Date seed-based chips lost circulation material

Information

  • Patent Grant
  • 11136487
  • Patent Number
    11,136,487
  • Date Filed
    Tuesday, February 25, 2020
    4 years ago
  • Date Issued
    Tuesday, October 5, 2021
    2 years ago
Abstract
A lost circulation material (LCM) that includes chips formed from date palm seeds. The date palm seed-based chip LCM includes chips having lengths in the range of greater than 2.38 millimeters (mm) to less than 6.73 mm. Method of manufacturing the date palm seed-based chip LCM include washing and drying whole date tree seeds, such that the drying includes air-drying, hot rolling, and cooling. Methods of reducing lost circulation are also provided.
Description
BACKGROUND
Field of the Disclosure

The present disclosure generally relates to controlling lost circulation in a wellbore during drilling with a drilling fluid. More specifically, embodiments of the disclosure relate to a lost circulation materials (LCMs) for moderate and severe loss zones.


Description of the Related Art

Lost circulation is one of the frequent challenges encountered during drilling operations. Lost circulation can be encountered during any stage of operations and occurs when drilling fluid (such as drilling mud) pumped into a well returns partially or does not return to the surface. While some fluid loss is expected, excessive fluid loss is not desirable from a safety, an economical, or an environmental point of view. Lost circulation is associated with problems with well control, borehole instability, pipe sticking, unsuccessful production tests, poor hydrocarbon production after well completion, and formation damage due to plugging of pores and pore throats by mud particles. In extreme cases, lost circulation problems may force abandonment of a well.


Lost circulation can occur in various formations, such as naturally fractured formations, cavernous formations, and high permeable formations. Lost circulation can be categorized by the amount of fluid or mud lost as seepage type, moderate type, severe type, and total loss. The extent of the fluid loss and the ability to control the lost circulation with an LCM depends on the type of formation in which the lost circulation occurs.


SUMMARY

Moderate and severe loss zones may contain gaps, fractures, vugs, and channels having sizes greater than 5 millimeters (mm). A moderate loss zone may refer to loss zones exhibiting fluid losses of in the range of 10 barrels/hour (bbl/hr) to 100 bbl/hr. A severe loss zone may refer to loss zones exhibiting fluid losses of 100 barrels/hour (bbl/hr) or greater. Existing particulate or chip LCMs may be unable to create effective bridges and flow barriers in the openings in these moderate and severe loss zones.


Typical materials used to address lost circulation in moderate and severe loss zones may include calcium carbonate chips or graphite chips having sizes in the range of 2 mm to 6 mm and densities greater than 2 grams per cubic centimeter (g/cm3). However, calcium carbonate chips settle and sag in the stock tank or drilling fluid circulation system and are difficult to suspend in a carrier fluid during circulation and placement of a slurry into a loss zone. Graphite chips may also suffer from the settlement and sagging problems in the stock tank and drilling fluid circulation system. These settlement and sagging of calcium carbonate or graphite chips may be more problematic in deviated or horizontal wellbores.


Additionally, the suspension capability of a drilling mud or carrier fluid decreases in proportion to the density of the materials in the mud or fluid. Consequently, the densities of the calcium carbonate or graphite chips may make such chips difficult to suspend in the drilling mud or carrier fluid and decrease the success rate of an LCM treatment. Additionally, for a given mass concentration, the number of chips that can be incorporated into a drilling mud or carrier fluid increases with a decrease in density and may also affect the success rate of an LCM treatment.


In one embodiment, a method to reduce lost circulation of a drilling fluid in a wellbore in a formation is provided. The method includes introducing an altered drilling fluid into the wellbore while drilling such that a loss circulation material (LCM) contacts a lost circulation zone, such that the altered drilling fluid includes the drilling fluid and the LCM. The LCM consists of a plurality of chips produced from date tree seeds, each of the plurality of chips having a size in the range of greater than 2.38 millimeters (mm) to less than 6.73 mm.


In some embodiments, the altered drilling fluid consists of the drilling fluid and the LCM. In some embodiments, the drilling fluid is a water-based drilling mud or an oil-based drilling mud. In some embodiments, the plurality of chips are produced from untreated date tree seeds. In some embodiments, the plurality of chips are produced by: washing date tree seeds, drying the date tree seeds after the washing, the drying including air-drying the date tree seeds for a first time period of at least two hours, hot rolling the date tree seeds at a temperature of at least 80° C. for a second time period of at least two hours, and cooling the hot-rolled date tree seeds for a third time period of at least two hours. The plurality of chips are further produced by grinding the cooled date tree seeds, and sorting the ground date tree seeds into the plurality of chips. In some embodiments, the LCM has a specific gravity of 1.1.


