Patent classifications
C04B7/527
Well cementing method for improving well cementing quality by controlling hydration heat of cement slurry
- Shuoqiong Liu ,
- Hua ZHANG ,
- Jianzhou Jin ,
- Ming Xu ,
- Yongjin Yu ,
- Fengzhong Qi ,
- Congfeng Qu ,
- Hong Yue ,
- Youcheng Zheng ,
- Wei Li ,
- Yong Ma ,
- Youzhi Zheng ,
- Zhao Huang ,
- Jinping Yuan ,
- Zhiwei Ding ,
- Chongfeng Zhou ,
- Chi Zhang ,
- Zishuai Liu ,
- Hongfei Ji ,
- Yuchao Guo ,
- Xiujian Xia ,
- Yong Li ,
- Jiyun Shen ,
- Huiting Liu ,
- Yusi Feng ,
- Bin Lyu
A well cementing method is described for improving cementing quality by controlling the hydration heat of cement slurry. By controlling the degree and/or rate of hydration heat release from cement slurry, the method improves the hydration heat release during formation of cement with curing of cement slurry, improves the binding quality between the cement and the interfaces, and in turn improves the cementing quality at the open hole section and/or the overlap section. The cementing method improves cementing quality of oil and gas wells and reduces the risk of annular pressure.
Well cementing method for improving well cementing quality by controlling hydration heat of cement slurry
- Shuoqiong Liu ,
- Hua ZHANG ,
- Jianzhou Jin ,
- Ming Xu ,
- Yongjin Yu ,
- Fengzhong Qi ,
- Congfeng Qu ,
- Hong Yue ,
- Youcheng Zheng ,
- Wei Li ,
- Yong Ma ,
- Youzhi Zheng ,
- Zhao Huang ,
- Jinping Yuan ,
- Zhiwei Ding ,
- Chongfeng Zhou ,
- Chi Zhang ,
- Zishuai Liu ,
- Hongfei Ji ,
- Yuchao Guo ,
- Xiujian Xia ,
- Yong Li ,
- Jiyun Shen ,
- Huiting Liu ,
- Yusi Feng ,
- Bin Lyu
A well cementing method is described for improving cementing quality by controlling the hydration heat of cement slurry. By controlling the degree and/or rate of hydration heat release from cement slurry, the method improves the hydration heat release during formation of cement with curing of cement slurry, improves the binding quality between the cement and the interfaces, and in turn improves the cementing quality at the open hole section and/or the overlap section. The cementing method improves cementing quality of oil and gas wells and reduces the risk of annular pressure.
QUICK-SETTING CONCRETE MIXTURE AND METHOD OF MANUFACTURE
A quick-setting concrete mixture that uses calcium sulfoaluminate as a binder cement. In one embodiment, the disclosed concrete mixture may be prepared using a revolutionary drum mixer truck and may recycle surplus or leftover concrete. In one embodiment, the mixture may use air entrainment; such as liquid air entrainment or foam generated air entrainment, to manufacture the concrete mixture.
DEVELOPMENT OF ANTI-BIT BALLING FLUIDS
Anti-bit balling drilling fluids and methods of making and using drilling fluids are provided. The anti-bit balling drilling fluid contains water, a clay-based component, and at least one of a surfactant having the formula: R(OC.sub.2H.sub.4).sub.xOH, where R is a hydrocarbyl group having from 10 to 20 carbon atoms and x is an integer from 1 and 10, or a polyethylene glycol having the formula: H(OCH.sub.2CH.sub.2).sub.nOH, where n is an integer from 1 to 50. Methods of making and using these drilling fluids are also provided.
SPACER FLUID COMPOSITIONS, METHODS, AND SYSTEMS FOR AQUEOUS BASED DRILLING MUD REMOVAL
Spacer fluids include an emulsion, a surfactant package, and at least one additive that modifies the rheology of the spacer fluid, the density of the spacer fluid, or both. The emulsion may include an aqueous external phase and a hydrocarbon-based internal phase. The surfactant package may include one or more surfactants. The surfactant package may also include a surfactant having the general structure R(OCH.sub.2CH.sub.2).sub.9OH, where R is a hydrocarbyl having 12 carbon atoms, 13 carbon atoms, or 14 carbon atoms. The spacer fluid may contain at least 4.25 pounds of R(OCH.sub.2CH.sub.2).sub.9OH per barrel of the spacer fluid.
