Patent classifications
A01C1/02
Plant cultivation method and light treatment unit for increasing of the content of phytochemical
A plant cultivation method and light treatment unit for increasing the content of a phytochemical. The plant cultivation method includes: growing a plant by germinating a seed; increasing the content of resveratrol, which is a phytochemical, through UV treatment on the plant; and harvesting the plant. Here, UV treatment is performed by irradiating the plant with UV light emitted from an LED.
Plant cultivation method and light treatment unit for increasing of the content of phytochemical
A plant cultivation method and light treatment unit for increasing the content of a phytochemical. The plant cultivation method includes: growing a plant by germinating a seed; increasing the content of resveratrol, which is a phytochemical, through UV treatment on the plant; and harvesting the plant. Here, UV treatment is performed by irradiating the plant with UV light emitted from an LED.
PLANTING CHARACTERISTIC DETECTION AND CONTROL USING A SEED SENSOR
A seed sensor senses seeds on a row unit and generates a seed sensor signal. A number of planting characteristics, such as a seed orientation, seed slugging, delivery system wear, and seed abnormalities, can be detected based on the seed sensor signal. The planter can be controlled based on the detected planting characteristics.
Method of rapid generation-adding breeding of rice
The invention discloses a method of rapid generation-adding breeding of rice in the technical field of rice breeding, including soaking seeds of the rice, germination, seedlings cultivation, managing and regulating of the rice at the growth stage, and harvesting the rice. The managing and regulating the rice at the growth stage includes dynamic light quality and photoperiod control in vegetative growth period, heading period and pustulation period; growth period involves light environment regulation with the ratio of red light:blue light:white light of 0.8-1:0.8-1:1.0, photoperiod of 16-18 h; heading period involves light environment regulation with the ratio of red light:blue light:white light of 1-2:0.5-1:1, photoperiod of 12-13.5 h; and pustulation period includes light environment regulation with the ratio of red light:blue light:white light of 1-2:1:1, photoperiod of 16-18 h.
AUTOMATIC GERMINATION EQUIPMENT FOR OAT GRAINS
Automatic germination equipment for oat grains includes a plurality of germination accelerating tank bodies each of which is of a hollow structure, a first direction and a second direction are self-defined in each germination accelerating tank body, a plurality of leaching layers are fixedly arranged in each germination accelerating tank body in the first direction, and the leaching layers are fixedly installed on an inner side surface of the germination accelerating tank body; and a reciprocating switch valve device which includes a bottom valve and a rotating lead screw fixedly connected to the bottom valve, the bottom valve is fixedly connected to an outer side surface of the germination accelerating tank body in the first direction, and one end of the rotating lead screw away from the bottom valve passes through the leaching layers in the second direction and extends towards the interior of the germination accelerating tank body.
AUTOMATIC GERMINATION EQUIPMENT FOR OAT GRAINS
Automatic germination equipment for oat grains includes a plurality of germination accelerating tank bodies each of which is of a hollow structure, a first direction and a second direction are self-defined in each germination accelerating tank body, a plurality of leaching layers are fixedly arranged in each germination accelerating tank body in the first direction, and the leaching layers are fixedly installed on an inner side surface of the germination accelerating tank body; and a reciprocating switch valve device which includes a bottom valve and a rotating lead screw fixedly connected to the bottom valve, the bottom valve is fixedly connected to an outer side surface of the germination accelerating tank body in the first direction, and one end of the rotating lead screw away from the bottom valve passes through the leaching layers in the second direction and extends towards the interior of the germination accelerating tank body.
Auto Grow Zoysia Germinators
Auto Grow Zoysia Germinators are sealed planting containers that provide warm, moist growing conditions for set it and forget it zoysia seed germination. Planting containers are assembled with topsoil and seed, then covered with plastic, gray landscape fabric and sealer material.
Auto Grow Zoysia Germinators
Auto Grow Zoysia Germinators are sealed planting containers that provide warm, moist growing conditions for set it and forget it zoysia seed germination. Planting containers are assembled with topsoil and seed, then covered with plastic, gray landscape fabric and sealer material.
Method and apparatus for estimating a seed germination ability
An apparatus and method for estimating a germination ability of a seed includes a terahertz signal source for emitting a terahertz signal towards the seed, a detector for detecting at least part of the terahertz signal having interacted with the seed, a scanner for moving the support relative to the terahertz signal to provide a scan of the seed, a data processing device for forming an image data from the detected terahertz signal as obtained for a plurality of positions during the scan of the seed, and a decision support system for providing an estimate of the germination ability from the image data. In an embodiment, the terahertz signal source is arranged for emitting a continuous or pulse wave signal, and the detector is arranged for detecting an amplitude and a phase of the terahertz signal having interacted with the seed. A signal representing an outcome of the estimation may control a separator to separate seeds according to their estimated germination ability.
Method and apparatus for estimating a seed germination ability
An apparatus and method for estimating a germination ability of a seed includes a terahertz signal source for emitting a terahertz signal towards the seed, a detector for detecting at least part of the terahertz signal having interacted with the seed, a scanner for moving the support relative to the terahertz signal to provide a scan of the seed, a data processing device for forming an image data from the detected terahertz signal as obtained for a plurality of positions during the scan of the seed, and a decision support system for providing an estimate of the germination ability from the image data. In an embodiment, the terahertz signal source is arranged for emitting a continuous or pulse wave signal, and the detector is arranged for detecting an amplitude and a phase of the terahertz signal having interacted with the seed. A signal representing an outcome of the estimation may control a separator to separate seeds according to their estimated germination ability.