In some another embodiment, an altered drilling fluid is provided. The altered drilling fluid includes a drilling fluid and a lost circulation material (LCM). The LCM consists of a plurality of chips produced from date tree seeds, each of the plurality of chips having a size in the range of greater than 2.38 millimeters (mm) to less than 6.73 mm. the altered drilling fluid consists of the drilling fluid and the LCM. In some embodiments, the drilling fluid is a water-based drilling mud or an oil-based drilling mud. In some embodiments, the plurality of chips are produced from untreated date tree seeds. In some embodiments, the plurality of chips are produced by: washing date tree seeds, drying the date tree seeds after the washing, the drying including air-drying the date tree seeds for a first time period of at least two hours, hot rolling the date tree seeds at a temperature of at least 80° C. for a second time period of at least two hours, and cooling the hot-rolled date tree seeds for a third time period of at least two hours. The plurality of chips are further produced by grinding the cooled date tree seeds, and sorting the ground date tree seeds into the plurality of chips.


In another embodiment, a lost circulation material (LCM) composition is provided. The LCM composition consists of a plurality of chips produced from date tree seeds, each of the plurality of chips having a size in the range of greater than 2.38 millimeters (mm) to less than 6.73 mm. In some embodiments, the plurality of chips are produced from untreated date tree seeds.


In another embodiment, a method of manufacturing a lost circulation material (LCM) is provided. The method includes obtaining date tree seeds, washing the date tree seeds, and drying the date tree seeds after the washing. The drying includes air-drying the date tree seeds at ambient conditions for a first time period of at least two hours, hot rolling the date tree seeds at a temperature of at least 80° C. for a second time period of at least two hours, and cooling the hot-rolled date tree seeds at for a third time period of at least two hours. The method further includes grinding the cooled date tree seeds sorting the ground date tree seeds into a plurality of chips, each chip having a size in the range of greater than 2.38 millimeters (mm) to less than 6.73 mm. In some embodiments, washing the date seeds includes washing the date seeds using pressurized water with mechanical agitation. In some embodiments, sorting the dried date seeds includes using a plurality of sieves.





BRIEF DESCRIPTION OF THE DRAWINGS


FIG. 1 is a process for the manufacture and use of a date palm seed-based chip LCM in accordance with an embodiment of the disclosure;



FIG. 2 is a bar graph depicting the measured log on grinding index (LOG I) for an example date palm seed-based chip LCM and the three commercially available calcium carbonate chips in accordance with an embodiment of the disclosure;



FIG. 3 is a bar graph of the specific gravities of an example date palm seed-based chip LCM and the two commercially available calcium carbonate chips in accordance with an embodiment of the disclosure;



FIGS. 4A and 4B are photographs of an example date palm seed-based chip LCM and commercially available calcium carbonate chips in a viscous fluid after a time period in accordance with an embodiment of the disclosure; and



FIG. 5 is a graph of the number of chips per 350 cubic centimeters (cc) of drilling mud for an example date tree seed-based LCM and commercially available calcium carbonate chips in accordance with an embodiment of the disclosure.





DETAILED DESCRIPTION

The present disclosure will be described more fully with reference to the accompanying drawings, which illustrate embodiments of the disclosure. This disclosure may, however, be embodied in many different forms and should not be construed as limited to the illustrated embodiments. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the disclosure to those skilled in the art.


Embodiments of the disclosure include a date tree seed-based chip lost circulation material (LCM) having chips formed from date tree seeds. As used in the disclosure, the term date palm seeds (also referred to as “date seeds”) refers to the seeds produced from date trees (also referred to as “date palms”), such as used in the production of date fruits (also referred to as “dates”). The date tree seed-based chip LCM includes chips having a particle size in the range of greater than 2.38 millimeters (mm) to less than 6.73 mm. The chips formed from date tree seeds may include chips passed through a sieve of 6.73 mm (0.265 inches) mesh size and retained on a sieve of 2.38 millimeters (No. 8) mesh size


In some embodiments, the date palm seed-based chip LCM may have a log on grinding index (LOG I) of about 5.5. In some embodiments, the specific gravity of the date palm seed-based chip LCM may be about 1.1. The density of the date palm seed-based chip LCM may be about 1.1 g/cm3. The density of the date palm seed-based chip LCM may ensure minimal to no settlement (that is, settling of the solids at the bottom of a liquid to form a sediment) of the LCM in a fluid tank and fluid circulation system (for example, a drilling fluid circulation system), minimal to no sagging (that is, settling of the solids in a well annulus) in a deviated hole sections, and minimal to no bedding (that is, settling of solids at the bottom) in horizontal wellbores. When introduced into a loss zone, the date palm seed-based chip LCM may form plugs, seals, bridges, flow barriers, or other structures in gaps, fractures, vugs, channels, and other openings having sizes greater than 5 mm.


The date palm seeds may be obtained from pruning waste and date processing plants to provide a sustainable source of material for the date palm seed-based chip LCM. The date palm seeds are obtained from the species Phoenix dactylifera. It should be appreciated that, in some embodiments, the date palm seeds may be obtained from genetically modified date trees (that is, genetically modified organisms (GMOs)).


