Weigh Feeder Working Principle: Loss-in-Weight vs Belt Feeder Explained

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Process Instrumentation

Weigh Feeder Working Principle: Loss-in-Weight vs Belt Feeder Explained

A conveyor scale doesn't ask how much material is on the belt. It asks how much weight passed by, per foot, thousands of times a minute, and integrates the answer into a running total.

Process Instrumentation Weigh Feeder Loss-in-Weight 9 Min Read

A weigh feeder continuously measures and controls the mass flow rate of dry bulk solids, using either a loss-in-weight or belt-based approach. This guide explains both technologies, the core weighing formulas, and a clear comparison to help you choose the right one.

What is a Weigh Feeder?

A weigh feeder is a continuous gravimetric feeding device that measures and controls the rate at which dry bulk solid material is delivered into a process, expressed as weight per unit time rather than volume per unit time. Because gravimetric feeding is based on mass, not volume, it remains accurate even when a material's bulk density changes due to moisture, particle size, or settling, something a purely volumetric feeder cannot compensate for on its own.

Weigh Feeder

Two main technologies dominate industrial gravimetric feeding: the loss-in-weight (LIW) feeder and the weigh belt feeder (WBF), each built around a load cell sensing element but using a fundamentally different measurement strategy.

💡 Quick Summary: A loss-in-weight feeder continuously weighs an entire hopper and its contents, controlling feed rate by the measured rate at which that total weight decreases. A weigh belt feeder measures the weight of material on a moving belt section combined with belt speed to calculate mass flow directly. LIW feeders typically offer the tightest accuracy; belt feeders handle large particles and higher throughput more easily.
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Real Life Example

Think of a loss-in-weight feeder like watching a kitchen scale under a bag of flour with a small hole in the bottom, timing exactly how fast the bag's weight drops as flour trickles out. A weigh belt feeder is more like a supermarket conveyor scale at checkout: it weighs whatever's currently sitting on a short section of moving belt and multiplies by how fast that belt is moving, to figure out how much total product is passing by per minute. Both answer the same question, "how much material per unit time," just by watching a different physical quantity change.

📖 Did You Know? During a loss-in-weight feeder's hopper refill cycle, the controller cannot sense loss-in-weight, since the hopper is actively being filled rather than emptied. The system automatically switches to volumetric control during this brief window, then resumes gravimetric (weight-based) control once refill completes and the reading settles.

Loss-in-Weight vs Weigh Belt Feeder

⚖️ Loss-in-Weight Feeder

Continuously weighs the entire hopper, feeding mechanism, and contained material. Feed rate is controlled by the measured rate of weight loss over time. Excellent accuracy (±0.25 to 1%), but struggles with very large particle sizes in screw-type designs.

🎢 Weigh Belt Feeder

A load cell measures the weight of material on a fixed-length belt section; a tachometer measures belt speed. Handles large particles (rocks, limestone, cornhusks) and higher throughput ranges more easily than screw-type LIW designs.

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Weigh Belt Feeder Formula

Mass Flow Rate
Rate = Weight per unit length × Belt Speed
Weight per unit length: the load cell measures the weight of material across the weighed belt section, typically in lb/ft or kg/m. Belt speed: measured by a tachometer/encoder, in ft/min or m/min.

Worked Example
Belt loading = 50 lb/ft, belt speed = 300 ft/min
Rate = 50 × 300 = 15,000 lb/min
At this speed, the totalizer processes roughly 30,000 weight additions per minute for smooth, high-resolution readings.
💡 Engineering Tip: An inclined conveyor belt scale requires angle compensation. At a fixed 30° incline, cosine(30°) = 0.866, meaning the scale reads a 40 lb weight as only about 34.6 lbs unless the reading is corrected by dividing by cos(angle). Fixed-angle installations can apply a constant correction factor; stacker conveyors with variable angle need a live angle compensator.

Comparison Table

FactorLoss-in-Weight (LIW)Weigh Belt Feeder (WBF)
Typical Accuracy±0.25% to 1% of set rateComparable in overlapping ranges
Large Particle HandlingLimited (screw feeder pinch points)Excellent (rocks, aggregate, cornhusks)
Refill InterruptionBrief switch to volumetric mode during refillNo refill interruption, continuous belt feed
Space FootprintSelf-contained, own support structureRequires separate support stand
Best ForFine powders, precise dosing, small particle sizesHigh-throughput, large or difficult materials

Applications

🏭

Cement and Aggregate

Belt feeders handle coarse raw materials at high throughput rates reliably.

💊

Pharmaceutical Dosing

LIW feeders provide the fine powder precision pharmaceutical formulation requires.

🍫

Food Processing

Both technologies support accurate ingredient dosing in food batching lines.

⚗️

Plastics and Polymer Compounding

LIW feeders precisely dose additives and colorants into extrusion processes.

⛏️

Mining and Minerals

Belt scales totalize bulk ore and mineral transport across conveyor systems.

🌾

Animal Feed Manufacturing

Gravimetric feeders ensure accurate ingredient ratios in feed formulation.

Loss-in-Weight Feeder: Video Walkthrough

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Frequently Asked Questions

What happens during a loss-in-weight feeder's refill cycle?
The controller cannot sense loss-in-weight while the hopper is being refilled, so it temporarily switches to volumetric control to maintain consistent material delivery. Once refill completes and the reading settles, the system resumes gravimetric (weight-based) control.
Why do weigh belt feeders handle large particles better than loss-in-weight feeders?
Many loss-in-weight feeders use a screw feeding mechanism with tight clearances between the screw and feed tube. Large particles can become caught at pinch points, stopping the feed or damaging the screw, whereas a weigh belt feeder's open belt surface has no such constriction.
Why does an inclined belt scale need angle compensation?
On an inclined conveyor, gravity's effect on the load cell reading is reduced by the cosine of the incline angle. Without compensation, the scale would under-read the actual material weight, requiring either a fixed correction factor for constant-angle conveyors or a live angle compensator for variable-angle stacker conveyors.
Is gravimetric feeding more accurate than volumetric feeding?
Generally yes, because gravimetric feeding measures actual mass directly, while volumetric feeding assumes a constant bulk density that can shift with moisture, particle size, or settling, introducing error that gravimetric methods avoid.
Can both belt tension and speed accuracy affect a weigh belt feeder's reading?
Yes. A weigh belt feeder needs both accurate belt speed and accurate weight sensing to achieve its rated accuracy. Overtensioning a belt, often done to prevent slippage or tracking issues, can apply extra downward force on the scale mechanism and degrade accuracy even if belt speed is measured correctly.
External References
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What We Learn Today

  • Weigh feeders control mass flow rate of bulk solids gravimetrically, unaffected by bulk density changes
  • Loss-in-weight feeders track the rate at which a weighed hopper's total weight decreases
  • Weigh belt feeders combine belt-section weight and belt speed to calculate mass flow directly
  • LIW feeders offer excellent precision for fine powders; belt feeders handle large particles and higher throughput
  • Inclined belt scales require angle compensation, since gravity's effect on the load cell reduces with incline angle
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