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Hidroponia Fotos, Manuales PDF, Forraje Verde Hidroponico FVH FAO, HHP FAO, Videos de Hidroponia y más

Mar 17, 2015

FOTOS DE HUERTOS CASEROS DE HIDROPONÍA EN PEQUEÑOS ESPACIOS

FOTOS DE HUERTOS CASEROS DE HIDROPONÍA EN PEQUEÑOS ESPÁCIOS
Los huertos caseros son la respuesta de la FAO para los problemas de seguridad alimentaria de los países en desarrollo. Con la aplicación del método de hidroponía popular, las personas toman las riendas de la producción de alimentos para su hogar y, en muchas ocasiones, a través del uso de cooperativas, se puede lograr colocar alimentos en los mercados locales .

Huertos de hidroponia en patios pequeños y entre dos casas


Técnica de cultivo en dos niveles cuando los espacios son pequeños. Lo único que hay que asegurar es que toda la superficie reciba al menos 6 horas de luz de sol


Cultivo de pared hidropónico para espacios pequeños

Cultivo hidropónico en canal horizontal en un balcón


Cultivo hidropónico en bolsas

Hydroponics




Hydroponics is a subset of hydroculture and is a method of growing plants using mineral nutrient solutions, in water, without soil. Terrestrial plants may be grown with their roots in the mineral nutrient solution only or in an inert medium, such as perlite, gravel, mineral wool, expanded clay or coconut husk.
Researchers discovered in the 18th century that plants absorb essential mineral nutrients as inorganic ions in water. In natural conditions, soil acts as a mineral nutrient reservoir but the soil itself is not essential to plant growth. When the mineral nutrients in the soil dissolve in water, plant roots are able to absorb them. When the required mineral nutrients are introduced into a plant's water supply artificially, soil is no longer required for the plant to thrive. Almost any terrestrial plant will grow with hydroponics. Hydroponics is also a standard technique in biology research and teaching.

History

The earliest published work on growing terrestrial plants without soil was the 1627 book Sylva Sylvarum by Francis Bacon, printed a year after his death. Water culture became a popular research technique after that. In 1699,John Woodward published his water culture experiments with spearmint. He found that plants in less-pure water sources grew better than plants in distilled water. By 1842, a list of nine elements believed to be essential to plant growth had been compiled, and the discoveries of the German botanists Julius von Sachs and Wilhelm Knop, in the years 1859-65, resulted in a development of the technique of soilless cultivation.[1] Growth of terrestrial plants without soil in mineral nutrient solutions was called solution culture. It quickly became a standard research and teaching technique and is still widely used today. Solution culture is now considered a type of hydroponics where there is no inert medium.
In 1929, William Frederick Gericke of the University of California at Berkeley began publicly promoting that solution culture be used for agricultural crop production.[2] He first termed it aquaculture but later found thataquaculture was already applied to culture of aquatic organisms. Gericke created a sensation by growing tomato vines twenty-five feet high in his back yard in mineral nutrient solutions rather than soil.[3] By analogy with theancient Greek term for agriculture, geoponics, the science of cultivating the earth, Gericke coined the term hydroponics in 1937 (although he asserts that the term was suggested by W. A. Setchell, of the University of California) for the culture of plants in water (from the Greek hydro-, "water", and ponos, "labour").[1]
Reports of Gericke's work and his claims that hydroponics would revolutionize plant agriculture prompted a huge number of requests for further information. Gericke refused to reveal his secrets claiming he had done the work at home on his own time. This refusal eventually resulted in his leaving the University of California. In 1940, he wrote the book, Complete Guide to Soilless Gardening.
Two other plant nutritionists at the University of California were asked to research Gericke's claims. Dennis R. Hoagland[4] and Daniel I. Arnon[5] wrote a classic 1938 agricultural bulletin, The Water Culture Method for Growing Plants Without Soil,[6] debunking the exaggerated claims made about hydroponics. Hoagland and Arnon found that hydroponic crop yields were no better than crop yields with good-quality soils. Crop yields were ultimately limited by factors other than mineral nutrients, especially light. This research, however, overlooked the fact that hydroponics has other advantages including the fact that the roots of the plant have constant access to oxygen and that the plants have access to as much or as little water as they need. This is important as one of the most common errors when growing is over- and under- watering; and hydroponics prevents this from occurring as large amounts of water can be made available to the plant and any water not used, drained away, recirculated, or actively aerated, eliminating anoxic conditions, which drown root systems in soil. In soil, a grower needs to be very experienced to know exactly how much water to feed the plant. Too much and the plant will not be able to access oxygen; too little and the plant will lose the ability to transport nutrients, which are typically moved into the roots while in solution. These two researchers developed several formulas for mineral nutrient solutions, known as Hoagland solution. Modified Hoagland solutions are still used today.
One of the early successes of hydroponics occurred on Wake Island, a rocky atoll in the Pacific Ocean used as a refuelling stop for Pan American Airlines. Hydroponics was used there in the 1930s to grow vegetables for the passengers. Hydroponics was a necessity on Wake Island because there was no soil, and it was prohibitively expensive to airlift in fresh vegetables.
In the 1960s, Allen Cooper of England developed the Nutrient film technique. The Land Pavilion at Walt Disney World's EPCOT Center opened in 1982 and prominently features a variety of hydroponic techniques. In recent decades, NASA has done extensive hydroponic research for their Controlled Ecological Life Support System or CELSS. Hydroponics intended to take place on Mars are using LED lighting to grow in different color spectrum with much less heat.

