The present disclosure generally relates to submersibles.
Liquid carrying channels, such as pipes, sewers and canals, carrying fluids require maintenance to prevent damage and leaks resulting in expensive repairs and financial loss. Detection of the damage and irregularities in the liquid carrying channels need to occur efficiently and timely thereby avoiding excessive damage and costly repairs. Due to the large distribution networks as well as sanitation, these require a very extensive and intricate infrastructure that has to be regularly maintained and repaired. The faster leaks and damage is detected, the smaller the damage to the infrastructure and its surrounding area.
The following embodiments and aspects thereof are described and illustrated in conjunction with systems, tools and methods which are meant to be exemplary and illustrative, not limiting in scope.
There is provided with an embodiment, a submersible including at least one sensor configured to collect a signal from within an interior area of a liquid carrying channel, and at least one processor configured to obtain the signal from the at least one sensor, calculate a diameter and a circumference of a liquid carrying channel according to the signal, determine whether an irregularity is present on an inner surface of the liquid carrying channel according to the diameter and the circumference, and generate a notification to notify a detection of the irregularity on the inner surface.
In some embodiments, the diameter and the circumference are compared with a calibration diameter and a calibration circumference to determine whether the irregularity is detected on the inner surface.
In some embodiments, the submersible further includes a propulsion system operative to facilitate realigning the liquid proof external casing with a predetermined point of reference.
In some embodiments, the at least one processor is further configured to compare the diameter and the circumference with the calibration diameter and the calibration circumference, determine the housing has deviated from a central longitudinal axis of the liquid carrying channel, operate the propulsion system to realign housing with the central longitudinal axis.
In some embodiments, the submersible further includes an emission unit configured to emit a signal through the liquid carrying channel.
In some embodiments, the emission unit is a light emitter for emitting a light ring, and the sensor is an imaging sensor for collecting at least one image. In some embodiments, the emission unit is a sound emitter for emitting a sound of a predetermined wavelength, and the sensor is a microphone for collecting reflected sound waves.
In some embodiments, the submersible further includes a transmitter for transmitting the notification to a computer.
In some embodiments, the transmitter facilitates remote operation of the at least one processor by a user of the computer.
There is further provided with an embodiment, a system configured to detect irregularities in a liquid carrying channel, the system including a submersible having at least one sensor configured to obtain a signal from within an internal area and surface of the liquid carrying channel, and at least one processor configured to obtain the signal from the at least one sensor, calculate a diameter and a circumference of a liquid carrying channel according to the signal, determine whether an irregularity is present on an inner surface of the liquid carrying channel according to the diameter and the circumference, and generate a notification to notify a detection of the irregularity on the inner surface.
In certain embodiments, the diameter and the circumference are compared with a calibration diameter and a calibration circumference to determine whether the irregularity is detected on the inner surface.
In certain embodiments, the submersible further comprises a propulsion system operative to facilitate realigning the liquid proof external casing with a predetermined point of reference.
In certain embodiments, the at least one processor is further configured to compare the diameter and the circumference with the calibration diameter and the calibration circumference, determine the housing has deviated from a central longitudinal axis of the liquid carrying channel, and, operate the propulsion system to realign housing with the central longitudinal axis.
In certain embodiments, the submersible further comprises an emission unit configured to emit a signal through the liquid carrying channel.
In certain embodiments, the emission unit is a light emitter for emitting a light ring, and the sensor is an imaging sensor for collecting at least one image.
In certain embodiments, the emission unit is a sound emitter for emitting a sound of a predetermined wavelength, and the sensor is a microphone for collecting reflected sound waves.
In certain embodiments, the system further includes a computer and, transmitter for transmitting the notification to the computer.
In certain embodiments, the transmitter facilitates remote operation of the submersible by a user of the computer.
In addition to the exemplary aspects and embodiments described above, further aspects and embodiments will become apparent by reference to the figures and by study of the following detailed description.
Some non-limiting exemplary embodiments or features of the disclosed subject matter are illustrated in the following drawings.
Identical, duplicate, equivalent or similar structures, elements, or parts that appear in one or more drawings are generally labeled with the same reference numeral, optionally with an additional letter or letters to distinguish between similar entities or variants of entities, and may not be repeatedly labeled and/or described.
