Flourish & Bloom

Uniformity leadership for consistent, aesthetically desirable year-round flowering ornamentals.

bloemteknik impact

What is it?

High-performance, dynamic lighting platform designed to enhance aesthetically desirable & consistent, year-round flowers.

How does it work?

Engineered to be application adaptable, improve uniformity and maximise PAR light-use efficiency within your facility.

led light beam

Baseline PPF output (µmol/s)

led light beam

Up to 2x PPF output (µmol/s) vs 1 kW HPS

What does this mean for my flowers?

Growers & academics agree that as a rule of thumb, a 1% increment in PPFD results in a 1% increase in yield of bulb and cut flowers¹. Improving the uniformity over the growing areas reduces supplementary PAR light deviation, benefitting plant quality and production consistency.

Existing

Conventional 1 kW HPS Toplight

Retrofit >PPFD

Bloem 1 kW Impact (Spectrum B7)

Optimised <Energy

Bloem 1 kW Impact (Spectrum B7)

Charlie Benson

Charlie Benson
Co-Founder and CTO

“Intensity uniformity is the consistency of total PAR light distributed over the growing area. This is typically measured at the crop canopy by the volume (%) of the grow area that falls within the specified tolerance of the PPFD setpoint.”

Using Bloem’s Wand Platform

The Bloemteknik Wireless Adaptive Network Delivery (Wand) platform provides advanced dynamic control for single and multi-channel grow lights.

Secure reliable scalable

Secure, Reliable & Scalable

Our highly secure mesh solution, with no single point of failure, supports over 30,000+ devices per network

Flexible Lighting

Flexible Lighting

Easily create zones, groups, light recipes, dimming schedules, DLI targets, and lighting scenes using our wireless control system with our LED grow lights

Closed loop system

Closed-Loop System

Wand acclimates LED grow light output to prevent negative effects from weather or environmental changes

Plant Centric Adaptability

Plant-Centric Adaptability

Designed to follow plant biology, Wand can adjust LED light output to support multiple dynamic lighting controls

Seamless Integration

Seamless Integration

Wand can be used as a standalone lighting control system or integrated with climate control systems via the Horticulture Lighting Protocol (HLP)

Optimised Performance

Preventive Maintenance

Wand continuously monitors power supply temperature, power draw, operating hours, and system responsiveness to detect potential issues before they impact performance. This proactive approach minimises unexpected downtime and maximises the lifespan of the entire lighting system.

Dynamic Lighting

Whether the grow areas require precise, plant-centric dynamic control or a straightforward daily schedule, Bloem’s Wand platform offers a flexible and tailored solution designed to meet the unique needs of your facility

Development Phase Shifting
Development Phase Shifting

Dynamic light adjustment for optimised plant growth stages

Energy Cost Fluctation
Energy Cost Fluctuation

Efficient energy distribution to balance cost and performance

Circadian Rhythm Steering
Circadian Rhythm Steering

Light modulation aligned with natural plant cycles

Artificial Daylength Extension
Artificial Daylength Extension

Extended illumination periods for enhanced productivity

Blue Light
400 - 500 nm

Supresses abnormal phenotypes which monochromatic red photons may otherwise induce

Stimulates the production of compounds influencing leaf colourisation

Increases desirable ornamental factors including compactness and leaf thickness

Green Light
500 - 600 nm

Green light promotes rooting which is associated with a higher accumulation of leaves in ornamental plants

Green light can influence flowering in both LDPs & SDPs, although their sensitivity varies among species and cultivars

Improved human visual quality for practical working environment, making it easier to detect pests, pathogens, and nutrient deficiencies

Red Light
600 - 700 nm

Increases chlorophyll & nutrients, enables the production of vegetation, encouraging budding and prolonging flowering

Can promote stretched, elongated, curled leaf characteristics and impair plasticity and photosynthesis

Photochromes are sensitive to wavelengths around 660nm which triggers shade-avoidance responses

Far Red Light
700 - 800 nm

Promote extension growth in flowers and ornamentals, influencing the size of leaves, length of stems and height

Using FR to expand leaves can decrease anthocyanin production which plays a significant role in colour formation of plant organs

Low R/FR ratios can elicit serious shade avoidance syndrome resulting in undesirable plant morphology

Plant Type

Bromelia

Chrysanthemums

Geraniums

Low Light Orchids
(Paphiopedilums & Phalaenopsis)

Medium Light Orchids
(Oncidum & Phragmipedium)

High Light Orchids
(Cattleya & Vandas)

Peace Lily
(Spathiphyllum Wallisii)

Zinneas

Anthurium

Chrysanthemums

Freesia

Gerbera

Lilies

Lisianthus

Roses

Tulip

Application

Potted Plants

Potted Plants

Potted Plants

Potted Plants

Potted Plants

Potted Plants

Potted Plants

Potted Plants

Cut Flowers

Cut Flowers

Cut Flowers

Cut Flowers

Cut Flowers

Cut Flowers

Cut Flowers

Cut Flowers

DLI (mol/m²/day)

4-8

4-10

10-15

4-6

6-12

12-20

8-12

8-12

6-8

4-10

6-8

6-8

6-8

10-15

15-25

4-6

PPFD (µmol/m²/s)

50-150

100-250

200-350

50-100

100-250

250-500

200-300

200-300

100-150

100-250

100-150

100-150

100-150

200-350

300-600

50-100

The quantity of photosynthetic active radiation (400 – 700nm) required is defined by the Daily Light Integral (DLI). DLI refers to the quantity of PAR the plant is exposed to within a single day (24-hour period). Each plant, including flowering ornamentals, have a minimum and maximum DLI to facilitate growth which varies by plant species, variety, and stage of development.

Typically, flowering ornamentals have a recommended DLI range between 8-16 mol/m²/day however this can vary drastically given the specific cultivars in production. The desired photosynthetic active radiation density (PPFD) can be calculated from the DLI target and photoperiod.

For example, using a long-day plant (LDP) photoperiod of 16 hours provides the following formulae:
8 mol/m²/day / 16 hours / 60 minutes / 60 seconds = 139 µmol/m²/s minimum PPFD
16 mol/m²/day / 16 hours / 60 minutes / 60 seconds = 278 µmol/m²/s maximum PPFD

Whilst using a short-day plant (SDP) photoperiod of 10 hours provides the following formulae:
8 mol/m²/day / 10 hours / 60 minutes / 60 seconds = 222 µmol/m²/s minimum PPFD
16 mol/m²/day / 10 hours / 60 minutes / 60 seconds = 444 µmol/m²/s maximum PPFD

The period of darkness required to trigger flowering is referred to as the critical-night length. Some LDPs such as the Iris, flower when nights last less than the critical-night length but are supressed if it were exceeded. In contrast some SDPs such as the chrysanthemum, flowers when nights are longer than the critical-night length and are supressed if shorter.

flowers greenhouse

“Typically, flowering ornamentals have a recommended DLI range between 8-16 mol/m²/day however this can vary drastically given the specific cultivars in production.”

Get the Full Story

To see the complete list of light wavelength effects on flowers, PPFD & photoperiods for different crop species and much more please download our floriculture lighting application guide.

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