CN113383741B - 一种远程监控的自循环无人值守鱼菜共生系统 - Google Patents
一种远程监控的自循环无人值守鱼菜共生系统 Download PDFInfo
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Abstract
本发明属于生态型农业技术领域,提供了一种可远程监控的自循环无人值守鱼菜共生系统。该鱼菜共生系统包括依次连接的养鱼池、逆向沉淀池、多级过滤池、生态曝气池、紫外杀菌池和蔬菜培养架;养鱼池内设有水位控制装置和水质探测装置,水位控制装置包括水位自动补给控制阀、水位传感器、电控阀和执行器,电控阀与水位自动补给控制阀连接,水位传感器和电控阀分别与执行器连接;水质探测装置包括水质探测器与显示器,水质探测器与显示器连接,并通过wifi连接手机APP,用于实时监控;蔬菜培养架通过水管经回水泵与养鱼池连接。该系统可实现生态循环处理,有效保障水体干净整洁6个月以上无需换水及人工打理,实现无人管理值守。
Description
技术领域
本发明属于生态型农业技术领域,更具体地,涉及一种远程监控的自循环无人值守鱼菜共生系统。
背景技术
近年来,随着公众生活水平的提高,食品安全受到越来越多注度。虽然国家三令五申强调抗生素滥用问题,然而基于经济利益的关系,仍然不能完全排除非法药物添加。2016年曾经爆发了某地各大超市淡水鱼集体下架的问题。其背后的原因虽然众说纷纭,不过仍然体现了公众以及消费者对淡水养殖产品品质的担忧。依据抗生素种类和半衰期的不同,抗生素代谢周期约为1~7天;避孕药的代谢周期约为7~30天。
面向消费者的鱼菜共生系统实现了淡水产品非法添加药物的安全代谢周期,可以在极大程度上提高水产品质量安全,改善民众生活。然而,因为传统鱼菜共生系统操作复杂、维护繁琐等原因,一直得不到合适推广应用。此外,部分用户因为出差等原因,无法实时维护。由此,方便、简单、无人值守的家庭养殖系统具有广泛的应用前景。
发明内容
为了解决上述现有技术中存在的不足和缺点,本发明的目的在于提供一种远程监控的自循环无人值守鱼菜共生系统。
本发明的目的通过下述技术方案来实现:
一种远程监控的自循环无人值守鱼菜共生系统,所述鱼菜共生系统包括通过管道依次连接的养鱼池、逆向沉淀池、多级过滤池、生态曝气池、紫外杀菌池和蔬菜培养架;所述养鱼池内设有水位控制装置、水质探测装置和自动定时投喂装置,所述水位控制装置包括水位自动补给控制阀、水位传感器、电控阀和执行器,所述电控阀与所述水位自动补给控制阀连接,所述水位传感器和电控阀分别与所述执行器连接,用于监控三级水位线;所述水质探测装置包括水质探测器与显示器,所述水质探测器与所述显示器连接,并通过wifi连接手机APP,用于实时监控;所述自动定时投喂装置悬挂于养鱼池的水位线上方;所述自动定时投喂装包括喂料存储器和投喂定时器;所述投喂定时器连接于干电池或者变压器接市电提供电源;所述蔬菜培养架的底部设有排水口;所述排水口通过管道经回水泵与所述养鱼池连接。
进一步地,所述养鱼池内还设有上水水泵;所述逆向沉淀池包括沉淀区和排污收集区;所述沉淀区设有垂直于底部的若干毛刷;所述沉淀区的一侧底端设有入口,另一侧顶端设有第一出口,所述排污收集区设有第二出口,所述第一出口和第二出口位于所述逆向沉淀池的同侧;所述上水水泵与所述逆向沉淀池的入口通过水管连接。
进一步地,所述过滤池设有多级过滤层,所述过滤池的一侧顶部侧端设有入口,另一侧的底部侧端设有出水口;在各过滤层处分别设有排污口;所述沉淀池的第一出口与所述过滤池的入口连接;所述沉淀池的第二出口、所述过滤池的排污口与排污管道连接;所述管道上设有水泵,经定时器接入电源。
优选地,所述过滤层从上到下依次为铺设粗过滤棉、细过滤棉和超细过滤棉。
更为优选地,所述粗过滤棉的孔径为10~20PPI,所述细过滤棉的孔径为 20~40PPI,所述超细过滤棉的孔径为40~60PPI。
进一步地,所述生态曝气池的底部侧端设有入口,另一侧的顶部侧端设有出口,所述生态曝气池的入口与所述过滤池的出水口连接。