Origin

Soilless culture

Gericke originally defined hydroponics as crop growth in mineral nutrient solutions. Hydroponics is a subset of soilless culture. Many types of soilless culture do not use the mineral nutrient solutions required for hydroponics.
Plants that are not traditionally grown in a climate would be possible to grow using a controlled environment system like hydroponics. NASA has also looked to utilize hydroponics in the space program. Ray Wheeler, plant physiologist at Kennedy Space Center’s Space Life Science Lab, believes that hydroponics will create advances within space travel. He terms this as a bioregenerative life support system.[7]

Advantages and disadvantages

Some of the reasons why hydroponics is being adapted around the world for food production are the following:

Advantages

  • No soil is needed for hydroponics
  • The water stays in the system and can be reused - thus, lower water costs
  • It is possible to control the nutrition levels in their entirety - thus, lower nutrition costs
  • No nutrition pollution is released into the environment because of the controlled system
  • Stable and high yields
  • Pests and diseases are easier to get rid of than in soil because of the container's mobility
  • It is easier to harvest
  • No pesticide damage
Today, hydroponics is an established branch of agronomy. Progress has been rapid, and results obtained in various countries have proved it to be thoroughly practical and to have very definite advantages over conventional methods of horticulture.
There are two chief merits of the soil-less cultivation of plants. First, hydroponics may potentially produce much higher crop yields. Also, hydroponics can be used in places where in-ground agriculture or gardening are not possible.

Disadvantages

Without soil as a buffer, any failure to the hydroponic system leads to rapid plant death. Other disadvantages include pathogen attacks such as damp-off due to Verticillium wilt caused by the high moisture levels associated with hydroponics and over watering of soil based plants. Also, many hydroponic plants require different fertilizers and containment systems.[8]



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References

  1. a b Douglas, James S., Hydroponics, 5th ed. Bombay: Oxford UP, 1975. 1-3
  2. ^ G. Thiyagarajan, R. Umadevi & K. Ramesh, "Hydroponics," Science Tech Entrepreneur, (January 2007), Water Technology Centre, Tamil Nadu Agricultural University, Coimbatore, Tamil Nadu 641 003, India.
  3. ^ Bambi Turner, "How Hydroponics Works," HowStuffWorks.com. Retrieved: 29-05-2012
  4. ^ [1][dead link]
  5. ^ [2][dead link]
  6. ^ The Water Culture Method for Growing Plants Without Soil[dead link]
  7. ^ Anna Heiney, "Farming for the Future", nasa.gov, 8-27-04
  8. ^ J. Winterborne "Hydroponics: Indoor Horticulture," (Pukka Press, 2005), p. 113.

Aug 1, 2014

Cultivo Hidropónico en Sistema de Manga Horizontal de Pared - Horizontal Sleeve Hydroponic Culture

El sistema de manga horizontal es una forma fácil de hacer hidroponía en balcones y azoteas, así como en las paredes de las casas en aquellos lugares en que sabemos las plantas van a recibir al menos 6 horas de sol.

