距与所述正方形太阳能电池片的边长之间的比值大于1.5且小于3;所述光转换封装胶层包括乙烯-乙酸乙烯酯-甲基丙烯酸甲酯共聚物以及相对于所述乙烯-乙酸乙烯酯-甲基丙烯酸甲酯共聚物100重量份为15-20重量份的铕络合物,所述铕络合物用于将紫外区域的光线转换成可见区域或近红外区域的波长的光线;所述绝热封装胶层包括乙烯-乙酸乙烯酯-甲基丙烯酸甲酯共聚物以及相对于所述乙烯-乙酸乙烯酯-甲基丙烯酸甲酯共聚物100重量份为5-15重量份的微孔硅酸钙颗粒;所述导热封装胶层包括乙烯-1-丁烯-4-甲基-1-戊烯共聚物以及相对于所述乙烯-1-丁烯-4-甲基-1-戊烯共聚物100重量份为5-15重量份的导热纳米颗粒;所述抗老化封装胶层包括乙烯-1-丁烯-4-甲基-1-戊烯共聚物以及相对于所述乙烯-1-丁烯-4-甲基-1-戊烯共聚物100重量份为10-20重量份的紫外线吸收剂,所述紫外线吸收剂用于吸收透过太阳能电池片层的紫外光;所述正方形太阳能电池片包括从下到上依次排列的背面铝电极、碳酸铯/聚乙烯亚胺混合层、N型单晶硅基底、N型硅纳米线阵列、P型P3HT层、PS钝化层、PEDOT:PSS透明导电层、银栅电极。
作为优选,所述透光性玻璃盖板和所述透明玻璃背板均为钢化玻璃。
作为优选,所述光转换封装胶层的厚度为200-500微米,所述绝热封装胶层的厚度为300-600微米。
作为优选,所述导热封装胶层的厚度为600-800微米,所述抗老化封装胶层的厚度为500-700微米。
作为优选,所述正方形太阳能电池片的边长为15-50毫米。
作为优选,所述导热纳米颗粒的材质为氧化铝、氮化硼、氧化锌、氮化铝、氮化硅、氧化镁、碳化硅、石墨烯、碳纳米管中的一种。
作为优选,所述紫外线吸收剂为2,4-二羟基二苯甲酮、2-羟基-4-甲氧基二苯甲酮、2-(2'-羟基-5'-甲基苯基)苯并三唑、2-(2'-羟基-3'-叔丁基-5'-甲基苯基)-5-氯代苯并三唑、2-(2'-羟基-3',5'-二戊基苯基)苯并三唑、2-(2'-羟基-5'-叔辛基苯基)苯并三唑中的一种或几种
作为优选,所述背面铝电极的厚度为60-90纳米,所述碳酸铯/聚乙烯亚胺混合层的厚度为1-3纳米,所述N型单晶硅基底的厚度为200-400微米,所述N型硅纳米线阵列中硅纳米线的长度为600-900纳米,相邻硅纳米线之间的间距为200-400 nm,所述P型P3HT层的厚度为20-40纳米,所述PS钝化层的厚度为2-3纳米,所述PEDOT:PSS透明导电层20-40纳米。
本发明的有益效果如下:
本发明的透光性屋顶,通过在透过性光伏组件中设置光转换封装胶层,可以有效转换照射至透过性光伏组件的紫外光,进而提高光的利用率;通过在绝热封装胶层中添加微孔硅酸钙颗粒绝热材料,提高绝热封装胶层的绝热性能,进而防止正方形太阳能电池片工作过程中产生的热量传递至光转换封装胶层,由此可以避免光转换封装胶层温度升高,使得铕络合物不会因为高温而变质,进而确保铕络合物正常工作。而正方形太阳能电池片下方的导热封装胶层可以快速将热量从正方形太阳能电池片传出,同时抗老化封装胶层的存在可以提高透过性光伏组件的抗老化性能。
本发明通过将相邻正方形太阳能电池片之间的间距与所述正方形太阳能电池片的边长之间的比值设置为大于1.5且小于3,确保透过性光伏组件可以为家禽养殖建筑物提供充足的电能,同时使得透光性屋顶具有优异的采光性能,同时选用新型的有机无机复合太阳能电池,该有机无机复合太阳能电池具有优异的光电转换效率。