Dimensions of components and features shown in the figures are chosen for convenience or clarity of presentation and are not necessarily shown to scale or true perspective. For convenience or clarity, some elements or structures are not shown or shown only partially and/or with different perspective or from different point of views. References to previously presented elements are implied without necessarily further citing the drawing or description in which they appear.
Disclosed herein is a system and method for operating a submersible for detecting irregularities in a liquid carrying channel, according certain exemplary embodiments.
As will be seen with reference to
Reference is now made to
Submersible 100 includes an emission unit 202 configured to emit a predetermined signal. In some embodiments, emission unit 202 includes a light source 205 for emitting light at one or more predetermined wavelengths into fluid carrying channel 120 (
The signal emitted from emission unit 202 reflects from inner surface 122 (
In some embodiments, submersible 105 calculates a calibration ring 305 (
In some embodiments, submersible 105 can include one or more mechanical sensors, referenced generally 250, configured to detect the position of submersible 105 from inner surface 122. Mechanical sensors 250 can extend from housing 200 to reach inner surface 122 such that one or more mechanical sensors 250 compress and/or extend to determine thereby providing a signal to processor 210 that submersible 105 has deviated from central longitudinal axis 150. According to the length of extension and/or compression of one or more mechanical sensor 250, submersible 105 travels to realign with central longitudinal axis 150.
Power source 215 can be a rechargeable battery or hydraulic system that utilizing the flow of the fluid in the fluid carrying channel 120 to provide power to submersible 100. Communication unit 245 is configured to enable submersible to communicate with computer 145 (
In some embodiments, submersible 100 can include a propulsion system 235 to facilitate positioning submersible 100 in a center of liquid carrying channel 120 and to move in a predetermined direction in liquid carrying channel 120. Propulsion system 235 can include a motor 237, one or more propellors, rotors, referenced generally as 238 and/or the like.
Communication unit 245 is configured to provide communication between submersible 105 and computer 145 (
Reference is made to
In operation 400, submersible 105 emits a signal into liquid carrying channel 120. The signal emitted can be a light from light emitter 205 (
In operation 410, submersible 105 collects signals from liquid carrying channel 120. Signals are collected by sensor 206 (
In operation 420, submersible 105 calculates a calibration diameter and circumference of liquid carrying channel 120 according to the collected signals.
In operation 430, submersible 105 calculates a central longitudinal axis 150 (
In operation 430, central longitudinal axis 150, diameter and circumference are stored in memory 260 (
It is noted that the operations outlined in
In operation 500, submersible 105 calculates a diameter and circumference of liquid carrying channel 120. The diameter and the circumference can be according to a calculation of the diameter and circumference of light ring 300.
In operation 510, submersible 105 determines a location of submersible 105 in liquid carrying channel 120 relative to central longitudinal axis 150.
In operation 520, submersible 105 compares the submersible location with central longitudinal axis 150. Submersible 105 operates propulsion system 235 as described in conjunction with
In operation 530, submersible 105 realigns with central longitudinal axis 150.
In operation 600, submersible 105 compares the diameter and the circumference with the calibration diameter and the calibration circumference respectively.
In operation 610, submersible 105 determines whether irregularities are present along liquid carrying channel 120. Submersible 105 determines whether the diameter and the circumference match the calibration diameter and the calibration circumference. Where the diameter and the circumference does not match the calibration diameter and the calibration circumference, submersible 105 determines an irregularity 160 is detected and therefore performs operation 620. Where the diameter and the circumference match the calibration diameter and the calibration circumference, submersible 105 determines no irregularity 160 is detected and submersible 105 executes operation 400.
In operation 620, submersible 105 generates a notification of irregularity presence. In some embodiments, notification includes a location of irregularity 160 along liquid carrying channel 120, a date and time at which submersible 105 detects irregularity 160, the image obtained of the irregularity 160, and any additional information collected or analyzed by submersible 105.
In operation 630, submersible 105 stores the notification. Notification is stored in memory 260 (
In operation 640, submersible 105 provides the notification to computer 145.
In the context of some embodiments of the present disclosure, by way of example and without limiting, terms such as ‘operating’ or ‘executing’ imply also capabilities, such as ‘operable’ or ‘executable’, respectively. Conjugated terms such as, by way of example, ‘a thing property’ implies a property of the thing, unless otherwise clearly evident from the context thereof.