A Horizontal Sleeve Hydroponic culture is an easy way to grow plants on balconies and/or walls that we know are going to be receiving, at least, six hours of direct sunlight.


Vista en detalle de la forma de hacer cultivos hidropónicos en balcones, ventanas o terrazas utilizando un a manga de plástico horizontal

You can see in detail that it is a simple DIY plastic sleeve with the right substrate that is then anchored to a wall with cordage.

ESQUEMA DEL SISTEMA DE MANGA HORIZONTAL HIDROPÓNICO

EXPLANATION OF THE HORIZONTAL SLEEVE HYDROPONIC SYSTEM





PASOS: STEPS:

Paso 1: Corte 4 x 1,2 metros de lámina de plástico plegada sobre el eje longitudinal (el ancho queda de 60 cm.

Step 1: Cut plastic sheets of 4m by 1,2m and fold in half making a 4m by 60 cm double sheet

Paso 2: Corte hilos resistentes y haga cuerdas con doble hilo anudando cada 50 cm para tener más resistencia (9 metros para tener 4,5 mts al final)

Step 2: Cut 9 meters of any kind of tough synthetic string and fold in half (4,5 meters and knot it every 50 cm so that it makes a single braided string. (this step is repeated twice so you have strings for both sides)

Paso 3: Pase los hilos por los bordes longitudinales de las láminas como si fuera a coserlas juntas (para eso debe o abrir agujeros o usar una aguja adecuada)

Step 3: Stitch the longitudinal (long) borders of the sheets. There are two ways to do this, with pre made holes or with a large needle.

Paso 4: Haga una especie de "hamaca" con los hilos de sostén

Step 4: Make a kind of hammock with the strings of both ends of the sheet

Paso 5: Cuelgue de 2 clavos y llene de sustrato para cultivo hidropónico (no tierra) e irrigue con las soluciones adecuadas

Step 5: Hang on the wall using nails or hooks. Fill with hydroponic substrate and irrigate with the appropriate solutions.

Paso 6: Trasplante sus plántulas que provienen de los almácigos

Step 6: Transplant your seedling from the nursery to your horizontal sleeve.

Jul 30, 2014

Fotos de almácigos hidropónicos - Pictures and images of hydroponic seedlings (nursery)

 Almácigos con pequeñas plántulas que pronto serán transplantadas a sus camas de hidroponía

Seedling (nursery) for hydroponics



Almácigos con pequeñas plántulas que pronto serán transplantadas a sus mesas de hidroponía con detalle de los surcos que permiten la buena germinación de las semillas

Detail of the furrows, channels in a nursery





Almaciguera con plántulas que van a ser transplantadas

Seedlings ready for transplantation



Ver más imágenes y fotos de hidroponía, cultivos, forraje, contenedores, sistemas, etc.
Watch more pictures of Hydroponics

Fotos de contenedores para hidroponía - Pictures of containers for hydroponics

Contenedores para hacer cultivos hidropónicos:


Los contenedores de hidroponía pueden ser cualquier tipo de pote, frasco o incluso material de desecho capaz de contener agua y de contener el sustrato, con un volumen adecuado para el crecimiento de la planta que queremos cultivar y cuyas paredes no se vayan a corroer, descomponer o producir sustancias tóxicas.

Containers for Hydroponic Cultures:

A container for hydroponic cultures can be made with any kind of pot, bucket, vase, etc. of any material that can contain water and substrate with an appropriate volume to grow the specific hydroponic plant we want. The condition is that it should not corrode, decompose or exudate toxic chemicals.


Ejemplos de contenedores para hidroponía

Example Hydroponic containers

Tubos de PVC convertidos en sistemas de raíz flotante hidropónico
PVC pipes converted to hydroponic floating root system

Tubos de PVC convertidos en sistemas de raíz flotante hidropónico PVC pipes converted to hydroponic floating root system


Cultivo hidropónico en bolsas plásticas negras
Black pastic bag hydroponic cultures



Cultivo hidropónico en bolsas plásticas negras con sistema de manga vertical
Black pastic bag hydroponic cultures in a vertical sleeve system


Mesas de madera cubierta con plástico para hacer cultivos hidropónicos
Wooden table covered with plastic sheet for a hydroponic culture


Lámina canalada de techo para cultivos hidropónicos NFT
Channel roofing for NFT hydroponics


Cauchos viejos (ahora cauchos de hidroponía)
Old tires for hydroponics


Contenedores de pintura (ahora de hidroponía)
Old paint buckets (no lead based paints) for hydroponics


Lo que era una bandeja ahora es un cultivo de hidroponía
Tray before, hydroponic container now!


