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GATE Petroleum Engineering Enhanced Oil Recovery Techniques Flashcards

51 question-and-answer cards covering Enhanced Oil Recovery Techniques as it is examined in GATE Petroleum Engineering. 24 of them are printed below, taken from across the deck — no signup, no paywall on the preview.

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24 sample cards from the Enhanced Oil Recovery Techniques deck

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  1. Describe the three stages of steam (cyclic) stimulation, a.k.a. 'huff and puff'.

    1. Injection (huff): steam is injected into the well for a period to heat the surrounding oil. 2. Soak: the well is shut in for days/weeks so heat spreads and oil viscosity drops. 3. Production (puff): the well is produced; the heated, mobilized oil flows out. The cycle is repeated.

  2. Contrast steam stimulation with steam flooding in terms of well usage.

    Steam stimulation is a single-well process: the same well is used for both injection and production in cycles. Steam flooding (steam drive) is a multi-well/pattern process: steam is injected continuously into injection wells to drive oil toward separate producing wells.

  3. What is steam quality and why does it matter in steam flooding?

    Steam quality is the mass fraction of vapor in a wet-steam mixture: $$x = \frac{m_{vapor}}{m_{vapor}+m_{liquid}}$$ Higher quality carries more latent heat per unit mass, delivering more thermal energy to the reservoir for viscosity reduction and steam distillation.

  4. In a steam drive, name the zones formed between injector and producer (in order of decreasing temperature).

    From injector outward: (1) steam zone (highest T, steam distillation), (2) condensation/hot-water zone (steam condenses, hot-water drive), (3) oil bank (displaced oil accumulating), (4) cold/native reservoir zone ahead of the front.

  5. Why is hot-water flooding generally less effective than steam flooding?

    Hot water carries only sensible heat (no large latent heat of vaporization), so it transports far less energy per unit mass and cools quickly. Steam additionally provides latent heat, steam distillation of light ends, and a gas-drive effect, giving better heating and higher recovery.

  6. What is in-situ combustion (fireflooding) and what is injected?

    In-situ combustion ignites a portion of the crude oil in the reservoir and injects air (or oxygen-enriched air) to sustain a combustion front. The burning fuel (coke) generates heat that reduces oil viscosity and drives a combination of thermal, gas, and steam drives toward producers.

  7. Distinguish forward and reverse in-situ combustion.

    Forward combustion: the combustion front moves in the same direction as the injected air, from injector toward producer; oil is displaced ahead of the heated zone. Reverse combustion: the front moves opposite to the air flow (ignited near the producer), so oil flows through the heated zone — useful for very viscous oils but rarely successful in practice.

  8. In forward in-situ combustion, what acts as the fuel for the burning front?

    The heaviest fraction of the crude — the coke (carbon residue) deposited by thermal cracking of the oil as the front advances. The lighter components are vaporized and displaced ahead, leaving coke that burns to sustain the combustion.

  9. What is the air-fuel ratio's role and the air requirement concept in in-situ combustion design?

    The fuel concentration (coke deposited per unit volume of rock) and the air-fuel ratio determine the air requirement — the volume of air needed to burn through a unit volume of reservoir. High fuel deposition needs more air (higher cost) but sustains the front; it must be balanced for an economic burn.

  10. What is wet combustion (COFCAW) and its advantage?

    Wet combustion injects water alternately or simultaneously with air. The water vaporizes in the hot burned zone and carries heat forward (as steam) that would otherwise be left behind, improving heat utilization and recovery while reducing air (fuel) requirements compared with dry forward combustion.

  11. What is SAGD and how do its two wells operate?

    SAGD = Steam-Assisted Gravity Drainage. It uses a pair of horizontal wells, one above the other (typically $\sim 5\,\text{m}$ apart). Steam injected in the upper well forms a steam chamber; heated, mobilized oil and condensate drain by gravity to the lower producing well. Used for very heavy oils/bitumen.

  12. Define Microbial Enhanced Oil Recovery (MEOR).

    MEOR uses microorganisms (and/or their metabolic products) injected into or stimulated within the reservoir to enhance oil recovery. Microbes consume nutrients and generate byproducts (biosurfactants, biopolymers, gases, acids, solvents) that mobilize trapped oil.

  13. List the main mechanisms by which microbes enhance oil recovery in MEOR.

    1. Biosurfactant production → lowers interfacial tension (improves $E_D$). 2. Biopolymer production → viscosity/selective plugging for mobility and sweep control. 3. Gas production ($\ce{CO2}$, $\ce{CH4}$) → repressurization and oil swelling. 4. Acid/solvent production → improves permeability and reduces viscosity. 5. Selective plugging of high-perm zones → improves conformance.

  14. Name two operational limitations of MEOR.

    1. Microbial activity is constrained by reservoir conditions — high temperature ($\gtrsim 80\text{--}90^\circ\text{C}$), high salinity, high pressure, and extreme pH inhibit most bacteria. 2. Difficulty controlling/predicting in-situ growth, nutrient distribution, and possible souring (e.g., $\ce{H2S}$ from sulfate-reducing bacteria).

