Open Channel Flow Measurement: 5 Essential Devices, Weir Formulas and Proven Selection Guide

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Flow Measurement · Weirs · Flumes · Wastewater · Irrigation · Open Channels

Open Channel Flow Measurement: 5 Essential Devices, Weir Formulas and Proven Selection Guide

Open channel flow measurement covers rivers, canals, sewers, drainage channels and irrigation ditches : anywhere liquid flows with a free surface exposed to atmosphere. Unlike closed pipe flow, open channel flow uses the liquid head above a restriction to calculate flow rate. This guide covers all 5 essential measurement devices: V-notch weirs, rectangular weirs, trapezoidal weirs, Parshall flumes and Palmer-Bowlus flumes : with formulas, CSS infographics and a live flow calculator.

5 Measurement Devices Weir Formulas Explained Live Flow Calculator Device Selection Matrix

Open Channel Flow Measurement vs Closed Pipe Flow: Key Differences

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Closed Pipe Flow

Pipe completely full. Pressure drives the flow. Fluid completely fills the cross-section. Instruments measure pressure differential, velocity or mass directly.

Instruments: Orifice plate, Coriolis, magnetic flow meter, vortex, turbine.

Driving force: Pressure difference between upstream and downstream.

🟢
Open Channel Flow

Liquid flows with a free surface. Gravity drives the flow. The cross-section is only partially filled. Only the liquid level (head) above the restriction is measurable.

Instruments: Weirs, flumes, ultrasonic level sensors measuring head H.

Driving force: Gravity acting on the hydraulic gradient.

Open channel flow measurement is used in wastewater treatment, irrigation networks, stormwater drainage, river gauging, effluent monitoring and cooling water channels. The fundamental principle in all cases is the same: create a controlled restriction in the channel, measure the upstream liquid head H above the restriction, and apply the device-specific formula to calculate flow rate.

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5 Essential Open Channel Flow Measurement Devices at a Glance

V-Notch Weir
Best for low flow, highest accuracy
Rectangular Weir
High flow, simple structure
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Trapezoidal Weir
Wide flow range, Cipolletti type
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Parshall Flume
Sewage, solids in flow
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Palmer-Bowlus Flume
Circular sewers, in-pipe

How Open Channel Flow Measurement Works: The Head-Flow Principle

Every weir and flume works on the same hydraulic principle. When flow approaches the restriction, the liquid backs up behind it and rises to a head H above the weir crest or flume throat. This head H is the only measurement needed. All open channel flow formulas take the form:

General form of all open channel flow measurement formulas: Q = C x K x H^n

Where:
Q = volumetric flow rate (m³/s or L/s)
C = discharge coefficient (dimensionless, device-specific)
K = device geometry constant (depends on notch width, flume size etc.)
H = measured head above the weir crest or flume datum (metres)
n = exponent (1.5 for rectangular/trapezoidal weirs, 2.5 for V-notch, varies for flumes)

The head H is always measured UPSTREAM of the weir or flume at a specified distance (typically 4-6 times the maximum expected head). Measuring too close to the restriction gives a false low reading because the water surface accelerates and drops as it approaches the weir crest.
Where to Measure Head H in Open Channel Flow Measurement
Flow approaches
from this side
H measured here
(4-6x H_max upstream)
Flow discharges
over weir crest
Always measure head H at a distance of at least 4 times the maximum expected head upstream of the weir or flume. Closer measurement gives artificially low readings because the water surface drawdown begins before the crest. ISO 1438 and ISO 9826 specify exact stilling well placement requirements. Critical Measurement Rule : Head Location
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Weirs in Open Channel Flow Measurement: Types, Formulas and Applications

A weir is a barrier built across an open channel with a precisely shaped opening (notch) through which all the flow passes. The three standard weir notch shapes each have different characteristics and flow formulas. Weirs are the most common open channel flow measurement device for clean liquids with no solids content.

