WO2019042206A1 - 镍基石墨烯场效应水体矿化装置 - Google Patents

镍基石墨烯场效应水体矿化装置 Download PDF

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WO2019042206A1
WO2019042206A1 PCT/CN2018/101850 CN2018101850W WO2019042206A1 WO 2019042206 A1 WO2019042206 A1 WO 2019042206A1 CN 2018101850 W CN2018101850 W CN 2018101850W WO 2019042206 A1 WO2019042206 A1 WO 2019042206A1
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nickel
based graphene
field effect
water body
material plate
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PCT/CN2018/101850
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French (fr)
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刘铁林
刘南林
缪剑锋
王亚普
欧阳光友
刘理政
刘理汉
黎明
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刘铁林
刘南林
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Publication of WO2019042206A1 publication Critical patent/WO2019042206A1/zh

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    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/46Treatment of water, waste water, or sewage by electrochemical methods
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01JELECTRIC DISCHARGE TUBES OR DISCHARGE LAMPS
    • H01J1/00Details of electrodes, of magnetic control means, of screens, or of the mounting or spacing thereof, common to two or more basic types of discharge tubes or lamps
    • H01J1/02Main electrodes
    • H01J1/30Cold cathodes, e.g. field-emissive cathode
    • H01J1/304Field-emissive cathodes
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01JELECTRIC DISCHARGE TUBES OR DISCHARGE LAMPS
    • H01J9/00Apparatus or processes specially adapted for the manufacture, installation, removal, maintenance of electric discharge tubes, discharge lamps, or parts thereof; Recovery of material from discharge tubes or lamps
    • H01J9/02Manufacture of electrodes or electrode systems
    • H01J9/022Manufacture of electrodes or electrode systems of cold cathodes
    • H01J9/025Manufacture of electrodes or electrode systems of cold cathodes of field emission cathodes
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F2201/00Apparatus for treatment of water, waste water or sewage
    • C02F2201/46Apparatus for electrochemical processes

Definitions

  • the nickel-based graphene field effect water body mineralization device is an environmental protection device for applying sewage treatment by cold cathode field emission effect, and belongs to the field of sewage treatment.
  • a nano-scale doped carbon atom can be formed on the surface of foamed nickel.
  • the graphene film of the profiled composite has a dramatic increase in the specific surface area of the foamed nickel to 2630 square meters per gram.
  • the foamed nickel-based graphene material can transfer electrons in a quantum tunneling manner, and a nucleus such as a hydrogen atom or a heavy hydrogen atom, and at the tip end of the surface microdomain can cause a vortex motion to generate a TF field, and Coherent with the zero point energy to extract the zero point energy, thereby generating a certain number of abnormally high-energy charged particles with superluminal speed.
  • some free-vibrating electrons on the surface of the foamed nickel-based graphene interact with photons to generate electron-dense waves propagating along the surface, which can form surface plasmons (SPs) electromagnetic surface waves, and at the same time, the electric field components of the light waves appear.
  • SPs surface plasmons
  • Hydroxyl radical ( ⁇ OH) with high reactivity is the starting point of mineralization reaction in water. With the hydrogen, hydrogen and oxygen atoms, oxygen molecules and hydroxyl radicals ( ⁇ OH) in the water, the water is in the water. The number of hydroxyl radicals ( ⁇ OH) increases geometrically, as is more and more like snowballing. Just like the neutrons that initiate the nuclear fission chain reaction, various organic molecules (including algae) in the vast waters can be quickly transferred. Oxidation produces water and carbon dioxide gas, which greatly reduces the COD value and conductivity, and makes the water body mineralized.
  • the nickel-based graphene field effect of the invention is realized by the use of foamed nickel-based graphene materials such as electron tunneling, cold cathode electron emission, surface plasmon resonance and coupled electromagnetic wave, photomultiplier phenomenon and hydroxyl radical ( ⁇ OH) chain reaction.
