Work/Case study

Portable Sun extreme-output lighting demonstrator

A technology investor needed a high-output portable light to market a new lighting brand. Zambeel developed the prototype around a 100,000-lumen design target, balancing luminous efficacy, output density, thermal performance, battery mass and safe demonstration use.

Conceptual render of a wide, high-density LED lighting demonstrator with integrated cooling, controls and removable reflector samples
Conceptual visual representing the engineering problem and product type. It does not depict the client prototype or Zambeel’s original design.
Client contextInvestor-backed product venture
EngagementProduct development
DeliveryPrototype in 60 days
OutcomeSuccessful demonstrations at multiple events
Engagement routeDevelop

Zambeel owned the coupled optical, thermal, power, control and prototype work required to deliver the demonstrator.

How engagements work

Extreme output mattered only if the device remained portable, controllable and safe to demonstrate.

The client was preparing a new premium lighting brand and wanted a high-impact demonstrator ready for a marketing event. The brief set a 100,000-lumen target while asking Zambeel to find a workable balance between light intensity, operating time, heat and total weight.

Luminous efficacy and output density

Lumens per watt determined electrical efficiency, while luminous flux per unit emitter area determined whether the target output could fit into a device that could still be carried and aimed.

Short fixed programme

The demonstrator had to be designed, manufactured, integrated and tested within two months so it could take part in the planned event.

The engineering questionHow could a very high concentration of electrical and optical power be packaged into a portable demonstrator without allowing temperature, battery mass or operator risk to make it unusable?

The LEDs, thermal plate, battery and control strategy were developed as one coupled system.

Increasing any one performance figure affected the others. Zambeel iterated the physical architecture around the peak demonstration condition and a lower-power operating mode suitable for repeated public use.

Optics

Dense LED arrangement

The emitter layout was developed around power efficiency and output per unit area while retaining a manufacturable assembly.

Thermal

Channel-cooled plate

A thin, wide aluminium heat sink used internal forced-air channels to spread and remove heat without allowing the plate to warp.

Power

Managed operating modes

Battery capacity and output modes were coordinated to support both peak illumination and longer routine demonstrations.

Safety

Active protection

Temperature sensing, automatic dimming and controlled peak-mode access reduced the risk of misuse during events.

The heat sink had to remain thin and wide while heating and cooling uniformly.

Local hot spots or uneven cooling could reduce LED life and distort the plate. Zambeel developed a two-layer aluminium heat sink with internal air channels, manufactured through a combination of CNC machining and EDM before the layers were assembled.

Analysis

Thermal simulation

Iterations examined temperature distribution, airflow and the relationship between plate thickness, channel geometry and sustained operating conditions.

Development

Instrumented testing

An array of contact temperature sensors was used during development, supported by non-contact measurements and repeated physical tests.

Final system

Temperature monitoring

The delivered product featured temperature sensors at key locations across the plate, allowing its controller to respond to actual thermal behaviour.

Peak performance was separated from the mode people would use throughout an event.

The final prototype weighed 7 kg. It could operate at peak output for approximately one minute, while its normal demonstration mode ran for about 15 minutes at roughly one-quarter to one-fifth of full power.

Temperature-proportional dimming

Output reduced progressively as measured temperature approached the operating limit instead of relying only on a binary thermal shutdown.

Energy-aware control

Remaining battery capacity informed the available operating behaviour, helping the demonstration team manage repeated use.

Comprehensive testing

Electrical, thermal, mechanical and functional testing was carried out before delivery, including repeated operation under demonstration conditions.

Claim boundaryThe 100,000-lumen figure was calculated from the installed LED specifications. Beam behaviour was physically tested, but the total luminous output was not independently verified by calibrated photometry.

A later brief required the broad emitter plate to produce a much narrower beam.

A single lens large enough for the complete plate would have been impractical. Zambeel instead developed separate reflector geometries for LED clusters positioned at different distances from the centre, directing their outputs into one approximately 30-degree beam.

Cluster-specific geometry

Reflector angles varied across the plate so light from different positions converged into the intended common beam rather than diverging as separate flood beams.

Heat-resistant construction

The custom reflectors combined carbon-fibre-reinforced nylon outer bodies with silvered reflective interiors and accommodated collimating lenses within the available space.

Physical beam validation

The completed modification was measured using alignment methods employed for automotive headlamps and then demonstrated successfully at the client’s event.

The client received a working brand demonstrator on time, then returned to extend its optical performance.

The first prototype was completed in two months and used successfully at the planned marketing event. It continued to operate at later events.

The second engagement converted the existing broad light source into a narrower, measured beam without replacing the original thermal and power platform.

Together, the projects demonstrated Zambeel’s ability to turn an ambitious performance target into a testable physical system, then solve a later constraint through purpose-built optics and manufacturing methods.

Applied development across optics, heat, power, controls and prototype manufacture.

The work moved between analytical design and physical iteration, with each discipline constrained by the same portable enclosure and event deadline.

Optical Engineering

Emitter density, collimation, cluster reflector geometry, beam formation and physical alignment measurements.

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Thermal Engineering

Heat-transfer simulation, internal air-channel design, temperature instrumentation and operating-envelope validation.

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Electrical and Embedded Controls

Power architecture, temperature-proportional dimming, battery-aware operation and protected demonstration modes.

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Prototype Manufacturing

CNC and EDM heat-sink manufacture, composite reflector production, silvered surfaces, integration and comprehensive testing.

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Other programmes requiring multidisciplinary engineering around an unusual physical constraint.

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