▽ V-Notch Weir (Triangular)

The most accurate weir for low and medium flow rates. The triangular notch gives a high sensitivity at low flows because a small head increase produces a significant notch width increase.

Notch angles: 22.5°, 45°, 60°, 90° (most common), 120°

Q = (8/15) x Cd x tan(theta/2) x sqrt(2g) x H^2.5

For 90° V-notch (standard, Cd = 0.611):

Q = 1.38 x H^2.5 (m³/s)
Best for: Low flow, highest accuracy
⬜ Rectangular Weir (Francis)

Simple, robust, high-flow capacity. The rectangular notch passes much more water than a V-notch at the same head. Less sensitive at low flows but handles high-flow conditions reliably.

Types: Full-width (no end contractions) or contracted (with end contractions)

Q = (2/3) x Cd x L x sqrt(2g) x H^1.5

Francis formula (Cd = 0.623, contracted):

Q = 1.84 x (L - 0.1nH) x H^1.5
Best for: High flow, simple installation
🔷 Trapezoidal Weir (Cipolletti)

The Cipolletti weir uses side slopes of 1:4 (H:V) that compensate for the end contractions, giving a simpler flow formula than contracted rectangular weirs. Widely used in irrigation.

Side slope: 1 horizontal to 4 vertical on each side

Q = 1.859 x L x H^1.5 (m³/s)

Where L = bottom width of the notch

Best for: Irrigation, wide flow range

Flumes in Open Channel Flow Measurement: Parshall and Palmer-Bowlus

Flumes are hydraulic structures built into the channel floor rather than across it. Unlike weirs, flumes do not create a full dam. The channel narrows through the flume throat, accelerating the flow to critical depth. This makes flumes self-cleaning and suitable for liquids carrying suspended solids, making them the essential open channel flow measurement device for wastewater and sewage applications where weirs would clog.

🔻 Parshall Flume

The most widely used flume in wastewater treatment. Has a converging inlet section, a throat section and a diverging outlet. The throat is where critical flow occurs. Head is measured in the inlet section at a specific location upstream of the throat.

Sizes: 1 inch to 50 feet throat width. Each size has a unique flow formula.

Parshall flume formula (6-inch throat, typical):

Q = 2.06 x Ha^1.58 (m³/s, 6-inch flume)

Where Ha is the upstream head in metres at the standard measurement location.

Best for: Wastewater, sewage, solids-laden flows
🔷 Palmer-Bowlus Flume

Designed specifically for circular sewer pipes running partially full. The flume fits inside the pipe and creates a constriction that generates a measurable head upstream. Available in standard sizes matching common sewer pipe diameters.

Key advantage: Installs inside existing circular sewer pipes without major civil works. The circular inlet matches the pipe geometry for minimal disturbance.

Flow formula: Depends on pipe diameter : normalised tables provided by ISO 9826.

Best for: In-pipe sewer monitoring, round culverts
Never use a weir in wastewater or sewage applications. Suspended solids, rags and grit accumulate behind the weir crest, changing the effective notch geometry and making the flow formula inaccurate. Always specify a flume (Parshall or Palmer-Bowlus) for open channel flow measurement of wastewater and effluent streams. Critical Selection Rule : Weir vs Flume
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Level Sensors Used in Open Channel Flow Measurement

The weir or flume is just the primary element. To get a flow reading, the liquid head H must be converted to an electrical signal. Three types of level sensors are used, each connecting via 4-20 mA output to a flow computer or DCS.

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Ultrasonic Level Sensor

Most common. Non-contact. Measures time-of-flight of ultrasonic pulse from sensor to water surface and back. Mounted above the channel pointing downward. Automatically compensates for temperature. Output 4-20 mA to flow computer.

💧
Bubbler Level System

A constant air flow is bubbled through a tube submerged to the channel floor. The back-pressure in the tube equals the hydrostatic pressure of the water column. Excellent for sewers and channels with debris, foam or vapour that confuse ultrasonic sensors.