  • the water mineralization device has created a miracle of graphene field effect water body mineralization, enabling humans to realize the great dream of low energy consumption and high efficiency to control large-scale water pollution.
  • the nickel-based graphene field-effect water body mineralization device is composed of a plurality of foamed nickel-based graphene material plate electrodes, a field effect plate assembly, a plate combined external casing and an external low frequency power supply.
  • the foamed nickel-based graphene material plate electrode has significant surface plasmon resonance and coupling effect. Under the action of illumination and electric field, it can generate field emission electron multiplication effect, and simultaneously excite high energy particle plasma electromagnetic wave water body mineralization chain reaction, which is nickel.
  • the core component of the graphene field effect water body mineralization device is composed of a plurality of foamed nickel-based graphene material plate electrodes, a field effect plate assembly, a plate combined external casing and an external low frequency power supply.
  • the foamed nickel-based graphene material plate electrode has significant surface plasmon resonance and coupling effect. Under the action of illumination and electric field, it can generate field emission electron multiplication effect, and simultaneously excite high energy particle plasma electromagnetic wave water body mineralization chain reaction, which is nickel.
  • the field effect plate combination uses a metal copper rod connected with a plate electrode of an odd foamed nickel-based graphene material, and a metal copper rod connected to a plate electrode of an even foamed nickel-based graphene material, and connects a plurality of foamed nickel-based graphene material plate electrodes to Parallel capacitor form.
  • the field effect plate combination with the function of parallel capacitance not only has a large capacitance, but also can improve the plasma electromagnetic surface wave resonance effect and the water mineralization reaction rate.
  • a mesh-shaped hollow insulating spacer is interposed between the plate electrodes of the foamed nickel-based graphene material, which can prevent short circuit between the flat electrodes of the foamed nickel-based graphene material and maintain water communication between the flat electrodes of the foamed nickel-based graphene material.
  • the cage hollowed out casing is used to protect the internal field effect plate assembly, and also to keep the water inside the casing and the external water body unblocked.
  • the field effect plate combination is connected to the low frequency power supply via a wire.
  • the low-frequency power supply provides the electric field energy of the specific frequency for the field effect plate combination to improve the free electron vibration energy of the field emission and the electromagnetic surface wave range of the surface plasmons (SPs), which is beneficial to realize the mineralization of water in the super-large waters.
  • SPs surface plasmons
  • the field effect plate assembly floats on the surface of the water body in a semi-submersible manner. This attitude, on the one hand, is conducive to the reception of light energy, on the other hand, it is conducive to the communication with the water body as a whole.
  • the external low frequency power supply should be placed outside the water to avoid malfunction due to flooding.
  • the nickel-based graphene field effect water body mineralization device has the advantages of low energy consumption, high efficiency and large scope of action. It can quickly eliminate organic matter and algae such as pesticides, dyes, fertilizers, drugs, hormones, etc. in water, and can greatly reduce COD value and conductivity, and has no secondary pollution, and does not affect the natural growth of fish, aquatic plants and microorganisms, which is conducive to rapid Restoring the original ecology of water bodies, it is suitable for controlling polluted water bodies in cities, villages and factories, and restoring the natural ecology of rivers and lakes.
  • the nickel-based graphene field-effect water body mineralization device comprises a rectangular parallelepiped grid-like hollow insulating separator (1) and a rectangular parallelepiped hollow insulating spacer (1) interposed between the foamed nickel-based graphene material plate electrodes (1) ( 2), parallel capacitor form inserting foamed nickel-based graphene material plate electrode (1) consisting of a rectangular body field plate assembly (5), connecting field effect plate combination (5) odd foam nickel-based graphene material plate electrode ( 1) upper copper rod (3), connection field effect plate combination (5) even foam nickel-based graphene material plate electrode (1) lower copper rod (4), made of mesh hollow plate for protection field
  • the cage of the effect plate assembly (5) (8), the cabinet type low frequency power supply (7), and the cabinet type low frequency power supply (7) are connected to the flexibility of the copper rod (3) and the lower copper rod (4)
  • the wire (6) is constructed.