  15. What is selective plugging in MEOR and why is it useful?

    Microbes (or their biomass/biopolymers) preferentially grow and plug the high-permeability channels (thief zones). This diverts subsequent injected fluid into lower-permeability, unswept zones, improving conformance and volumetric sweep efficiency.

  16. State the Buckley-Leverett fractional flow equation for water (neglecting gravity and capillary pressure).

    $$f_w = \frac{1}{1 + \dfrac{k_{ro}\,\mu_w}{k_{rw}\,\mu_o}}$$ It gives the fraction of water in the total flowing stream as a function of water saturation and is central to immiscible displacement (waterflood) analysis.

  17. In Buckley-Leverett theory, how is the velocity of a plane of constant water saturation expressed?

    $$v_{S_w} = \frac{q_t}{A\,\phi}\left(\frac{df_w}{dS_w}\right)_{S_w}$$ The saturation front velocity is proportional to the slope of the fractional-flow curve, so different saturations travel at different speeds, producing the shock front.

  18. What does the capillary number $N_c$ govern, and roughly how much must it increase to substantially reduce residual oil?

    $N_c = \dfrac{v\mu}{\sigma}$ governs the balance of viscous to capillary forces and hence microscopic displacement (mobilization of trapped oil). Typical waterfloods have $N_c \sim 10^{-7}$ to $10^{-6}$; reducing residual oil substantially requires raising $N_c$ by about 3-4 orders of magnitude (to $\sim 10^{-3}$ to $10^{-2}$), usually by lowering $\sigma$.

  19. Compare microscopic vs macroscopic displacement efficiency in one sentence each.

    Microscopic ($E_D$): efficiency of oil mobilization at the pore scale — how much oil is displaced from pores actually contacted, governed by capillary/IFT forces. Macroscopic ($E_V$): efficiency of contact at the reservoir scale — what fraction of the reservoir volume is swept, governed by mobility ratio and heterogeneity.

  20. Why does an unfavorable mobility ratio lead to viscous fingering?

    When $M>1$ the displacing fluid is more mobile than the oil; small perturbations at the front grow because the displacing fluid accelerates through the path of least resistance, forming fingers that bypass oil, cause early breakthrough, and reduce sweep efficiency.

  21. For chemical flooding, why is interfacial tension reduction insufficient on its own and usually paired with mobility control?

    Lowering IFT (surfactant) raises microscopic efficiency $E_D$ by mobilizing residual oil, but the mobilized oil bank can be bypassed if sweep is poor. Adding polymer for mobility control (favorable $M$) ensures the oil bank is efficiently swept to producers, so both $E_D$ and $E_V$ improve (the basis of micellar-polymer and ASP floods).

  22. Rank $\ce{CO2}$, $\ce{N2}$, and hydrocarbon gas (LPG) by typical minimum miscibility pressure, lowest to highest.

    Lowest to highest MMP: LPG/enriched hydrocarbon gas (often first-contact miscible, low pressure) < $\ce{CO2}$ ($\sim 1100\text{--}1500\,\text{psi}$) < lean hydrocarbon/flue gas < $\ce{N2}$ (highest, often $>4000\,\text{psi}$). Lower MMP means miscibility is easier to achieve.

  23. What is the role of a 'mobility buffer' (polymer drive) following a surfactant/micellar slug?

    After the costly micellar (surfactant) slug, a polymer-thickened water (mobility buffer) is injected behind it to maintain a favorable mobility ratio between the chase water and the slug. This protects the slug from being fingered through, preserving its integrity and pushing the oil bank efficiently to producers.

  24. Summarize which efficiency each major EOR class chiefly improves: thermal, miscible, polymer, surfactant.

    Thermal: improves $E_D$ (viscosity reduction, lower $S_{or}$) and mobility; Miscible gas: improves $E_D$ (zero IFT, near-complete pore-scale displacement) but needs WAG for sweep; Polymer: improves macroscopic sweep $E_V$ (favorable $M$); Surfactant: improves microscopic $E_D$ (ultralow IFT, higher $N_c$).

What this deck covers

The Enhanced Oil Recovery Techniques deck follows the GATE Petroleum Engineering Enhanced Oil Recovery Techniques syllabus — 3 chapters and 9 topics — so questions land on material that is genuinely examinable rather than trivia around it. That works out to roughly 17.0 cards per chapter.

Answers are written to be recallable, not just readable — averaging about 291 characters, which is long enough to carry the reasoning and short enough to say out loud.

A deck like this earns its keep on the second and third pass. Read the syllabus first so you know the shape of the subject, then use the cards to find the specific facts that have not stuck.

Enhanced Oil Recovery Techniques flashcards FAQ

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They follow the GATE Petroleum Engineering Enhanced Oil Recovery Techniques syllabus — 3 chapters and 9 topics — so the questions track what is actually examinable.

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Read the syllabus first so you know the shape of the subject, then drill the deck. Examius schedules each card with spaced repetition, so cards you keep missing come back sooner and ones you know drift further apart.