Showing posts with label Agroecological production. Show all posts
Showing posts with label Agroecological production. Show all posts

Semi-Arid Lettuce Growth: Hairy Woodrose & Carnauba Straw Mix | InformativeBD

Mixture of hairy woodrose (Merremia aegyptia L.) with carnauba straw (Copernicia prunifera) in the productivity of lettuce in the semi-arid region of Brazil

Geovanna Alicia Dantas Gomes, Paulo César Ferreira Linhares, Karen Geovana da Silva Carlos, Roberto Pequeno de Sousa, Janilson Pinheiro de Assis, Luiz João Rebouças de Souza, Ana Patricia Silva Maia, Luciane Karine Guedes de Oliveira, Maria Elisa da Costa Souza, Walter Rodrigues Martins, Eudes de Almeida Cardoso, and Hiago Alves Moreira, from the different institute of the Brazil. wrote a research article about, Semi-Arid Lettuce Growth: Hairy Woodrose & Carnauba Straw Mix, entitled, “Mixture of hairy woodrose (Merremia aegyptia L.) with carnauba straw (Copernicia prunifera) in the productivity of lettuce in the semi-arid region of Brazil”. This research paper published by the International Journal of Agronomy and Agricultural Research | IJAAR. an open access scholarly research journal on Agronomy under the affiliation of the International Network For Natural Sciences | INNSpub. an open access multidisciplinary research journal publisher.

Abstract

The use of mixtures of organic fertilizers present in the cultivation areas is of paramount importance for farmers who produce in the family farming system, in this sense, the objective was to study the mixture of hairy woodrose (Merremia aegyptia L.) with carnauba straw (Copernicia prunifera) in the productivity of lettuce in the semi-arid region from Brazil. The experiment was carried out in a greenhouse in the experimental area of the Department of Agronomic and Forestry Sciences. The experiment was carried out in a completely randomized design in a 5 x 2 factorial scheme, with three replications. The first factor consisted of five amounts of the mixture of jitirana with carnauba straw (0.0; 1.5; 3.0; 4.5 and 6.0kg m-2 of area), and the second factor for the forms of application to the soil (embedded and cover). The lettuce cultivar planted was crespa, which is widely sold in the semi-arid region of Brazil. The evaluated characteristics were: Plant height, diameter, number of leaves, lettuce production and dry mass. The research results showed that the amount of 4.5kg m contributed to the increase of the evaluated characteristics, with values of 115 and 11.97g plant-1. The use of a mixture of organic fertilizers (hairy woodrose and carnauba straw) was extremely effective in the production of vegetable crops, bringing agronomic advantages to the producer.

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Read more : Preserving Kalinga's Heirloom Corn Varieties | InformativeBD

Introduction

Aiming at an agroecological production, many researchers and farmers seek a sustainable and diversified agriculture with systems of use with low chemical inputs (Altiere, 2002). According to Linhares et al. (2018) the use of organic sources in the region of Mossoró, RN, Brazil is of great importance for vegetable growers, with manure (beef, goat and poultry) as inputs, however, the dependence on these sources contributes to the increase of production costs, as farmers do not always have these resources available on their properties. 

Aiming at agroecological alternatives, many researchers have carried out research with farmers who seek sustainable agriculture with diversified systems with low use of chemical inputs (Altieri, 2002), which is of great value to farmers who work in the organic agriculture system. In these areas, where various vegetables are grown, lettuce (Lactuca sativum L.) is an annual herbaceous plant, originating in the Mediterranean, with a small, unbranched stem, to which the leaves attach (Santos et al., 2011) , being the most important leafy vegetable in the diet of the Brazilian people, consumed as a salad (Yuri et al., 2006). 

In the semi-arid region, organic fertilization is widely used in the production of lettuce (Linhares et al., 2022). The amount to be used depends on the quality of the available fertilizer and local conditions, soil, climate and management (Freire et al., 2013). However, when green manure is applied to the soil, it provides ideal edaphic conditions for greater vegetable production, given the productive potential of phytomass and nitrogen concentration of spontaneous species from the semi-arid region, compatible with legumes, such as hairy woodrose (Merremia aegyptia L.) (Linhares et al., 2021).