  • the foamed nickel-based graphene material plate electrode (1) is composed of a foamed nickel and a layer of nanometer-scale graphene film doped with a carbon atom allotrope and a composite thereof having different structures and properties.
  • the shunt capacitor form field effect plate assembly (5) is composed of two or more foamed nickel-based graphene material plate electrodes (1).
  • the cabinet type low frequency power supply (7) is connected to the copper rod (3) and the lower copper rod (4) through the flexible wire (6) to provide electric field energy of a specific frequency for the field effect plate assembly (5).
  • the field effect plate combination (5) in the form of a parallel capacitor floats on the surface of the water body in a semi-submersible manner.
  • the external low-frequency power source (7) is placed outside the water body.
  • Figure 1 is a side view of a rectangular plate of a rectangular parallelepiped foamed nickel-based graphene material (1).
  • Figure 2 is a front elevational view of a rectangular electrode foamed nickel-based graphene material plate electrode (1).
  • Figure 3 is a side view of a rectangular parallelepiped hollow insulating spacer (2).
  • Figure 4 is a front elevational view of the rectangular parallelepiped hollow insulating spacer (2).
  • Figure 5 is a schematic view of a cuboid field effect plate assembly (5).
  • Figure 6 is a front view of the cuboid field effect plate assembly (5).
  • Figure 7 is a plan view of a cuboid field effect plate assembly (5).
  • Figure 8 is a bottom view of the cuboid field effect plate assembly (5).
  • Figure 9 is a side view of the cuboid field effect plate assembly (5).
  • Figure 10 is a front elevational view of the caged rectangular box casing (8).
  • Figure 11 is a schematic view of a caged rectangular box casing (8).
  • Figure 12 is a schematic view of a cabinet type low frequency power supply (7).
  • FIG. 13 Schematic diagram of nickel-based graphene field effect water body mineralization device
  • the nickel-based graphene field-effect water body mineralization device comprises a rectangular parallelepiped grid-like hollow insulating separator (1) and a rectangular parallelepiped hollow insulating spacer (1) interposed between the foamed nickel-based graphene material plate electrodes (1) ( 2), parallel capacitor form inserting foamed nickel-based graphene material plate electrode (1) consisting of a rectangular body field plate assembly (5), connecting field effect plate combination (5) odd foam nickel-based graphene material plate electrode ( 1) upper copper rod (3), continuous field effect plate combination (5) even foam nickel-based graphene material plate electrode (1) lower copper rod (4), made of mesh hollow plate for protection field
  • the flexible wire (6) is constructed.
  • a foamed nickel plate having a thickness of about 0.5 cm is cut into a rectangular parallelepiped having an area of about 50 ⁇ 100 (cm), and a method of forming a diamond-like film by a vacuum high-frequency plasma chemical vapor deposition of a diamond-like film by adjusting the SP3 bond and the SP2 bond of the diamond-like film in a rectangular parallelepiped
  • a six-layered surface of the foamed nickel is deposited with a layer of a graphene film doped with an SP2 bond and a graphene film of a carbon atom allotrope and a composite thereof having a different structure and properties, and a rectangular parallelepiped foamed nickel-based graphene material plate is prepared.
  • the field effect plate combination (5) in the form of a parallel capacitor is composed of two or more foamed nickel-based graphene material plate electrodes (1).
  • a grid-like hollow insulating spacer (2) made of polytetrafluoroethylene is installed between the foamed nickel-based graphene material plate electrode (1), and the mesh-shaped hollow insulating spacer (2) made of polytetrafluoroethylene should be slightly smaller. It is larger than the foamed nickel-based graphene material plate electrode (1), which prevents short circuit of the odd-numbered foam nickel-based graphene material plate electrode (1) and the even-numbered foam nickel-based graphene material plate electrode (1).
