
A material-first guide to choosing the configuration, capacity, screw geometry, construction, drive and protection for a reliable bulk-material transfer system.
A screw conveyor can look mechanically simple: a rotating helical flight moves material through a trough or tube. In practice, the same machine can perform very differently when the product changes from free-flowing plastic granules to aerated flour, abrasive cement, wet sludge or fragile crystals. The successful design is therefore selected around the material and process, not around a familiar diameter or a previous conveyor that handled something similar.
This screw conveyor selection guide is written for plant managers, project engineers, production teams, procurement professionals and integrators who need to prepare a useful requirement before approaching a manufacturer. It explains the decisions that have the greatest effect on capacity, wear, power, cleanability, product quality and safety. It does not replace project-specific engineering, material testing or a site risk assessment.
Convello offers customizable horizontal, inclined and vertical screw conveyor systems in mild-steel or stainless-steel construction, with shafted or shaftless configurations, fixed or variable speed and optional dust covers, sensors, automation integration and guarding. The final choice should be confirmed against representative material, the complete route and the upstream and downstream process.
Selection principle | Treat the material, inlet, screw, housing, drive, discharge and controls as one connected system. Optimising one component in isolation can move the bottleneck or failure point elsewhere.
What Is a Screw Conveyor?
A screw conveyor uses a rotating helix inside a stationary trough or tube to move bulk material. The rotating flight pushes and drags the material along the conveyor while the housing contains it. One or more inlets can receive material, and one or more outlets can discharge it into a mixer, hopper, process machine, packaging line, storage vessel or another conveyor.
The enclosed or covered arrangement can help control spillage, dust and contamination compared with an open transfer. Screw conveyors also fit into compact layouts and can be configured horizontally, on an incline or, for suitable products, vertically. These benefits make them common in food processing, chemicals, plastics, cement, minerals, agriculture, wastewater and manufacturing.
However, a screw is not automatically the best conveyor for every bulk solid. Product degradation, segregation, severe abrasion, excessive heat generation, long conveying distances or difficult vertical lift may favour another technology. A good supplier should be willing to recommend an alternative when a screw conveyor would create unacceptable risk or lifecycle cost.
Screw Conveyor vs Screw Feeder: Do Not Use the Terms Interchangeably
A screw conveyor normally transfers material that has already been regulated by upstream equipment. It is control-fed, so the inlet receives a predictable amount of product and the trough operates at a selected loading level. Standard pitch may be suitable when the material and route allow it.
A screw feeder is designed to withdraw and meter material from a hopper, bin or silo. Its inlet is flood-fed, meaning the screw is exposed to the full head of material above it. The inlet section may use variable pitch, tapered diameter, mass-flow features or multiple screws so material is withdrawn more evenly across the opening and the desired rate is maintained.
Installing a normal conveyor directly below a flood-loaded hopper can cause overfilling, high starting torque, compaction, bridging, poor rate control and premature component failure. State clearly whether the equipment must transfer a controlled stream or regulate the discharge from storage.
Main Types of Screw Conveyors
Configuration is selected around containment, access, incline, material behaviour and the function of the equipment. The following table provides a practical comparison; names and detailed designs vary between manufacturers.
| Configuration | Basic arrangement | Typical starting point | Important caution |
| Horizontal trough screw | Openable U-trough with covers and accessible internals | General transfer where inspection and maintenance access matter | Needs suitable covers, hanger-bearing strategy and dust control |
| Tubular screw | Fully enclosed circular or compact housing | Powders and granules requiring a clean, contained route | Access and residue removal must be planned |
| Inclined screw | Screw conveyor installed above horizontal | Moderate elevation changes where footprint is limited | Capacity falls and power demand rises as incline and fallback increase |
| Vertical screw | High-angle or vertical lift, normally with controlled infeed | Compact elevation of suitable free-flowing materials | Requires application-specific design, speed, feed and containment |
| Shafted screw | Flights mounted on a centre pipe or shaft | Broad range of dry, flowable and moderately difficult materials | Internal bearings and clearance must suit the material |
| Shaftless screw | Heavy spiral without a central pipe and usually with a liner | Sticky, wet, stringy or irregular materials such as sludge | Liner wear, torque and access for spiral replacement are critical |
| Screw feeder | Flood-fed inlet that meters material from a hopper or bin | Controlled withdrawal and dosing into a process or conveyor | Inlet geometry, variable pitch and mass-flow behaviour need engineering |

Common screw conveyor configurations and the application problem each one is intended to solve.
