The present invention relates generally to a method and system for securing an infrastructure component such as a pipeline. More particularly, the present invention relates to a method and system for implementing sensor arrangements and gathering data to protect the infrastructure component against potential threats.
In recent years, considerable efforts have been made to secure components of infrastructure such as pipelines and associated oil and gas infrastructure, with financial support from both industry and government. Other examples of infrastructure components include rail lines, waterways, electrical distribution networks, water distribution networks, and so forth. Securing infrastructure components against intentional destructive attacks has been an important focus. However, certain infrastructure components also face threats from third party accidental excavation damages, for example, damage from backhoes or from farmers plowing fields with large machinery, or other machinery used in construction or excavation activities. Providing protection for infrastructures is a complicated task because many components are extremely large and easily accessible.
Traditionally, responses to threats against such infrastructure components have been mostly reactive, mainly because of the enormous amount of resources required to safeguard such infrastructure sites. Ground and aerial patrols have been used, but such patrols have limitations of timely preparedness for responding to a threat effectively. In-person patrolling is not a cost-effective solution, especially where continuous monitoring is considered desirable. Additionally, daily patrolling of pipeline resources has been estimated to be relatively ineffective in terms of actual damage prevention.
Some recent developments in automated pipeline security include the use of geophones, fiber optic cables, satellite surveillance and the like. These solutions have several limitations. One problem is that such sensing methods require highly skilled professionals and sophisticated equipment to deploy them, which limits the level of responsiveness concerned authorities can be to changing threat situations. For example, successful installation, testing, and troubleshooting of fiber optic equipment requires extensive experience with special methods that deal with optical coupling, termination, splicing, and unusual signal complexities. As a result, fiber optic-based system and installation costs can be orders of magnitude higher than non-optical systems. Systems based on geophones must compensate for device sensitivity limitations, requiring the attachment of such devices directly to the infrastructure being monitored. Such processes tends to incur great costs and pose great risk of damaging the monitored infrastructure, with both cost and risk being a function of the number of such devices needed per mile. Satellite surveillance is expensive and is not feasible as a sole method for real time threat detection.
Therefore, there is a need for an improved system and method for detecting threats for components of large infrastructures such as pipelines.
In accordance with one aspect of the invention, a system for generating a threat alert in an infrastructure component is provided. The system includes at least three acoustic sensors disposed at a pre-determined spacing apart form each other on the infrastructure component, wherein each of the sensors is configured to detect a signal corresponding to an outcome that causes damage to the infrastructure component. The system also includes an electronic circuit coupled to each of the at least three acoustic sensors, the electronic circuit configured to filter noise from the signal and generate a threat signal. The system further includes a monitoring center configured to generate a shock alarm in response to the threat signal.
In accordance with another aspect of the invention, a method for manufacturing a threat alert generating system is provided. The method includes providing at least three acoustic sensors disposed at a pre-determined spacing apart on an infrastructure component, wherein each of the sensors is configured to detect a signal corresponding to an outcome that causes damage to the infrastructure component. The method also includes providing an electronic circuit coupled to each of the at least three acoustic sensors, the electronic circuit configured to filter noise from the signal and generate a threat signal. The method further includes providing a monitoring center configured to generate a shock alarm in response to the threat signal.
In accordance with another aspect of the invention, a method for generating a threat alert in an infrastructure component is provided. The method includes detecting a signal corresponding to an outcome that causes damage to the infrastructure component via at least three acoustic sensors disposed at a pre-determined spacing apart on the infrastructure component. The method also includes generating a threat signal based upon the signal detected. The method further includes transmitting the threat signal to a monitoring center.