  • a 55X105X110 (cm) cage-shaped rectangular box casing (8) was fabricated using a mesh hollow stainless steel sheet having a thickness of about 0.2 cm, and the field effect plate assembly (5) was placed in a cage-shaped rectangular casing (8).
  • the upper copper rod (3) on the top surface of the plate assembly (5), the lower copper rod (4) on the bottom surface of the effect plate assembly (5) and the cage rectangular box casing (8) are insulated.
  • the cabinet type low frequency power supply (7) is connected to the upper copper rod (3) on the top surface of the effect plate assembly (5) and the lower copper rod on the bottom surface of the effect plate assembly (5) through two flexible wires (6). 4) Provide electric field energy of a specific frequency for the field effect plate combination.
  • the field-effect plate combination (5) in the form of a parallel capacitor floats on the surface of the water body in a semi-submersible manner, and the external low-frequency power source (7) is placed outside the water body. According to the size of the water body, multiple nickel-based graphene field effect water mineralization devices can be used simultaneously.

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  • Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • General Chemical & Material Sciences (AREA)
  • Electrochemistry (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Hydrology & Water Resources (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Environmental & Geological Engineering (AREA)
  • Water Supply & Treatment (AREA)
  • Organic Chemistry (AREA)
  • Manufacturing & Machinery (AREA)
  • Electrodes For Compound Or Non-Metal Manufacture (AREA)
  • Water Treatment By Electricity Or Magnetism (AREA)