In some embodiments, the date palm seeds may include untreated date palm seeds to preserve the environmentally-friendly and biodegradable properties of the manufacturing process, the date palm seeds, and the resulting LCM composition. As used in the disclosure, the term “untreated” or “without treating” refers to not treated with alkali or acid, not bleached, not chemically altered, not oxidized, and without any extraction or reaction process other than possibly drying of water. The term “untreated” or “without treatments” does not encompass grinding or heating to remove moisture but does encompass chemical or other processes that may change the characteristics or properties of the particles. In such embodiments, the chips may be manufactured without treating before, during, or after crushing, grinding, drying, or any other processing.


The date palm seed-based chip LCM may be added to a carrier fluid or a drilling fluid that is circulated (for example, via a pump) to position the LCM into contact with a lost circulation zone in a wellbore. In some embodiments, the date palm seed-based chip LCM may be added directly to a drilling fluid, such as a drilling mud, to create an altered drilling fluid having the date palm seed-based chip LCM. For example, in some embodiments, the date palm seed-based chip LCM may be added to (for example, blended with) an oil-based drilling mud or a water-based drilling mud. In some embodiments, the date palm seed-based chip LCM may be added at the mud pit of a mud system. After addition of the date palm seed-based chip LCM to a drilling fluid, the altered drilling fluid may be circulated at a pump rate effective to position the altered drilling fluid into contact with a lost circulation zone in a wellbore, such that the date palm seed-based chip LCM alters the lost circulation zone (for example, by forming structures in gaps, fractures, vugs, channels, and other openings in a formation).


In some embodiments, the date palm seed-based chip LCM may have a concentration in the range of about 10 pounds-per-barrel (ppb) to about 50 ppb in a drilling fluid. In some embodiments having moderate, the date palm seed-based chip LCM may have a concentration in the range of about 15 ppb to about 30 ppb in a drilling fluid. In some embodiments, the drilling fluid or carrier fluid may be water-based mud, such as a bentonite mud, a potassium chloride (KCl)-polymer mud, a low solids non-dispersed (LSND) mud, a calcium chloride (CaCl2))-polymer mud, a sodium chloride (NaCl)-polymer mud, or other water-based muds. An example bentonite mud may include water, bentonite, caustic soda, and soda ash. An example KCl-polymer mud may include water, caustic soda, soda ash, bentonite, KCl, Xanthomonas campestris (XC or xanthan gum) polymer, and a filtrate control additive. In some embodiments, the drilling fluid or carrier fluid may an oil-based mud, such as diesel-, mineral-, or synthetic-oil based muds.



FIG. 1 depicts a process 100 for the production and use of a date palm seed-based chip LCM in accordance with an example embodiment of the disclosure. As shown in FIG. 1, whole date tree seeds may be collected (block 102). In some instances, the whole date seeds are collected from date tree waste produced by date tree farming and date processing industries. The date palm seeds may be washed to remove fruit particles and other debris and foreign substances (block 104), such as by pressurized water or an air jet in a closed loop system with mechanical agitation. The washed whole date seeds may be then be dried using one or more techniques (block 106). In some embodiments, the whole date seeds may be dried using a hot rolling to improve the ductility of the date seeds. In such embodiments, the washed whole date seeds are first air-dried at ambient temperature for a time period of at least two hour, then hot rolled (for example, in a roller oven) at a temperature of at least 80° C. for a time period of at least two hours, then cooled at ambient conditions (temperature and pressure) for a time period of at least two hours.


The dried whole date seeds may then be ground into chips (block 108) using a commercial grinder. The chips may be sorted into different sizes using sieves of the appropriate mesh sizes (block 110). For example, the chips may be sorted using a sieve of 6.73 mm (0.265 inches) mesh size and a sieve of 2.38 millimeters (No. 8) mesh size. The sorted date tree seed-based chips may be packed for transportation and use (block 112). In some embodiments, a suitable amount of packed mixed particles may then be transported to an oil and gas operations site for use as an LCM.


The date palm seed-based chip LCM may be added directly to a drilling fluid (block 114), such as a drilling mud, to create an altered drilling fluid having the date palm seed-based chip LCM. For example, in some embodiments, the date palm seed-based chip LCM may be added to (for example, blended with) an oil-based drilling mud or a water-based drilling mud. In some embodiments, the date palm seed-based chip LCM may be added at the mud pit of a mud system.


After addition of the date palm seed-based chip LCM to a drilling fluid, the altered drilling fluid may be circulated at a pump rate effective to position the drilling fluid into contact with a lost circulation zone in a wellbore, such that the date palm seed-based chip LCM alters the lost circulation zone (for example, by entering and blocking gaps, fractures, vugs, channels, and other openings in a formation in the lost circulation zone). In some embodiments, the lost circulation zone may be a moderate loss zone or a severe loss zone, including loss zones having gaps, fractures, vugs, channels, and other openings greater than 5 mm in size. The date palm seed-based chip LCM may form structures (for example, plugs or seals) at gaps, fractures, vugs, channels, and other openings in a loss zone. In some embodiments, the reduced rate of lost circulation may be negligible.