Start with the Bulk Material – Not the Conveyor Diameter
The material name on a purchase request is rarely enough. “Sugar,” “sand,” “sludge” or “plastic granules” can describe products with very different density, moisture, particle distribution, flow behaviour and temperature. The same material may also change after storage, grinding, drying, heating, cooling or mixing.
Use data from the actual grade and the most difficult credible operating condition. A sample collected during normal production is valuable, but the design should also consider wet-season moisture, maximum temperature, start-up after a long shutdown, fines generated by upstream equipment and any large lumps or foreign objects that may enter the conveyor.
For unfamiliar, cohesive, aerated, fragile or hazardous materials, practical flow testing and representative conveying trials are often more valuable than a generic database value. The objective is to understand how the material fills the inlet, moves under compression and shear, releases at the outlet and behaves after repeated starts and stops.
| Material property | Information to obtain | Why it changes the design |
| Bulk density | Loose and compacted density at operating moisture | Converts kg/h or t/h into volumetric capacity; affects diameter, speed and drive |
| Particle and lump size | Maximum dimension, percentage of lumps and breakability | Checks radial clearance, inlet size, bridging and risk of jamming |
| Flowability | Angle of repose, cohesion, aeration and tendency to bridge | Influences inlet, loading, pitch, feeder design and incline performance |
| Abrasiveness | Wear index, hardness and fines content | Drives reduced speed/loading, thicker flights, liners and wear-resistant materials |
| Moisture and stickiness | Normal/maximum moisture, oil, temperature and adhesion | May require shaftless or ribbon flights, polished surfaces and cleanout access |
| Corrosiveness and hygiene | Chemical compatibility, contamination and washdown needs | Defines stainless grade, coatings, seals, surface finish and drainage |
| Temperature | Continuous and peak product/ambient temperature | Affects expansion, bearings, seals, lubricant, clearances and drive location |
| Degradation sensitivity | Friability, particle damage, segregation and heat sensitivity | May require lower speed, lower loading or a gentler conveying technology |

Material-property map: density, particle size, flowability, wear, moisture and temperature drive the conveyor design.
1. Bulk Density and the Difference Between Mass and Volume
Production requirements are often stated in kilograms or tonnes per hour, while a screw conveyor is fundamentally sized by the volume it must move per revolution. Bulk density connects these two units. A light powder can require a much larger volumetric conveyor than a dense mineral at the same mass rate.
Obtain a realistic loose bulk density at operating moisture and, where compaction is possible, understand the range rather than relying on a single catalogue value. Aerated powders may enter at a very low apparent density and settle inside the conveyor, affecting filling, power and discharge behaviour.
2. Particle Size, Lump Size and Clearance
The maximum particle or lump – not the average particle – can set the minimum screw diameter and inlet clearance. Hard, non-degradable lumps must pass between the centre pipe, flight edge and housing without wedging. Long fibres, strips or stringy material can wrap around a shaft or hanger bearing even when the nominal particle size appears small.
Provide the largest credible dimension, the percentage of oversize material and whether lumps break easily. Also explain how oversize reaches the line and whether screening, magnets or a foreign-object trap will be provided upstream.
3. Flowability, Cohesion and Aeration
Free-flowing granules normally fill and discharge more predictably than cohesive powders. Cohesive materials may bridge above the inlet, form stable plugs, smear on the housing or carry through the discharge. Very fine powders can become aerated and behave almost like a fluid, causing uncontrolled flooding or leakage through inadequate seals.
Flowability affects trough loading, screw pitch, inlet length, feeder geometry, discharge design and the maximum practical incline. A hopper and feeder should be engineered together because a well-sized screw cannot correct a storage vessel that does not deliver material reliably.
4. Abrasiveness and Expected Wear Life
Abrasive materials wear the carrying face, flight tips, trough, liners, hanger bearings and seals. Increasing speed to obtain more capacity can sharply increase sliding distance and wear. A lower trough loading, larger diameter and lower speed may cost more initially but provide better service life and easier maintenance.
Discuss sectional flights, harder alloys, replaceable liners, hard-facing, thicker troughs and accessible wear zones. The requirement should define acceptable maintenance intervals and whether components can be changed without removing surrounding process equipment.
5. Moisture, Stickiness and Buildup
Moist or oily material can adhere to the centre pipe, flights and trough, progressively reducing capacity and increasing torque. Product left in the housing may harden during a shutdown. Sticky material may also ride around with the screw rather than moving forward.