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Abstract

镍基石墨烯场效应水体矿化装置是应用冷阴极场发射效应进行污水处理的环保设备,属于污水处理领域。该装置由多块泡沫镍基石墨烯材料平板电极并列插装制作的场效应极板组合、外部壳体及外接低频电源构成。泡沫镍基石墨烯材料在光照和电场作用下,能够发生场发射电子倍增效应,同时激发高能粒子等离子体电磁波耦合共振及水体矿化链式反应。因此,该装置具有能耗低,效率高、作用范围大的特点,可以快速消除水体中农药、染料、化肥、药物、激素等有机物及藻类,还可以大幅度降低COD值和电导率,并且无二次污染,不影响鱼类、水生植物、微生物自然生长,适用于治理城市、乡村、工厂的污染水体,以及恢复江河、湖泊的自然生态。

Description

镍基石墨烯场效应水体矿化装置 技术领域
镍基石墨烯场效应水体矿化装置是应用冷阴极场发射效应进行污水处理的环保设备,属于污水处理领域。
背景技术
采用常温真空条件下借助高频等离子体化学气相沉积类金刚石膜的方法,通过控制SP3键及SP2键生成条件,可以在镍基衬底表面得到结构和性能不同的碳原子同素异形体及其复合物,如石墨烯、石墨炔、碳纳米管、富勒烯及金刚石等。科学实验证实,石墨烯在电学、光学、热学、力学等方面具有优异的性能。石墨烯几乎不需要能量即可以发射电子,还能以比其他任何材料快100倍的速度传导电子或空穴,这几乎接近光速。石墨烯与其他一个光子产生一个电子的材料不同,一个入射光子会使石墨烯中的许多电子受激从而产生大量电子信号。石墨烯表面电子逸出功极低,在低能态下,具有场致冷阴极发射电子的量子隧穿效应。
借助高频等离子体化学气相沉积类金刚石膜的方法,通过调整类金刚石膜SP3键及SP2键生成条件,可以在泡沫镍表面生成一层纳米级的掺杂着结构和性能不同的碳原子同素异形体复合物的石墨烯薄膜,使泡沫镍比表面积得到飞跃性提高,达到每克2630平方米。这种泡沫镍基石墨烯材料能够以量子隧穿效应方式来转移电子,及氢原子、重氢原子一类的原子核,同时在其表面微区的尖端能够引起涡旋运动而产生挠场,并与零点能相干而提取零点能,由此而产生一定数量的超光速异常高能带电粒子。此外,泡沫镍基石墨烯表面的一些自由振动的电子通过与光子相互作用,产生了沿着表面传播的电子疏密波,可以形成等离子体(surfaceplasmons,SPs)电磁表面波,同时出现光波电场分量作用于石墨烯表面自由电子,引发自由电子沿光传播方向的纵波振荡(即产生共振现象),使一部分光波能量转化为自由电子振动能量。
当泡沫镍基石墨烯材料浸入水中时,在光照和外加低频电场作用下,等离子体电磁表面电子疏密波与水体内部的氢离子发生碰撞后生成氢原子及氢分子。氢原子与水体中氧分子碰撞生成与原子氧(O)和羟基自由基(·OH),氢分子与氧分子碰撞生成两个羟基自由基(·OH)。羟基自由基(·OH)具有极强的得电子能力,氧化电位2.8V,产生极强的氧化能力。羟基自由基可与大多数有机污染物发生无选择性的快速链式反应,氧化生成CO2、H2O或矿物盐、无二次污染。具有高度反应活泼性的羟基自由基(·OH)是水体矿化反应的起点,随着水体中氢原子、氢分子和氧原子、氧分子、羟基自由基(·OH)相继反应,水体中的羟基自由基(·OH)的数量以几何级数增长,如滚雪球一样越来越多,正如引发核裂变链式反应的中子一样,可以迅速将辽阔水域中的各种有机物分子(包括藻类)氧化生成水和二氧化碳气体,大幅度降低COD值和电导率,使水体深度矿化。此外,一部分氢原子能够渗入泡沫镍金属内部,以电子和质子形态,借助量子隧道及石墨烯表面微区的尖端引起涡旋运动而产生挠场,成功实现了自旋反转,所产生的高能粒子大幅度提高了场发射自由电子波的能量及作用范围。因此,利用泡沫镍基石墨烯材料电子遂穿、冷阴极电子发射、表面等离子体共振与耦合电磁波、光电倍增现象及羟基自由基(·OH)链式反应等性能发明的镍基石墨烯场效应水体矿化装置,开创了石墨烯场效应水体矿化的奇迹,使人类实现了低能耗、高效率治理大范围水域污染的伟大梦想。