附图说明
图1为本发明的透光性光伏组件的截面示意图;
图2为本发明的透光性光伏组件的俯视图。
具体实施方式
参见图1-2,本发明提出的一种用于家禽养殖建筑物的透光性屋顶,所述透光性屋顶包括多个紧密排列的透光性光伏组件1,所述透过性光伏组件1包括从下到上依次包括透光性玻璃盖板2、光转换封装胶层3、绝热封装胶层4、太阳能电池片层5、导热封装胶层6、抗老化封装胶层7、透明玻璃背板8;所述太阳能电池片层5包括多个呈矩阵排列的正方形太阳能电池片9,相邻正方形太阳能电池片9之间的间距与所述正方形太阳能电池片9的边长之间的比值大于1.5且小于3,当相邻正方形太阳能电池片9之间的间距与所述正方形太阳能电池片9的边长之间的比值小于1.5时,透过性光伏组件1的透光性能不足,进而使得透光性屋顶的采光性能不足,当相邻正方形太阳能电池片9之间的间距与所述正方形太阳能电池片9的边长之间的比值大于3时,透过性光伏组件1的发电性能不足,进而不能满足家禽养殖建筑物的用电需求,因此选择相邻正方形太阳能电池片9之间的间距与所述正方形太阳能电池片9的边长之间的比值大于1.5且小于3;所述光转换封装胶层3包括乙烯-乙酸乙烯酯-甲基丙烯酸甲酯共聚物以及相对于所述乙烯-乙酸乙烯酯-甲基丙烯酸甲酯共聚物100重量份为15-20重量份的铕络合物,所述铕络合物用于将紫外区域的光线转换成可见区域或近红外区域的波长的光线;所述绝热封装胶层4包括乙烯-乙酸乙烯酯-甲基丙烯酸甲酯共聚物以及相对于所述乙烯-乙酸乙烯酯-甲基丙烯酸甲酯共聚物100重量份为5-15重量份的微孔硅酸钙颗粒;所述导热封装胶层6包括乙烯-1-丁烯-4-甲基-1-戊烯共聚物以及相对于所述乙烯-1-丁烯-4-甲基-1-戊烯共聚物100重量份为5-15重量份的导热纳米颗粒;所述抗老化封装胶层7包括乙烯-1-丁烯-4-甲基-1-戊烯共聚物以及相对于所述乙烯-1-丁烯-4-甲基-1-戊烯共聚物100重量份为10-20重量份的紫外线吸收剂,所述紫外线吸收剂用于吸收透过太阳能电池片层的紫外光;所述正方形太阳能电池片9包括从下到上依次排列的背面铝电极、碳酸铯/聚乙烯亚胺混合层、N型单晶硅基底、N型硅纳米线阵列、P型P3HT层、PS钝化层、PEDOT:PSS透明导电层、银栅电极。
其中,所述透光性玻璃盖板2和所述透明玻璃背板8均为钢化玻璃。所述光转换封装胶层3的厚度为200-500微米,所述绝热封装胶层4的厚度为300-600微米。所述导热封装胶层6的厚度为600-800微米,所述抗老化封装胶层7的厚度为500-700微米。 所述正方形太阳能电池片9的边长为15-50毫米。所述导热纳米颗粒的材质为氧化铝、氮化硼、氧化锌、氮化铝、氮化硅、氧化镁、碳化硅、石墨烯、碳纳米管中的一种。所述紫外线吸收剂为2,4-二羟基二苯甲酮、2-羟基-4-甲氧基二苯甲酮、2-(2'-羟基-5'-甲基苯基)苯并三唑、2-(2'-羟基-3'-叔丁基-5'-甲基苯基)-5-氯代苯并三唑、2-(2'-羟基-3',5'-二戊基苯基)苯并三唑、2-(2'-羟基-5'-叔辛基苯基)苯并三唑中的一种或几种。所述背面铝电极的厚度为60-90纳米,所述碳酸铯/聚乙烯亚胺混合层的厚度为1-3纳米,所述N型单晶硅基底的厚度为200-400微米,所述N型硅纳米线阵列中硅纳米线的长度为600-900纳米,相邻硅纳米线之间的间距为200-400 nm,所述P型P3HT层的厚度为20-40纳米,所述PS钝化层的厚度为2-3纳米,所述PEDOT:PSS透明导电层20-40纳米,其中通过在N型单晶硅基底上利用湿法刻蚀或干法刻蚀形成N型硅纳米线阵列,通过溶液旋涂法形成碳酸铯/聚乙烯亚胺混合层、P3HT层、PS钝化层以及PEDOT:PSS透明导电层,通过蒸镀法形成背面铝电极和银栅电极。