Possible responses include shaftless spirals, ribbon or paddle features, polished surfaces, scrapers, steep-sided housings, wash ports and removable covers. The right choice depends on the product and cleaning method; a special flight that improves agitation may reduce conveying capacity or increase degradation.
6. Temperature, Corrosion and Product Compatibility
Continuous and peak temperatures influence materials, clearances, bearing location, seals, lubrication, drive selection and thermal expansion. A cold product entering a warm humid area can also cause condensation and unexpected sticking or corrosion.
For corrosive chemicals or food products, select construction by compatibility and cleanability rather than using “stainless steel” as a complete specification. State the required stainless grade, contact-surface finish, weld treatment, gasket material, drainage, cleaning chemical and cross-contamination limit.
7. Required Capacity, Peak Rate and Duty Cycle
Define minimum, normal and peak flow rate, and say whether the process is continuous or batch. A short peak may be absorbed by upstream storage, while a sustained peak must be handled without overfilling. Include operating hours per day, number of starts, expected starts under load and any future expansion allowance.
Capacity is influenced by screw diameter, pitch, rotational speed, trough loading, flight type, material characteristics and incline. Modified flights for mixing or agitation can reduce conveying capacity. Do not select a higher speed as the default solution: speed can increase wear, product damage, heat, dust and power while leaving the inlet or discharge as the true bottleneck.
The manufacturer should calculate the selected speed, horsepower and full-load torque, then verify the ratings of the drive shaft, coupling shafts, bolts, screw, bearings and gearbox. Starting and upset torque deserve particular attention for flood-fed, sticky, compacting or interrupted processes.
Capacity note | Ask for the design basis: material density, selected trough loading, screw diameter and pitch, operating speed, incline factor, drive efficiency, motor power and component torque rating.
8. Conveyor Length, Incline and Layout
Horizontal conveying is usually the most efficient starting point. As the angle increases, material tends to fall back between flights, reducing effective capacity and increasing the power needed to lift and recirculate product. The loss depends on flowability, housing, pitch, speed and feed condition, so a single universal de-rating percentage should not be applied to every material.
Use the lowest practical incline, and consider separating a long route into a horizontal conveyor and a purpose-designed lift when that improves reliability. High-angle or vertical screws normally need controlled infeed and a coordinated feeder. Check headroom, discharge height, support steel, thermal movement, cleanout space and access to the drive and end bearings.
Long shafted conveyors may require intermediate supports or multiple sections. Hanger bearings improve shaft support but introduce an internal wear and contamination point. For sticky or stringy material, eliminating internal bearings through a shaftless or specially supported design may be more important than using a standard sectional arrangement.
9. Feed Condition, Inlet Design and Hopper Interface
The inlet determines how material enters the screw. A short centred inlet from a controlled upstream feeder behaves differently from a long opening below a bin. Flood loading can compress material, create unequal withdrawal, overload the first flights and produce high starting torque.
Share the hopper outlet dimensions, wall angles, gate arrangement, head of material and whether the bin must achieve mass flow. For a feeder, the screw pitch or diameter may change along the inlet to increase capacity progressively and reduce dead zones. Multiple screws or a live-bottom arrangement may be required for a wide bin.
Interlock upstream equipment so it cannot continue filling a stopped or blocked conveyor. Level switches, torque or current monitoring, zero-speed detection and controlled restart logic can prevent a minor interruption from becoming a major cleanout or mechanical failure.
10. Screw Diameter, Pitch and Flight Configuration
Diameter provides volumetric capacity and physical clearance, but it must be selected together with pitch and speed. Full pitch is common for general horizontal transfer. Short pitch can improve control or incline performance but reduces capacity per revolution. Variable pitch is often used in feeders so the available carrying volume increases away from the hopper inlet.
Flight options include standard helicoid or sectional flights, ribbon flights, cut flights, cut-and-folded flights and paddles. These can help with mixing, aeration, sticky material or process conditioning, but they change capacity, power, product shear and cleanability. Every non-standard flight should have a stated purpose and be reflected in the calculation.
Direction of rotation, hand of flight, reversible operation and multiple discharge points must be confirmed. A conveyor designed to run in both directions may need different inlet and discharge arrangements, bearing details and controls from a one-way machine.
