CN105967625A - 一种可产生远红外线的水泥空心砖及其制备方法 - Google Patents
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Abstract
本发明公开了一种可产生远红外线的水泥空心砖及其制备方法,其由以下重量份的原料制成:铁铝酸盐水泥37‑51、文石8‑13、五水偏硅酸钠4‑9、磁波石3‑6、硅酸钙尾渣10‑15、微晶灰岩6‑9、铝灰12‑16、糖厂滤泥10‑15、石灰石5‑10、钼渣7‑11、铅锌炉渣9‑14、焦炭粉4‑6、沙漠砂14‑18、磷酸二氢铵5‑8、羟丙基二淀粉磷酸酯3‑5、废骨瓷粉7‑11、光卤石4‑8、氟硼酸钾2‑4、熔融高炉渣8‑12、水适量。本发明添加的磁波石和微晶灰岩相互配合作用,可以产生较强的远红外线,可以有效调节人体的健康,从而起到医疗保健的作用。
Description
技术领域
本发明涉及一种空心砖及其制备方法,具体涉及一种可产生远红外线的水泥空心砖及其制备方法。
背景技术
水泥空心砖是新型墙体材料的一种,具有自重轻、强度高、保温性能好等优点。生产和使用这类新型墙体材料,可以实现节能、节地、节水、利废、增大建筑有效使用面积、缩短施工周期等目的,具有传统粘土砖不可比拟的优越性,是替代实心粘土砖的首选材料之一,受到国家产业政策的大力支持。然而目前水泥空心砖不存在产生远红外线的功能,如果能开发一种可产生远红外线的水泥空心砖,用于调节人体的健康,将具有巨大的社会效益和经济利益。
发明内容
本发明的目的在于提供一种可产生远红外线的水泥空心砖及其制备方法。
为实现上述目的,本发明采用的技术方案如下:
一种可产生远红外线的水泥空心砖,由以下重量份的原料制成:铁铝酸盐水泥37-51、文石8-13、五水偏硅酸钠4-9、磁波石3-6、硅酸钙尾渣10-15、微晶灰岩6-9、铝灰12-16、糖厂滤泥10-15、石灰石5-10、钼渣7-11、铅锌炉渣9-14、焦炭粉4-6、沙漠砂14-18、磷酸二氢铵5-8、羟丙基二淀粉磷酸酯3-5、废骨瓷粉7-11、光卤石4-8、氟硼酸钾2-4、熔融高炉渣8-12、水适量。
一种可产生远红外线的水泥空心砖的制备方法,包括以下步骤:
(1)将文石、糖厂滤泥、铅锌炉渣、焦炭粉、废骨瓷粉混合均匀,粉碎,过80-120目筛,加入适量的水,充分搅拌均匀,制球,粒径控制在2-3mm,然后将制得的生料球在100-120℃下干燥至含水率在2%以下,然后将干燥后的生料球置于马弗炉内焙烧:先以8-12℃/min升温至920-980℃,保温15-25min,再以3-6℃/min降温至500-550℃,保温25-35min,再以4-8℃/min升温至1170-1210℃,保温8-14min,冷却至室温,即得陶粒;
(2)将石灰石、钼渣、沙漠砂、光卤石、氟硼酸钾混合均匀,加热至物料完全熔化成熔融液,然后将得到的熔融液放入清水中进行水淬,得到破碎的玻璃颗粒料,脱干水份后在90-110℃下干燥2-3h,然后将烘干得到的玻璃颗粒料置于微波焙烧炉内焙烧:先控制微波功率在700-900W,焙烧25-35min,再控制微波功率在800-1000W,煅烧15-25min,冷却至室温,即得玻璃微珠;
(3)将铁铝酸盐水泥、磁波石、硅酸钙尾渣、微晶灰岩、铝灰、熔融高炉渣混合均匀,再加入适量的水进行一次搅拌,搅拌速度为250-400r/min,搅拌时间为12-16min,搅拌均匀后静置陈化24-48h,然后向陈化后的原料中加入余下原料以及步骤(1)制得的陶粒和步骤(2)制得的玻璃微珠进行二次混合,搅拌速度为400-500r/min,搅拌时间为8-14min;
