Embodiments of this disclosure generally relate to an air purification system, a purification method and an air monitoring system, more particularly, to a large scale, filter-less outdoor air purification device that purifies the air by collecting the particle matter using bi-polar ionization process. The second system makes use of two-way communication to regulate air cleaning devices. The third invention is a theft protection module for the safekeeping of an air purification system.
Particle pollution, also known as particulate matter or PM, is a general term for a mixture of solid and liquid droplets suspended in the air. Particle pollution comes in many sizes and shapes and can be made up of a number of different components, including acids, inorganic compounds, organic chemicals, soot, metals, soil or dust particles, and biological materials. Human health degrades today due to inhalation of such polluted air. Air quality in major cities across the globe is taking a toll to alarming levels due to large scale industrialization without respecting emission norms. Airborne pollutants can also contribute to respiratory infections and illnesses which can be hazardous to individuals with respiratory problems. Particles in the air may create problems with burning eyes, act as nose and throat irritations, contribute to headaches and dizziness and can result in coughing and sneezing. Furthermore, these particles may include various types of spores, bacteria, viruses or harmful particles which may cause serious illness to a person. Inhaling polluted air aggravates respiratory diseases such as emphysema, bronchitis and asthma, etc. and can cause several other lung diseases.
The main challenge that pertains to this invention is the purification of air for breathing and, in particular, the process to remove dust, harmful particles and noxious gases from atmospheric air found indoors and outdoors. Over the years, many types of air purifiers and equipment have been provided to purify and dedust air. Traditional air purifiers had filter screens which required periodic replacement and maintenance in order to prevent it from getting clogged.
In the past few decades, there have been multiple technologies using point ionizers. An ionizer is a device which emits electrically charged ions which clean impurities from the air and provide a feeling of well-being to the user. In this section, details of these point ionizers have been discussed along with their challenges.
The first is the Electro-Static Precipitator which works on a two-step procedure. As mentioned in patent US20100307332, the polluted air passes through an ionizing mechanism and the particles get charged. Then the charged particles pass through the next section of the air purifier which holds plates that have the charge opposite to the charge just given to the particles. These particles then stick to these plates and the clean air comes out from the air purifier. These plates must be cleaned periodically or will cease to capture the particles. Electrostatic precipitators have a high initial capital cost, which makes it prohibitive for small-scale industries. They are expensive to purchase and install. In addition to being costly, they require large amount of space to be set up. Also, an electrostatic precipitator can be used for collecting only dry and wet pollutants in the solid form and not for gaseous pollutants. Electrostatic precipitators also generate large amounts of electromagnetic noise/disturbances.
The second technology is a Single Ion Generator which is illustrated in U.S. Pat. No. 8,564,924B1. In single ion generator air purifiers, negatively charged ions are produced with the help of a plurality point ionizers (carbon brush or stainless-steel needle) which then stick to particulates of dust and noxious gases. These negatively charged particles are then collected on a particulate collection surface. A major drawback of this system is the excessive generation of Ozone gas, a chemical variant of oxygen in air that is a toxic air pollutant.
The third technology is Photo-Catalytic oxidation air purifier. In the patent CN1721046A, the catalyst that cleans the air is typically titanium dioxide and it is energized by ultraviolet (UV) light. Titanium dioxide is a semiconductor which is used in the form of a thin film covering the surface of a backing material called a substrate, which is usually made from a ceramic or a piece of metal (such as aluminum). Titanium dioxide catalyst breaks apart molecules of air pollution in an air purifier. The disadvantage of this process is that photocatalytic purifiers produce hydroxyl radicals and tiny amounts of ozone (03). Hydroxyl radicals other than Ozone can pose dangers to human health.
It is, therefore, desirable to provide an improved air purification system and process which overcomes most, if not all, of the preceding problems.
The second challenge in the context of the invention pertains to the monitoring of the quality of the breathable air and controlling the operation of air purification system using this information using intelligent feedback. There are numerous technologies which monitor indoor and outdoor air quality. However, we are not aware of any system that communicates with paired devices for altering their operational model. A desirable system should send signals to the paired air purifiers for movement of its parts in order to adapt itself to the forecasted weather or for self-regulation. In the following section, details of current systems for outdoor air monitoring are described.
The first technology is an outdoor air monitoring system such as the one offered in the market by Ambee India (https://getambee.com/). It is a high-resolution monitoring and hazard mitigation solutioning product which has numerous gas, temperature, pressure, humidity and particle size sensors. However, this product when connected with an air purifier doesn't communicate any signals to it for its better operational efficiency. Moreover, it doesn't make use of its technology for the purpose of self-regulation. It is also susceptible to theft given the lack of a protection system.
