In the preceding article, we defined crushed particle size, dissemination size, and degree of liberation individually. In practice, however, clients are most concerned with one overarching question: How do these concepts actually affect beneficiation performance, and how can they be used to guide decision‑making?
This article addresses that question directly.
These concepts form a clear causal sequence:
For a given ore, crushing to 30 mm may result in inadequate liberation; reducing to 10 mm may bring marked improvement; and at 5 mm, the ore may already reach favourable separation conditions. Consequently, the selection of an appropriate comminution particle size must always be based on the dissemination characteristics and the resultant liberation at each size fraction.
All beneficiation methods exploit differences in physical or chemical properties between minerals – such as density, magnetic susceptibility, surface wettability, electrical conductivity, and optical characteristics.
Locked particles pose a significant challenge in separation:
This is the fundamental reason why insufficient liberation inevitably compromises both separation precision and metallurgical recovery.
Coarse
10–30 mm
Good liberation achieved after primary and secondary crushing; simple flowsheet, low operating cost
Medium
Several millimetres
Requires further fine crushing; final size determined by liberation assessment
Fine
0.1–0.5 mm
Usually necessitates grinding to achieve effective liberation
Very fine
Tens of micrometres
Requires ultra‑fine grinding, with associated penalties: high energy consumption, increased slimes, and difficult dewatering
Conclusion: The finer the dissemination size, the more complex the process flowsheet, and the higher the associated capital and operating costs. This is a critical factor in evaluating the economic viability of an ore deposit.
Locked particles are the primary obstacle to achieving a high degree of liberation. In practice, a portion of locked particles tends to accumulate as middlings. Many beneficiation circuits therefore incorporate a middlings regrinding and re‑treatment stage, designed to break down locked particles and provide a second opportunity for the target mineral to be liberated.
A high proportion of locked particles in the comminuted product indicates that the current particle size is insufficient to achieve adequate liberation, necessitating further size reduction or the addition of a middlings recirculation loop.
Together, these three parameters determine the complexity, efficiency, and economic performance of the downstream beneficiation circuit. In the final article of this series, we address the most practical question of all: How fine should the ore be comminuted, and how can over‑grinding be avoided?
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