进一步地,所述紫外杀菌池内部设置有挡板和沉浸式紫外灯,所述挡板呈间隔上下错落排列,所述浸式紫外灯固定于所述挡板上;所述紫外杀菌池的顶部两侧设有入口和出口,所述紫外杀菌池的入口与所述生态曝气池的出口连接;所述紫外杀菌池的出口与所述蔬菜培养架的顶端连接。
进一步地,所述蔬菜培养架由纵向并联排列的若干管道组成,所述蔬菜培养架的顶端收集的水流向所述管道,所述管道上设有小孔,用于种植植物。
与现有技术相比,本发明具有以下有益效果:
1.本发明提供的无人值守的自动化系统可实现自循环,自运转,该系统通过自动补水、定时双排污、自供水等模块的生态循环处理,有效保障水体干净整洁 6个月以上无需换水及人工打理,实现无人管理值守。
2.本发明提供的自动投喂系统可储存2-4周饲料并自动定时投喂,因此用户出差2-4周,无需担心投喂问题。
3.本发明设置的回水泵摆脱了传统重力水循环,实现养鱼池和蔬菜培养架分离,使得养鱼池和蔬菜培养架的位置可以随意安置,不再需要固定在一起,实现了按照空间需求的自由组合;自动补水器和水位传感器配合,有效解决溢水及缺水风险,尤其适合室内以及阳台鱼菜共生系统。
4.本发明的远程监控的自循环无人值守鱼菜共生系统通过过滤池,自动集污,可保持系统水质清洁6个月以上,因此从市场购买的淡水产品可寄养在该系统中,利用抗生素、避孕药等的代谢周期,实现水产品体内药物的安全代谢,用于食用鱼饲养则满足食品安全需求;用于观赏鱼饲养,则省时省力,满足观赏养殖需求。
5.本发明的远程监控的自循环无人值守鱼菜共生系统设定为一周1次定时排污,有效延长过滤系统使用期限,经济节约;此外,技术要求低,不仅有效避免用户不当操作,而且无需技术培训。
6.本发明的远程监控的自循环无人值守鱼菜共生系统通过紫外杀菌,利用隔板间隔交错排列设计有效延长杀菌时间,提高杀菌效率;各水泵利用电源定时装置,节能低耗;缺水、溢水水位双防线、超水位警戒系统与自供水系统耦合,自供水的同时,有效防止水位过量及缺乏。
7.本发明可同时满足家庭购买鱼、虾、泥鳅等的食品安全要求;满足家庭蔬菜安全种植需求;满足观赏鱼养殖需求;满足观赏花卉种植需求;满足阳台美化需求;满足室内美化需求;满足楼顶农场建设需求;满足大型养殖鱼池需求;满足青少年儿童科普教育;满足中小学生劳动教育;满足餐厅美化及鱼虾预存;满足各类海洋馆鱼、虾、龟、大型哺乳动物等的养殖,其应用范围非常巨大。
附图说明
图1为本发明的远程监控的自循环无人值守鱼菜共生系统的示意图。
其中,1为养鱼池、2为逆向沉淀池、3为多级过滤池、4为生态曝气池、5 为紫外杀菌池,6为蔬菜培养架,7为回水泵。
11为上水水泵;12为水位自动补给控制阀,13为水位传感器,14为电控阀, 15为执行器;16为自动投喂装置;17为水质探测器,18为显示器;
21为沉淀区,22为排污收集区;211为逆向沉淀池的入口,212为逆向沉淀池的第一出口,221为逆向沉淀池的第二出口;
31为过滤池的入口,32为过滤池的排污口,33为过滤池的出水口;34为排污管道,35为水泵,36为定时器;
41为生态曝气池的入口,42为生态曝气池的出口;
51为紫外杀菌池的入口,52为紫外杀菌池的出口;53为挡板。
具体实施方式
下面结合具体实施例进一步说明本发明的内容,但不应理解为对本发明的限制。
在本发明的描述中,需要说明的是,术语“中心”、“上”、“下”、“左”、“右”“竖直”、“水平”、“内”、“外”等指示的方位或位置关系为基于附图所示的方位或位置关系,仅是为了便于描述本发明和简化描述,而不是指示或暗示所指的装置或元件必须具有特定的方位、以特定的方位构造和操作,因此不能理解为对本发明的限制。此外,术语“第一”、“第二”、“第三”仅用于描述目的,而不能理解为指示或暗示相对重要性。
