CN106987189A - 一种隔热建筑涂料及其制备方法 - Google Patents

一种隔热建筑涂料及其制备方法 Download PDF

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CN106987189A
CN106987189A CN201710328186.7A CN201710328186A CN106987189A CN 106987189 A CN106987189 A CN 106987189A CN 201710328186 A CN201710328186 A CN 201710328186A CN 106987189 A CN106987189 A CN 106987189A
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张维秀
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Abstract

本发明公开了一种隔热建筑涂料,该隔热建筑涂料是自制的核‑壳结构的Cr2O3包裹的空心玻璃微球无机复合粒子掺杂纯丙乳液基体制备而成,其制备方法如下:首先采用共沉淀法制备核‑壳结构的Cr2O3@空心玻璃微球无机复合粒子,然后将润湿剂、分散剂、防霉杀菌剂、部分消泡剂,均匀分散在水中.然后逐步加入二氧化钛、滑石粉、高岭土等颜填料。待颜填料充分润湿分散后,在250‑350W超声作用超声20‑40min制得均匀的浆料,接着降低超声功率100‑200W并依次加人剩余消泡剂、成膜助剂、纯丙乳液、多功能助剂,充分超声均匀,最后加自制的无机复合粒子,继续超声20‑40 min使粒子分散均匀,并加入适量增稠剂调节体系至合适黏度,得隔热建筑涂料,制备的隔热涂料隔热性能提高。

Description

一种隔热建筑涂料及其制备方法
技术领域
本发明涉及一种隔热建筑涂料,属于建筑涂料行业,本发明还涉及一种隔热建筑涂料制备方法。
背景技术
隔热保温涂料是近年来开发的一种新型保温材料,目前国外已有市场化产品,并在建筑外墙上得到了应用。隔热涂料施涂于建筑物表面可有效降低建筑物表面及内部的温度。并能缓解建筑物表面温度变化,有效地降低辐射传热及传导传热,起到隔热保温的作用。
空心玻璃微珠是一种新型节能、清洁且轻质的白色粉体。由于其具有中空、质轻、隔热保温、电绝缘强度高、耐磨、耐腐蚀、防辐射、隔音、吸水率低、化学性能稳定等特点,被广泛应用于橡塑、涂料、玻璃钢、乳化炸药、石油钻探等领域。目前隔热涂料中主要是单一性的空心玻璃微珠的掺杂。在波段的反射上存在局部差异。三氧化二铬是一种耐高温,高强度物质,具有遮蔽红外光,抵御红外光照射的能力。
本发明就是基于此思路,选择了合适的材料,对空心玻璃微球进行了改性包覆制成具备核壳结构的无机复合粒子,再进行对纯丙乳液的改性。
本发明是为了克服现有技术的不足之处,本发明提供了一种环保绿色的隔热建筑涂料,本发明的另一个目的是提供一种上述隔热建筑涂料的制备方法。
为了达到上述目的,本发明采用以下方案:
一种隔热建筑涂料,其特征在于,采用共沉淀法制备核-壳结构的Cr2O3@空心玻璃微球无机复合粒子对纯丙乳液进行掺杂改性,无机复合粒子各质量比包括以下组分:n(玻璃空心微球):n(CrCl3.6H2O):n(沉淀剂)=1:1-1.2:1.1-1.4,共沉淀条件为:反应温度80-90℃,干燥温度80℃,反应时间4-6h,煅烧温度200-650℃,煅烧时间2-4h。
优选的,玻璃空心微球为密度大约为 0.4g/cm3,平均直径50μm。并用0.3 mol/L的 NaOH 溶液超声清洗20 分钟,再用去离子水清洗。
优选的,沉淀剂为 0.6 mol/L的尿素溶液。
优选的,无机复合粒子掺杂纯丙乳液反应条件为超声作用下进行。超声时间20-40min,声功率先是250-350W,后是100-200W。
一种隔热建筑涂料制备方法,其方法如下:首先采用共沉淀法制备核-壳结构的Cr2O3@空心玻璃微球无机复合粒子,然后将润湿剂、分散剂、防霉杀菌剂、部分消泡剂,均匀分散在水中.然后逐步加入二氧化钛、滑石粉、高岭土等颜填料,待颜填料充分润湿分散后,在250-350W超声作用超声20-40min制得均匀的浆料,接着降低超声功率100-200W并依次加人剩余消泡剂、成膜助剂、纯丙乳液、多功能助剂,充分超声均匀,最后加自制的无机复合粒子,继续超声20-40 min使粒子分散均匀,并加入适量增稠剂调节体系至合适黏度,得隔热建筑涂料。制备的隔热涂料隔热性能提高。本发明的有益效果是:
1.本发明中采用公共沉淀法自制的Cr2O3包敷空心玻璃微球核壳结构的无机复合粒子掺杂改性纯丙乳液,获得了具有好的隔热性能的建筑涂料。
具体实施方式
下面结合具体实施例方式对本发明做进一步的详细说明,以令本领域技术人员参照说明书文字能够据以实施。
实施例1:
所需主要原料为:空心玻璃微球;CrCl3.6H2O;纯丙乳液;NaOH 溶液;去离子水;以及制备涂料的其他助剂。
(a)核壳Cr2O3包敷的空心玻璃球填料制备
首先将空心玻璃微球用 0.3 mol/L 的 NaOH 溶液超声清洗20 分钟 , 目的是清除其表面的杂质 。 然后用去离子水清洗 ,在80℃ 的 条 件 下 烘 干 。 称 取 3 g 处 理过 的 空 心 玻璃 微 球 分 散 在100ml 0.6 mol/L 的尿素溶液中 ,加热至 90℃并保温 。 在恒温搅拌地情况下,将 100 ml 含有 1.3g(5mmol)CrCl3.6H2O的溶液 缓慢 地 滴入 上 述 溶液里,并且将这 个混合溶液在 90℃的条件下继续搅拌 6 个小时。 然后将反应后所得的产物反复用去离子水清洗,去掉溶液中多余的离子,在 80℃温度下烘干。 最后在400℃马弗炉中煅烧 2 小 时.制的核壳Cr2O3包敷的空心玻璃球填料。
(b)将润湿剂、分散剂、防霉杀菌剂、部分消泡剂,均匀分散在水中.然后逐步加入二氧化钛、滑石粉、高岭土等颜填料。待颜填料充分润湿分散后,在300W超声作用超声30min制得均匀的浆料,接着降低超声功至150W并依次加人剩余消泡剂、成膜助剂、纯丙乳液、多功能助剂,充分超声均匀,最后加自制的纳米无机复合粒子,继续超声30 min使粒子分散均匀,并加入适量增稠剂调节体系至合适黏度,得隔热建筑涂料。
隔热性能的分析:
采用室外隔热测试仪器对上述制备的隔热涂料在模拟太阳光照射下进行隔热测试。
数据如下:
经过比对实施例1制备的隔热涂料在隔热性能方面较优。