Contenedores plásticos de yogurt que son usados para la hidroponía
Yogurt containers


Detalle de contenedores plásticos de yogurt que son usados para la hidroponía (casi cualquier cosa que pueda contener agua puede servir para la hidroponía)
Yogurt containers; if they can contain water and media, then they can be used for hydroponics


Bandejas de desecho usadas para Forraje Verde Hidropónico
Half of a plastic barrel as hydroponic green fodder container

Estantes reciclados como bandejas de forraje hidropónico
Recycled shelf trays for green fodder


Baldes para sistema de irrigación por gravedad
Buckets in gravity fed system





Hydroponics Images: Nutrition Film Technique

  • Channel Roofing. This will be the base of the project
  • Water pump ("P") provides the continous flow of nutrients
  • Hoses and pipes (Violet and brown tubes)
  • Nutrient tank ("T")
NFT Hydroponics system

From the tank the nutrient solution is pumped to the channel roofing an it rises the level just enough to reach the roots of the plants
NFT Hydroponics system

Then you cover the whole channle roofing with a polystyrene sheet with holes big enough for holding the plant with its sponge
NFT Hydroponics system

The plant is put inside a sponge that has a slit for its stem in order to keep it fixed
NFT Hydroponics system



When you put the plant in the system, only the roots are in contact with the solution.


Fotos de Invernaderos Hidropónicos - Hydroponic Greenhouses

Un invernadero (o invernáculo

es una construcción de vidrio o plástico en la que se cultivan plantas, a mayor temperatura que en el exterior. En la jardinería antigua española, el invernadero se llamaba estufa fría.
Aprovecha el efecto producido por la radiación solar que, al atravesar un vidrio u otro material traslúcido, calienta los objetos que hay detrás; estos, a su vez, emiten radiación con una longitud de onda mayor que la solar (radiación infrarroja). El cristal usado para un invernadero trabaja como medio selectivo de la transmisión para diversas frecuencias espectrales, y su efecto es atrapar energía dentro del invernadero, que calienta el ambiente interior. Esto puede ser demostrada abriendo una ventana pequeña cerca de la azotea de un invernadero: la temperatura cae considerablemente (Fuente: Wikipedia)

greenhouse (also called a glasshouse)

It is a building or complex in which plants are grown. These structures range in size from small sheds to industrial-sized buildings. A miniature greenhouse is known as a cold frame.
Commercial glass greenhouses are often high tech production facilities for vegetables or flowers. The glass greenhouses are filled with equipment like screening installations, heating, cooling, lighting and also may be automatically controlled by a computer to maximize potential growth.
A greenhouse is a structural building with different types of covering materials, such as a glass or plastic roof and frequently glass or plastic walls; it heats up because incoming visible sunshine is absorbed inside the structure. Air warmed by the heat from warmed interior surfaces is retained in the building by the roof and wall; the air that is warmed near the ground is prevented from rising indefinitely and flowing away. (Source: Wikipedia) 


Foto de Invernadero hidropónico

Picture of a Hydroponic greenhouse

Invernadero hidroponico-Hydroponic greenhouse


Foto o imagen de invernadero con cultivo hidropónico de raíz flotante en tubos de PVC

Picture of a greenhouse with PVC pipe floating root hydroponic lettuce

Foto de Invernadero con sistema hidroponico de raíz flotante en tubos de PVC / PVC pipe floating root hydroponics


 Foto o imagen de invernadero con cultivo hidropónico en manga vertical

 Picture of a greenhouse with vertical sleeve hydroponic system

 Foto o imagen de invernadero con cultivo hidropónico en manga vertical/ Picture of a greenhouse with vertical sleeve hydroponic system


 Foto o imagen de invernadero con cultivo hidropónico en mesas de madera forrada con plástico

Picture of a greenhouse with plastic covered wooden tables with hydroponic lettuce

 Foto o imagen de invernadero con cultivo hidropónico en mesas de madera forrada con plástico Picture of a greenhouse with plastic covered wooden tables with hydroponic lettuce


  Foto o imagen de invernadero con cultivo hidropónico en mangas verticales.