SPACER FLUID COMPOSITIONS, METHODS, AND SYSTEMS FOR AQUEOUS BASED DRILLING MUD REMOVAL
Spacer fluids include an emulsion, a surfactant package, and at least one additive that modifies the rheology of the spacer fluid, the density of the spacer fluid, or both. The emulsion may include an aqueous external phase and a hydrocarbon-based internal phase. The surfactant package may include one or more surfactants. The surfactant package may also include a surfactant having the general structure R(OCH.sub.2CH.sub.2).sub.9OH, where R is a hydrocarbyl having 12 carbon atoms, 13 carbon atoms, or 14 carbon atoms. The spacer fluid may contain at least 4.25 pounds of R(OCH.sub.2CH.sub.2).sub.9OH per barrel of the spacer fluid.
Friction materials with low storage time for brake pads based on binder compositions and related brake pads
A friction material with reduced storage time is described, comprising a binder composition based on a hydraulic binder and its use in brake pads and industrial applications.
Hydraulic cement composition, process and use
- Gabriela Gon?alves Dias Ponzi ,
- FELIPE DALLA VECCHIA ,
- SANDRA MARA DE OLIVEIRA EINLOFT ,
- Marta Kerber Sch?tz ,
- VICTOR HUGO JACKS MENDES DOS SANTOS ,
- DARLAN PONTIN ,
- RENAN BORDULIS MARTEL ,
- Amanda Sofia De Guimar?es E Stepanha ,
- DELLYO RICARDO DOS SANTOS ALVARES ,
- Sonia Maria Cabral De Menezes ,
- ANA PAULA SANTANA MUSSE
The present invention describes a hydraulic cement composition, process and use thereof, wherein the composition comprises a hydraulic cement composition with increased resistance against carbon dioxide (CO.sub.2) for application in reservoirs such as oil and gas and carbon capture and storage (CCS) wells; with improved performance of cement paste formulations as a material for application in primary, secondary cementing, recovery and/or plugging operations, of reservoirs/wells that operate with high CO.sub.2 content; as a technological alternative to guarantee the integrity of wells in CO.sub.2-rich environments for long periods of time, without any additional intervention to the already current operational procedures for cementing wells, and with cost reduction in relation to class G cement (currently, the main raw material); and sufficient chemical resistance to carry out enhanced oil (EOR) and gas (EGR) recovery by injecting high levels of CO.sub.2, increasing reservoir pressure throughout the extraction period of hydrocarbon reservoirs.
Development of anti-bit balling fluids
Anti-bit balling drilling fluids and methods of making and using drilling fluids are provided. The anti-bit balling drilling fluid contains water, a clay-based component, and at least one of a surfactant having the formula: R(OC.sub.2H.sub.4).sub.xOH, where R is a hydrocarbyl group having from 10 to 20 carbon atoms and x is an integer from 1 and 10, or a polyethylene glycol having the formula: H(OCH.sub.2CH.sub.2).sub.nOH, where n is an integer from 1 to 50. Methods of making and using these drilling fluids are also provided.
ENHANCED FILTRATION CONTROL PACKAGES, WELLBORE SERVICING FLUIDS UTILIZING THE SAME, AND METHODS OF MAINTAINING THE STRUCTURE OF A WELLBORE
A wellbore servicing fluid comprises an aqueous base fluid, one or more alkali metal or alkali earth metal salts, at least one visocisifier, and a filtration control package. The filtration control package may comprise a carboxylic acid and an ethoxylated alcohol compound. Alternatively, the filtration control package may comprise a polyethylene glycol. The carboxylic acid may have from 8 to 20 carbon atoms. The ethoxylated alcohol compound may have a general formula R(OCH.sub.2CH.sub.2).sub.XOH, where R is a hydrocarbon having from 10 to 16 atoms and x is an integer from 6 to 9. The ethoxylated alcohol compound may have a hydrophilic-lipophilic balance of from 8.0 to 16.0. The polyethylene glycol may have a mass average molar mass (M.sub.w) of less than or equal to 1500 daltons.