CN107417259B - 一种抗菌且耐微波的陶瓷及其制作工艺 - Google Patents
一种抗菌且耐微波的陶瓷及其制作工艺 Download PDFInfo
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Abstract
本发明具体涉及一种抗菌且耐微波的陶瓷及其制作工艺,属于陶瓷产品技术领域。该抗菌且耐微波的陶瓷,包括按照质量份数计的如下原料:广西镁质粘土21‑27份、煅烧石英12‑18份、硼酸铝硅盐7‑12份、钾长石10‑19份、氧化锌6‑10份、煅烧滑石1‑4份、分散剂0.5‑1份、二氧化钛2‑4份、甲壳质1‑5份。该陶瓷具有抗菌的作用,对大肠杆菌和金黄色葡萄球菌的抗菌率均高达99%以上;同时耐微波,可用于微波加热且不产生有害物质;该制作工艺通过先煅烧原料再一次烧成,既保证了产品质量同时又节能环保。
Description
技术领域
本发明属于陶瓷产品技术领域,具体涉及一种抗菌且耐微波的陶瓷及其制作工艺。
背景技术
选择餐具,因陶瓷器皿相对于玻璃或是塑料器皿造型多样、细腻光滑、色彩明丽且便于清洗,是绝大多数家庭购买时的首选。
既然作为餐具,具有抗菌功能必不可少,传统的以银系抗菌陶瓷和钛系抗菌陶瓷最为常见使用,银系杀菌效果非常好,但是缺点在于:银离子应用在陶瓷上如果高温烧制时,釉面就会变色造成釉面不雅,如银离子分量不足,杀菌效果不理想,还有在高温烧制时银离子会挥发,造成控菌效果不佳;钛系抗菌陶瓷的烧制工艺也较难控制。
另外,现在用微波炉加热食物也很普遍,因此作为餐具的陶瓷要耐微波,同时要注意陶瓷表面上的彩釉有可能成为健康杀手。彩釉中的铅、汞、镭、镉等都是对身体有害的元素,要防止微波加热时这些有害物质溶出,随着食物进入人体,否则时间一长会引起慢性中毒。
故本发明旨在提供一种抗菌且耐微波的陶瓷及其制作工艺,使其经受微波加热的同时不会溶出有害物质,保证使用安全,且相对传统的工艺更加节能环保。
发明内容
本发明的目的是为了解决现有技术的不足而提供一种抗菌且耐微波的陶瓷及其制作工艺,该陶瓷具有抗菌的作用,对大肠杆菌和金黄色葡萄球菌的抗菌率均高达98%以上;同时耐微波,可用于微波加热且不产生有害物质;该制作工艺通过先煅烧原料再一次烧成,既保证了产品质量同时又节能环保。
本发明采用的技术方案如下:
一种抗菌且耐微波的陶瓷,包括按照质量份数计的如下原料:广西镁质粘土21-27份、煅烧石英12-18份、硼酸铝硅盐7-12份、钾长石10-19份、氧化锌6-10份、煅烧滑石1-4份、分散剂0.5-1份、二氧化钛2-4份、甲壳质1-5份。
以上所述的一种抗菌且耐微波的陶瓷,包括按照质量份数计的如下原料:广西镁质粘土24份、煅烧石英15份、硼酸铝硅盐10份、钾长石16份、氧化锌8份、煅烧滑石2.5份、分散剂0.7份、二氧化钛3份、甲壳质3.5份。
以上所述的一种抗菌且耐微波的陶瓷的制作工艺,包括如下步骤:
1)将甲壳质进行脱乙酰处理;
2)按照质量配比进行配料,并加入清水,然后放入球磨机研磨,以泥浆细度通过800目筛为标准进行筛选;
3)进行磁选,去除泥浆原料中所含的铁杂质;
4)对上步所得泥浆进行压滤,然后成型装坯;
5)在坯体表面画上颜料,再在颜料外面施加一层透明釉;