在本发明的描述中,需要说明的是,除非另有明确的规定和限定,术语“安装”、“相连”、“连接”应做广义理解,例如,可以是固定连接,也可以是可拆卸连接,或一体地连接;可以是机械连接,也可以是电连接;可以是直接相连,也可以通过中间媒介间接相连,可以是两个元件内部的连通。对于本领域的普通技术人员而言,可以具体情况理解上述术语在本发明中的具体含义。
实施例1
一种远程监控的自循环无人值守鱼菜共生系统,如图1所示,所述鱼菜共生系统包括通过管道依次连接的养鱼池1、逆向沉淀池2、多级过滤池3、生态曝气池4、紫外杀菌池5和蔬菜培养架6;所述养鱼池1内设有水位控制装置、水质探测装置和自动定时投喂装置16,所述水位控制装置包括水位自动补给控制阀12、水位传感器13、电控阀14和执行器15,所述电控阀14与所述水位自动补给控制阀12连接,所述水位传感器13和电控阀14分别与所述执行器15连接,用于监控三级水位线;所述水质探测装置包括水质探测器17与显示器18,所述水质探测器17与所述显示器18连接,并通过wifi连接手机APP,用于实时监控;所述自动定时投喂装置16悬挂于养鱼池1的水位线上方;所述自动定时投喂装置包括喂料存储器和投喂定时器;所述投喂定时器连接于干电池或者变压器接市电提供电源;所述蔬菜培养架6的底部设有排水口;所述排水口通过水管经回水泵7与所述养鱼池连接。
所述养鱼池1内还设有上水水泵11;所述逆向沉淀池2包括沉淀区21和排污收集区22;所述沉淀区设有垂直于底部的若干毛刷;所述毛刷由不锈钢或塑料的网架架设,所述毛刷底端距离所述逆向沉淀池的沉淀区底部20-80cm。所述沉淀区的一侧底端设有入口211,另一侧顶端设有第一出口212,所述排污收集区22设有第二出口221,所述第一出口212和第二出口221位于所述逆向沉淀池2的同侧;所述上水水泵与所述逆向沉淀池的入口211通过水管连接。
所述过滤池3设有多级过滤层,所述过滤池的一侧顶部侧端设有入口31,另一侧的底部侧端设有出水口33;在各过滤层处分别设有排污口32;所述沉淀池2的第一出口212与所述过滤池3的入口31连接;所述沉淀池的第二出口221 和所述过滤池的排污口32通过排污管道34连接;所述排污管道34上设有水泵 35,经定时器36接入电源。
所述过滤层从上到下依次铺设有粗过滤棉、细过滤棉和超细过滤棉。所述粗过滤棉的孔径为10-20PPI,所述细过滤棉的孔径为20-40PPI,所述超细过滤棉的孔径为40-60PPI。
所述生态曝气池4的底部侧端设有入口41,另一侧的顶部侧端设有出口42,所述生态曝气池内填充K3硝化材料并通入氧气;所述生态曝气池的入口41与所述过滤池的出水口33连接。
所述紫外杀菌池4的顶部两侧设有入口51和出口52,所述紫外杀菌池4的内部设置有挡板53和沉浸式紫外灯,所述挡板53呈间隔上下错落排列,所述浸式紫外灯固定于所述挡板53上;所述紫外杀菌池的入口51与所述生态曝气池的出口42连接;所述紫外杀菌池的出口52与所述蔬菜培养架6的顶端连接。
所述蔬菜培养架6由纵向并联排列的若干管道组成,所述蔬菜培养架6的顶端收集的水流向所述管道,所述管道上设有小孔,用于种植植物。
所述养鱼池1设有三级水位线,分别为警戒水位线,安全水位线和缺水水位线;所述水位传感器13用于监控所述三级水位线,并传输信号给执行器15,控制电控阀14,用于水位自动补给控制阀12的应急控制,即如果水位自动补给控制阀12出现故障导致供水出现问题,通过水位传感器13、执行器15,控制电控阀14组合仍然可以准确控制水箱水位,避免出现缺水或者溢水问题,实现水位控制双保障;水质探测器17监测水体pH值、溶解氧和温度等养殖参数,通过显示器18实时展示,并通过wifi连接手机APP。
应用例
本发明的鱼菜共生系统的使用方法,包括如下具体步骤:
1.上水水泵抽水至逆向沉淀池底部向上溢流,通过毛刷吸附和阻挡作用进行初级颗粒物吸附沉淀;
2.沉淀之后的水依据自动水压水平进入正向三级过滤池,进行粗过滤、两层细过滤。过滤棉由不锈钢网架架设离底部20cm,用于水中污浊物沉淀汇集;在两层细过滤棉上方1厘米处分别设3根集污管,将滤棉上方污物收集并排除;在两层细过滤棉下方1厘米处分别设3根反冲洗管,由定时器控制,每周自动反冲洗1次。逆向沉淀池和过滤池的沉积物通过集污管汇集后,由定时器控制,实现每周2次、每次5分钟自动排污用于盆栽花卉及土地灌溉。
