The Ratawi Oil Field (ROF) is one of Iraq's most important oil fields because of its significant economic oil reserves. The major oil reserves of ROF are in the Mishrif Formation. The main objective of this paper is to assess the petrophysical properties, lithology identification, and hydrocarbon potential of the Mishrif Formation using interpreting data from five open-hole logs of wells RT-2, RT-4, RT-5, RT-6, and RT-42. Understanding reservoir properties allows for a more accurate assessment of recoverable oil reserves. The rock type (limestone) and permeability variations help tailor oil extraction methods, extraction methods and improving recovery techniques. The petrophysical properties were calculated using Interactive Petrophysics software (version 4.5), employing various methods such as density (RHOB), neutron porosity (NPHI), sonic, gamma-ray, resistivity, and caliper logs. The well logs were evaluated and adjusted based on the environmental conditions. The lithology of the formations was identified through Neutron-Density cross plots, which revealing a composition primarily of limestone. The optimum approach for calculating clay volume was the gamma ray method, which indicated approximately 10% clay content. For calibrating effective porosity with core data, the Neutron-Density method proved to be the most accurate, showed values between 12% and 14% in the MB unit. The Archie technique was selected for its compatibility with limestone. Formation water resistivity was estimated from analogies of the southern field of the Mishrif reservoir (RW=0.021). Permeability was calculated using the flow zone indicator method (FZI) with an average between 0.2 and 0.35 md. According to the petrophysical analysis conducted at Mishrif, the formation consists of four units: MA, MB1, MB2, and MC. The most significant hydrocarbon-bearing unit in the formation is MB1.The insights gained from this study not only enhance the understanding of the Mishrif Formation but also contribute to the development of more efficient extraction techniques and improved reservoir management strategies. By optimizing recovery methods based on precise petrophysical and lithological data, the study supports the sustainable and economically viable exploitation of hydrocarbon resources in the ROF and similar reservoirs worldwide. These findings are significant in the broader context of petroleum engineering and reservoir management, as they provide a foundation for improved recovery techniques and sustainable resource management.
We demonstrate that the selective hydrogenation of acetylene depends on energy profile of the partial and full hydrogenation routes and the thermodynamic stability of adsorbed C2H2 in comparison to C2H4.
The mechanism of the electronic flow rate at Al-TiO2 interfaces system has been studied using the postulate of electronic quantum theory. The different structural of two materials lead to suggestion the continuum energy level for Al metal and TiO2 semiconductor. The electronic flow rate at the Al-TiO2 complex has affected by transition energy, coupling strength and contact at the interface of two materials. The flow charge rate at Al-TiO2 is increased by increasing coupling strength and decreasing transition energy.
Biomass is a popular renewable carbon source because it has a lot of potential as a substitute for scarce fossil fuels and has been used to make essential compounds like 5-hydroxymethylfurfural (HMF). One of the main components of biomass, glucose, has been extensively studied as a precursor for the production of HMF. Several efforts have been made to find efficient and repeatable procedures for the synthesis of HMF, a chemical platform used in the manufacturing of fuels and other high-value compounds. Sulfonated graphite (SG) was produced from spent dry batteries and utilized as a catalyst to convert glucose to 5-hydroxymethylfurfural (HMF). Temperature, reaction time, and catalyst loading were the variables studied. When dimethyl sulfo
... Show MoreParasitic diseases can affect infection with COVID-19 obviously, as protective agents, or by reducing severity of this viral infection. This current review mentions the common symptoms between human parasites and symptoms of COVID-19, and explains the mechanism actions of parasites, which may prevent or reduce severity of this viral infection. Pre-existing parasitic infections provide prohibition against pathogenicity of COVID-19, by altering the balance of gut microbiota that can vary the immune response to this virus infection.
The presence of antibiotic residues such as ciprofloxacin (CIPR) in an aqueous environment is dangerous when their concentrations exceed the allowable. Therefore, eliminating these residues from the wastewater becomes an essential issue to prevent their harm. In this work, the potential of efficient adsorption of ciprofloxacin antibiotics was studied using eco-friendly ZSM-5 nanocrystals‑carbon composite (NZC). An inexpensive effective natural binder made of the sucrose-citric acid mixture was used for preparing NZC. The characterization methods revealed the successful preparation of NZC with a favorable surface area of 103.739 m2/g, and unique morphology and functional groups. Investigating the ability of NZC for adsorbing CIPR antibioti
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