In other embodiments, the date palm seed-based chip LCM and one or more additional LCMs may be added to a drilling fluid, such as a drilling mud, to create an altered drilling fluid having the LCMs. For example, in some embodiments, the date palm seed-based chip LCM and one or more additional LCMs may be added to an oil-based drilling mud or a water-based drilling mud.


EXAMPLES

The following examples are included to demonstrate embodiments of the disclosure. It should be appreciated by those of skill in the art that the techniques and compositions disclosed in the example which follows represents techniques and compositions discovered to function well in the practice of the disclosure, and thus can be considered to constitute modes for its practice. However, those of skill in the art should, in light of the present disclosure, appreciate that many changes can be made in the specific embodiments which are disclosed and still obtain a like or a similar result without departing from the spirit and scope of the disclosure.


The following non-limiting example of a date palm seed-based chip LCM was prepared and evaluated against a commercially available LCM. The example date palm seed-based chip LCM included chips having a particle size in the range of greater than 2.38 millimeters (mm) to less than 6.73 mm.


The degradation potential of the example date palm seed-based chip LCM was evaluated by measuring the loss on grinding index (LOG I). The loss on grinding index was measured by determining the ratio of material lost after two hours of wet grinding to the original mass of the material. The wet grinding was performed to simulate the attrition effect of surface and subsurface tools and the hydrodynamic forces of circulating fluid that would impact an LCM. The wet grinding test used a test cell to simulate a piece of a wellbore, a free rotating metal cylinder to simulate the attrition effect of surface and subsurface tools and equipment, and water as the carrier fluid to simulate hydrodynamic forces. The wet grinding test used rotating equipment to the rotate the test cell at a rotational speed of about 35 revolutions per minute (rpm) to simulate aggressive hydrodynamic forces.


The example date tree seed-based chip LCM was compared against three commercially available calcium carbonate chips. The LOG I of the each of the three calcium carbonate chips was measured using the same testing conditions. About 20 to 25 grams (g) of the example date tree seed-based chip LCM or the calcium carbonate (CaCO3) chips were placed in the test cell and rotated at the rotational speed for a time period of about two hours at room temperature. The mass of the material lost was measured and used to determine the LOG I from the original 25 g.



FIG. 2 is a bar graph 200 depicting the measured LOG I for the example date palm seed-based chip LCM and each of the three commercially available calcium carbonate chips. The y-axis 202 depicts the LOG I (in percentage (%)), and the x-axis 204 depicts each tested material. As shown in FIG. 2, the example date palm seed-based chip LCM (illustrated by bar 206) had a LOG I of 5.5. As also shown in FIG. 2, the first commercially available calcium carbonate chips (illustrated by bar 208) had a LOG I of 4.5, the second commercially available calcium carbonate chips (illustrated by bar 210) had a LOG I of 6, and the third commercially available calcium carbonate chips (illustrated by bar 212) had a LOG I of 7.5. Thus, the date tree seed-based chip LCM exhibited on average similar performance to the commercially available calcium carbonate chips. The results of the degradation testing show that the date tree seed-based chip LCM has similar degradation resistance to the calcium carbonate chips when subjected to simulated mechanical and hydrodynamic forces encountered in a wellbore during operations and fluid circulation.


The specific gravity of the example date palm seed-based chip LCM was also determined and compared against commercially available calcium carbonate chips and commercially available graphite chips. FIG. 3 is a bar graph 300 of the specific gravities of the example date palm seed-based chip LCM and the two commercially available calcium carbonate chips. The y-axis 302 corresponds to the specific gravity, and the x-axis 304 corresponds to each material. As shown in FIG. 3, the commercially available calcium carbonate chips (illustrated by bar 306) have a specific gravity of 2.7, and the commercially available graphite chips (illustrated by bar 308) have a specific gravity of 2.16. As also shown in FIG. 3, the example date tree seed-based chip LCM (illustrated by bar 310) has a specific gravity of 1.1. Thus, the example date tree seeds LCM has a specific gravity about 2.45 times less than the commercially available calcium carbonate chips and about 1.9 times less than the commercially available graphite chips. As compared to the calcium carbonate chips or graphite chips, the reduced specific gravity of the example date palm seed-based chip LCM may enable easier suspension of the LCM in a drilling fluid or carrier fluid with no or negligible settlement or sagging while circulating, thus providing for easier placement in a loss zone and increasing the likelihood of a successful LCM treatment.


The suspension capacity of the example date palm seed-based chip LCM and one of the commercially available calcium carbonate chips were evaluated using a vicious fluid having viscous characteristics similar to a carrier fluid typically used in oil and gas well drilling. The viscous fluid was prepared by mixing 2.5 g of XC polymer (xanthan gum) in 350 cubic centimeters (cc) of water and mixing using a commercially available mixer. The resulting carrier fluid had low shear yield point (LSYP) equal to 19.5 lbs/100 ft2. The date palm seed-based chip LCM and calcium carbonate chips were placed in separate containers with the viscous fluid, stirred, and observed over a time period of about 2 minutes to 5 minutes.