镍基石墨烯场效应水体矿化装置,是由多块泡沫镍基石墨烯材料平板电极插装制作的场效应极板组合、极板组合外部壳体及外接低频电源构成。泡沫镍基石墨烯材料平板电极具有显著的表面等离子体共振与耦合效应,在光照和电场作用下,能够产生场发射电子倍增效应,同时激发高能粒子等离子体电磁波水体矿化链式反应,是镍基石墨烯场效应水体矿化装置的核心部件。场效应极板组合采用连接奇数泡沫镍基石墨烯材料平板电极的金属铜棒,及连接偶数泡沫镍基石墨烯材料平板电极的金属铜棒,将多块泡沫镍基石墨烯材料平板电极连接为并联电容形式。具有并联电容功能的场效应极板组合,不仅具有较大的电容量,而且能够提高等离子体电磁表面波共振效应和水体矿化反应速率。泡沫镍基石墨烯材料平板电极之间插入网状镂空绝缘隔板,既可以防止泡沫镍基石墨烯材料平板电极之间短路,又可以保持泡沫镍基石墨烯材料平板电极之间水体联通。笼式镂空外壳用于保护其内部的场效应极板组合,还可以保持壳体内部水体与外部水体畅通。场效应极板组合通过导线与低频电源连接。低频电源为场效应极板组合提供特定频率的电场能量,以提高场发射自由电子振动能量及等离子体(surfaceplasmons,SPs)电磁表面波作用范围,利于实现超大范围水域的水体矿化。
镍基石墨烯场效应水体矿化装置运行时,场效应极板组合是以半潜式漂浮在水体表面。这种姿态,一方面利于接收光能,另一方面利于与水体联通为整体。外接低频电源应当置于水体之外,可以避免因水浸造成故障。
镍基石墨烯场效应水体矿化装置具有能耗低,效率高、作用范围大的优点。可以快速消除水体中农药、染料、化肥、药物、激素等有机物及藻类,还可以大幅度降低COD值和电导率,并且无二次污染,不影响鱼类、水生植物、微生物自然生长,利于快速恢复水体的原始生态,适用于治理城市、乡村、工厂的污染水体,以及恢复江河、湖泊的自然生态。
技术问题
[根据细则26删除12.10.2018] 
技术解决方案
镍基石墨烯场效应水体矿化装置由长方体泡沫镍基石墨烯材料平板电极(1)、插装在泡沫镍基石墨烯材料平板电极(1)之间的长方体网格状镂空绝缘隔板(2)、并联电容形式插装泡沫镍基石墨烯材料平板电极(1)构成的长方体场效应极板组合(5)、连接场效应极板组合(5)奇数泡沫镍基石墨烯材料平板电极(1)的上铜棒(3)、连接场效应极板组合(5)偶数泡沫镍基石墨烯材料平板电极(1)的下铜棒(4)、由网格镂空板制作的用于保护场效应极板组合(5)的笼式长方体箱式外壳(8)、柜式低频电源(7)、以及柜式低频电源(7)连接上铜棒(3)与下铜棒(4)的柔性导线(6)构成。
泡沫镍基石墨烯材料平板电极(1)由泡沫镍及其表面覆盖的一层纳米级的掺杂着结构和性能不同的碳原子同素异形体及其复合物的石墨烯薄膜构成。
并联电容形式场效应极板组合(5)由两块以上泡沫镍基石墨烯材料平板电极(1)构成。
在泡沫镍基石墨烯材料平板电极(1)之间插装网格状镂空绝缘隔板(2),防止奇数泡沫镍基石墨烯材料平板电极(1)与偶数泡沫镍基石墨烯材料平板电极(1)发生短路。
柜式低频电源(7)通过柔性导线(6)连接上铜棒(3)、下铜棒(4),为场效应极板组合(5)提供特定频率的电场能量。
镍基石墨烯场效应水体矿化装置运行时,并联电容形式场效应极板组合(5)是以半潜式漂浮在水体表面。
镍基石墨烯场效应水体矿化装置运行时,将外接低频电源(7)置于水体之外。
有益效果
[根据细则26删除12.10.2018] 
附图说明
图1是长方体泡沫镍基石墨烯材料平板电极(1)侧视图。
图2是长方体泡沫镍基石墨烯材料平板电极(1)主视图。
图3是长方体网格状镂空绝缘隔板(2)侧视图。
图4是长方体网格状镂空绝缘隔板(2)主视图。
图5是长方体场效应极板组合(5)示意图。
图6是长方体场效应极板组合(5)主视图。
图7是长方体场效应极板组合(5)俯视图。
图8是长方体场效应极板组合(5)仰视图。
图9是长方体场效应极板组合(5)侧视图。
图10是笼式长方体箱式外壳(8)主视图。
图11是笼式长方体箱式外壳(8)示意图。
图12是柜式低频电源(7)示意图。
图13镍基石墨烯场效应水体矿化装置示意图
[根据细则26删除12.10.2018] 
本发明的实施方式
