A01G13/065

CANOPY TREATMENT SYSTEM

A canopy treatment system to treat plants is disclosed. In one implementation according to examples of the present disclosure, a canopy treatment system comprises a hot fluid generating system configured to heat a fluid, the hot fluid generating system including a canopy valve; and a canopy in fluid communication with the hot fluid generating system, the canopy defining a treatment region, the canopy valve of the hot fluid generating system selectively positionable to control fluid flow between the hot fluid generating system and the canopy.

Canopy treatment system

A canopy treatment system to treat plants is disclosed. In one implementation according to examples of the present disclosure, a method comprises moving a canopy treatment system proximate to a plant to be treated, the canopy treatment system including a hot fluid generating system and a canopy, the canopy defining a treatment region and in fluid communication with the hot fluid generating system. The method further comprises lowering the canopy relative to the hot fluid generating system to position the canopy around the plant with the plant within the treatment region of the canopy; and heating the plant within the canopy.

Canopy treatment system

A canopy treatment system to treat plants is disclosed. In one implementation according to examples of the present disclosure, a canopy treatment system comprises a hot fluid generating system configured to heat a fluid, the hot fluid generating system including a canopy valve; and a canopy in fluid communication with the hot fluid generating system, the canopy defining a treatment region, the canopy valve of the hot fluid generating system selectively positionable to control fluid flow between the hot fluid generating system and the canopy.

AUTONOMOUS MOBILE PLATFORM AND VARIABLE RATE IRRIGATION METHOD FOR PREVENTING FROST DAMAGE

A rover includes a base having wheels and a propulsion system coupled to the wheels to propel the rover around a field. A tower is coupled to the base and extends over the base. Sensors are set on the tower and the base and are configured to sense environmental conditions around the rover at different elevations. A computing system includes a processor and memory. The memory is configured to receive measured data from the sensors and determine an amount and manner of water to be dispensed on plant life in the field.

AUTONOMOUS MOBILE PLATFORM AND VARIABLE RATE IRRIGATION METHOD FOR PREVENTING FROST DAMAGE

A rover includes a base having wheels and a propulsion system coupled to the wheels to propel the rover around a field. A tower is coupled to the base and extends over the base. Sensors are set on the tower and the base and are configured to sense environmental conditions around the rover at different elevations. A computing system includes a processor and memory. The memory is configured to receive measured data from the sensors and determine an amount and manner of water to be dispensed on plant life in the field.

AUTONOMOUS MOBILE PLATFORM AND VARIABLE RATE IRRIGATION METHOD FOR PREVENTING FROST DAMAGE

A rover includes a base having wheels and a propulsion system coupled to the wheels to propel the rover around a field. A tower is coupled to the base and extends over the base. Sensors are set on the tower and the base and are configured to sense environmental conditions around the rover at different elevations. A computing system includes a processor and memory. The memory is configured to receive measured data from the sensors and determine an amount and manner of water to be dispensed on plant life in the field.