FIG. 4A is a photograph 400 of the example date palm seed-based chip LCM in the viscous fluid after the time period, and FIG. 4B is a photograph 402 of the calcium carbonate chips in the viscous fluid after the time period. The date seed-based chips were initially suspended in the carrier fluid and, as shown in FIG. 4A, the date seed-based chips remained suspended in the carrier fluid after the time period. In contrast, as shown in FIG. 4B, the calcium carbonate chips showed poor suspension capability and quickly settled at the bottom of the container of viscous fluid. The reduced suspension capacity and greater settlement of the calcium carbonate chips indicate that it may be difficult to transport the calcium carbonate chips to a loss zone and enable sealing, plugging, and blocking of gaps, fractures, vugs, and channels in the loss zone. In contrast, the greater suspension capacity and zero or negligible settlement of the date tree seed-based chips may provide for the transportation of nearly all of the chips in a fluid to a loss zone for effective sealing, plugging, and blocking of gaps, fractures, vugs, and channels in the loss zone. Based on the results of the testing, the date palm seed-based chip LCM will likely have minimal to no settling or sagging during pumping or placement into a loss zone, thus improving the likelihood of success of an LCM treatment in such zones.


Moderate to severe loss zones typically have greater concentrations of gaps, fractures, vugs, and channels than other types of loss zones. LCMs that provide a greater number of particles per unit mass will transport a greater number of particles into such loss zones. Accordingly, the number of particles per unit mass for the example date tree seed-based chip LCM was determined and compared to one of the commercially available calcium carbonate chips. For the determinations, the chip size was assumed to be equivalent to a sphere having a diameter of 0.30 centimeters (cm). FIG. 5 is a graph 500 of the number of chips per 350 cubic centimeters (cc) of drilling mud for the date tree seed-based LCM and the one of the commercially available calcium carbonate chips. The y-axis 502 corresponds to the number of chips/350 cc of drilling mud (chip number/350 cc mud) and the x-axis 504 corresponds to the chips concentration in grams per 350 cc of drilling mud (gm/350 cc mud). The chip concentration for the date tree seed-based chip LCM is shown by line 506, and the chip concentration for the calcium carbonate chips is shown by line 508. As shown in FIG. 5, the date tree seed-based chip LCM provides more than twice the number of particles as compared to the calcium carbonate chips at the same mass concentration. The greater number of particles per unit mass shows that the date tree seed-based chip LCM has a greater likelihood of plugging, sealing, and blocking the channels, gaps, fractures, vugs, channels, and other openings in a loss zone as compared to the calcium carbonate chips.


Ranges may be expressed in the disclosure as from about one particular value, to about another particular value, or both. When such a range is expressed, it is to be understood that another embodiment is from the one particular value, to the other particular value, or both, along with all combinations within said range.


Further modifications and alternative embodiments of various aspects of the disclosure will be apparent to those skilled in the art in view of this description. Accordingly, this description is to be construed as illustrative only and is for the purpose of teaching those skilled in the art the general manner of carrying out the embodiments described in the disclosure. It is to be understood that the forms shown and described in the disclosure are to be taken as examples of embodiments. Elements and materials may be substituted for those illustrated and described in the disclosure, parts and processes may be reversed or omitted, and certain features may be utilized independently, all as would be apparent to one skilled in the art after having the benefit of this description. Changes may be made in the elements described in the disclosure without departing from the spirit and scope of the disclosure as described in the following claims. Headings used in the disclosure are for organizational purposes only and are not meant to be used to limit the scope of the description.