镍基石墨烯场效应水体矿化装置由长方体泡沫镍基石墨烯材料平板电极(1)、插装在泡沫镍基石墨烯材料平板电极(1)之间的长方体网格状镂空绝缘隔板(2)、并联电容形式插装泡沫镍基石墨烯材料平板电极(1)构成的长方体场效应极板组合(5)、连接场效应极板组合(5)奇数泡沫镍基石墨烯材料平板电极(1)的上铜棒(3)、连场效应极板组合(5)偶数泡沫镍基石墨烯材料平板电极(1)的下铜棒(4)、由网格镂空板制作的用于保护场效应极板组合(5)的笼式长方体箱式外壳(8)、柜式低频电源(7)、以及连接柜式低频电源(7)与上铜棒(3)、下铜棒(4)的柔性导线(6)构成。
将厚度约0.5厘米的泡沫镍板材切割为面积约50X100(厘米)的长方体,借助真空高频等离子体化学气相沉积类金刚石膜的方法,通过调整类金刚石膜SP3键及SP2键生成条件,在长方体形泡沫镍六个面均沉积一层以SP2键为主体的纳米级掺杂着结构和性能不同的碳原子同素异形体及其复合物的石墨烯薄膜,制作长方体泡沫镍基石墨烯材料平板电极(1)。
并联电容形式场效应极板组合(5)由两个以上泡沫镍基石墨烯材料平板电极(1)构成。泡沫镍基石墨烯材料平板电极(1)之间安装聚四氟乙烯制作的网格状镂空绝缘隔板(2),聚四氟乙烯制作的网格状镂空绝缘隔板(2)面积应略大于泡沫镍基石墨烯材料平板电极(1),防止奇数泡沫镍基石墨烯材料平板电极(1)与偶数泡沫镍基石墨烯材料平板电极(1)发生短路。连接场效应极板组合(5)奇数泡沫镍基石墨烯材料平板电极(1)的上铜棒(3)、连场效应极板组合(5)偶数泡沫镍基石墨烯材料平板电极(1)的下铜棒(4),分别安装在效应极板组合(5)的顶面的中线位置和对应的底面中线位置上。
采用厚度约0.2厘米的网格镂空不锈钢板材制作55X105X110(厘米)笼式长方体箱式外壳(8),将场效应极板组合(5)装入笼式长方体箱式外壳(8)内。在场效应极板组合(5)外表略微突出的长方体网格状镂空绝缘隔板(2)支撑下,笼式长方体箱式外壳(8)与场效应极板组合(5)之间,及位于效应极板组合(5)顶面的上铜棒(3)、位于效应极板组合(5)底面的下铜棒(4)与笼式长方体箱式外壳(8)之间均处于绝缘状态。
柜式低频电源(7)通过两条柔性导线(6)分别连接位于效应极板组合(5)顶面的上铜棒(3)、和位于效应极板组合(5)底面的下铜棒(4),为场效应极板组合提供特定频率的电场能量。
镍基石墨烯场效应水体矿化装置运行时,并联电容形式场效应极板组合(5)是以半潜式漂浮在水体表面,并将外接低频电源(7)置于水体之外。根据水体规模大小可以使用多台镍基石墨烯场效应水体矿化装置同时运行。
[根据细则26删除12.10.2018] 
[根据细则26删除12.10.2018] 

Claims (7)

  1. 镍基石墨烯场效应水体矿化装置是由:长方体泡沫镍基石墨烯材料平板电极(1)、插装在泡沫镍基石墨烯材料平板电极(1)之间的长方体网格状镂空绝缘隔板(2)、并联电容形式插装泡沫镍基石墨烯材料平板电极(1)构成的长方体场效应极板组合(5)、连接场效应极板组合(5)奇数泡沫镍基石墨烯材料平板电极(1)的上铜棒(3)、连接场效应极板组合(5)偶数泡沫镍基石墨烯材料平板电极(1)的下铜棒(4)、由网格镂空板制作的用于保护场效应极板组合(5)的笼式长方体箱式外壳(8)、柜式低频电源(7)、以及柜式低频电源(7)连接上铜棒(3)与下铜棒(4)的柔性导线(6)构成。
  2. 根据权利要求1所述的镍基石墨烯场效应水体矿化装置,其特征是泡沫镍基石墨烯材料平板电极(1)由泡沫镍及其表面覆盖的一层纳米级的掺杂着结构和性能不同的碳原子同素异形体及其复合物的石墨烯薄膜构成。
  3. 根据权利要求1所述的镍基石墨烯场效应水体矿化装置,其特征是并联电容形式场效应极板组合(5)由两块以上泡沫镍基石墨烯材料平板电极(1)构成。
  4. 根据权利要求1所述的镍基石墨烯场效应水体矿化装置,其特征是在泡沫镍基石墨烯材料平板电极(1)之间插装网格状镂空绝缘隔板(2),防止奇数泡沫镍基石墨烯材料平板电极(1)与偶数泡沫镍基石墨烯材料平板电极(1)发生短路。
  5. 根据权利要求1所述的镍基石墨烯场效应水体矿化装置,其特征是柜式低频电源(7)通过柔性导线(6)连接上铜棒(3)、下铜棒(4),为场效应极板组合(5)提供特定频率的电场能量。
  6. 根据权利要求1所述的镍基石墨烯场效应水体矿化装置,其特征是镍基石墨烯场效应水体矿化装置运行时,并联电容形式场效应极板组合(5)是以半潜式漂浮在水体表面。