 Picture of a greenhouse with plastic bag vertical sleeves for hydroponics

Foto o imagen de invernadero con cultivo hidropónico en mangas verticales. Picture of a greenhouse with plastic bag vertical sleeves for hydroponics


 Foto o imagen de invernadero con cultivo hidropónico en mesas de madera

 Picture of a greenhouse with wooden tables with hydroponic culture

 Foto o imagen de invernadero con cultivo hidropónico en mesas de madera/ Picture of a greenhouse with wooden tables with hydroponic culture


 Foto o imagen de invernadero con bandejas de cultivo hidropónico sobre el suelo

Picture of a greenhouse with trays of hydroponic culture placed directly over the soil

Foto o imagen de invernadero con bandejas de cultivo hidropónico sobre el suelo/ Picture of a greenhouse with trays of hydroponic culture placed directly over the soil


 Foto o imagen de invernadero con mesas de madera cubiertas de plástico en espera del sustrato de cultivo hidropónico

Picture of a greenhouse with plastic covered wooden trays for hydroponic culture before adding culture media



Ver más imágenes y fotos de hidroponía, cultivos, forraje, contenedores, sistemas, etc.
Watch more pictures of Hydroponics

Jul 29, 2014

Ejemplos de utilización del FVH en alimentación animal

MANUAL FAO DE FORRAJE VERDE HIDROPÓNICO FVH

Ejemplos de utilización del FVH en alimentación animal

Los usos del FVH son diversos pudiéndose utilizar como alimento de vacas lecheras (Fotos 6 y 7) ; caballos (Foto 8); ganado de carne; terneros; gallinas ponedoras (Foto 9); pollos; cerdos; conejos (Fotos 10 y 11) y cuyes. El cuadro 4 brinda información indicativa de las dosis en que puede ser usado el FVH en diversas especies de animales, siendo necesaria aún mayor investigación para ajustar los consumos diarios en función del peso vivo del animal, raza, y estado fisiológico o reproductivo.

vacas en México comiendo forraje verde hidroponico


VACAS LECHERAS EN CHILE COMIENDO FORRAJE


Caballos de paso comiendo forraje verde hidroponico

Gallinas ponedoras comiendo forraje

Conejos de carne comiendo forraje

En el caso de conejos, ensayos de campo realizados por grupos de productores de la localidad de Rincón de la Bolsa (Uruguay), indicaron que los conejos en etapa de engorde aceptan sin dificultad entre 280 y 400 gramos de FVH/día y obtenían el peso de faena a los 72 o 75 días en forma similar a los conejos alimentados exclusivamente con ración balanceada. Las madres en lactancia y los reproductores pueden llegar a ingerir un promedio de 500 gramos por día lo que indica que en la especie cunícola se puede suministrar hasta un 8 a 10 % de su peso vivo en FVH sin consecuencias negativas.




Cuadro N° 4. Dosis de FVH recomendadas según especie animal
Especie AnimalDosis de FVH kg por cada 100 kg de Peso Vivo.Observaciones

Vaca Lechera
1 – 2
Suplementar con paja de Cebada y otras fibras.
Vacas Secas0,5
Suplementar con fibra de buena calidad.

Vacunos de Carne
0,5 – 2Suplementar con fibra normal.

Cerdos
2
Crecen más rápido y se reproducen mejor.

Aves

25 kg de FVH/100 kilos de alimento seco.
Mejoran el factor de conversión.

Caballos
1
Agregar fibra y comida completa. Mejoran performance en caballos de carrera, paso y tiro.
Ovejas 1 – 2Agregar fibra.

Conejos 
0,5 – 2 (*)
Suplementar con fibra y balanceados.
Fuentes: Less, 1983; Pérez, 1987; Bravo, 1988; Sánchez, 1997; Arano, 1998.

( *=conejos en engorde aceptaron hasta 180-300 g FVH/día (10-12% del peso vivo); ingesta de las madres en lactancia= hasta 500 g FVH/día.)


Conejos comiendo forraje verde hidropónico


Siguiente: Instalaciones para cultivo de forraje verde hidropónico