3.从正向三级过滤池出来的水进入生态曝气池,通过向上溢流作用经硝化细菌转化之后,利用水压进入紫外杀菌池。
4.在紫外杀菌池设若干个隔板,每个隔间用一盏紫外灯,紫外杀菌池中的水因为隔板的阻挡作用出现缓流,呈S型前进;在每一个隔间设置紫外灯用于杀菌,实现多级紫外杀菌;提高暴露在紫外线下的时间,从而增强了紫外杀菌效果。从紫外杀菌池出来的水进入蔬菜栽培管道。
5.从栽培管道出来的水流回鱼缸或鱼池。鱼缸或鱼池设自动投喂装置、自动供水系统和水位警戒系统。自动供水系统连接市用自来水,由水位自动补给控制阀控制;当缺水时,水位自动补给控制阀自动打开进行补水;当水位到达合适位置,水位自动补给控制阀停止工作;水位传感器监控水位变化,当水位超过警戒线时,供信号给执行器和电动阀门,切断自来水供应,防止溢水。通过水位传感器的检测,实现水位警戒,水位超限则关闭电动阀门。温度、pH值、溶解氧等参数通过显示器实时展示,并通过APP实现手机通讯,从而实现远程控制。
上述实施例为本发明较佳的实施方式,但本发明的实施方式并不受上述实施例的限制,其他的任何未背离本发明的精神实质与原理下所作的改变、修饰、替代、组合和简化,均应为等效的置换方式,都包含在本发明的保护范围之内。
Claims (1)
1.一种远程监控的自循环无人值守鱼菜共生系统,其特征在于,所述鱼菜共生系统包括通过管道依次连接的养鱼池、逆向沉淀池、多级过滤池、生态曝气池、紫外杀菌池和蔬菜培养架;所述养鱼池内设有三级水位线,分别为警戒水位线,安全水位线和缺水水位线,所述养鱼池内设有水位控制装置、水质探测装置和自动定时投喂装置,所述水位控制装置包括水位自动补给控制阀、水位传感器、电控阀和执行器,所述电控阀与所述水位自动补给控制阀连接,所述水位传感器和电控阀分别与所述执行器连接,用于监控三级水位线;所述水质探测装置包括水质探测器与显示器,所述水质探测器与所述显示器连接,并通过wifi连接手机APP,用于实时监控;所述自动定时投喂装置悬挂于养鱼池的水位线上方;所述自动定时投喂装置包括喂料存储器和投喂定时器;所述投喂定时器连接于变压器接市电提供电源;所述蔬菜培养架的底部设有排水口;所述排水口通过管道经回水泵与所述养鱼池连接;
所述养鱼池内还设有上水水泵;所述逆向沉淀池包括沉淀区和排污收集区;所述沉淀区设有垂直于底部的若干毛刷;所述沉淀区的一侧底端设有入口,另一侧顶端设有第一出口,所述排污收集区设有第二出口,所述第一出口和第二出口位于所述逆向沉淀池的同侧;所述上水水泵与所述逆向沉淀池的入口通过管道连接;
所述过滤池设有多级过滤层,所述过滤池的一侧顶部侧端设有入口,另一侧的底部侧端设有出水口;在各过滤层处分别设有排污口;所述逆向沉淀池的第一出口与所述过滤池的入口连接;所述逆向沉淀池的第二出口和所述过滤池的排污口通过排污管道连接;所述排污管道上设有水泵,经定时器接入电源;
所述多级过滤层从上到下依次铺设粗过滤棉、细过滤棉和超细过滤棉;所述粗过滤棉的孔径为10~20PPI,所述细过滤棉的孔径为20~40PPI,所述超细过滤棉的孔径为40~60PPI;
所述生态曝气池的底部侧端设有入口,另一侧的顶部侧端设有出口,所述生态曝气池的入口与所述过滤池的出水口连接;所述紫外杀菌池内部设置有挡板和沉浸式紫外灯,所述挡板呈间隔上下错落排列,所述浸式紫外灯固定于所述挡板上;所述紫外杀菌池的顶部两侧分别设有入口和出口,所述紫外杀菌池的入口与所述生态曝气池的出口连接;所述紫外杀菌池的出口与所述蔬菜培养架的顶端连接;所述蔬菜培养架由纵向并联排列的若干管道组成,所述蔬菜培养架的顶端收集的水流向所述管道,所述管道上设有小孔,用于种植植物;所述鱼菜共生系统在6个月以上无需换水及人工打理,实现无人管理值守。
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