These and other features, aspects, and advantages of the present invention will become better understood when the following detailed description is read with reference to the accompanying drawings in which like characters represent like parts throughout the drawings, wherein:
As discussed in detail below, embodiments of the present invention include a system and method for generating a threat alert in an infrastructure component. As used herein, the system and method are employed to identify a source of threat prior to occurrence and further generate a threat alert to prevent resulting potential damages. The source of threat or threat activity includes human initiated events, such as but not limited to, traveling vehicles, land excavation, tunneling, explosive detonations and natural events, such as, but not limited to, earthquakes and land slides.
Turning to the drawings,
In operation, when an acoustic generation event occurs near the pipeline 12, the sensors 14, 16, and 18 sense acoustic signals 30 that are transmitted to the respective processing circuitry 22, 24, and 26. The processing circuitries process the acoustic signals 30 via various software algorithms to determine if there is a threat. In one embodiment, a hybrid detection algorithm is employed. The hybrid detection algorithm distinguishes a threat activity from normal background noise of surrounding environment. As used herein, the term ‘background noise’ refers to acoustic signals generated by incidents such as, but not limited to, traffic noise. In an event of determining a threat, a threat signal 32 is generated that is transmitted to the monitoring center 40. In an exemplary embodiment, in an event of receiving the threat signal from the processing circuitry 22 corresponding to the sensor 14, the monitoring center 40 inspects a sensor preceding the sensor 14 and a sensor disposed immediately after the sensor 14. In the illustrated embodiment, the sensor 16 is the sensor preceding the sensor 14, while the sensor 18 immediately follows the sensor 14. It will be appreciated that, since the pipeline is illustrated to be linear, the sensors 16 and the sensor 18 are disposed to the left hand side of the sensor 14 and the right hand side of the sensor 14. However, in embodiments wherein the pipeline is a shape other than linear, the monitoring center 40 inspects sensors adjacent to the sensor 14 in any direction. A minimum of three sensors are necessary to allow the monitoring center 40 determine a location and time of occurrence of a potential threat event. This approach is also referred to as ‘acoustic triangulation’.
The sensors 14, 16, 18 may form a network for wirelessly communicating with each other. In another embodiment of the invention, the sensors 32, 34, 36, 38 may communicate wirelessly with each other in a pre-defined fashion. In yet another embodiment of the invention, the output of several types of sensors may be combined and/or several sensors may be arranged such that the output of one is input to another. Moreover, the installations of the multiple types of sensors 14, 16, 18 may be permanent in one embodiment of the invention such that these, once installed, remain in the high probability area. In another embodiment of the invention, for instance, the installations of the sensors 14, 16, 18 may be temporary.
The various embodiments of a system and method for generating a threat alert described above thus provide a convenient and efficient means to prevent damages from occurring within an infrastructure component. The infrastructure component forms an integral component of the system. The technique is engineered to integrate with existing impact detecting infrastructure. Furthermore, range of the sensors are of the order of several miles, implying fewer sensors per mile of coverage, thus lowering cost and complexity of deployment, maintenance, and operation. Furthermore, direct human involvement is eliminated, while providing round the clock surveillance.
It is to be understood that not necessarily all such objects or advantages described above may be achieved in accordance with any particular embodiment. Thus, for example, those skilled in the art will recognize that the systems and techniques described herein may be embodied or carried out in a manner that achieves or optimizes one advantage or group of advantages as taught herein without necessarily achieving other objects or advantages as may be taught or suggested herein.
Furthermore, the skilled artisan will recognize the interchangeability of various features from different embodiments. For example, the use of an acoustic sensor with a satellite communication link with respect to one embodiment can be adapted for use with an excavation activity using a bulldozer in a protected zone. Similarly, the various features described, as well as other known equivalents for each feature, can be mixed and matched by one of ordinary skill in this art to construct additional systems and techniques in accordance with principles of this disclosure.
While only certain features of the invention have been illustrated and described herein, many modifications and changes will occur to those skilled in the art. It is, therefore, to be understood that the appended claims are intended to cover all such modifications and changes as fall within the true spirit of the invention.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/US09/60406 | 10/13/2009 | WO | 00 | 6/13/2012 |