11. Housing, Covers, Seals, Bearings and Wear Components
A U-trough offers convenient inspection and removable covers. Tubular housings provide compact containment and can be useful for powders, but access and residue removal must be engineered. Drop-bottom troughs, quick-release covers, cleanout doors and removable end plates can reduce changeover and maintenance time when correctly guarded and interlocked.
End seals must suit dust, pressure, temperature and hygiene. Packing seals, air-purge arrangements, mechanical seals or labyrinth details may be considered depending on the application. Bearings should be kept out of the product zone where practical, and lubrication must not create contamination risk.
Define which parts are intended as replaceable wear items. Trough liners, shaftless conveyor liners, hard-faced flight edges and bolt-in inlet liners can protect major structure. Include inspection points or wear indicators so maintenance is condition-based rather than waiting for product leakage or loss of capacity.
12. Controls, Dust Containment, Hygiene and Safety
Controls should reflect process consequences, not just motor starting. A VFD can adjust feed rate and provide controlled acceleration, but it does not by itself guarantee accurate dosing. Where mass-flow accuracy matters, integrate weighing or loss-in-weight measurement and calibrate the complete feeder system.
Dusty materials may require sealed covers, extraction at transfer points, suitable shaft seals and housekeeping access. Combustible or toxic dust requires a site-specific hazard assessment covering ignition sources, electrical classification, ventilation, isolation, explosion protection and safe cleaning. Do not assume that an enclosed screw conveyor is automatically dust-tight or explosion-safe.
Rotating flights, shafts, couplings and drives must be guarded. Covers and cleanout doors should prevent access while the screw is running, and maintenance must use an approved isolation and lockout procedure. Emergency stops, local isolators, zero-speed monitoring, overload protection and restart logic should be included according to the risk assessment and applicable requirements.
Shafted vs Shaftless Screw Conveyor
A shafted screw provides a rigid centre pipe and broad design flexibility for dry, free-flowing and many abrasive materials. It can suit long horizontal runs and higher torque when components and supports are selected correctly. The trade-off is that internal shafts and hanger bearings can collect sticky or stringy material and create maintenance points inside the product stream.
A shaftless screw uses a heavy spiral that runs on a replaceable liner. The open centre helps pass wet, sticky, irregular or stringy materials and eliminates internal hanger bearings. Shaftless systems are common for sludge, screenings, filter cake and selected recycling or food applications.
Shaftless is not automatically the superior design. Spiral strength, liner wear, rotational speed, trough geometry, incline and access for replacement must be assessed. A material that is highly abrasive but otherwise free-flowing may be better served by a heavy-duty shafted conveyor with wear protection.
Selection Guidance by Material Type
| Material or process | Possible starting configuration | Critical checks |
| Flour, starch, sugar and fine powders | Tubular or covered trough conveyor; screw feeder where metering is required | Dust containment, aeration, residue, hygiene, explosion risk and gentle filling |
| Grains, seeds, pellets and plastic granules | Horizontal or modest-incline shafted conveyor | Particle damage, segregation, fines generation, cleanout and food-grade needs |
| Cement, fly ash and mineral powders | Heavy-duty covered trough or tubular conveyor | Abrasive wear, dust-tight seals, low leakage, suitable speed and replaceable wear parts |
| Sand, foundry materials and aggregate fines | Heavy-duty sectional-flight conveyor | High abrasion, shock loading, lumps, reduced trough loading and service access |
| Wet sludge, filter cake and biosolids | Shaftless screw conveyor or specially designed shafted system | Stickiness, stringy debris, liner wear, drainage, washdown and upset torque |
| Chemicals and corrosive powders | Compatible stainless or alloy construction | Material compatibility, seals, dust/vapour control, contamination and temperature |
| Fragile crystals or food inclusions | Low-speed, low-loading screw only after trials; consider alternatives | Breakage, smearing, segregation and change in product quality |

Application matrix showing suitable starting configurations and where testing or special design is required.
Powders: Control Dust, Aeration and Residue
Fine powders can flood, aerate and leak through small gaps. They may also compact under pressure, retain product in seams or create a dust hazard at the inlet and outlet. A covered trough or tubular housing, appropriate seals, controlled inlet and low-leakage transitions are common priorities.
For food or pharmaceutical powders, residue and cross-contamination may dominate the selection. Ask how the screw is accessed, how welds and internal surfaces are finished, where product can remain after discharge and whether cleaning can be verified.