实施例1
参见图1-2,本发明提出的一种用于家禽养殖建筑物的透光性屋顶,所述透光性屋顶包括多个紧密排列的透光性光伏组件1,所述透过性光伏组件1包括从下到上依次包括透光性玻璃盖板2、光转换封装胶层3、绝热封装胶层4、太阳能电池片层5、导热封装胶层6、抗老化封装胶层7、透明玻璃背板8;所述太阳能电池片层5包括多个呈矩阵排列的正方形太阳能电池片9,相邻正方形太阳能电池片9之间的间距与所述正方形太阳能电池片9的边长之间的比值为2;所述光转换封装胶层3包括乙烯-乙酸乙烯酯-甲基丙烯酸甲酯共聚物以及相对于所述乙烯-乙酸乙烯酯-甲基丙烯酸甲酯共聚物100重量份为17重量份的铕络合物,所述铕络合物用于将紫外区域的光线转换成可见区域或近红外区域的波长的光线;所述绝热封装胶层4包括乙烯-乙酸乙烯酯-甲基丙烯酸甲酯共聚物以及相对于所述乙烯-乙酸乙烯酯-甲基丙烯酸甲酯共聚物100重量份为10重量份的微孔硅酸钙颗粒;所述导热封装胶层6包括乙烯-1-丁烯-4-甲基-1-戊烯共聚物以及相对于所述乙烯-1-丁烯-4-甲基-1-戊烯共聚物100重量份为8重量份的导热纳米颗粒;所述抗老化封装胶层7包括乙烯-1-丁烯-4-甲基-1-戊烯共聚物以及相对于所述乙烯-1-丁烯-4-甲基-1-戊烯共聚物100重量份为15重量份的紫外线吸收剂,所述紫外线吸收剂用于吸收透过太阳能电池片层的紫外光;所述正方形太阳能电池片9包括从下到上依次排列的背面铝电极、碳酸铯/聚乙烯亚胺混合层、N型单晶硅基底、N型硅纳米线阵列、P型P3HT层、PS钝化层、PEDOT:PSS透明导电层、银栅电极。
其中,所述透光性玻璃盖板2和所述透明玻璃背板8均为钢化玻璃。所述光转换封装胶层3的厚度为300微米,所述绝热封装胶层4的厚度为400微米。所述导热封装胶层6的厚度为650微米,所述抗老化封装胶层7的厚度为600微米。 所述正方形太阳能电池片9的边长为20毫米。所述导热纳米颗粒的材质为氧化铝。所述紫外线吸收剂为2-(2'-羟基-3'-叔丁基-5'-甲基苯基)-5-氯代苯并三唑。所述背面铝电极的厚度为70纳米,所述碳酸铯/聚乙烯亚胺混合层的厚度为2纳米,所述N型单晶硅基底的厚度为300微米,所述N型硅纳米线阵列中硅纳米线的长度为700纳米,相邻硅纳米线之间的间距为300 nm,所述P型P3HT层的厚度为30纳米,所述PS钝化层的厚度为2纳米,所述PEDOT:PSS透明导电层30纳米。
实施例2