Claims
  • 1. A method to reduce lost circulation of a drilling fluid in a wellbore in a formation, comprising: introducing an altered drilling fluid into the wellbore while drilling such that a loss circulation material (LCM) contacts a lost circulation zone, wherein the altered drilling fluid comprises the drilling fluid and the LCM, wherein the LCM consists of a plurality of chips produced from date tree seeds, each of the plurality of chips having a size in the range of greater than 2.38 millimeters (mm) to less than 6.73 mm,wherein the plurality of chips are produced by: washing the date tree seeds; drying the date tree seeds after the washing, the drying comprising: air-drying the date tree seeds for a first time period of at least two hours to obtain air-dried date tree seeds; hot rolling the air-dried date tree seeds at a temperature of at least 80° C. for a second time period of at least two hours to obtain hot-rolled date tree seeds; and cooling the hot-rolled date tree seeds for a third time period of at least two hours to obtain cooled date tree seeds; grinding the cooled date tree seeds to obtain ground date tree seeds; and sorting the ground date tree seeds into the plurality of chips.
  • 2. The method of claim 1, wherein the altered drilling fluid consists of the drilling fluid and the LCM.
  • 3. The method of claim 1, wherein the drilling fluid comprises a water-based drilling mud or an oil-based drilling mud.
  • 4. The method of claim 1, wherein the LCM comprises a specific gravity of 1.1.
US Referenced Citations (161)
Number Name Date Kind
2483936 Roberts Oct 1949 A
2600404 Hoeppel Jun 1952 A
2749308 Beckum et al. Jun 1956 A
2779417 Clark, Jr. et al. Jan 1957 A
2789948 Tronolone Apr 1957 A
2811488 Nestle et al. Oct 1957 A
2912380 Groves Nov 1959 A
2943679 Scott, Jr. Jul 1960 A
2943680 Scott et al. Jul 1960 A
3147127 Shannon Sep 1964 A
3217801 Fast et al. Nov 1965 A
4086098 Le Ruyet et al. Apr 1978 A
4110225 Cagle Aug 1978 A
4127548 Alexander Nov 1978 A
4247403 Foley et al. Jan 1981 A
4275788 Sweatman Jun 1981 A
4428844 Wagener Jan 1984 A
4474665 Green Oct 1984 A
4579668 Messenger Apr 1986 A
4619772 Black et al. Oct 1986 A
4957166 Sydansk Sep 1990 A
5004553 House et al. Apr 1991 A
5118664 Burts, Jr. Jun 1992 A
5197324 Keys Mar 1993 A
5332724 Burts, Jr. Jul 1994 A
5484028 Rose Jan 1996 A
5501275 Card et al. Mar 1996 A
5801127 Duhon, Sr. Sep 1998 A
6016879 Burts, Jr. Jan 2000 A
6098712 Burts, Jr. Aug 2000 A
6102121 Burts, Jr. Aug 2000 A
6271001 Clarke et al. Aug 2001 B1
6350594 Clarke et al. Feb 2002 B1
6518224 Wood Feb 2003 B2
6716798 Burts, Jr. Apr 2004 B1
6750179 Burts, Jr. Jun 2004 B1
6790812 Halliday Sep 2004 B2
6806232 Cart Oct 2004 B1
6814798 Vijn et al. Nov 2004 B2
6861392 Shaarpour Mar 2005 B2
6932158 Burts Aug 2005 B2
7226895 Xiang Jun 2007 B2
7271131 Halliday et al. Sep 2007 B2
7284611 Reddy et al. Oct 2007 B2
7297662 Verret Nov 2007 B2
7297663 Kilchrist et al. Nov 2007 B1
7332026 Fyten et al. Feb 2008 B2
7488705 Reddy et al. Feb 2009 B2
7507692 Xiang Mar 2009 B2
7537054 Reddy et al. May 2009 B2
7541317 Pomerleau Jun 2009 B2
7629297 Shaarpour Dec 2009 B2
7744689 Hojaji et al. Jun 2010 B2
7795184 Pomerleau Sep 2010 B2
7902126 Burts, Jr. Mar 2011 B1
7923413 Ghassemzadeh Apr 2011 B2
7964537 Rayborn, Sr. et al. Jun 2011 B2
8371381 Shindgikar et al. Feb 2013 B2
8383558 Reddy et al. Feb 2013 B2
8404622 Ghassemzadeh Mar 2013 B2
8673825 Rayborn, Sr. et al. Mar 2014 B2
8739872 Miller et al. Jun 2014 B1
8776882 Shindgikar et al. Jul 2014 B2
8887808 Kumar et al. Nov 2014 B2
8935957 Kulkarni et al. Jan 2015 B2
8992670 Vohra Mar 2015 B1
9140118 Kulkarni et al. Sep 2015 B2
9175529 Jamison et al. Nov 2015 B2
9290687 Weaver Mar 2016 B1
9376607 James Jun 2016 B2
9410066 Ghassemzadeh Aug 2016 B2
9416306 Savari et al. Aug 2016 B2
9453156 Wu Sep 2016 B2
9505659 Bickbau Nov 2016 B2
9592488 Yusuf et al. Mar 2017 B2
9623067 Awad et al. Apr 2017 B1
9688901 Fontenot Jun 2017 B2
9783727 Lahman et al. Oct 2017 B2
9957433 Amanullah et al. May 2018 B2
10240411 Amanullah Mar 2019 B1
10259982 Amanullah Apr 2019 B2
10266742 Amanullah et al. Apr 2019 B1