Granules and Pellets: Protect Product Quality
Free-flowing granules are often easier to convey, but brittle pellets, seeds or plastic compounds can chip, generate fines or segregate. Use the lowest practical speed and avoid unnecessary recirculation. Inlet impact, clearances and discharge drop height can cause as much damage as the screw itself.
Where multiple colours, grades or allergens are handled, plan changeover and traceability. A tubular conveyor may contain product well, while an openable trough may be easier to inspect; the better choice depends on the accepted residue limit and cleaning procedure.
Abrasive Bulk Solids: Design for Wear and Maintainability
Cement, ash, sand and mineral fines can remove metal rapidly at high speed or high loading. Select abrasion-resistant flights, thicker troughs, liners and replaceable components where justified. Slow-speed, larger-diameter designs often reduce wear compared with forcing capacity through a smaller fast screw.
Identify where wear will concentrate – commonly at the inlet, carrying face, flight tip, discharge and bends or transitions. Make those areas inspectable and replaceable without dismantling the entire line.
Sticky, Wet or Stringy Materials: Prevent Buildup and Wrapping
Sludge, wet biomass, filter cake and stringy waste can bridge, smear and wrap around internal shafts. A shaftless screw may provide a more open conveying path, while steep-sided troughs, suitable liners, drainage and washdown access help maintain capacity.
Specify the worst condition after a shutdown. Material that flows when fresh may harden overnight, and a drive selected only for steady running may not restart the conveyor safely. Consider automatic emptying, reverse jog only when engineered, torque monitoring and a defined cleanout procedure.
Eight-Step Screw Conveyor Selection Process
Step 1 – Define the exact material
Record grade, source, operating state, contamination limits and whether the conveyor must preserve particle quality.
Step 2 – Measure critical properties
Confirm bulk density, particle distribution, maximum lump, flowability, moisture, abrasiveness, temperature and corrosiveness.
Step 3 – Set the real operating duty
State minimum, normal and peak rate, batch size, hours, starts, upset conditions and future capacity.
Step 4 – Map the complete route
Provide a dimensioned layout with horizontal length, incline, lift, inlet, discharge, supports, access and interfaces.
Step 5 – Select the conveyor function and configuration
Decide whether the equipment transfers or meters material, then compare trough, tube, inclined, vertical, shafted and shaftless options.
Step 6 – Engineer screw and drive components
Calculate diameter, pitch, trough loading, speed, power and torque; select flights, shafts, bearings, seals, liners and gearbox.
Step 7 – Validate environment, hygiene and safety
Complete dust and hazard assessment, guarding, interlocks, cleaning, materials compatibility and maintenance-access review.
Step 8 – Test, accept and document
Use representative product trials where risk is high; define FAT/SAT criteria, drawings, manuals, spares, training and maintenance plan.

Eight-step selection workflow from material definition and capacity through engineering, safety and acceptance testing.
Common Screw Conveyor Selection Mistakes
- Choosing diameter from a previous project without comparing bulk density, flowability, moisture and lump size.
- Using a standard conveyor below a flood-loaded hopper when the process actually requires a screw feeder.
- Quoting only average capacity and omitting peak rate, starts under load, operating hours and future expansion.
- Assuming incline capacity can be recovered simply by increasing speed.
- Ignoring the effect of special flights on capacity, power, shear and cleaning.
- Specifying stainless steel without grade, surface finish, weld treatment or chemical compatibility.
- Placing hanger bearings, seals or inaccessible wear parts in a material that will clog or contaminate them.
- Treating an enclosed housing as automatically dust-tight, hygienic or suitable for combustible dust.
- Failing to define who supplies hoppers, gates, supports, electrical work, controls and downstream interfaces.
- Accepting a quotation without a documented design basis, test criteria, spares list and maintenance access review.
Information to Share for an Accurate Screw Conveyor Quote
A complete enquiry helps the manufacturer compare options and prevents later assumptions from becoming variations. Attach a layout and photographs, and send a representative material sample when behaviour is uncertain.
