CN110553136A - 一种基于太阳能发电的电解水制氢用氢气储存罐 - Google Patents
一种基于太阳能发电的电解水制氢用氢气储存罐 Download PDFInfo
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Abstract
本发明公开了一种基于太阳能发电的电解水制氢用氢气储存罐,包括底座和罐体,底座的顶部中心开设有限位槽,且限位槽内卡接有罐体,罐体的顶部中心设置有进气口,罐体的顶部安装有压力传感器,且罐体的外侧依次安装有报警器、压力表和控制器,底座内等距开设有滑槽,且滑槽内滑动连接有滑板,滑板的端部穿过底座,罐体的外侧连接有支撑环,且支撑环的外侧等距转动连接有连接杆,连接杆的端部转动连接在滑板的端部,支撑环的外侧等距开设有三个通孔,且通孔内滑动连接有滑杆,滑杆的一端固定连接有压板,此氢气储存罐具有较好的稳定性和减震效果,同时对罐体具有较好的保护性,便于更好的储存氢气。
Description
技术领域
本发明涉及氢气储存罐技术领域,具体为一种基于太阳能发电的电解水制氢用氢气储存罐。
背景技术
低碳、低污染、低成本、可利用价值高的能源正在被越来越多的人接受,太阳能作为一种清洁能源具有非常重要的优势,利用太阳能发电的电解水制氢能够节省大量的电力资源,制得的氢气需要通过氢气储存罐进行储存。
现在的氢气储存罐设置的结构较为固定单一不便于移动,储存罐的稳定性较差,且现在的氢气储存罐保护性能差,容易与外界尖锐物碰撞造成破坏,为此,我们提出一种基于太阳能发电的电解水制氢用氢气储存罐。
发明内容
本发明的目的在于提供一种基于太阳能发电的电解水制氢用氢气储存罐,以解决上述背景技术中提出的问题。
为实现上述目的,本发明提供如下技术方案:一种基于太阳能发电的电解水制氢用氢气储存罐,包括底座和罐体,所述底座的顶部中心开设有限位槽,且限位槽内卡接有罐体,所述罐体的顶部中心设置有进气口,所述罐体的顶部安装有气压传感器,且罐体的外侧依次安装有报警器、压力表和控制器,所述底座内等距开设有滑槽,且滑槽内滑动连接有滑板,所述滑板的端部穿过底座,所述罐体的外侧连接有支撑环,且支撑环的外侧等距转动连接有连接杆,所述连接杆的端部转动连接在滑板的端部,所述支撑环的外侧等距开设有三个通孔,且通孔内滑动连接有滑杆,所述滑杆的一端固定连接有压板,且压板远离滑板的一侧贴合连接在罐体外侧,所述滑杆另一端的外侧设置有外螺纹,且滑杆位于外螺纹的一端螺纹连接有螺帽,所述滑杆外侧位于压板及支撑环之间套接有弹簧。
优选的,所述底座顶部的限位槽内固定连接有减震垫,所述罐体的底部连接在减震垫顶部。
优选的,所述底座的底部等距安装有自锁轮。
优选的,所述压板为弧形结构,所述压板远离滑杆的一侧固定连接有防滑垫,所述压板通过防滑垫与罐体连接。
优选的,所述进气口的外侧安装有控制阀。
优选的,所述滑板位于底座内部一端的高度大于滑板位于底座外部一端的高度。
与现有技术相比,本发明的有益效果是:
1、本发明通过底座底部的自锁轮能够实现对该罐体的移动,通过滑板在底座内的滑动,可以根据需要增加储存罐底座的支撑面积,通过支撑环起到了对罐体的固定支撑作用,大大增加了罐体的稳定性,储存效果较好,当需要将罐体置于底座上的限位槽内时,将支撑环置于靠近底座的位置,此时的滑板最大范围的置于底座外部,罐体安装完成后控制支撑环上滑,使支撑环对罐体起到较好支撑效果,便于保护罐体。
2、本发明通过气压传感器能够检测到罐体内的气压,当罐体内气压大于气压传感器设定值时,气压传感器检测到信号并将信号传递至控制器,控制器控制报警器报警,提醒人们及时停止对氢气的注入,通过压板及弹簧的设置起到对罐体的顶紧作用,提高了罐体的稳定性,同时支撑环能够较好的保护罐体,有效的防止了罐体与气压尖锐物碰撞造成损坏的情况。
附图说明
图1为本发明整体结构示意图;
图2为本发明俯视图结构示意图。
图中:1、底座;2、罐体;3、进气口;4、控制阀;5、气压传感器;6、报警器;7、压力表;8、控制器;9、支撑环;10、滑板;11、连接杆;12、滑槽;13、自锁轮;14、滑杆;15、压板;16、弹簧;17、防滑垫;18、减震垫。
具体实施方式
下面将结合本发明实施例中的附图,对本发明实施例中的技术方案进行清楚、完整地描述,显然,所描述的实施例仅仅是本发明一部分实施例,而不是全部的实施例。基于本发明中的实施例,本领域普通技术人员在没有做出创造性劳动前提下所获得的所有其他实施例,都属于本发明保护的范围。
