cocipe (Coffee + Recipe) is a premium home café and specialty coffee recipe platform. We simplify the numerous extraction variables and physical dynamics to help home baristas and coffee enthusiasts brew a consistently delicious cup of pour-over coffee every day.
Cocipe Coffee Science Lab (CCSL) is an academic research platform dedicated to transforming home coffee brewing from subjective sensory art into rigorous quantitative science. By examining coffee extraction through the lenses of fluid mechanics, mass transfer kinetics, and water coordination chemistry, CCSL establishes reproducible brewing protocols. All recipes, calculators, and scientific journals undergo strict peer review by CQI Certified Q-Graders, food chemists, and fluid dynamics researchers adhering to SCA Water Quality Standards (2026).
Water comprises over 98% of brewed coffee, acting as an active polar solvent and coordination complex catalyst. Divalent magnesium cations (Mg²⁺) possess high charge density, forming strong electrostatic bonds with polar organic acids (citric, malic) to yield vibrant fruity acidity. Calcium cations (Ca²⁺) selectively bind heavy melanoidins and complex carbohydrates, enhancing tactile mouthfeel, body, and sweetness. CCSL protocols calibrate bicarbonate (HCO₃⁻) buffering capacity (40–70 ppm) to stabilize pH acidity without muting delicate aromatics.
Percolation flow velocity (Q) through a packed coffee bed is governed by Darcy's Law (Q = k·A·ΔP / μ·L) and Kozeny-Carman bed porosity dynamics. During thermal pyrolysis, coffee bean cells form microscopic macropores. Bimodal particle size distributions and fines migration (<100 µm) can clog filter pores, causing hydraulic channeling and localized over-extraction of astringent tannins. CCSL research defines pouring intervals and flow momentum to ensure uniform percolation and target extraction yield (18.0%–22.0%).
During roasting, coffee beans undergo a glass-to-rubber transition, trapping CO₂ gas and volatile aromatics within their cellular matrix. Oxidative degradation follows Arrhenius reaction kinetics, where a 10°C drop in storage temperature decreases degradation rate by 2 to 3 times. Single-dose cryogenic freezing beneath the glass transition temperature increases cellular brittleness, producing narrow unimodal particle size distribution during grinding and extending bean freshness for months.
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Hours: Weekdays 10:00 AM ~ 06:00 PM (excluding holidays)