Engineering Energy management · Decarbonization · Clean technology

Engineering and
consulting, from
building optimization
to retrofit projects.

We work across commercial, multi-residential, institutional and industrial buildings: measuring how a building actually runs, quantifying the gap against design intent, scoping and designing the work that closes it, then verifying the savings afterwards, with the uncertainty stated alongside the number.

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What we do

Our seven
service lines.

Quwa Smart Services is an engineering consultancy serving commercial, multi-residential, institutional and industrial facilities. Audit, design, implementation oversight and verification are delivered by the same team.

Latest

News and updates.

Project films, programme deadlines and completed assessments.

Track record

More than ninety
buildings assessed.

More than fifty commercial and forty multi-residential buildings assessed through condition assessments, ASHRAE Level I–III audits, energy modelling and reserve fund analysis. A quarter of them went on to secure retrofit funding.

0+
Commercial buildings studied
0+
Multi-residential buildings studied
0M+ sq ft
Assessed under energy and carbon studies
$0M+
In grants and incentives secured
0+ MW
Of renewable energy supported
Mechanical room with chilled water headers and distribution pumps
Ageing rooftop packaged units on a commercial roof
Fouled fire-tube boiler tubes with heavy scale
Drone thermal image of a roof assembly and mechanical penthouse

Field work across central plants, rooftop equipment, boiler rooms and building envelopes: Calgary, Hamilton, Toronto and beyond.

Asset types
Trusted by
Where we work

Fourteen cities,
four provinces.

From Vancouver to Montréal, across British Columbia, Alberta, Ontario and Quebec. Office towers, retail plazas, housing co-operatives, manufacturing plants and data centres.

British ColumbiaAlberta OntarioQuebec
How we work

Our four-step
method.

We examine controls and sequences before equipment. A capital project scoped inside a building whose controls are misreporting gets sized against a load profile that is itself an artefact of the fault.

01

Measure

Clamp-on instruments, temperature loggers and twelve months of utility data. Nothing cut or drilled, and no capital request to establish what is happening.

02

Diagnose

Find the gap between design intent and how the building actually runs. It is usually a sequence, a schedule or a sensor, not a machine at the end of its life.

03

Quantify & fund

Energy, carbon and cost, in the format the funder scores. A quarter of the buildings we assess go on to secure retrofit funding.

04

Verify

Savings confirmed under IPMVP against a fitted baseline, with the confidence interval published beside the headline number.

Case study

444 5th Avenue SW,
Calgary.

A 23-storey Calgary office tower built in 1972, assessed for Aspen Properties across five studies under the BOMA Phase II program.

We found an outdoor air sensor frozen at 24 °C. Downstream of that single stuck reading: no economizer, no weather-responsive control, an air handler cooling supply air to 5 °C in August while floor units reheated it, and boilers holding 69 °C through a Calgary summer with nothing to heat.

Drone infrared thermography of the south facade beside the same view in visible light
Drone thermography against visible light. The dark banding is continuous thermal bridging at slab edges, invisible in the RGB frame beside it.
Two Trane screw chillers in the penthouse mechanical room
The penthouse plant. Both machines were found running at 100% around the clock, at any load.
1.54GJ/m²
Energy use intensity, 24% above target for comparable buildings
~1.0
Measured chiller COP against a 5.0–6.0 benchmark
5,522GJ
Projected annual savings across eight verified measures
25%
Of baseline energy, clear of the IPMVP Option C floor
Interactive model

Chiller coefficient
of performance.

Coefficient of performance is cooling delivered divided by power drawn. The model below runs the formula on the measurements from that building. Adjust the loop ΔT to see its effect on the result.

Our platform

Q-Peak: our demand response aggregation platform.

Q-Peak is our aggregator platform for the IESO Save on Energy Peak Performance Program. It forecasts the peak, dispatches the curtailment across the portfolio, proves the reduction against baseline, and settles the payment.

Next step

Start with twelve
months of utility
data.

Twelve months of utility bills and an afternoon in the mechanical room is usually enough to establish whether a building has a capital problem or a controls problem.