The second technology as mentioned in the U.S. Pat. No. 7,114,388B1 is a geographically distributed environmental sensor system. It is a sensor network that includes a number of sensor units and a base unit. The base station operates in a network discovery mode (in which network topology information is collected) in a data polling mode (in which sensed information is collected from selected sensory units). Each of the sensor units can include a number of features, including an anemometer, a rain gauge, a compass, a GPS receiver, a barometric pressure sensor, an air temperature sensor, a humidity sensor, a level, and a radiant temperature sensor. This technology only monitors the present state of weather and does not make use of the prediction algorithms. This leads to a delay in change of operating model. This system is designed using a cluster model in order to save costs in networking. However, when such a system is implemented, the base station for any cluster determines the ability of all the devices in that cluster to upload their data to cloud. If the base station fails, all the devices in that cluster fail. Hence building a decentralized and individual transmission model is essential.
The third challenge in the context of the invention pertains to the safe keeping of outdoor air purification systems. In many parts of the world, especially in developing nations, where street crimes are quite prevalent, outdoor systems can be easily stolen and thus there is a need to solve this problem.
It is, therefore, desirable to provide an air purification system that addresses the disadvantages of the current systems while improving the operational performance, maintenance and safe keeping of the system using the monitoring of predicted weather conditions, air quality and current performance of the system and providing the required feedback.
In view of the foregoing, an embodiment herein provides an air purification system. The air purification system includes an inlet unit, at least one ionization chamber, a collection unit and an output unit. The inlet unit includes at least one inlet unit inlet that draws polluted air. The inlet unit includes a first end and a second end. The ionization chamber includes a plurality of point ionizers operable to produce positively and negatively charged ions for cleaning the polluted air drawn through the inlet. The ionization chamber includes a proximal end and a distal end. The proximal end of the ionization chamber is communicatively coupled to the second end of the inlet unit and the distal end is connected to at least one collection chamber. When a voltage is applied to the ionization chamber, the plurality of point ionizers produces the positively and negatively charged ions that capture particulate matter from the polluted air and fuse the positively and negatively charged particles together to form clumped particles. The clumped particles are expelled into the collection chamber. The collection unit includes at least one collection chamber that collects the clumped particles. The output unit includes at least one outlet that expels the cleaned air. The collection chamber includes an inlet and an outlet. The inlet of the collection chamber is connected to the distal end of the ionization chamber for collecting the clumped particles. One end of the outlet unit is connected to the outlet of the collection chamber.
In some embodiments, the inlet unit includes an opening, a cover plate and a fan holder. The opening is between the cover plate and the fan holder. The fan holder includes at least a fan that is rotated at required speed to pull air into the system, an attachment to reduce inlet air speed and a mesh to restrict entry of particulate matter. The fan is located at the front end of the fan holder. The cover plate is designed to prevent entry of foreign particles.
In some embodiments, the collection chamber stores the particulate matter from the ionized air. The outlet expels of the cleaned air from the air purification system.
In some embodiments, the air purification system is communicatively connected to a theft protection module for providing protection to the air purification system. The theft protection module includes a power module, a microcontroller, a location module, an analog/a digital data receiver/transmitter system and a network module. The power module supplies electrical power to the microcontroller. The location module measures a physical location of the air purification system. The network module transmits and receives information from a cloud server. The microcontroller is connected to the location module and the network module via at least one of the analog/the digital data receiver/transmitter system.
In some embodiments, the air purification system is communicatively connected to an air quality and environmental monitoring system. The air quality and environmental monitoring system includes a sensor array and the microcontroller. The sensor array includes at least one of a gas sensor, a particulate matter (PM) sensor, an ambient noise sensor or a temperature and humidity sensor. The gas sensor measures a level of Oxides of Nitrogen, Oxides of Sulphur, Oxides of Carbon and Ozone present in the polluted air. The particulate matter (PM) sensor measures a size, in a range of 1.0 to 10 micrometers, of the particle present in the polluted air. The ambient noise sensor measures an amplitude, frequency of a noise associated with the polluted air. The temperature and humidity sensor measures temperature and humidity of the polluted air. The microcontroller is communicatively connected to the sensor array. The micro-controller receives sensor information from the sensor array using a digital or analog signal receiver, and process the sensor information to control a speed of the fan or a state of the air purification system and at least one actuator on the outlet or inlet of the air purification system.
In some embodiments, the air quality and environmental monitoring system allows dynamic information flow between the sensor array to optimally use the air purification system. The air quality and environmental monitoring system includes the power module and the network module. The power module is controlled by the microcontroller. The network module is connected to the micro-controller via a digital or analog data receiver or a transmitter system.
