The present disclosure is related to leak detection in pipelines.
Pipelines are a primary means for transporting fluids (water, oil, gas, chemical products, etc.); over two million miles of pipeline currently exist globally. Pipelines are typically constructed by connecting several pipe segments together.
While pipelines are generally inspected routinely, a leak can occur in a pipeline at any time and constant vigil over every vulnerable domain in a pipeline by human monitors is prohibitive. The search for practical pipeline leak monitoring techniques is ongoing.
To detect a leak in a pipe carrying a fluid, an elastic membrane circumferentially surrounds the pipe. A sensing device detects an expansion state of the membrane and a signaling device indicates the presence of the leak based on the expansion state of the membrane.
In one aspect of the invention, the sensing device may be a strain gauge.
In another aspect of the invention, an electric circuit may be electrically coupled to the strain gauge to provide a signal to the signaling device based on the expansion state of the membrane.
In another aspect of the invention, the electric circuit may be a bridge circuit.
In yet another aspect of the invention, the signaling device includes a wireless transmitting circuit to send an indication of the expansion state of the membrane to a remote receiver circuit.
In another aspect of the invention, a set of retaining rings may retain the membrane at ends thereof against the pipe.
In another aspect of the invention, the retaining rings may be O-rings.
The present inventive concept is best described through certain embodiments thereof, which are described in detail herein with reference to the accompanying drawings, wherein like reference numerals refer to like features throughout. It is to be understood that the term invention, when used herein, is intended to connote the inventive concept underlying the embodiments described below and not merely the embodiments themselves. It is to be understood further that the general inventive concept is not limited to the illustrative embodiments described below and the following descriptions should be read in such light.
Additionally, the word exemplary is used herein to mean, “serving as an example, instance or illustration.” Any embodiment of construction, process, design, technique, etc., designated herein as exemplary is not necessarily to be construed as preferred or advantageous over other such embodiments. Particular quality or fitness of the examples indicated herein as exemplary is neither intended nor should be inferred.
As illustrated in
In one embodiment of the invention, membrane 220 is made of an elastomeric thermoplastic polymer. The elastic thermoplastic polymer, in one embodiment of the invention, is the single material from which membrane 220 is made. Membrane 220 is preferably of homogeneous construction such that the thickness of the membrane does not vary around the circumference of the membrane or along its axial length. In a preferable embodiment of the invention, membrane 220 is made from an elastomeric thermoplastic polymer composition that contains one or more organic or inorganic fillers. Fillers are preferably carbon-based nanomaterials such as carbon nano-tubes. Alternately, micro fibers of thermoset polymers such as polyesters or carbonized polymers may be homogenously dispersed throughout the composition and throughout the circumference and length of the membrane. In other embodiments the filler material may be a carbonized material that consists of or comprises graphene and/or carbon nanotube particles that are aligned, preferably unidirectionally, around the circumference or length of the membrane.
Other fillers may be inorganic particles and/or nanoparticles. For example, metallic nanoparticles may be dispersed homogeneously throughout the elastomeric thermoplastic polymer composition. Strain may be measured according to resistance circumferentially or lengthwise along the membrane. Metallic particles may include, for example, conductive materials such as silver, copper and iron although any conductive and preferably non-oxidating transition metals may be used. In other embodiments one or more semiconductor materials or nanoparticles of a main group element are present in the elastomeric thermoplastic polymer composition.
In a preferred embodiment of the invention the membrane is a multi-layer membrane comprising at least two layers of elastomeric thermoplastic polymer materials in direct contact with one another. The layers of elastomeric thermoplastic polymer compositions are of different composition with an inner layer directly adjacent to or most closely associated with surface of the pipeline containing no further material and an outside layer containing one or more of the filler materials described herein. In a further preferred embodiment of the invention the membrane is includes one or more layers that contain a series of repetitive circumferentially oriented stripes of different composition. For example, a first stripe may be made from an elastomeric thermoplastic polymer composition that does not contain a filler whereas a second stripe is made of the same elastomeric thermoplastic polymer but is a composition that further includes one or more of the fillers described herein. The stripes represent a repeating pattern. Each stripe may have a length, measured along the pipe axis, of 1/50- 1/10 of the length of the membrane. The presence of stripes circumferentially oriented along the membrane appears to focus strain along joins of stripes thereby enhancing the sensitivity of the membrane for detecting and measuring leaks.
Elastomeric thermoplastic polymers include, for example, styrenic block copolymers, thermoplastic polyolefinelastomers, thermoplastic Vulcanizates, thermoplastic polyurethanes, thermoplastic copolyester, and thermoplastic polyamides.
Strain may be measured by one or more PV electric resistance meters that measure resistance through the membrane in one or more of a circumferential or longitudinal direction. Changes in the resistance of membrane 220 can be constantly monitored and compared with a reference membrane that is installed on a section of pipe without covering a pipe joint. Comparison in the resistance or change in resistance between a first membrane covering a pipe joint and a second membrane reference membrane covering a virgin or unjoined section of pipe permits detection of strain through a comparison of the resistance of the respective membranes and/or a comparison of the change of resistance of the comparative membranes. Using a comparative membrane permits isolation and elimination of noise and changes in resistance due to environmental conditions unrelated to the quality of the pipe join or the presence of a leak in the pipeline.
