Light crude oils are being progressively depleted as the dominant primary energy source, leading to increased attention on the extraction and utilization of highly waxy crude oils. To address the poor low-temperature fluidity of waxy crude oil, cashew nut shell liquid (CNSL), which is rich in anacardic acid, was extracted from low-cost and renewable cashew nut shells and subsequently modified with EVAL through esterification at different mass ratios (mEVAL:mCNSL = 1:1, 1:2, 1:3) to synthesize the EVAL-g-AAC pour point depressant. Chemical structure characterization confirmed the successful grafting of EVAL with anacardic acid. The experimental results demonstrated that EVAL-g-AAC 2 (mEVAL:mCNSL = 1:2) exhibited the best pour point-reducing performance at a dosage of 400 ppm, lowering the pour point of waxy model oils by 24 ℃. This reduction was 8 ℃ and 5 ℃ greater than that achieved by EVA and EVAL, respectively. In addition, its viscosity reduction rate increased by 28.5% relative to EVAL, while simultaneously decreasing the gelation temperature and viscoelastic properties of the model oils. Additionally, the low-temperature crystallization behavior of wax crystals was investigated using polarized optical microscopy (POM), differential scanning calorimetry (DSC), and X-ray diffraction (XRD). It proposed a possible mechanism of action for the new pour point depressant through the “alkyl long-chain promotes co-crystallization formation, polar groups promote dispersion, and rigid structure promotes nucleation” triple synergy to improve the crystallization behavior of wax molecules.
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Open Access
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Open Access
Original Paper
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Modified ethylene-vinyl acetate copolymer (EVAM) and amino-functionalized nano-silica (NSiO2) particles were employed as the base materials for the synthesis of the nanocomposite pour point depressant designated as EVAM-g-NSiO2. This synthesis involved a chemical grafting process within a solution system, followed by a structural characterization. Moreover, combining macro-rheological performance with microscopic structure observation, the influence of the nanocomposite pour point depressant on the rheological properties of the model waxy oil system was investigated. The results indicate that when the mass ratio of NSiO2 to EVAM is 1:100, the prepared EVAM-g-NSiO2 nanocomposite pour point depressant exhibits excellent pour point reduction and viscosity reduction properties. Moreover, the nanocomposite pour point depressant obtained through a chemical grafting reaction demonstrates structural stability (the bonding between the polymer and nanoparticles is stable). The pour points of model waxy oils doped with 500 mg/kg ethylene-vinyl acetate copolymer (EVA), EVAM, and EVAM/SiO2 were reduced from 34 ℃ to 23, 20, and 21 ℃, respectively. After adding the same dosage of EVAM-g-NSiO2 nanocomposite pour point depressant, the pour point of the model wax oil decreased to 12 ℃ and the viscosity at 32 ℃ decreased from 2399 to 2396.9 mPa ·s, achieving an impressive viscosity reduction rate of 99.9%. Its performance surpassed that of EVA, EVAM, and EVAM/SiO2. The EVAM-g-NSiO2 dispersed in the oil phase acts as the crystallization nucleus for wax crystals, resulting in a dense structure of wax crystals. The compact wax crystal blocks are difficult to overlap with each other, preventing the formation of a three-dimensional network structure, thereby improving the low-temperature flowability of the model waxy oil.
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