56 Tons HMGOLD™ Carbon to Ghana: CIP Mesh Size Upgrade

A gold mine in Ghana's Ashanti region had been running 6×12 mesh activated carbon in their CIP circuit for three years. Gold recovery was acceptable — 94.5% — but they were losing carbon at the interstage screens faster than they could account for. Screen blinding, carbon passing through slots, and frequent screen replacements were eating into their operating budget.

They switched to 8×16 mesh HMGOLD™ 7000 in Q1 2026. Fifty-six tons. This is what changed and why the mesh size decision matters more than most operators realize.

Close-up of HMGOLD™ coconut shell activated carbon granules on white background showing uniform 8×16 mesh particle size distribution with sharp angular edges indicating high hardness — Huamei Carbon

CIP vs CIL: Why Mesh Size Requirements Differ

Parameter CIL (Carbon-in-Leach) CIP (Carbon-in-Pulp)
Carbon residence In leach tanks with agitation In adsorption tanks, counter-current flow
Slurry abrasion High (grinding media present) Moderate (no grinding media)
Screen slot size 0.8–1.0 mm typical 0.6–0.8 mm typical
Standard carbon size 6×12 mesh 6×12 or 8×16 mesh
Carbon transfer Pumped between leach tanks Pumped counter-current to slurry flow
Key carbon requirement Maximum hardness (resist grinding) Good kinetics + screen compatibility

The core difference: CIL tanks contain both leaching reagent and grinding media — carbon takes a beating, so you want the biggest, hardest particles possible (6×12). CIP tanks separate leaching from adsorption — there's no grinding media, so you can use smaller carbon particles without catastrophic attrition.

Why smaller matters in CIP: Smaller carbon particles have more surface area per unit mass. More surface area = faster gold adsorption kinetics = higher gold loading per cycle = fewer carbon transfers needed.

The Problem with 6×12 in This CIP Circuit

This Ghana mine's CIP circuit used 0.7 mm interstage screens. On paper, 6×12 mesh (smallest particle = 1.7 mm) should have no trouble staying behind those screens. In reality:

Issue What happened Root cause
Screen blinding Screens clogged

every 72–96 hours

Oversized carbon trapped

fine ore particles against

the screen surface

Carbon passing 0.3% carbon loss

per transfer stage

Breakage of larger

6×12 particles

created sub-1.7mm

fragments that

passed through slots

Slow kinetics Required 5 adsorption stages to

reach 94.5% recovery

Large particles = lower

surface-to-volume

ratio = slower gold uptake

Screen replacement Every 6 weeks Pressure differential

from blinding stressed

screen panels

The mine was spending $18,000/month on screen maintenance alone — plus the hidden cost of gold lost with passing carbon.

Why 8×16 Mesh Solved It

8×16 mesh carbon particles range from 1.0 to 2.4 mm. That's smaller than 6×12 (1.7–3.4 mm) but still well above the 0.7 mm screen slot size.

Metric Before (6×12) After (8×16 HMGOLD™ 7000) Change
Gold recovery 94.5% 96.8% +2.3 points
Adsorption stages needed 5 4 (same tanks,

one taken offline for maintenance)

-1 stage
Carbon loss

per cycle

0.3% 0.15% -50%
Screen cleaning frequency Every 72–96

hours

Every 168+ hours -55% fewer cleanings
Screen

replacement

interval

6 weeks 14 weeks +133% longer life
Carbon loading

(g Au/kg C)

3,200 4,100 +28%
Screen

maintenance

cost

$18,000/month $7,500/month -58%

The math on 2.3% recovery improvement: On a mine producing 3,000 oz/month, 2.3% additional recovery = ~69 oz/month × $2,300/oz = $158,700/month in additional gold revenue. Against a carbon cost of roughly $85,000 for 56 tons. Payback: under 20 days.

