The present Utility patent application claims priority benefit of the Italian patent number 102018000008196, filed on Aug. 28, 2018 under 35 U.S.C. 119(a). The present Utility patent application is the National Phase filing under 35 U.S.C. 371 of the International Application No PCT/IT2019/000065 filed Aug. 26, 2019 entitled “RE-CHARGING SYSTEM OF A VEHICLE AND RELATED METHOD”. The contents of these related Italian and PCT applications are incorporated herein by reference for all purposes to the extent that such subject matter is not inconsistent herewith or limiting hereof.
The present invention refers to a re-charging system of a vehicle, in particular to an electrically re-charging system. The present invention further refers to a method for re-charging a vehicle.
A plurality of fixed re-charging stations for electric vehicles are known in the art, shaped as small columns, and four re-charging modes for light-weight vehicles are also known: a re-charge occurs in alternate current through a domestic or industrial plug, and lacks any protection or any communication with the vehicle; or through a protecting device integrated in the re-charging cable, regulating the power and monitoring the safety parameters; or through the connection of the vehicle to a fixed re-charging station, which performs the functions of differential and magneto-thermal protection, and of managing an enablement and suitable safety locks; or through the connection of the vehicle to a fixed direct current re-charging station. Such fixed re-charging stations cannot be easily located by a user and the related use modes do not include a vehicle detecting and identifying system.
The need of reducing energy consumptions is known, together with providing efficient electrically re-charging systems by exploiting renewable energy sources.
It is further clear that no fixed re-charging stations are known which are connected to and supplied by a plurality of energy devices, also integrated in the electric lighting mains.
Object of the present invention is solving the above prior art problems, by providing a system and a method for re-charging a vehicle through a plurality of energy devices.
Another object of the present invention is providing a re-charging system of a vehicle integrated in the public electric mains, capable of supplying the vehicle and of providing electric energy to the public electric mains.
A further object of the present invention is providing a system capable of supplying a continuous service for electrically re-charging a vehicle.
The above and other objects and advantages of the invention, as will result from the following description, are obtained with a system and a method for re-charging a vehicle as claimed in the respective independent claims. Preferred embodiments and non-trivial variations of the present invention are the subject matter of the dependent claims.
It is intended that all enclosed claims are an integral part of the present description.
It will be immediately obvious that numerous variations and modifications (for example related to shape, sizes, arrangements and parts with equivalent functionalities) can be made to what is described, without departing from the scope of the invention as appears from the enclosed claims.
The present invention will be better described by some preferred embodiments thereof, provided as a non-limiting example, with reference to the enclosed drawings, in which:
With reference to
the inverter 10, such as, for example, a hybrid bi-directional inverter, arranged in the lower portion of the lighting means 2, and equipped with at least one charge regulator, such as for example a maximum power point tracking (MPPT), designed to receive electric energy produced by the plurality of energy devices through at least one direct current meter 21, and to supply electric energy, regulated and maximized through the charge regulator, directly to the vehicle 20 using the system 1, and/or to accumulating means 4 of electric energy, such as, for example, a lithium battery, and/or to the public electric mains 5 through at least one single input meter 7; and
the plurality of energy devices connected to the inverter 10 of the system 1 through a physical support, such as an electric cable, or through communicating means with radiofrequency waves, such as, for example, a Wi-Fi connection.
Advantageously, the plurality of energy devices comprise:
a first photovoltaic generator, arranged on the external surface of the lighting means 2, such as for example a street lamp, integrated in the public electric mains 5, such photovoltaic generator being equipped with a plurality of photovoltaic modules 6, such as, for example, plexi-glass photovoltaic modules, equipped with photovoltaic cells encapsulated in the stratigraphy itself and/or a hollow space, or in the plexi-glass edges, and/or nano-structured through luminescent solar concentrators (LSC), or equipped with spherical solar cells, allowing to optimize the functionality of the photovoltaic generator, conferring light-weight to the lighting means 2 and making them visible by the user, even under scarce visibility situations, or also photovoltaic modules composed of a plurality of cells on flexible, or semi-flexible laminates, or amorphous, or poly-crystalline, or mono-crystalline thin films, and electrically supplied by the accumulating means 4;
the electric energy accumulating means 4, such as, for example a lithium or graphene battery, preferably with 30 kWp, arranged in the lower portion of the lighting means 2, equipped with at least one interface means 4a, such as, for example, a touch-screen, designed to allow the user to perform 9 a plurality of actions and services related to the delivery of electric energy from the system 1, such as, for example, choice of the type of payment, of the alternate or direct re-charging modes, etc.;
a second photovoltaic generator, arranged on the upper surface of at least one road bollard 3, equipped with a photovoltaic layer 22, designed to guarantee a time re-charge continuity of the vehicle 20 preferably in a time range of 4 hours;
at least one piezoelectric device, arranged, as shown in
at least one thermo-electric generator 8, arranged on the accumulating means 4, such as for example a semiconductor device, equipped with a plurality of Seebeck cells designed to directly transform a heat flow into electric energy, and with a plurality of Peltier cells designed to supply a cooling process simultaneously with the thermo-electric production of the plurality of Seebeck cells, enabling a suitable cooling of the accumulating means 4.