🔴
Pressure Transducer (Submersible)

A sealed pressure sensor submerged at the channel floor or weir stilling well. Measures hydrostatic pressure P = rho x g x H directly. Simple, reliable, low cost. Used when the channel is covered or ultrasonic mounting is impractical. Must correct for barometric pressure changes.

Open Channel Flow Measurement Device Selection Matrix

Device Clean Water Wastewater Low Flow High Flow
V-Notch Weir (90°) Excellent No Best Limited
Rectangular Weir Good No Poor Excellent
Trapezoidal (Cipolletti) Good No Moderate Good
Parshall Flume Good Excellent Good Good
Palmer-Bowlus Flume Moderate Excellent Good Moderate

Open Channel Flow Measurement Calculator: Weir Flow Rates

Enter the measured head H above the weir crest to calculate flow rate for each weir type. The calculator uses standard ISO 1438 formulas. The flow computer connected to your level sensor performs this calculation continuously and outputs the result as a 4-20 mA signal.

🌊
Open Channel Flow Calculator
V-notch weir · Rectangular weir · Parshall flume
Measured in stilling well 4-6x H upstream of weir
m
m
Full width of the rectangular notch opening
m
m
Width at bottom of trapezoid opening
m
Measured at standard location in inlet section
m
✔ Flow Calculation Result
Flow rate (m³/s)
Flow rate (L/s)
Flow rate (m³/h)
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Quick FAQs: Open Channel Flow Measurement

What is open channel flow measurement and how does it work?
Open channel flow measurement measures flow in channels with a free surface (rivers, canals, sewers) by creating a liquid head H above a weir or flume restriction. Flow rate is calculated from H using formulas such as Q = 1.38 x H^2.5 for a 90-degree V-notch weir.
When should I use a weir vs a flume for open channel flow measurement?
Use weirs for clean water with no suspended solids : they are highly accurate and simple to install. Use flumes (Parshall or Palmer-Bowlus) for wastewater, sewage or any flow carrying solids, because weirs collect debris behind the crest and give incorrect readings.
Which weir gives the best accuracy for low flow rates?
The 90-degree V-notch weir is best for low flows: its triangular shape means small head changes produce large notch width changes, giving excellent sensitivity. A rectangular weir produces very little head change at low flow.
Where exactly should I measure the head H in open channel flow measurement?
Head H is measured in a stilling well 4 to 6 times the maximum expected head upstream of the weir crest. Measuring closer causes drawdown error as the water surface accelerates before the restriction, giving false low readings.

External References

What we learn today

  • Open channel flow measurement uses a weir or flume to create a measurable liquid head H above a restriction. Flow rate Q = C x K x H^n : the exponent n is 2.5 for V-notch weirs, 1.5 for rectangular and trapezoidal weirs. Head H is always measured upstream at 4-6 times maximum H to avoid drawdown error. A level sensor (ultrasonic, bubbler or submersible pressure transducer) converts H to a 4-20 mA signal for the flow computer.
  • Five devices cover all applications: 90-degree V-notch weir (best for low flow, highest accuracy), rectangular weir (best for high flow, simple), Cipolletti trapezoidal weir (wide range, irrigation), Parshall flume (wastewater and sewage with solids), Palmer-Bowlus flume (in-pipe monitoring in circular sewers). Never use a weir in wastewater : solids accumulate behind the crest and invalidate the measurement.
  • Device selection by application: clean water low flow = V-notch weir. Clean water high flow = rectangular weir. Irrigation channels = Cipolletti. Wastewater treatment plant = Parshall flume. Existing circular sewer pipes = Palmer-Bowlus flume. The level sensor of choice for open channels is ultrasonic (non-contact, simple, temperature-compensated), with bubblers as backup for channels with foam or heavy vapour.
Open Channel Flow Measurement Weir Flow Measurement V-Notch Weir Rectangular Weir Parshall Flume Palmer-Bowlus Flume Cipolletti Weir Flume Flow Measurement Wastewater Flow ISO 1438 Hydraulic Structures Flow Instrumentation

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