Specification: HMGOLD™ 7000 (8×16 Mesh)

Parameter Value
Mesh size 8×16 (US standard)
Particle size range 1.0–2.4 mm
Iodine number ≥1100 mg/g
Hardness (ball-pan) ≥98%
Attrition (Wenman test) ≤2%
Ash content <3%
Moisture ≤5%
Bulk density 0.48–0.52 g/cm³
Gold adsorption rate (K value) ≥3.2 mg Au/g C/hr
Equilibrium loading ≥30 mg Au/g C
Raw material 100% coconut shell

HMGOLD™ series full specifications →

When to Use 6×12 vs 8×16: Decision Framework

Your situation Recommended mesh Reason
CIL circuit (carbon in leach

tanks with

ball mill discharge)

6×12 Maximum particle size =

maximum survival in

abrasive environment

CIP circuit with

≥0.8 mm

screen slots

8×16 Better kinetics, less

screen blinding,

acceptable attrition

CIP circuit with

0.5–0.6 mm

screen slots

6×12 Safety margin — 8×16

fines might pass through

CIC columns

(carbon in column)

6×12 or 5×10 Column flow dynamics

need larger particles for

permeability

Heap leach

with carbon columns

6×12 Dirty solution = need

robustness over kinetics

Rule of thumb: If your screen slot size is ≥0.7 mm and you're running CIP (not CIL), test 8×16 mesh. The kinetics improvement alone typically justifies the switch. If you're running CIL with SAG/ball mill discharge in the same tanks, stay with 6×12 — the abrasion environment is too harsh for smaller particles.

Huamei Carbon factory warehouse: 1-ton jumbo bags (FIBC) of coconut shell activated carbon stacked on wooden pallets, ready for container loading and export shipment to gold mining operations

Shipment Details

Item Detail
Product HMGOLD™ 7000 (8×16 mesh)
Quantity 56 tons
Destination Ashanti Region, Ghana
Port Tema
Lead time 35 days (order to port arrival)
Application CIP gold recovery
Previous carbon 6×12 mesh (competitor brand)

FAQ

Is 8×16 mesh carbon weaker than 6×12?

Not inherently. Hardness is a property of the carbon material itself, not the particle size. HMGOLD™ 7000 in 8×16 mesh has the same ≥99% ball-pan hardness as the 6×12 version — same raw material, same activation process, just screened to a different size fraction. What changes is abrasion behavior: smaller particles have more surface area exposed to mechanical forces per unit mass, so they experience slightly higher proportional wear in highly abrasive environments (CIL). In CIP conditions (moderate agitation, no grinding media), 8×16 attrition is negligible.

How do I test whether 8×16 will work in my circuit?

Run a parallel basket test: load 5–10 kg of 8×16 mesh carbon in a screen basket within one of your existing CIP tanks. After 7 days, measure carbon loss (dry weight before vs after), gold loading, and check for screen passing. Compare against your current 6×12 performance. If carbon loss is <0.5% per cycle and gold loading is higher, scale up. Most mines see results within the first cycle (5–7 days).

Does switching mesh size require changing my screens?

Usually no. If you're going from 6×12 to 8×16, your existing screens (designed for 6×12) have slot sizes that will retain 8×16 particles with even more margin. The smallest 8×16 particle (1.0 mm) is still larger than typical CIP screen slots (0.6–0.8 mm). You might actually find screen blinding decreases because the smaller carbon particles create a less aggressive bridging pattern against the screen face.

What about carbon-in-column (CIC) — can I use 8×16 there?

Not recommended. CIC columns need good permeability for pregnant solution to flow through the carbon bed. Smaller particles create higher pressure drop and increase channeling risk. For CIC, stick with 6×12 or even 5×10 mesh for optimal flow characteristics. The exception: very small-scale CIC with low flow rates, where the
htmlpressure drop from 8×16 is manageable.

What's the price difference between 6×12 and 8×16?

Minimal — typically 3–5% higher for 8×16 because the yield of that size fraction from raw activated carbon is slightly lower than 6×12. On HMGOLD™ 7000, the difference is approximately $30–50/ton. Negligible compared to the operational savings from better kinetics, less screen maintenance, and higher gold recovery.

Need HMGOLD™ 8×16 mesh samples for CIP testing? Free 2kg sample, COA included. WhatsApp: +86 181-3792-7803 | Request quote →