10323170 Amanullah et al. Jun 2019 B1
10329470 Amanullah et al. Jun 2019 B1
10513647 Amanullah Dec 2019 B2
10519357 Amanullah Dec 2019 B2
10889747 Amanullah Jan 2021 B1
10895118 Amanullah Jan 2021 B2
10927282 Amanullah Feb 2021 B2
20020010100 Wood Jan 2002 A1
20040023813 Burts, III Feb 2004 A1
20040129460 Macquoid et al. Jul 2004 A1
20040244978 Shaarpour Dec 2004 A1
20050113260 Wood May 2005 A1
20050124502 Shaarpour Jun 2005 A1
20050217852 Bennett et al. Oct 2005 A1
20060106136 Abu-Sharkh May 2006 A1
20060122069 Burts, III Jun 2006 A1
20060157247 Burts, III Jul 2006 A1
20060160907 Stamp Jul 2006 A1
20090054269 Chatterji et al Feb 2009 A1
20090286697 Shaarpour Nov 2009 A1
20090305038 Duran et al. Dec 2009 A1
20090305911 Pomerleau Dec 2009 A1
20100152070 Ghassemzadeh Jun 2010 A1
20100181110 Harr Jul 2010 A1
20100193244 Hoskins Aug 2010 A1
20100230164 Pomerleau Sep 2010 A1
20100230169 Pomerleau Sep 2010 A1
20110214870 Shaarpour Sep 2011 A1
20110278006 Sanders Nov 2011 A1
20120157354 Li et al. Jun 2012 A1
20120247763 Rakitsky et al. Oct 2012 A1
20130025863 Lin et al. Jan 2013 A1
20130087331 Karcher Apr 2013 A1
20130206479 Smith Aug 2013 A1
20140038857 Miller et al. Feb 2014 A1
20140102987 Yusuf et al. Apr 2014 A1
20140110177 Harr Apr 2014 A1
20140135237 Villarreal, Jr. et al. May 2014 A1
20140209290 Jamison et al. Jul 2014 A1
20140231082 Jamison et al. Aug 2014 A1
20140262281 Kulkarni et al. Sep 2014 A1
20140318793 Van Petergem et al. Oct 2014 A1
20140353043 Amanullah et al. Dec 2014 A1
20150008044 Fontenot Jan 2015 A1
20150051120 Hurd et al. Feb 2015 A1
20150072901 Samuel et al. Mar 2015 A1
20150166875 Bird et al. Jun 2015 A1
20150247081 Dillon et al. Sep 2015 A1
20150251156 Yusuf et al. Sep 2015 A1
20160060985 Lin et al. Mar 2016 A1
20160096988 Lin et al. Apr 2016 A1
20160137903 Friedheim et al. May 2016 A1
20160177164 Dillon et al. Jun 2016 A1
20160222274 Hoskins Aug 2016 A1
20160222275 Galindo et al. Aug 2016 A1
20160257869 Kulkarni et al. Sep 2016 A1
20160264839 Mata et al. Sep 2016 A1
20160289528 Wagle et al. Oct 2016 A1
20160312100 Amanullah Oct 2016 A1
20170058180 Hossain et al. Mar 2017 A1
20170137688 Amanullah May 2017 A1
20170166795 Walker et al. Jun 2017 A1
20170240791 Oliveira et al. Aug 2017 A1
20170298263 Amanullah Oct 2017 A1
20180002588 Amanullah Jan 2018 A1
20180002589 Amanullah Jan 2018 A1
20180016483 Amanullah Jan 2018 A1
20180057729 Amanullah Mar 2018 A1
20180127632 Amanullah May 2018 A1
20180201819 Amanullah Jul 2018 A1
20190177593 Amanullah Jun 2019 A1
20190177594 Amanullah Jun 2019 A1
20190177595 Amanullah Jun 2019 A1
20190233705 Amanullah et al. Aug 2019 A1
20190233706 Adewole et al. Aug 2019 A1
20190270924 Amanullah Sep 2019 A1
20200002592 Amanullah Jan 2020 A1
20200079987 Amanullah Mar 2020 A1
20200079988 Amanullah Mar 2020 A1
Foreign Referenced Citations (31)
Number Date Country
101311243 Nov 2008 CN
101560084 Oct 2009 CN
101724383 Jun 2010 CN
102127403 Jul 2011 CN
203035080 Jul 2013 CN
103570298 Feb 2014 CN
103740346 Apr 2014 CN
104087274 Oct 2014 CN
104419392 Mar 2015 CN
105541159 May 2016 CN
2506603 Apr 2014 GB
2518441 Mar 2015 GB
0671171 Mar 1994 JP
200153429 Jul 2001 WO
2004013448 Feb 2004 WO
2010019535 Feb 2010 WO
2010088484 Aug 2010 WO
2010142370 Dec 2010 WO
2012037600 Mar 2012 WO
2012061187 May 2012 WO
2013039938 Mar 2013 WO
2014008598 Jan 2014 WO
2014197417 Dec 2014 WO
2015142156 Sep 2015 WO
2015199652 Dec 2015 WO
2016019416 Feb 2016 WO
2016028470 Feb 2016 WO
2016172287 Oct 2016 WO
2017087434 May 2017 WO
2018005575 Jan 2018 WO
2018013619 Jan 2018 WO
Non-Patent Literature Citations (26)
Entry
Md Amanullah et al. Characteristics, behavior and performance of ARC plug-a date based sized particulate LCM, SPE-182840-MS, 2016.
Ramasamy, Jothibasu et al.; “Novel Fibrous Lost Circulation Materials Derived from Deceased Date Tree Waste” SPE-187989-MS, SPE Kingdom of Saudi Arabia Annual Technocal Symposium & Exhibition, Dammam, Apr. 24-27, 2017; pp. 1-8.
“Wood Shop News, Issue #08 Hard and softwoods, a unique food bank, and more news from around the shop” available as of Oct. 8, 2018 at the website: https://www.wooden-box-maker.com/Wood_Shop_News-hardwoods-and-softwoods.html.