Advantageously, the system 1 is integrated and connected to the public electric mains 5, through the lighting means 2, such public electric mains 5 being designed for:
distributing alternate and direct current electric energy to public lighting plants;
receiving from the inverter 10 an amount of excess electric energy produced by the plurality of energy devices and supplying it to at least one lighting means 2, allowing an optimization and energy savings for managing the daily and nightly electric supply of the public electric mains 5; and
providing, through a digital transmitting device, upon need, electric energy necessary to complete the re-charging of a vehicle 20, in direct current mode 13 or alternate current mode 14, depending on at least one request by the user through the interface means 4a.
The system 1 is also equipped with containing means arranged in the lower portion of the lighting means 2 and designed to contain therein the accumulating means 4 and the thermo-electric generator, while the interface means 4a and at least one connecting device, such as for example an electric connector, are arranged on the external surface, to enable the connection of the vehicle 20 with the system 1, allowing its electric re-charge.
Moreover, the system 1 is designed to supply a plurality of public utility services 16, such as, for example, road lighting, LED lighting, or safety TV cameras, or parking ticket office, or 4G/5G mobile service, or Wi-Fi connection, or mobile phones signal repeater, or real-time information about traffic conditions, reducing the use of fossil sources and the distribution of electric energy by the public electric mains 5.
Advantageously, the lighting means 2, as shown in
Moreover, the lighting means 2 are equipped with piezoelectric sensors having reduced sizes, arranged on the external surface of the lighting means 2 and connected to the interface means 4a and to at least one emergency unit 17 equipped with a plurality of electric energy accumulators, such as, for example, supercapacitors, arranged inside the lighting means 2. It is clear how the lighting means 2 enable to house a plurality of components, allowing to insert further components, or optimized components, such as, for example, dimensionally increased accumulating means 4.
Moreover, as shown in
Finally, the system 1 is also equipped with a hardware and software infrastructure, such as, for example a digital platform, designed to detect and identify the vehicle 20 and to supply a plurality of information to the user, such as, for example, location of the system 1, charge status, system availability, payment mode, etc. through a dedicated web application arranged on a mobile device of the user.
An electric apparatus is also described, equipped with two or more systems 1 according to the present invention, mutually connected through communication means with radio-frequency waves, optimizing the management of the electric supply of the daily and nightly public electric mains 5.
The invention further deals with a method for re-charging a vehicle 20, through the re-charging system 1, such method comprising the steps of:
providing and identifying the system 1 by a user through the infrastructure of the system 1;
producing electric energy by the plurality of energy devices;
transferring electric energy produced by the plurality of energy devices to the inverter 10;
sending electric energy and delivering 23 electric energy by the inverter 10 for storing electric energy in the accumulating means 4;
if the system 1 receives a re-charging request from the user, before the complete storage of electric energy in the accumulating means 4, the inverter 10 stops the delivery 23 of electric energy and supplies electric energy directly to the user vehicle 20, in a direct current mode 13 or in an alternate current mode 14, depending on at least one request by the user through the interface means 4a; and
if the system 1 receives a re-charging request from the user, before the complete storage of electric energy in the accumulating means 4 and the electric energy supplied by the inverter 10 to vehicle 20 is not enough to complete the re-charging of the vehicle 20, the public electric mains 5 supplies 12 electric energy necessary to complete the re-charging of the vehicle 20.
Number | Date | Country | Kind |
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102018000008196 | Aug 2018 | IT | national |
Filing Document | Filing Date | Country | Kind |
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PCT/IT2019/000065 | 8/26/2019 | WO | 00 |