6)最后在1140℃-1250℃的氧化焰中一次烧成。
进一步,所述步骤5)中进行压滤后泥浆的含水率为20%-23%。
进一步,所述步骤6)中烧成温度为1190℃。
本发明的有益效果为:
第一,本发明的陶瓷配方中加入甲壳质,其脱乙酰后丰富的氨基呈现出来,具有抗菌以及净化空气的作用,对大肠杆菌和金黄色葡萄球菌的抗菌率均高达99%以上;
第二,本发明的陶瓷可用于微波加热不破裂,而且彩釉中的有害物质不会溶出危害健康;
第三,本发明的制作工艺通过先煅烧原料再一次烧成,既保证了产品质量同时又节能环保,具体为煅烧石英去除可以高温分解的碳酸盐,煅烧后性质稳定,另外配方中加入硼酸铝硅盐,使得最后烧成温度降低,节能环保。
具体实施方式
下面结合实施例对本发明作进一步的详细描述,但不应理解为对本发明的限制。本发明中使用的原料若无特别说明,均可通过市购获得。
实施例1
一种抗菌且耐微波的陶瓷,包括按照质量份数计的如下原料:广西镁质粘土21份、煅烧石英12份、硼酸铝硅盐7份、钾长石10份、氧化锌6份、煅烧滑石1份、分散剂0.5份、二氧化钛2份、甲壳质1份。
上述的一种抗菌且耐微波的陶瓷的制作工艺,包括如下步骤:
1)将甲壳质进行脱乙酰处理;
2)按照质量配比进行配料,并加入清水,然后放入球磨机研磨,以泥浆细度通过800目筛为标准进行筛选;
3)进行磁选,去除泥浆原料中所含的铁杂质;
4)对上步所得泥浆进行压滤,压滤后泥浆的含水率为20%,然后成型装坯;
5)在坯体表面画上颜料,再在颜料外面施加一层透明釉;
6)最后在1140℃的氧化焰中一次烧成。
实施例2
一种抗菌且耐微波的陶瓷,包括按照质量份数计的如下原料:广西镁质粘土23份、煅烧石英14份、硼酸铝硅盐8份、钾长石12份、氧化锌7份、煅烧滑石2份、分散剂0.6份、二氧化钛2份、甲壳质2份。
上述的一种抗菌且耐微波的陶瓷的制作工艺,包括如下步骤:
1)将甲壳质进行脱乙酰处理;
2)按照质量配比进行配料,并加入清水,然后放入球磨机研磨,以泥浆细度通过800目筛为标准进行筛选;
3)进行磁选,去除泥浆原料中所含的铁杂质;
4)对上步所得泥浆进行压滤,压滤后泥浆的含水率为21%,然后成型装坯;
5)在坯体表面画上颜料,再在颜料外面施加一层透明釉;
6)最后在1170℃的氧化焰中一次烧成。
实施例3
一种抗菌且耐微波的陶瓷,包括按照质量份数计的如下原料:广西镁质粘土24份、煅烧石英15份、硼酸铝硅盐10份、钾长石16份、氧化锌8份、煅烧滑石2.5份、分散剂0.7份、二氧化钛3份、甲壳质3.5份。
上述的一种抗菌且耐微波的陶瓷的制作工艺,包括如下步骤:
1)将甲壳质进行脱乙酰处理;
2)按照质量配比进行配料,并加入清水,然后放入球磨机研磨,以泥浆细度通过800目筛为标准进行筛选;
3)进行磁选,去除泥浆原料中所含的铁杂质;
4)对上步所得泥浆进行压滤,压滤后泥浆的含水率为21%,然后成型装坯;
5)在坯体表面画上颜料,再在颜料外面施加一层透明釉;
6)最后在1190℃的氧化焰中一次烧成。
实施例4
一种抗菌且耐微波的陶瓷,包括按照质量份数计的如下原料:广西镁质粘土25份、煅烧石英17份、硼酸铝硅盐11份、钾长石18份、氧化锌9份、煅烧滑石3份、分散剂0.8份、二氧化钛4份、甲壳质4份。
上述的一种抗菌且耐微波的陶瓷的制作工艺,包括如下步骤:
1)将甲壳质进行脱乙酰处理;
2)按照质量配比进行配料,并加入清水,然后放入球磨机研磨,以泥浆细度通过800目筛为标准进行筛选;
3)进行磁选,去除泥浆原料中所含的铁杂质;
4)对上步所得泥浆进行压滤,压滤后泥浆的含水率为22%,然后成型装坯;
5)在坯体表面画上颜料,再在颜料外面施加一层透明釉;
6)最后在1220℃的氧化焰中一次烧成。
实施例5
一种抗菌且耐微波的陶瓷,包括按照质量份数计的如下原料:广西镁质粘土27份、煅烧石英18份、硼酸铝硅盐12份、钾长石19份、氧化锌10份、煅烧滑石4份、分散剂1份、二氧化钛4份、甲壳质5份。
上述的一种抗菌且耐微波的陶瓷的制作工艺,包括如下步骤:
1)将甲壳质进行脱乙酰处理;
2)按照质量配比进行配料,并加入清水,然后放入球磨机研磨,以泥浆细度通过800目筛为标准进行筛选;
3)进行磁选,去除泥浆原料中所含的铁杂质;
4)对上步所得泥浆进行压滤,压滤后泥浆的含水率为23%,然后成型装坯;
5)在坯体表面画上颜料,再在颜料外面施加一层透明釉;
6)最后在1250℃的氧化焰中一次烧成。
对照例1
其余与实施例3相同,不同的是没有添加甲壳质这一组分。
对照例2
其余与实施例3相同,不同的是没有添加硼酸铝硅盐这一组分。
对照例3
其余与实施例3相同,不同的是原料石英和滑石未经煅烧。
性能测试
对本发明实施例1-5及对照例1-3所得产品进行性能测试,结果如下表:
表1产品性能测试数据
其中,溶出试验为将陶瓷器皿置于4%的醋酸中浸泡,铅的溶出量不大于7毫克/升,镉的溶出量不大于0.5毫克/升。
由上表可见,本发明的陶瓷具有抗菌的作用,对大肠杆菌和金黄色葡萄球菌的抗菌率均高达99%以上;可用于微波加热不破裂,而且彩釉中的有害物质不会溶出危害健康;本发明的制作工艺通过先煅烧原料再一次烧成,既保证了产品质量同时又节能环保。
Claims (4)
1.一种抗菌且耐微波的陶瓷,其特征在于,由按照质量份数计的如下原料组成:广西镁质粘土21-27份、煅烧石英12-18份、硼酸铝硅盐7-12份、钾长石10-19份、氧化锌6-10份、煅烧滑石1-4份、分散剂0.5-1份、二氧化钛2-4份、甲壳质1-5份;
制作工艺包括如下步骤:
1)将甲壳质进行脱乙酰处理;
2)按照质量配比进行配料,并加入清水,然后放入球磨机研磨,以泥浆细度通过800 目筛为标准进行筛选;
3)进行磁选,去除泥浆原料中所含的铁杂质;
4)对上步所得泥浆进行压滤,然后成型装坯;
5)在坯体表面画上颜料,再在颜料外面施加一层透明釉;
6)最后在1140℃-1250℃的氧化焰中一次烧成。
2.根据权利要求1所述的一种抗菌且耐微波的陶瓷,其特征在于,由按照质量份数计的如下原料组成:广西镁质粘土24份、煅烧石英15份、硼酸铝硅盐10份、钾长石16份、氧化锌8份、煅烧滑石2.5份、分散剂0.7份、二氧化钛3份、甲壳质3.5份。
3.根据权利要求1所述的一种抗菌且耐微波的陶瓷,其特征在于,所述步骤4)中进行压滤后泥浆的含水率为20%-23%。
4.根据权利要求1所述的一种抗菌且耐微波的陶瓷,其特征在于,所述步骤6)中烧成温度为1190℃。
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