| Requirement area | Information to provide |
| Material identity | Product name, grade, composition, SDS where applicable and representative sample |
| Material condition | Moisture, temperature, bulk density, particle distribution, maximum lump and flow behaviour |
| Required duty | Normal, minimum and peak rate; batch or continuous; operating hours and starts per hour |
| Route and layout | Horizontal length, incline, lift, available footprint, supports and access constraints |
| Feed condition | Controlled feed or flood-fed hopper; upstream equipment, inlet size and surge behaviour |
| Discharge and interfaces | Number and position of outlets, downstream equipment, pressure or level interactions |
| Construction requirements | Mild steel, stainless grade, food-contact finish, coatings, liners and cleanout method |
| Controls and utilities | Supply voltage, fixed/VFD speed, sensors, interlocks, PLC signals and emergency-stop philosophy |
| Environment and safety | Indoor/outdoor, dust, hazardous-area assessment, guarding, washdown and operator access |
| Acceptance and documentation | Capacity test, representative material trial, drawings, manuals, spares and training |
Convello enquiry brief | Share the material, bulk density, particle size, moisture, required kg/h or t/h, route, incline, feed condition, construction, cleaning method, operating hours and layout. Convello can then review a horizontal, inclined, vertical, shafted or shaftless solution around the actual application.
Frequently Asked Questions
1. What information is most important when selecting a screw conveyor?
The most important information is the real material condition, including bulk density, particle and lump size, flowability, moisture, abrasiveness, temperature and compatibility. Combine this with capacity, route, feed condition, duty cycle, cleaning and safety requirements.
2. How do I choose the diameter of a screw conveyor?
Diameter is selected from volumetric capacity, trough loading, pitch, speed and material characteristics, while also providing clearance for the largest lumps. It should be calculated with drive power and torque rather than chosen independently.
3. What is the difference between a screw conveyor and a screw feeder?
A conveyor transfers a controlled incoming stream. A feeder is flood-fed from a hopper or bin and regulates withdrawal, often using variable pitch, tapered geometry or multiple screws.
4. Can a screw conveyor handle fine powder?
Yes, many fine powders can be conveyed in covered trough or tubular systems. The design must address aeration, dust leakage, seals, residue, cleaning, inlet control and any combustible or toxic dust hazards.
5. Which screw conveyor is suitable for sticky or wet material?
A shaftless screw is often considered for wet, sticky, stringy or irregular products because it removes the centre pipe and internal hanger bearings. The final choice still depends on abrasion, torque, incline, liner wear and cleaning.
6. Can screw conveyors operate on an incline?
Yes, but effective capacity usually reduces and power demand increases as incline and material fallback increase. Use the lowest practical angle and have the manufacturer apply material- and configuration-specific calculations.
7. When is a vertical screw conveyor appropriate?
A vertical screw can elevate suitable dry to semi-fluid bulk material in a small footprint. It normally requires controlled feeding, appropriate speed and specialised design. Material testing may be required for difficult products.
8. What screw pitch should be used?
Full pitch is common for general horizontal transfer. Short pitch may help control flow or improve incline performance, while variable pitch is common in feeders. Pitch must be selected with capacity, speed and material behaviour.
9. Is a tubular screw conveyor better than a U-trough conveyor?
Neither is universally better. Tubes provide compact containment, while U-troughs can provide easier access and cleaning. Compare leakage, hygiene, residue, maintenance and layout before selecting.
10. How can screw conveyor wear be reduced?
Use a suitable diameter and lower speed, recommended trough loading, wear-resistant flights, liners or hard-facing, robust bearings and accessible replaceable components. Control foreign objects and inspect high-wear zones regularly.
11. What safety features should a screw conveyor have?
Typical provisions include guarded rotating parts, secured or interlocked covers, emergency stops, local isolation, overload and zero-speed monitoring, safe access and a documented lockout procedure. The exact design follows a site-specific risk assessment.
12. What should be tested before accepting the conveyor?
Test with representative material at normal and peak rate, including starts, stops, discharge behaviour, dust leakage, product quality, motor load, noise, vibration and control interlocks. Agree the acceptance criteria before manufacture.
Conclusion: Select the System Around the Material and Process
The right screw conveyor is not defined by a single catalogue size. It is the result of matching material behaviour, required flow, route, feed condition, screw geometry, construction, wear protection, drive, controls, cleaning and safety.
A strong requirement begins with evidence: representative material data, a dimensioned route, normal and peak capacity, real duty cycle and clear process interfaces. That information allows the manufacturer to compare a horizontal trough, tubular, inclined, vertical, shafted, shaftless or feeder configuration on a like-for-like basis.
Convello designs customizable screw conveyor systems for powders, granules, pellets, sludge and other bulk materials. Share your material properties, required throughput, layout and operating environment to receive an application-specific recommendation and quotation.
Discuss your bulk-material application with Convello: Request a custom screw conveyor quote

