This is the axial (along-channel) companion to the 3D crossflow fouling model. Instead of tracking individual particles across a plan-view grid, it solves a 1D continuum mass balance along the length of the channel: the bulk foulant concentration C(x) is depleted as it flows past the membrane, exactly by however much cake is being deposited there — the two are forced to conserve mass.
Darcy resistance-in-series law (local, per position x):
J(x) = ΔP / (μ (R_m + R_c(x)))
Cake growth (continuum Hermia-type law):
∂h/∂t = k · p_cap · J(x) · C(x) [deposits onto the cake]
Axial concentration depletion (mass balance):
u · dC/dx = − k · p_cap · J(x) · C(x) [removes the same mass from the flow]
p_cap = capture probability = base − η_cross(crossflow) + boost(ΔP)
- Why a wedge forms — near the inlet, C(x) is still at the full feed value, so cake grows fastest there. Downstream, C(x) has already been partly depleted by upstream deposition, so less foulant is left to deposit — cake resistance Rc(x) forms a decaying "wedge" along the channel, highest at the inlet and lowest at the outlet.
- Crossflow velocity — raises η_cross (shear-removal efficiency) uniformly, lowering p_cap everywhere and flattening the wedge; it also sets the transport speed u, which controls how far downstream the depletion front reaches before saturating.
- Feed concentration & pressure — set the boundary condition C(0)=C_feed and the clean-membrane driving force ΔP respectively; higher pressure also slightly raises capture probability (the same "critical flux" trade-off as the 3D model).
- Backwash — instantly cuts every h(x) to 12% of its value, lifting most of the cake off the membrane along the whole channel; the small residual is irreversible, exactly as on a real membrane skid.
Real crossflow nanofiltration and RO modules genuinely show this kind of axial fouling profile — flux measured near a module's feed inlet declines faster than flux near its concentrate outlet, which is why real trains are staged and cleaned as a function of position along the module, not treated as a single lumped resistance.