Signaling device 640 may be implemented in a wide range of devices by which personnel are alerted to the expansion state of elastic membrane 220. Signaling device 640 may be a simple annunciator, such as a buzzer, klaxon or flashing light, or may contain processing and communication circuitry through which remote personnel are alerted to the leak condition. For example, in one embodiment described in more detail below, signaling device 640 may comprise a wireless transmitter that conveys an indication of the expansion state of elastic membrane 220 to a remote wireless receiver. An indicator as to the expansion state of elastic membrane 220 may be located at the remote wireless receiver.
Elastic membranes 720a and 720b, representatively referred to herein as elastic membrane(s) 720, may be mechanically fixed to adjacent pipe segments 712 so as to encompass or otherwise extend across joints 715. The elastic membranes 720 may be fixed to pipe segments 712 by a suitable fastening mechanism, such as by those mechanisms described above. A depiction of such fastening mechanism has been omitted from
A leak detection device 770a and 770b, representatively referred to herein leak detection device(s) 770, may be affixed to each membrane 720. As is illustrated in the figure, each instance of leak detection device 770 may include sensor circuitry 772, signal processor circuitry 774, data processor circuitry 776 and communications circuitry 778. In one example, sensor circuitry 772 may include the strain gauge/Wheatstone bridge circuit described above. Signal processor circuitry 774 may filter or otherwise condition the sensor signal from sensor circuitry 772 and may convert an analog signal, should that be the output of sensor circuitry 772, into a digital representation of the sensor signal. Data processor circuitry 776 may operate on the digital data and may perform functions on and/or derive information from those data, e.g., conversion into particular units of measure, ascertaining statistical properties (mean, max, min, etc.), comparing the sensor signal to one or more thresholds or indexes, etc. Data from data processor circuitry 776 may be provided to communications circuitry 778, where the data may be transformed or otherwise formatted to be conveyed over a medium, such as air or transmission lines.
For example, a strain gauge may be affixed to the elastic membrane by an adhesive and remaining leak detection circuitry may be affixed to a nearby portion of a pipe segment, on a nearby pole and even on the elastic membrane itself.
Leak detection devices 770 may obtain operating power via from a central power source, such as through a distribution conductor 20. Alternatively, each leak detection device may include an onboard power source, such as a battery and/or solar panels. The present invention is not limited to particular power provisioning techniques; those having skill in the art will recognize numerous such techniques that can be used in conjunction with the present invention without departing from the spirit and intended scope thereof.
Pipeline system 700 may include a receiver station 790 communicatively coupled to leak detection devices 770a and 770b through respective communication links 10a and 10b, representatively referred to herein as communication link(s) 10. Receiver station 790 may be a facility at which monitoring tasks of pipeline 710 are assigned and need not be collocated with leak detection circuitry 770. Indeed, communication links 10 may be capable of conveying data over great distances, such as over satellite links or suitable communications technology, such as 5G. Pipeline system 700 may constructed or otherwise configured to participate in an Internet of Things paradigm.
Receiver station 790 may include receiver circuitry including communications circuitry 792 at which communication links 10 from respective leak detection devices 770 terminate, data processor circuitry 794 to process the data conveyed from each leak detection device 770 and status processor circuitry 796 to indicate the expansion states (or derivative leak information) of membranes 720 to human personnel, such as by visual display, audible alarm, etc.
Whereas only a single receiver station 790 is illustrated in
Signal processor circuitry 774 may include components and sub-circuits by which a sensor signal is conditioned for further processing including where such processing is by digital means. For example, signal processor circuitry may include amplifier circuits, filter circuits, analog-to-digital conversion circuits, and other circuits known to technicians skilled in the signal processing arts.
Leak detection devices 770 and receiver station 790 are communicatively connected to each other, for example, via a network through communication circuits 778 and 792, which represent any hardware and/or software configured to communicate information via any suitable communications media (e.g., air, transmission line, etc.), and may include routers, hubs, switches, gateways, or any other suitable components in any suitable form or arrangement. The various components of the system may include any conventional or other communications devices to communicate over the networks via any conventional or other protocols, and may utilize any type of connection (e.g., WAN, LAN, Internet, Intranet, wired, wireless, etc.) for access to the network.
Data processor circuits 776 and 794 are, for example, one or more data processing devices such as microprocessors, microcontrollers, systems on a chip (SOCs), or other fixed or programmable logic, that executes instructions for process logic stored the memory. The processors may themselves be multi-processors, and have multiple CPUs, multiple cores, multiple dies comprising multiple processors, etc.
The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. 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,” 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 features, integers, steps, operations, elements, components, and/or groups thereof.
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. The description of the present invention has been presented for purposes of illustration and description, but is not intended to be exhaustive or limited to the invention in the form disclosed. Many modifications and variations will be apparent to those of ordinary skill in the art without departing from the scope and spirit of the invention. The embodiment was chosen and described in order to best explain the principles of the invention and the practical application, and to enable others of ordinary skill in the art to understand the invention for various embodiments with various modifications as are suited to the particular use contemplated.
The descriptions above are intended to illustrate possible implementations of the present inventive concept and are not restrictive. Many variations, modifications and alternatives will become apparent to the skilled artisan upon review of this disclosure. For example, components equivalent to those shown and described may be substituted therefore, elements and methods individually described may be combined, and elements described as discrete may be distributed across many components. The scope of the invention should therefore be determined not with reference to the description above, but with reference to the appended claims, along with their full range of equivalents.