参见图1-2,本发明提出的一种用于家禽养殖建筑物的透光性屋顶,所述透光性屋顶包括多个紧密排列的透光性光伏组件1,所述透过性光伏组件1包括从下到上依次包括透光性玻璃盖板2、光转换封装胶层3、绝热封装胶层4、太阳能电池片层5、导热封装胶层6、抗老化封装胶层7、透明玻璃背板8;所述太阳能电池片层5包括多个呈矩阵排列的正方形太阳能电池片9,相邻正方形太阳能电池片9之间的间距与所述正方形太阳能电池片9的边长之间的比值为2.5;所述光转换封装胶层3包括乙烯-乙酸乙烯酯-甲基丙烯酸甲酯共聚物以及相对于所述乙烯-乙酸乙烯酯-甲基丙烯酸甲酯共聚物100重量份为19重量份的铕络合物,所述铕络合物用于将紫外区域的光线转换成可见区域或近红外区域的波长的光线;所述绝热封装胶层4包括乙烯-乙酸乙烯酯-甲基丙烯酸甲酯共聚物以及相对于所述乙烯-乙酸乙烯酯-甲基丙烯酸甲酯共聚物100重量份为12重量份的微孔硅酸钙颗粒;所述导热封装胶层6包括乙烯-1-丁烯-4-甲基-1-戊烯共聚物以及相对于所述乙烯-1-丁烯-4-甲基-1-戊烯共聚物100重量份为8重量份的导热纳米颗粒;所述抗老化封装胶层7包括乙烯-1-丁烯-4-甲基-1-戊烯共聚物以及相对于所述乙烯-1-丁烯-4-甲基-1-戊烯共聚物100重量份为18重量份的紫外线吸收剂,所述紫外线吸收剂用于吸收透过太阳能电池片层的紫外光;所述正方形太阳能电池片9包括从下到上依次排列的背面铝电极、碳酸铯/聚乙烯亚胺混合层、N型单晶硅基底、N型硅纳米线阵列、P型P3HT层、PS钝化层、PEDOT:PSS透明导电层、银栅电极。
其中,所述透光性玻璃盖板2和所述透明玻璃背板8均为钢化玻璃。所述光转换封装胶层3的厚度为400微米,所述绝热封装胶层4的厚度为500微米。所述导热封装胶层6的厚度为800微米,所述抗老化封装胶层7的厚度为650微米。 所述正方形太阳能电池片9的边长为40毫米。所述导热纳米颗粒的材质为碳纳米管。所述紫外线吸收剂为2,4-二羟基二苯甲酮和2-羟基-4-甲氧基二苯甲酮。所述背面铝电极的厚度为80纳米,所述碳酸铯/聚乙烯亚胺混合层的厚度为2.5纳米,所述N型单晶硅基底的厚度为350微米,所述N型硅纳米线阵列中硅纳米线的长度为850纳米,相邻硅纳米线之间的间距为350 nm,所述P型P3HT层的厚度为35纳米,所述PS钝化层的厚度为2.5纳米,所述PEDOT:PSS透明导电层40纳米。
本发明的透光性屋顶,通过在透过性光伏组件中设置光转换封装胶层,可以有效转换照射至透过性光伏组件的紫外光,进而提高光的利用率;通过在绝热封装胶层中添加微孔硅酸钙颗粒绝热材料,提高绝热封装胶层的绝热性能,进而防止正方形太阳能电池片工作过程中产生的热量传递至光转换封装胶层,由此可以避免光转换封装胶层温度升高,使得铕络合物不会因为高温而变质,进而确保铕络合物正常工作。而正方形太阳能电池片下方的导热封装胶层可以快速将热量从正方形太阳能电池片传出,同时抗老化封装胶层的存在可以提高透过性光伏组件的抗老化性能。本发明通过将相邻正方形太阳能电池片之间的间距与所述正方形太阳能电池片的边长之间的比值设置为大于1.5且小于3,确保透过性光伏组件可以为家禽养殖建筑物提供充足的电能,同时使得透光性屋顶具有优异的采光性能,同时选用新型的有机无机复合太阳能电池,该有机无机复合太阳能电池具有优异的光电转换效率。
最后应说明的是:显然,上述实施例仅仅是为清楚地说明本发明所作的举例,而并非对实施方式的限定。对于所属领域的普通技术人员来说,在上述说明的基础上还可以做出其它不同形式的变化或变动。这里无需也无法对所有的实施方式予以穷举。而由此所引申出的显而易见的变化或变动仍处于本发明的保护范围之中。
Claims (8)
1.一种用于家禽养殖建筑物的透光性屋顶,其特征在于:所述透光性屋顶包括多个紧密排列的透光性光伏组件,所述透过性光伏组件包括从下到上依次包括透光性玻璃盖板、光转换封装胶层、绝热封装胶层、太阳能电池片层、导热封装胶层、抗老化封装胶层、透明玻璃背板;