(4)将步骤(3)制得的混合料加入空心砖制砖机中压制成型,脱模后置于自然环境下养护,即得所需的空心砖。
本发明的有益效果:
(1)本发明添加的磁波石和微晶灰岩相互配合作用,可以产生较强的远红外线,使人体毛细血管扩张,促进血液循环,强化各组织之间的新陈代谢,增加组织的再生能力,提高机体的免疫能力,调节精神的异常兴奋状态,从而起到医疗保健的作用;添加的硅酸钙尾渣、铝灰、熔融高炉渣等原料,可以提高水泥空心砖的机械强度、热稳定性和耐候性。
(2)本发明采用文石、糖厂滤泥、铅锌炉渣、焦炭粉、废骨瓷粉等原料制得的陶粒和石灰石、钼渣、沙漠砂、光卤石、氟硼酸钾等原料制得的玻璃微珠相互复合,均匀地分布在水泥空心砖内,可以大大降低水泥空心砖的导热系数,使得其具有优异的隔热保温性能,同时还可以改善水泥空心砖的力学性能和化学稳定性等性能。
具体实施方式
一种可产生远红外线的水泥空心砖,由以下重量(kg)的原料制成:铁铝酸盐水泥46、文石11、五水偏硅酸钠6、磁波石4、硅酸钙尾渣12、微晶灰岩7、铝灰14、糖厂滤泥12、石灰石7、钼渣9、铅锌炉渣12、焦炭粉5、沙漠砂16、磷酸二氢铵6、羟丙基二淀粉磷酸酯4、废骨瓷粉9、光卤石5、氟硼酸钾3、熔融高炉渣10、水适量。
一种可产生远红外线的水泥空心砖的制备方法,包括以下步骤:
(1)将文石、糖厂滤泥、铅锌炉渣、焦炭粉、废骨瓷粉混合均匀,粉碎,过100目筛,加入适量的水,充分搅拌均匀,制球,粒径控制在2mm,然后将制得的生料球在110℃下干燥至含水率在2%以下,然后将干燥后的生料球置于马弗炉内焙烧:先以10℃/min升温至960℃,保温20min,再以5℃/min降温至530℃,保温30min,再以6℃/min升温至1190℃,保温10min,冷却至室温,即得陶粒;
(2)将石灰石、钼渣、沙漠砂、光卤石、氟硼酸钾混合均匀,加热至物料完全熔化成熔融液,然后将得到的熔融液放入清水中进行水淬,得到破碎的玻璃颗粒料,脱干水份后在100℃下干燥3h,然后将烘干得到的玻璃颗粒料置于微波焙烧炉内焙烧:先控制微波功率在800W,焙烧30min,再控制微波功率在950W,煅烧20min,冷却至室温,即得玻璃微珠;
(3)将铁铝酸盐水泥、磁波石、硅酸钙尾渣、微晶灰岩、铝灰、熔融高炉渣混合均匀,再加入适量的水进行一次搅拌,搅拌速度为350r/min,搅拌时间为14min,搅拌均匀后静置陈化36h,然后向陈化后的原料中加入余下原料以及步骤(1)制得的陶粒和步骤(2)制得的玻璃微珠进行二次混合,搅拌速度为450r/min,搅拌时间为10min;
(4)将步骤(3)制得的混合料加入空心砖制砖机中压制成型,脱模后置于自然环境下养护,即得所需的空心砖。
上述实施例制得的水泥空心砖的主要性能检测结果如下表所示:
Claims (2)
1.一种可产生远红外线的水泥空心砖,其特征在于,由以下重量份的原料制成:铁铝酸盐水泥37-51、文石8-13、五水偏硅酸钠4-9、磁波石3-6、硅酸钙尾渣10-15、微晶灰岩6-9、铝灰12-16、糖厂滤泥10-15、石灰石5-10、钼渣7-11、铅锌炉渣9-14、焦炭粉4-6、沙漠砂14-18、磷酸二氢铵5-8、羟丙基二淀粉磷酸酯3-5、废骨瓷粉7-11、光卤石4-8、氟硼酸钾2-4、熔融高炉渣 8-12、水适量。
2.一种如权利要求1所述的可产生远红外线的水泥空心砖的制备方法,其特征在于,包括以下步骤:
(1)将文石、糖厂滤泥、铅锌炉渣、焦炭粉、废骨瓷粉混合均匀,粉碎,过80-120目筛,加入适量的水,充分搅拌均匀,制球,粒径控制在2-3mm,然后将制得的生料球在100-120℃下干燥至含水率在2%以下,然后将干燥后的生料球置于马弗炉内焙烧:先以8-12℃/min升温至920-980℃,保温15-25min,再以3-6℃/min降温至500-550℃,保温25-35min,再以4-8℃/min升温至1170-1210℃,保温8-14min,冷却至室温,即得陶粒;
(2)将石灰石、钼渣、沙漠砂、光卤石、氟硼酸钾混合均匀,加热至物料完全熔化成熔融液,然后将得到的熔融液放入清水中进行水淬,得到破碎的玻璃颗粒料,脱干水份后在90-110℃下干燥2-3h,然后将烘干得到的玻璃颗粒料置于微波焙烧炉内焙烧:先控制微波功率在700-900W,焙烧25-35min,再控制微波功率在800-1000W,煅烧15-25min,冷却至室温,即得玻璃微珠;
(3)将铁铝酸盐水泥、磁波石、硅酸钙尾渣、微晶灰岩、铝灰、熔融高炉渣混合均匀,再加入适量的水进行一次搅拌,搅拌速度为250-400r/min,搅拌时间为12-16min,搅拌均匀后静置陈化24-48h,然后向陈化后的原料中加入余下原料以及步骤(1)制得的陶粒和步骤(2)制得的玻璃微珠进行二次混合,搅拌速度为400-500r/min,搅拌时间为8-14min;
(4)将步骤(3)制得的混合料加入空心砖制砖机中压制成型,脱模后置于自然环境下养护,即得所需的空心砖。
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CN107140948A (zh) * | 2017-06-12 | 2017-09-08 | 安徽青花坊瓷业股份有限公司 | 一种高白度日用骨灰瓷及其制备方法 |
CN112174551A (zh) * | 2020-09-10 | 2021-01-05 | 内蒙古亿利冀东水泥有限责任公司 | 利用钼尾矿制备水泥熟料的方法及水泥熟料和应用 |
CN114751727A (zh) * | 2022-06-13 | 2022-07-15 | 尊龙新材料(山东)有限公司 | 一种致密钙长石质耐火材料的制备方法 |
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CN105198485A (zh) * | 2015-09-29 | 2015-12-30 | 马鞍山杰创塑胶科技有限公司 | 一种可产生远红外线的加气砌块及其制备方法 |
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CN107140948A (zh) * | 2017-06-12 | 2017-09-08 | 安徽青花坊瓷业股份有限公司 | 一种高白度日用骨灰瓷及其制备方法 |
CN112174551A (zh) * | 2020-09-10 | 2021-01-05 | 内蒙古亿利冀东水泥有限责任公司 | 利用钼尾矿制备水泥熟料的方法及水泥熟料和应用 |
CN114751727A (zh) * | 2022-06-13 | 2022-07-15 | 尊龙新材料(山东)有限公司 | 一种致密钙长石质耐火材料的制备方法 |
CN114751727B (zh) * | 2022-06-13 | 2022-08-23 | 尊龙新材料(山东)有限公司 | 一种致密钙长石质耐火材料的制备方法 |
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