请参阅图1-2,本发明提供一种技术方案:一种基于太阳能发电的电解水制氢用氢气储存罐,包括底座1和罐体2,底座1的顶部中心开设有限位槽,且限位槽内卡接有罐体2,通过罐体2的设置便于储存氢气,罐体2的顶部中心设置有进气口3,通过进气口3便于向罐体2内部注入氢气,罐体2的顶部安装有气压传感器5,且罐体2的外侧依次安装有报警器6、压力表7和控制器8,通过气压传感器5能够检测到罐体2内部的气压情况,当罐体2内部气压大于设定的值时,气压传感器5检测到信号并将该信号传递至控制器8,控制器8控制报警器6报警,提醒人们及时停止对氢气的注入,底座1内等距开设有滑槽12,且滑槽12内滑动连接有滑板10,滑板10的端部穿过底座1,罐体2的外侧连接有支撑环9,且支撑环9的外侧等距转动连接有连接杆11,连接杆11的端部转动连接在滑板10的端部,通过滑板10在底座1内的滑动连接,可以根据需要将滑板10端部滑出底座1一端距离,使罐体2底部的支撑面增大,大大增加了罐体2连接的稳定性,支撑环9的外侧等距开设有三个通孔,且通孔内滑动连接有滑杆14,滑杆14的一端固定连接有压板15,且压板15远离滑板10的一侧贴合连接在罐体2外侧,滑杆14另一端的外侧设置有外螺纹,且滑杆14位于外螺纹的一端螺纹连接有螺帽,滑杆14外侧位于压板15及支撑环9之间套接有弹簧16,通过压板15能够对罐体2的外侧进行挤压固定,弹簧16的设置起到了缓冲的作用,便于保护罐体2,将罐体2置于支撑环9内,有效的避免了整个罐体2暴露在外部导致其与外界的尖锐物碰撞造成损坏的情况。
底座1顶部的限位槽内固定连接有减震垫18,罐体2的底部连接在减震垫18顶部,通过减震垫18的设置起到了较好的减震效果,便于保护罐体2。
底座1的底部等距安装有自锁轮13,便于实现装置的移动。
压板15为弧形结构,压板15远离滑杆14的一侧固定连接有防滑垫17,压板15通过防滑垫17与罐体2连接,通过压板15能够对罐体2进行挤紧,增加了罐体2的稳定性,同时防滑垫17起到较好的防滑效果,防止压板15与罐体2之间的连接不牢靠。
进气口3的外侧安装有控制阀4,便于控制进气口3的通断。
滑板10位于底座1内部一端的高度大于滑板10位于底座1外部一端的高度,防止滑板10与底座1脱离连接。
需要说明的是,在本文中,诸如第一和第二等之类的关系术语仅仅用来将一个实体或者操作与另一个实体或操作区分开来,而不一定要求或者暗示这些实体或操作之间存在任何这种实际的关系或者顺序。而且,术语“包括”、“包含”或者其任何其他变体意在涵盖非排他性的包含,从而使得包括一系列要素的过程、方法、物品或者设备不仅包括那些要素,而且还包括没有明确列出的其他要素,或者是还包括为这种过程、方法、物品或者设备所固有的要素。
尽管已经示出和描述了本发明的实施例,对于本领域的普通技术人员而言,可以理解在不脱离本发明的原理和精神的情况下可以对这些实施例进行多种变化、修改、替换和变型,本发明的范围由所附权利要求及其等同物限定。
Claims (6)
1.一种基于太阳能发电的电解水制氢用氢气储存罐,包括底座(1)和罐体(2),其特征在于:所述底座(1)的顶部中心开设有限位槽,且限位槽内卡接有罐体(2),所述罐体(2)的顶部中心设置有进气口(3),所述罐体(2)的顶部安装有气压传感器(5),且罐体(2)的外侧依次安装有报警器(6)、压力表(7)和控制器(8),所述底座(1)内等距开设有滑槽(12),且滑槽(12)内滑动连接有滑板(10),所述滑板(10)的端部穿过底座(1),所述罐体(2)的外侧连接有支撑环(9),且支撑环(9)的外侧等距转动连接有连接杆(11),所述连接杆(11)的端部转动连接在滑板(10)的端部,所述支撑环(9)的外侧等距开设有三个通孔,且通孔内滑动连接有滑杆(14),所述滑杆(14)的一端固定连接有压板(15),且压板(15)远离滑板(10)的一侧贴合连接在罐体(2)外侧,所述滑杆(14)另一端的外侧设置有外螺纹,且滑杆(14)位于外螺纹的一端螺纹连接有螺帽,所述滑杆(14)外侧位于压板(15)及支撑环(9)之间套接有弹簧(16)。
2.根据权利要求1所述的一种基于太阳能发电的电解水制氢用氢气储存罐,其特征在于:所述底座(1)顶部的限位槽内固定连接有减震垫(18),所述罐体(2)的底部连接在减震垫(18)顶部。
3.根据权利要求1所述的一种基于太阳能发电的电解水制氢用氢气储存罐,其特征在于:所述底座(1)的底部等距安装有自锁轮(13)。
4.根据权利要求1所述的一种基于太阳能发电的电解水制氢用氢气储存罐,其特征在于:所述压板(15)为弧形结构,所述压板(15)远离滑杆(14)的一侧固定连接有防滑垫(17),所述压板(15)通过防滑垫(17)与罐体(2)连接。
5.根据权利要求1所述的一种基于太阳能发电的电解水制氢用氢气储存罐,其特征在于:所述进气口(3)的外侧安装有控制阀(4)。
6.根据权利要求1所述的一种基于太阳能发电的电解水制氢用氢气储存罐,其特征在于:所述滑板(10)位于底座(1)内部一端的高度大于滑板(10)位于底座(1)外部一端的高度。
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