In high-volume chloride-route titanium dioxide production, inline hot gas filtration systems operate under continuous exposure to heavy particulate loadings and harsh chemical environments. Positioned directly within primary reaction units, which include fluid-bed chlorinators, calciners, and high-temperature oxidation vessels, rigid filter candles isolate fine solids and raw materials from active process streams.
Managing streams laden with unreacted ore fines, pigment particles, and vaporized titanium tetrachloride production gases requires filtration media engineered for structural stability and clean back-pulse release under extreme heat.
Filter elements situated in high-solids reaction zones face severe operating demands. Temperatures continuously range from 300°C to over 1000°C in gas streams containing dry chlorine gas and corrosive halogen vapors. When heavy solids loads plug media pores or erode structural walls, plants suffer rapid differential pressure buildup, reduced gas velocity, and unexpected operational halts. Extending element operating life in high-solids hot gas filtration directly preserves unit throughput and lowers annual maintenance costs.
HAVER & BOECKER manufactures POROSTAR® sintered wire mesh filter candles engineered to withstand heavy dust concentration in aggressive chlorine gas filtration applications. Produced by diffusion-bonding precision layers of woven metal wire, these rigid filter candles provide structural integrity, uniform permeability, and resistance to thermal-mechanical shock.
This article is specifically created with plant engineers, B2B process engineers, and operations directors in chloride route titanium dioxide manufacturing in mind. It details the mechanisms of media degradation under heavy dust loading, evaluates alternative filter media options through an engineering lens, and outlines strategies for extending element service life in active production loops.
Inline process loops in chloride-route titanium dioxide facilities subject internal filtration elements to intense mechanical and chemical wear driven by high solids concentrations:
In addition to physical particle loading, high gas temperatures accelerate chemical degradation across filter hardware.
At temperatures exceeding 300°C, hot chlorine gas aggressively attacks standard austenitic stainless steels (such as 304 or 316 alloys), causing severe pitting corrosion, intergranular degradation, and stress corrosion cracking.
Protecting element wall thickness and structural welds in high-solids loops requires specialized high-nickel metallurgy, such as Inconel or Hastelloy, capable of forming stable protective oxide scales under continuous halogen exposure.
High-solids environments also test the mechanical fatigue resistance of filter media during back-washing. Automated pulse-jet systems discharge cold compressed gas through element cores to dislodge heavy exterior dust cakes.
The combination of thermal transients and high-frequency shockwaves induces severe cyclic stresses. Filtration media must possess sufficient ductility to absorb repetitive cleaning pulses without developing fatigue cracks or seam separation.
Selecting filtration media for high-solids titanium dioxide production requires balancing filtration efficiency, structural durability, and cleaning capability. Evaluating common filter media constructions against high-dust process demands illustrates critical operational trade-offs:
If you want to discover more about the importance of reliable filtration in titanium dioxide production, check out our article below:
POROSTAR® sintered wire mesh filter candles engineered by HAVER & BOECKER resolve depth blinding and mechanical brittleness through a multi-layer diffusion-bonded construction.
Fusing precision-woven wire cloth layers under high heat and pressure creates rigid sintered laminates that deliver specific operational advantages in heavy-solids gas filtration:
Achieving extended filter service life and protecting operating margins in chloride-route titanium dioxide plants requires hot gas filtration equipment built for high particulate concentrations and aggressive chemistry. Replacing fragile ceramic media or rapid-blinding depth filters with back-washable metallic candles enables plant operators to control pressure drop, eliminate catastrophic media breakage, and extend campaign length between overhaul shutdowns.
Deploying high-integrity sintered wire mesh candles downstream of chlorinators, calciners, and oxidation vessels stabilizes gas circulation, protects downstream capital equipment, and preserves titanium dioxide pigment recovery. Combining high-temperature filter mesh with corrosion-resistent alloys provides chemical processing plants with a dependable solution for continuous throughput.
HAVER & BOECKER collaborates directly with reliability engineers, plant operations leaders, and chemical equipment designers to engineer application-specific POROSTAR® sintered wire mesh filter candles. Tailored to fit exact vessel geometry, operating temperatures, and gas compositions, HAVER & BOECKER delivers durable hot gas filtration solutions backed by over 135 years of wire weaving technology.
Read our article below to discover 7 of the most critical challenges that titanium dioxide producers face: