Embodiments of the present invention relate to an exploration drilling system and method for supplying power thereto, more specifically to an exploration drilling system for drilling wells and fracturing and method for supplying power thereto.
Large amounts of electrical energy are required for drilling wells and fracturing during the extraction of oil or coal-bed methane, but drilling wells and fracturing require different intensities of electrical energy supplied over different durations of time. In general, the continuous supply of electrical energy at low power (about 4 MW) for 3-6 months is needed to drill a well and the load frequently peaks during the drilling of wells. Electrical energy generally needs to be supplied at high power (about 30 MW) at a stable rate for 1-2 weeks for fracturing in a single well.
In conventional exploration drilling systems, a plurality of independent power supply devices is used to separately supply power to the drilling drive system and fracturing drive system, so as to utilize different power supply devices for power supply during drilling and fracturing, to satisfy the different power requirements of drilling wells and fracturing. Consequently only some of the power supply devices operate during drilling wells and fracturing, while the other devices are idle. This requires the purchase of a large number of power supply devices although the utilization rate of the power supply devices is not high and extraction costs are high.
Therefore, it is necessary to provide an exploration drilling system and method of supplying power thereto to solve at least one of the aforementioned technical problems.
One aspect of the invention is to provide an exploration drilling system comprising: a plurality of drilling drive systems; a fracturing drive system; a centralized power supply system electrically coupled to the plurality of drilling drive systems and fracturing drive system to supply power thereto; and a plurality of distributed power supply systems electrically coupled to said drilling drive systems to provide additional power thereto during peak loading of a respective one of the plurality of drilling drive systems.
Another aspect of the invention is to provide a method of supplying power comprising: supplying power from a centralized power supply system to a plurality of drilling drive systems to drill wells; supplying additional power from a plurality of distributed power supply systems to the plurality of drilling drive systems during peak loading of a respective one of the plurality of drilling drive systems; and supplying power from the centralized power supply system to a fracturing drive system to fracture a formation at the wells.
The present invention may be better understood through a description of embodiments of this invention combined with the accompanying drawings, which are as follows:
Unless otherwise defined, the meaning of technical terms or scientific terms used herein should be taken as the ordinary meaning understood by a person having ordinary skill in the technical field of the present invention. “Comprises”, “comprising” or other similar words applied in the specification or claims of the present patent application imply that one or more elements or objects appearing before “comprises” or “comprising” covers the enumerated elements or objects and those equivalent elements thereof appearing after “comprises” or “comprising”; however, other elements or objects are not excluded. The meanings of “coupled” or “interconnected” and other similar terms are not limited to direct connections, but also cover indirect connections.
A plurality of distributed power supply systems 17 are electrically coupled to a plurality of drilling drive systems 11 to provide additional power thereto when a respective one of the plurality of drilling drive systems 11 is at peak load. In this embodiment, each distributed power supply system 17 is connected to one drilling drive system 11. Centralized power supply system 15 provides basic power to multiple drilling drive systems 11 to drill wells. Centralized power supply system 15 supplies about 3-4 MW of power to each drilling drive system 11. When one or more drilling drive systems 11 is at peak load due to factors such as geology, one or more corresponding distributed power supply systems 17 provide additional power to drilling drive systems 11. In other words, centralized power supply system 15, together with drilling drive systems 11, supply power to drilling drive systems 11 at such time to meet the requirements due to the sudden load increase. The electrical power provided from an individual distributed power supply system 17 is less than the electrical power provided from the centralized power supply system 15. An individual distributed power supply system 17 supplies about 1 MW of electrical power. Drilling and fracturing can be separately powered by centralized power supply system 15, thus simplifying drilling system 100, reducing the number of power supply devices and increasing the utilization rate of the power supply system.
In an embodiment, centralized power supply system 15 comprises a plurality of diesel engines, e.g., 10 diesel engines. The plurality of diesel engines supplies stable power to both fracturing drive system 13 and drilling drive systems 11. Distributed power supply system 17 comprises a gas turbine generator. The gas turbine generator can be arranged at the mouth of a well to provide additional power to bear the increased load when one or more of drilling drive systems 15 is at peak load. In this embodiment, each distributed power supply system 17 comprises a gas turbine generator. At present, a large number of diesel engines are employed at old and mature oil or coal-bed methane fields. In this embodiment, said diesel engines can be combined to form centralized power supply system 15, thus improving the utilization rate of the diesel engines, optimizing power supply system of exploration drilling system 100 and putting existing resources to good use without increasing costs.
In another embodiment, centralized power supply system 15 comprises an aero-derivative turbine. One aero-derivative turbine can supply 20-30 MW of power. One aero-derivative turbine can be employed in centralized power supply system 15 to supply power to fracturing drive system 13 and drilling drive systems H. Thus centralized power supply system 15 occupies a small area and is convenient to maintain. Since natural gas is employed as the fuel of the aero-derivative turbine, fuel and operating costs are low, in yet another embodiment, centralized power supply system 15 comprises wind power generation equipment or other power generation equipment. If the area of oil or coal-bed methane extraction is located near a wind farm, it will be easier to employ power generated by wind power generation equipment.
In another embodiment, the distributed power supply system comprises one or more energy storage devices, such as supercapacitors. The energy storage devices are coupled to the centralized power supply system. Power supply method 400 further comprises employing energy storage devices to store power from said centralized power supply system and providing additional power to the drilling drive systems when at peak load by means of the energy storage devices.
In yet another embodiment, the power supply device, such as gas turbine generator, is electrically coupled to the corresponding drilling drive system thereof. When some of the drilling drive systems are not in operation, the corresponding power supply device thereof can act as the centralized power supply system to supply stable power to the other drilling drive systems in operation. The power supply devices corresponding to the drilling drive systems in operation are employed as distributed power supply systems to supply power to the drilling drive systems at peak load. The power supply devices can be flexibly employed as centralized power supply systems or distributed power supply systems and this embodiment is particularly suited to the exploitation of small oil & gas fields.
In step 405, power is supplied from the centralized power supply system to the fracturing drive system to fracture a formation at the wells. The centralized power supply system supplies stable high-power electricity to the fracturing drive system to fracture.
Step 403 of the supply of power from the distributed power supply system is performed in the process of step 401 of the supply of power from the centralized power supply system to drilling drive systems. The centralized power supply system continuously supplies power during well drilling, while the distributed power supply systems supply power at peak load during the supply of power from the centralized power supply system. Fracturing can be conducted in old wells that are already drilled based on the actual state of extraction, and then new wells can be drilled. The sequence of step 401 for the supply of power from the centralized power supply system to drilling drive systems and step 405 for the supply of power from the centralized power supply system to fracturing drive systems is not limited to that disclosed in the drawings and can be determined based on actual extraction conditions.
Although the present invention is described with reference to specific modes of implementation, a person skilled in the art should be aware that many modifications and variations may be made to the present invention. Consequently it should be noted that the intention of the claims covers all modifications and variations falling under the true spirit and scope of the present invention.
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