WET FRAC-SAND DELIVERY SYSTEM
20210178345 · 2021-06-17
Inventors
Cpc classification
B01F35/2134
PERFORMING OPERATIONS; TRANSPORTING
B01F2101/49
PERFORMING OPERATIONS; TRANSPORTING
E21B43/2607
FIXED CONSTRUCTIONS
International classification
Abstract
A wet frac-sand well site delivery system is a process and method of storing, measuring and regulating the percent solids or PPA (pounds of proppant added) in a sand slurry. The wet sand delivery system is a closed loop, on-site storage system that can receive and store wet frac-sand. The wet sand delivery system takes the wet sand directly from the wash plant and transports it to a wet sand storage pit. From the wet sand storage pit, the sand is pumped directly to a blender or regulator for mixing into a sand slurry for subsequent delivery to a frac pump.
Claims
1. A wet-frac sand delivery system comprising: a pit for storing wet sand; a sand slurry regulator comprising: a supply line for receiving wet sand from the pit, a return line to return sand the pit, a flow meter; a density meter, a source pump which pumps wet sand from the pit to the sand slurry regulator through the supply line, wherein the sand slurry regulator monitors at least one of the flow and density of the wet sand slurry and adjusts at least one of the flow and density to deliver slurry to a frac pump with a desired concentration of proppant added.
2. The wet-frac sand delivery system of claim 1, wherein the source pump is a submersible pump situated below the water surface of the pit.
3. The wet-frac sand delivery system of claim 1, further comprising a water line for supplying water to the sand slurry regulator.
4. The wet-frac sand delivery system of claim 1, further comprising a water line for supplying water to the pit.
5. The wet-frac sand delivery system of claim 1, wherein the pit is a lined earthen pit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] For a more complete understanding of the present disclosure, reference is now made to the following description, taken in connection with the accompanying drawings and detailed description, wherein like reference numerals represent like parts.
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DETAILED DESCRIPTION
[0017] It should be understood at the outset that although illustrative implementations of one or more embodiments are illustrated below, the disclosed systems and methods may be implemented using any number of techniques, whether currently known or not yet in existence. The disclosure should in no way be limited to the illustrative implementations, drawings, and techniques illustrated below, but may be modified within the scope of the appended claims along with their full scope of equivalents.
[0018] The wet frac-sand delivery system utilizes wet sand that has been washed and sized but not dried in a dryer. “Wet Sand” is defined as sand with greater than 3% moisture content. Preferably, the wet sand may between 5% to 8%. The wet sand may be a courser grade frac-sand, such as 40/140 (heavy 100 mesh) which has been adopted by several operators in the Permian Basin and in the Haynesville Shale Basin, with excellent results. In some cases, operators are experiencing substantially better results due to the ability to pump more sand per stage at a lower cost. The frac-sand may also be finer grade, such as 40/70 and 70/140 (100 mesh).
[0019] According to an embodiment depicted in
[0020] The wet sand storage pit 10 may be a lined earthen pit. The sand, wet or dry, will be delivered and stored in the lined pit, eliminating the need for specialized storage. The wet sand storage pit 10 may be formed in an advantageous shape for funneling the sand downward toward the center of the pit, such as an inverted cone like shape as shown in
[0021] The wet sand storage pit 10 will reduce off load times at the pad site. Currently dry sand is transported by specialized pneumatic trailers or boxes. The pneumatic trailers use pressure to blow the load of dry sand into upright silos on site. The process takes as much as 45 minutes to off load dry sand. This is a substantial cost of transportation and effects the number of loads a truck can deliver in a 12-hour period. The storage box systems are more efficient to off load but require forklifts and other specialized conveyors. Additionally, the box and silo systems require annual leases that are very expensive to service companies. However, the wet sand storage pit 10 may enable side or belly dump trailers to dump directly into the pit at a truck of load site 14. This change in delivery trailer reduces off-load time, for example, taking less than 10 minutes. The time savings in off-loading will save on costs associated with pneumatic trailers. For example, reducing the off-load time by 30 minutes may provide savings of 20 to 30 percent of cost associated with pneumatic trailers. With regard to box storage systems, the closed loop system eliminates lease, forklift and custom trailer cost. Savings compared to box systems will be substantial, and may exceed 50 percent.
[0022] The wet sand storage pit 10 may be centrally located to support multiple wells that may be placed on a section of land. For example, in the Delaware Basin, operators are placing as many as four 12-well pads on one section of land. Centrally locating the wet sand pit in the center of the section of the pad site would allow this single pit to support up to 50 well completions. This system will allow exploration and production operators in areas with multiple pay zones and multi-well pads to build water and sand pits that services as many as 10 to 100 well completions.
[0023] The wet sand regulator 30, an embodiment of which is shown in
[0024] The data collected by the wet sand regulator 30 is then sent to a control panel 42 and/or computer. The control panel may use control logic to calculate from this data the volumetric ratio per unit time (GPM, BPM, etc.) of clean water to dirty water required to be sent to the blender tub in order to dilute the slurry to the desired PPA value. Further, using a real time density reading, the control panel may determine how much flow is needed to provide the desired amount of sand to the blender, and open a supply valve 36 on a line delivering sand to the blender 40 and close return valves 38 on a return line to the pit wet sand pit 10 accordingly to achieve necessary rate to the tub. For example, the valves 36 and 38 may be pinch valves, butterfly valves and/or other suitable valves. The wet sand regulator 30 may be capable of delivering dirty water to the blender 40 at a high rate of accuracy. For example, the wet sand regulator may allow the blender tub to be able to produce a range of 0.5 to 2 lbs of sand per gallon of water at a rate up to 100 BBL per minute.
[0025] The wet sand regulator 30 may be mobile, such as by mounting the regulator on a skid, or it may be installed as stationary equipment at the well site.
[0026] According to another embodiment depicted in the site layout in
[0027] The sand slurry regulator 130, an embodiment of which is depicted in
[0028] The sand slurry regulator 130 may be mobile, such as by mounting the regulator on a skid, or it may be installed as stationary equipment at the well site.
[0029] Current frac sand systems originate a sand slurry in an open top tub where sand and water are combined prior to being pumped to the missile. The blender tub agitates the slurry with paddles as sand is added into the tub. This process allows air bubbles to be captured in the slurry. When the air bubbles are exposed to the high-pressure pumps, microscopic explosions occur causing cavitation damage to pump fluid ends, which is a known industry issue. The wet sand delivery system addresses the air and cavitation issue by originating the sand slurry with the submersible pump 120, which is situated below the water surface level of the wet sand storage pit 110. Air will not be introduced at origination of the slurry due to the pumps submerged depth at origination, which will dramatically increase fluid end duty cycles.
[0030] While several embodiments have been provided in the present disclosure, it should be understood that the disclosed systems and methods may be embodied in many other specific forms without departing from the spirit or scope of the present disclosure. The present examples are to be considered as illustrative and not restrictive, and the intention is not to be limited to the details given herein. For example, the various elements or components may be combined or integrated in another system or certain features may be omitted or not implemented.
[0031] Additionally, other items shown or discussed as being in direct connection with each other may be indirectly connected or communicating through some interface, device, or intermediate component, whether mechanically, electronically, or otherwise. Other examples of changes, substitutions, and alterations are ascertainable by one skilled in the art and could be made without departing from the spirit and scope disclosed herein.