The terms ‘processor’ or ‘computer’, or system thereof, are used herein as ordinary context of the art, such as a general purpose processor or a micro-processor, RISC processor, or DSP, possibly comprising additional elements such as memory or communication ports. Optionally or additionally, the terms ‘processor’ or ‘computer’ or derivatives thereof denote an apparatus that is capable of carrying out a provided or an incorporated program and/or is capable of controlling and/or accessing data storage apparatus and/or other apparatus such as input and output ports. The terms ‘processor’ or ‘computer’ denote also a plurality of processors or computers connected, and/or linked and/or otherwise communicating, possibly sharing one or more other resources such as a memory.
The terms ‘software’, ‘program’, ‘software procedure’ or ‘procedure’ or ‘software code’ or ‘code’ or ‘application’ may be used interchangeably according to the context thereof, and denote one or more instructions or directives or circuitry for performing a sequence of operations that generally represent an algorithm and/or other process or method. The program is stored in or on a medium such as RAM, ROM, or disk, or embedded in a circuitry accessible and executable by an apparatus such as a processor or other circuitry.
The processor and program may constitute the same apparatus, at least partially, such as an array of electronic gates, such as FPGA or ASIC, designed to perform a programmed sequence of operations, optionally comprising or linked with a processor or other circuitry.
The term computerized apparatus or a computerized system or a similar term denotes an apparatus comprising one or more processors operable or operating according to one or more programs.
As used herein, without limiting, a module represents a part of a system, such as a part of a program operating or interacting with one or more other parts on the same unit or on a different unit, or an electronic component or assembly for interacting with one or more other components.
As used herein, without limiting, a process represents a collection of operations for achieving a certain objective or an outcome. As used herein, the term ‘server’ denotes a computerized apparatus providing data and/or operational service or services to one or more other apparatuses.
The term ‘configuring’ and/or ‘adapting’ for an objective, or a variation thereof, implies using at least a software and/or electronic circuit and/or auxiliary apparatus designed and/or implemented and/or operable or operative to achieve the objective.
A device storing and/or comprising a program and/or data constitutes an article of manufacture. Unless otherwise specified, the program and/or data are stored in or on a non-transitory medium. In case electrical or electronic equipment is disclosed it is assumed that an appropriate power supply is used for the operation thereof.
The flowchart and block diagrams illustrate architecture, functionality or an operation of possible implementations of systems, methods and computer program products according to various embodiments of the present disclosed subject matter. In this regard, each block in the flowchart or block diagrams may represent a module, segment, or portion of program code, which comprises one or more executable instructions for implementing the specified logical function(s). It should also be noted that, in some alternative implementations, illustrated or described operations may occur in a different order or in combination or as concurrent operations instead of sequential operations to achieve the same or equivalent effect.
The corresponding structures, materials, acts, and equivalents of all means or step plus function elements in the claims below are intended to include any structure, material, or act for performing the function in combination with other claimed elements as specifically claimed. As used herein, the singular forms “a”, “an” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will be further understood that the terms “comprises” and/or “comprising” and/or “having” when used in this specification, specify the presence of stated features, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof.
As used herein the term “configuring” and/or ‘adapting’ for an objective, or a variation thereof, implies using materials and/or components in a manner designed for and/or implemented and/or operable or operative to achieve the objective.
When a range of values is recited, it is merely for convenience or brevity and includes all the possible sub-ranges as well as individual numerical values within and about the boundary of that range. Any numeric value, unless otherwise specified, includes also practical close values enabling an embodiment or a method, and integral values do not exclude fractional values. A sub-range values and practical close values should be considered as specifically disclosed values.
As used herein, ellipsis ( . . . ) between two entities or values denotes an inclusive range of entities or values, respectively. For example, A . . . Z implies all the letters from A to Z, inclusively.
The terminology used herein should not be understood as limiting, unless otherwise specified, and is for the purpose of describing particular embodiments only and is not intended to be limiting of the disclosed subject matter. While certain embodiments of the disclosed subject matter have been illustrated and described, it will be clear that the disclosure is not limited to the embodiments described herein. Numerous modifications, changes, variations, substitutions and equivalents are not precluded.
Terms in the claims that follow should be interpreted, without limiting, as characterized or described in the specification.
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/IL2020/051195 | 11/18/2020 | WO |
Number | Date | Country | |
---|---|---|---|
62936645 | Nov 2019 | US |