Alawad, Musaed N.J., et al.; “Superior fracture-seal material using crushed date palm seeds for oil and gas well drilling operations” Journal of King Saud University—Engineering Sciences (2017); pp. 1-7.
Al-Awad, Musaed NJ et al.; “Utilization of Shredded Waste Car Tyres as a Fracture Seal Material (FSM) in Oil and Gas Drilling Operations” Journal of Petroleum & Environmental Biotechnology, (2017) vol. 8, Issue 2; pp. 1-4.
Alsaba, M. et al.; “Review of lost ciiculation materials and treatments with an updated classification.” AADE National Technical Conference and Exhibition, Houston, TX, Apr. 2014; pp. 1-9.
Amanullah, et al.; “Application of an indigenous eco-friendly raw material as fluid loss additive”, Journal of Petroleum Science and Engineering, vol. 139, (2016); pp. 191-197.
Amanullah; “Characteristics, behavior and performance of ARC Plug—A date seed-based sized particulate LCM.” SPE Kingdom of Saudi Arabia Annual Technical Symposium and Exhibition. Society of Petroleum Engineers, 2016; pp. 1-9.
BakerHughes.com “SOLUFLAKE Flaked Calcium Carbonate” (XP055401101) Jan. 8, 2016; p. 1.
International Search Report and Written Opinion for International Application No. PCT/US2016/062130 (SA5410/PCT); dated Jan. 27, 2017; pp. 1-12.
International Search Report and Written Opinion for International Application No. PCT/US2017/027287 (SA5508/PCT); dated Sep. 13, 2017; 11 pages.
International Search Report and Written Opinion for International Application No. PCT/US2017/039614 (SA5532/PCT); dated Sep. 11, 2017; pp. 1-12.
International Search Report and Written Opinion for International Application No. PCT/US2017/039616 (SA5533/PCT); dated Sep. 11, 2017; pp. 1-11.
International Search Report and Written Opinion for International Application No. PCT/US2017/047877 (SA5599/PCT); dated Oct. 27, 2017; pp. 1-15.
International Search Report and Written Opinion for International Application No. PCT/US2017/053355 (SA5580/PCT); International filing date Sep. 26, 2017; dated Jan. 17, 2018; pp. 1-14.
International Search Report and Written Opinion for International Application No. PCT/US2017/060079 (SA5577/PCT); International Filing Date Nov. 6, 2017; dated Dec. 18, 2017; pp. 1-14.
International Search Report and Written Opinion for International Application No. PCT/US2017/067179 (SA5600/PCT) International Filing Date Dec. 19, 2017; dated Feb. 21, 2018; pp. 1-14.
International Search Report and Written Opinion for International Application No. PCT/US2019/016614 (SA5796) dated Jun. 3, 2019; pp. 1-12.
International Search Report and Written Opinion for International Application No. PCT/US2019/022843 (SA5854) dated Jun. 3, 2019; pp. 1-13.
International Search Report and Written Opinion for International Application No. PCT/US2017/041611 (SA5534); International Filing Date Jul. 12, 2017; dated Oct. 27, 2017 (pp. 1-15).
International Search Report and Written Opinion for International Application No. PCT/US2018/034291 (SA5652/PCT); International Filing Date May 24, 2018; dated Jul. 31, 2018 (pp. 1-11).
International Search Report and Written Opinion for International Application No. PCT/US2018/048423 (SA5757); International Filing Date Aug. 29, 2018; dated Nov. 29, 2018 (pp. 1-12).
Saudi Aramco “Local palm trees support technical solutions” Dhahran, Aug. 4, 2015; available as of Sep. 19, 2018 at the website: www.saudiaramco.com/en/home/news-media/news/local-palm-trees-support.html.
Wajheeuddin, M. et al.; “An Experimental Study on Particle Sizing of Natural Substitutes for Drilling Fluid Applications.” Journal of Nature Science and Sustainable Technology vol. 8, No. 2 (2014); pp. 1-14.
Wajheeuddin, Mohammed; “Development of an Environmentally-Friendly Drilling Fluid Using Date Seeds and Grass” Master's thesis, King Fahd University of Petroleum & Minerals, 2014; pp. 1-138.
International Search Report and Written Opinion for International Application No. PCT/US2021/019673 (SA51202), dated Jun. 18, 2021; pp. 1-14.
Related Publications (1)
Number Date Country
20210261847 A1 Aug 2021 US