Claims (5)

1.一种隔热建筑涂料,其特征在于,采用共沉淀法制备核-壳结构的Cr2O3@空心玻璃微球无机复合粒子对纯丙乳液进行掺杂,无机复合粒子按各物质量比包括以下组分:n(玻璃空心微球):n(CrCl3.6H2O):n(沉淀剂)=1:1-1.2:1.1-1.4,共沉淀制备条件为:反应温度80-90℃,干燥温度80℃,反应时间4-6h,煅烧温度200-650℃,煅烧时间2-4h。
2.根据权利要求1所述的一种隔热建筑涂料,其特征在于,所述的玻璃空心微球为密度大约为 0.4g/cm3,平均直径50μm,并用0.3 mol/L 的 NaOH 溶液超声清洗20 分钟,再用去离子水清洗。
3.根据权利要求1所述的一种隔热建筑涂料,其特征在于,所述的共沉淀法为尿素是沉淀剂,浓度0.6 mol/L。
4.根据权利要求1所述的一种隔热建筑涂料,其特征在于,所述的无机复合粒子掺杂纯丙乳液反应条件为超声作用下进行,超声时间20-40min.超声功率先是250-350W,后是100-200W。
5.一种权利要求1所述的一种隔热建筑涂料的制备方法,其特征在于:
1)首先采用共沉淀法制备核-壳结构的Cr2O3@空心玻璃微球无机复合粒子;
2)然后将润湿剂、分散剂、防霉杀菌剂、部分消泡剂,均匀分散在水中,然后逐步加入二氧化钛、滑石粉、高岭土等颜填料,
待颜填料充分润湿分散后,在250-350W超声作用超声20-40min制得均匀的浆料,接着降低超声功率100-200W并依次加人剩余消泡剂、成膜助剂、纯丙乳液、多功能助剂,充分超声均匀;
3)最后加自制的无机复合粒子,继续超声20-40 min使粒子分散均匀,并加入适量增稠剂调节体系至合适黏度,得隔热建筑涂料,制备的隔热涂料隔热性能提高。
CN201710328186.7A 2017-05-11 2017-05-11 一种隔热建筑涂料及其制备方法 Pending CN106987189A (zh)

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Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN1772707A (zh) * 2005-09-20 2006-05-17 江苏大学 陶瓷/金属-核/壳复合微球及其制备方法
CN102391754A (zh) * 2011-10-24 2012-03-28 沈阳建筑大学 一种双包覆空心玻璃微珠隔热涂料及其制备方法
CN102491647A (zh) * 2011-11-24 2012-06-13 盐城工学院 一种高发射率核-壳结构隔热填料的制备方法

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN1772707A (zh) * 2005-09-20 2006-05-17 江苏大学 陶瓷/金属-核/壳复合微球及其制备方法
CN102391754A (zh) * 2011-10-24 2012-03-28 沈阳建筑大学 一种双包覆空心玻璃微珠隔热涂料及其制备方法
CN102491647A (zh) * 2011-11-24 2012-06-13 盐城工学院 一种高发射率核-壳结构隔热填料的制备方法

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Application publication date: 20170728