In some embodiments, the second power module includes a DC power supply and a battery module. The DC power supply is connected to the battery module. The battery module includes a charge controller and a lithium ion battery. The charge controller reads a battery level from the lithium ion battery.
In some embodiments, the micro-controller receives analog input, digital input, ADC/DAC and is connected to the sensor array and the power module.
In some embodiments, the gas sensor includes sensors to measure levels of Oxides of Sulphur. Oxides of Nitrogen, Oxides of Carbon, and Ozone, and the particulate matter sensor includes PM1.0, PM2.5 and PM10 sensors.
In some embodiments, the network module contains a wired or a wireless module, and the wireless module is capable of local and wide area communications.
In some embodiments, the dynamic information flow includes information flow between the sensor array, the micro-controller, the network module, the power supply, the fan of the air purification system, the actuator on the outlet or inlet of the air purification system, an automatic maintenance scheduling system, API's, online third party API's and an online database. The sensor array sends information to the microcontroller. The micro-controller communicates with the cloud server through the network module. The cloud server sends information to the API's and the automatic maintenance scheduling system and stores information in the online database. The API's receive information from the online database. The online third party API's send information to the online database. The cloud server receives information from the online third party API's and communicates with the network module to send information to the microcontroller. The micro-controller regulates (i) the amplitude of a DC power supply from a battery of the air purification system, (ii) the speed or state of the fan of the air purification system, and (iii) the actuator on the outlet or inlet of the air purification system.
In some embodiments, the theft protection module includes a protection enclosure that is composed of hydrophobic material.
In some embodiments, the theft protection module is enabled when a DC power supply of the power module is switched off. The power module includes a battery that supplies power to the microcontroller, a charge controller that sends information on change in battery level as a data input to the micro-controller. The micro-controller sends information on a new location measured by the location module to the cloud server. The cloud server compares the new location with a default location set by an installer or end-user.
In some embodiments, the theft protection module is enabled when a current location is measured by the location module. The location module sends the current location to the micro-controller and the micro-controller sends information on the current location to the cloud server. The cloud server compares the new location with the default location set by the installer or end-user.
In another aspect, an ionization chamber within an air purification system includes an inlet unit, an output unit, an electrical power supply and at least one ionization core. The inlet unit including at least one inlet that receives polluted air to be cleaned. The output unit includes at least one outlet to expel cleaned air. The electrical power supply provides a pulsed DC voltage to the ionization chamber. The at least one ionization core have a plurality of point ionizers that is supplied with the pulsed DC voltage provided by the electrical power supply. The plurality of point ionizers is arranged on an inner surface or an outer surface or both surfaces of the ionization chamber to form a plurality of modular assembly. When the pulsed DC voltage is applied to the plurality of point ionizers, at least two of the point ionizers are producing positively and negatively charged ions that capture particulate matter of the polluted air and fuse them together to form clumped particles. The plurality of point ionizers is positioned at the required angles such that the tips of any two point ionizers have a distance of at least 0.5 cm
In some embodiments, the ionization core is shaped in the form of a cylinder, frustum, prism, pyramid, sphere, or S with a length based on the plurality of point ionizers.
In some embodiments, each modular assembly is shaped in the form of a cylinder, frustum, prism, pyramid, sphere, or S with a length based on the plurality of point ionizers.
In some embodiments, the electrical power supply operates at greater than 1 Kilo Volts and is harnessed by a thermal, a chemical, a nuclear, an electrical, a radiant, a light, a motion, a sound, an elastic and a gravitational method.
In some embodiments, an inlet 193 (
In yet another aspects, a method for treatment of airflow within an air purification system includes steps of: (i) receiving polluted air for cleaning through one or more inlet, (ii) passing polluted air through one or more ionization chamber including of a plurality of point ionizers operable to produce positively and negatively charged ions when a voltage is applied across the plurality of point ionizers, (iii) producing positively and negatively charged particles by attaching the positively and negatively charged ions to the particles in the polluted air, (iv) fusing the positively and negatively charged particles together, (v) accumulating fused particles inside a collection chamber and (vi) releasing clean air through one or more outlet.
These and other aspects of the embodiments herein will be better appreciated and understood when considered in conjunction with the following description and the accompanying drawings. It should be understood, however, that the following descriptions, while indicating preferred embodiments and numerous specific details thereof, are given by way of illustration and not of limitation. Many changes and modifications may be made within the scope of the embodiments herein without departing from the spirit thereof, and the embodiments herein include all such modifications.