所述太阳能电池片层包括多个呈矩阵排列的正方形太阳能电池片,相邻正方形太阳能电池片之间的间距与所述正方形太阳能电池片的边长之间的比值大于1.5且小于3;
所述光转换封装胶层包括乙烯-乙酸乙烯酯-甲基丙烯酸甲酯共聚物以及相对于所述乙烯-乙酸乙烯酯-甲基丙烯酸甲酯共聚物100重量份为15-20重量份的铕络合物,所述铕络合物用于将紫外区域的光线转换成可见区域或近红外区域的波长的光线;
所述绝热封装胶层包括乙烯-乙酸乙烯酯-甲基丙烯酸甲酯共聚物以及相对于所述乙烯-乙酸乙烯酯-甲基丙烯酸甲酯共聚物100重量份为5-15重量份的微孔硅酸钙颗粒;
所述导热封装胶层包括乙烯-1-丁烯-4-甲基-1-戊烯共聚物以及相对于所述乙烯-1-丁烯-4-甲基-1-戊烯共聚物100重量份为5-15重量份的导热纳米颗粒;
所述抗老化封装胶层包括乙烯-1-丁烯-4-甲基-1-戊烯共聚物以及相对于所述乙烯-1-丁烯-4-甲基-1-戊烯共聚物100重量份为10-20重量份的紫外线吸收剂,所述紫外线吸收剂用于吸收透过太阳能电池片层的紫外光;
所述正方形太阳能电池片包括从下到上依次排列的背面铝电极、碳酸铯/聚乙烯亚胺混合层、N型单晶硅基底、N型硅纳米线阵列、P型P3HT层、PS钝化层、PEDOT:PSS透明导电层、银栅电极。
2.根据权利要求1所述的用于家禽养殖建筑物的透光性屋顶,其特征在于:所述透光性玻璃盖板和所述透明玻璃背板均为钢化玻璃。
3.根据权利要求1所述的用于家禽养殖建筑物的透光性屋顶,其特征在于:所述光转换封装胶层的厚度为200-500微米,所述绝热封装胶层的厚度为300-600微米。
4.根据权利要求1所述的用于家禽养殖建筑物的透光性屋顶,其特征在于:所述导热封装胶层的厚度为600-800微米,所述抗老化封装胶层的厚度为500-700微米。
5.根据权利要求1所述的用于家禽养殖建筑物的透光性屋顶,其特征在于:所述正方形太阳能电池片的边长为15-50毫米。
6.根据权利要求1所述的用于家禽养殖建筑物的透光性屋顶,其特征在于:所述导热纳米颗粒的材质为氧化铝、氮化硼、氧化锌、氮化铝、氮化硅、氧化镁、碳化硅、石墨烯、碳纳米管中的一种。
7.根据权利要求1所述的用于家禽养殖建筑物的透光性屋顶,其特征在于:所述紫外线吸收剂为2,4-二羟基二苯甲酮、2-羟基-4-甲氧基二苯甲酮、2-(2'-羟基-5'-甲基苯基)苯并三唑、2-(2'-羟基-3'-叔丁基-5'-甲基苯基)-5-氯代苯并三唑、2-(2'-羟基-3',5'-二戊基苯基)苯并三唑、2-(2'-羟基-5'-叔辛基苯基)苯并三唑中的一种或几种。
8.根据权利要求1所述的用于家禽养殖建筑物的透光性屋顶,其特征在于:所述背面铝电极的厚度为60-90纳米,所述碳酸铯/聚乙烯亚胺混合层的厚度为1-3纳米,所述N型单晶硅基底的厚度为200-400微米,所述N型硅纳米线阵列中硅纳米线的长度为600-900纳米,相邻硅纳米线之间的间距为200-400 nm,所述P型P3HT层的厚度为20-40纳米,所述PS钝化层的厚度为2-3纳米,所述PEDOT:PSS透明导电层20-40纳米。
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