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Updated: Jun 8, 2026

A Method for Studying the Temperature Dependence of Dynamic Fracture and Fragmentation
Published on: June 28, 2015
Numerical simulation of productivity evaluation for multi-cluster fracturing in horizontal wells considering
Yixuan Wang1, Jiexin Li1, Yanchao Li1
1Shale Gas E&D Project Department, CNPC Chuanqing Drilling Engineering Co., Ltd., Chengdu, 610052, China.
Abstract:
Non-uniform proppant placement during horizontal well hydraulic fracturing significantly impairs fracture conductivity and well productivity. Most existing models oversimplify conductivity distribution and lack integration between proppant transport and production prediction. This study presents a novel integrated numerical framework that fully couples fracture propagation, proppant transport, and post‑fracturing production. Unlike previous approaches that treat conductivity as uniform or decouple the physical processes, our model incorporates a dynamic conductivity evolution submodel that updates fracture conductivity in real time based on local closure stress and proppant concentration, enabling a more realistic representation of proppant placement effects. The model is validated against the commercial reservoir simulator ECLIPSE, with a cumulative production mismatch of less than 8% over 300 days, confirming its reliability. A two‑way coupled approach then systematically evaluates the impact of key pumping parameters: sand injection method, proppant size, injection rate, fluid viscosity, sand concentration, and perforation design. Results demonstrate that parameter sensitivity strongly depends on reservoir permeability. In ultra‑low permeability reservoirs (1 × 10⁻⁶ µm²), propped fracture area is the dominant productivity control, favoring constant‑concentration sand addition with finer proppant (70/140 mesh), lower injection rates, and lower viscosities to maximize fracture length. In higher permeability reservoirs (1 × 10⁻³ µm²), fracture conductivity becomes critical, with optimal performance achieved using constant‑concentration addition of coarser proppant (30/50 mesh), higher injection rates, and higher viscosities. Increasing sand ratio improves production in both reservoir types, though with diminishing returns. These findings provide clear, permeability‑specific guidelines for optimizing fracturing design and enhancing well performance.
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