The embodiments herein will be better understood from the following detailed description with reference to the drawings, in which:
The embodiments herein, the various features and advantageous details thereof are explained with reference to the embodiments that are illustrated in the accompanying drawings and detailed in the following description. Descriptions of components and processing techniques that are familiar to persons having ordinary skill in the art are omitted so as to not unnecessarily obscure the embodiments herein. The examples used herein are intended merely to facilitate an understanding of the ways in which the embodiments herein may be practiced and to further enable those of skilled in the art to enable the embodiments herein. Accordingly, the examples should not be construed as limiting the scope of the embodiments herein.
As mentioned, there remains a need for an air purification device to remove the particle matter without using any expensive components and maintenance intensive filters to provide an ozone-free air to the environment. Referring now to the drawings and more particularly to
In some embodiments, the air purification system 100 is communicatively connected to a theft protection module 141 (
In some embodiments, the air purification system 100 is communicatively connected to an air quality and environmental monitoring system. The air quality and environmental monitoring system includes a sensor array, the power module, the network module and the microcontroller. The micro-controller is communicatively connected to the sensor array to receive sensor information from the sensor array using a digital or analog signal receiver, and process the sensor information to control a speed of the fan or a state of the air purification system and at least one actuator 185 (
In some embodiments, the power module 119 is controlled by the micro-controller. The power module includes the DC power supply 120 and a battery module 189 as illustrated in
The cloud server (i) transmits the sensor information to the Application Program Interface (API) and the automatic maintenance scheduling system and (ii) stores information in the online database. The API receives the sensor information from the online database. Online third party Application Program Interfaces sends the sensor information to the online databases. The cloud server receives the sensor information from the online third party API's and communicates with the second network module to transmit the sensor information to the micro-controller.
In some embodiments, the polluted air passes to the ionization chamber 106 at a desired velocity fixed by the speed of the fan. In an embodiment, the fan holder 104 may be attached at the rear end of the air inlet unit 102. In some embodiments, the ionization chamber 106 contains a plurality of point ionizers that produce bi-polar ions when a voltage is applied. The produced ionization between the plurality of point ionizers captures the particle matter of polluted air and fuses them together. Fusion is the physical cohesion of particles which causes them to gain weight and lose energy. Due to increased weight, these heavier particles lose their ability to rise up along the purified air which gets forced out from the ionization chamber 106. The clumped particles then fall to the bottom of the ionization chamber 106 and get accumulated in the collection chamber 153. The air purification system 100 pushes the purified air through the output unit 108. In the embodiment, the quality of air is recorded and communicated at each instance. In some embodiments, the electrical power supply to the air purification system 100 operates at greater than 1 Kilo Volts and is harnessed by a thermal, a chemical, a nuclear, an electrical, a radiant, a light, a motion, a sound, an elastic and a gravitational method.
In another embodiment, carbon brushes are used instead of needle arrangement. The carbon brushes may be positioned at any angle between 0 and 180 degrees.
Actuators on Outlet or inlet of the air purification system 100 are used to regulate the opening and closing of the output unit 108 and the inlet unit 102 of the system 100. API stands for Application Programming Interface which is a communication protocol between the client (device) and the server (third party server storing weather prediction information) designed to make the software development process for the client (device) easier through the availability of direct Request commands where our devices can call functions on the host server, in order to request real time weather information. Cloud is a network of remote servers hosted on the Internet to store, manage, and process data.
The location module is a part of the theft protection system. It monitors the current location of the system and communicates with the microcontroller 124 via a digital or analog receiver or transmitter system. The digital or analog receiver or transmitter system is a communication system which can send and receive data through wired or wireless methods, using digital or analog signals that are passed through cables/wires or emitted/received through wireless modules and antennas.
The information flow in the air quality and environmental monitoring system is achieved by mutual coordination of its components. The gas sensors 125A-D, PM sensors 122, noise sensors 127 and temperature and humidity sensors 126 send analog/digital signals to the micro-controller 124. The microcontroller also receives input form the DC power supply 120 and the battery management system to communicate with the network module 129. The battery management system receives information from the battery 128 and the charge controller.
The foregoing description of the specific embodiments will reveal the general nature of the embodiments herein that others can, by applying current knowledge, readily modify and/or adapt for various applications such specific embodiments without departing from the generic concept, and, therefore, such adaptations and modifications should and are intended to be comprehended within the meaning and range of equivalents of the disclosed embodiments. It is to be understood that the phraseology or terminology employed herein is for the purpose of description and not of limitation. Therefore, while the embodiments herein have been described in terms of preferred embodiments, those skilled in the art will recognize that the embodiments herein can be practiced with modification within the spirit and scope of the claims.
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