  7. 根据权利要求1所述的镍基石墨烯场效应水体矿化装置,其特征是镍基石墨烯场效应水体矿化装置运行时,将外接低频电源(7)置于水体之外。
     
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CN107416948A (zh) * 2017-08-28 2017-12-01 刘铁林 镍基石墨烯场效应水体矿化装置
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CN109529489A (zh) * 2018-11-25 2019-03-29 四川蕊康环保科技有限公司 一种石墨烯基空气净化系统
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Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN1762033A (zh) * 2003-03-19 2006-04-19 日本贵弥功株式会社 叠片电容器和叠片电容器的制造方法
JP2011009628A (ja) * 2009-06-29 2011-01-13 Tdk Corp 積層型電解コンデンサ
CN102196999A (zh) * 2008-10-23 2011-09-21 通用电气公司 用于纯化水性液体的方法和系统
JP2011258919A (ja) * 2010-06-10 2011-12-22 Samsung Electro-Mechanics Co Ltd 2次電源及びその製造方法
CN203690115U (zh) * 2014-01-08 2014-07-02 上海赛特康新能源科技有限公司 软包叠片式混合超级电容器
CN103903880A (zh) * 2014-03-03 2014-07-02 广东工业大学 一种基于泡沫镍原位制备石墨烯超级电容器电极的方法
CN204490574U (zh) * 2014-10-13 2015-07-22 杭州广联新能源科技有限公司 一种应用于水处理的电极板装置
CN205710013U (zh) * 2016-05-23 2016-11-23 汪万法 无槽体电解装置
CN107416948A (zh) * 2017-08-28 2017-12-01 刘铁林 镍基石墨烯场效应水体矿化装置

Patent Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN1762033A (zh) * 2003-03-19 2006-04-19 日本贵弥功株式会社 叠片电容器和叠片电容器的制造方法
CN102196999A (zh) * 2008-10-23 2011-09-21 通用电气公司 用于纯化水性液体的方法和系统
JP2011009628A (ja) * 2009-06-29 2011-01-13 Tdk Corp 積層型電解コンデンサ
JP2011258919A (ja) * 2010-06-10 2011-12-22 Samsung Electro-Mechanics Co Ltd 2次電源及びその製造方法
CN203690115U (zh) * 2014-01-08 2014-07-02 上海赛特康新能源科技有限公司 软包叠片式混合超级电容器
CN103903880A (zh) * 2014-03-03 2014-07-02 广东工业大学 一种基于泡沫镍原位制备石墨烯超级电容器电极的方法
CN204490574U (zh) * 2014-10-13 2015-07-22 杭州广联新能源科技有限公司 一种应用于水处理的电极板装置
CN205710013U (zh) * 2016-05-23 2016-11-23 汪万法 无槽体电解装置
CN107416948A (zh) * 2017-08-28 2017-12-01 刘铁林 镍基石墨烯场效应水体矿化装置

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