Mixture of hairy woodrose (Merremia aegyptia L.) with carnauba straw (Copernicia prunifera) in the productivity of lettuce in the semi-arid region of Brazil

This species presents green and dry phytomass production in the order of 40000 and 6000kg ha-1, respectively, with an average nitrogen content of 23.0g kg-1 and a carbon-nitrogen ratio of 23/1, being quite prominent during the rainy season in the semiarid region and found in the cultivation areas of farmers who work in the production of vegetables in an organic system in the region of Mossoró, RN, Brazil (Linhares et al., 2021). 

Another species that is important in terms of use as an organic fertilizer is the carnauba tree (Copernicia prunifera L.), which occurs in the semi-arid region and is used by farmers in the production of vegetable crops (Linhares et al., 2014). 

Several scientific studies have shown the use of alternative organic sources in the semi-arid region to meet the nutritional needs of vegetable crops, such as coriander (Linhares et al., 2018a; Linhares et al., 2018b; Linhares et al., 2014a and Linhares et al., 2012), lettuce (Linhares 2009) carrot (Linhares et al., 2014b) and radish (Linhares et al., 2013).

In this sense, it is extremely important to use alternative organic sources that provide satisfactory edaphic conditions for the development of vegetable crops. Thus, the objective was to evaluate the mixture of hairy woodrose (Merremia aegyptia L.) with carnauba straw in the productivity of lettuce in the semi-arid region of Brazil.

Reference

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Carmo Filho F, Oliveira OF. 1995. Mossoró: um município do semiárido nordestino, caracterização climática e aspecto florístico. Mossoró: ESAM, (Coleção Mossoroense, Série B) 62p.

Empresa Brasileira de Pesquisa Agropecuária- EMBRAPA. 2018. Sistema brasileiro de classificação de solos. 2nd ed. Rio de Janeiro: Embrapa p.306.

Freire LR, Balieiro FC, Zonta E. 2013. Manual de calagem e adubação do Rio de Janeiro. Seropédica: Editora Universidade Rural 430p.

Kronka SN, Banzato DA. 1995. (Estat) system for statistical analysis 2. 3. ed. Jaboticabal: Funep 243 p.

Linhares PCF, Maracajá PB, Sousa RP, Assis JP. 2022. Adubação verde com flor-de-seda {Calotropis procera (Aiton) W. T. Aiton} em culturas olerícolas na região semiárida [livro eletrônico]: In: Linhares PCF, Maracajá PB, Sousa RP, Assis JP, Alves LS, Silva NV, Medeiros AC, Gomes GAD. Aplicação da flor-de-seda {Calotropis procera (Aiton) W. T. Aiton} como adubo verde em hortaliças folhosas (coentro, rúcula e alface). Nova Xavantina, MT: Ed. Pantanal. 96p. Cap. 2, p.29-40. https://doi.org /10.46420

Linhares PCF, Maracajá PB, Liberalino Filho J, Assis JP, Sousa RP, Medeiros AC. 2021. Jitirana (Merremia aegyptia L. Urban) [livro eletrônico]: Potencialidade de uso como espécie espontânea do semiárido na adubação verde de hortaliças. In: Linhares PCF, Cunha LMM, Silva NV, Neves AM, Medeiros BBM and Paiva AC. Fitomassa verde e seca, teores e acúmulo de macronutrientes da jitirana (Merremia aegyptia L. Urban) em diferentes estádios fenológicos- Nova Xavantina, MT: Ed. Pantanal. 96p. Cap. 2, p.24-45. https://doi.org/ 10.46420 /9786588319901

Linhares PCF, Assis JP, Sousa RP, Sá JR, Pereira MFS, Ramalho WB, Silva RIG, Silva RA, Pereira KLV. 2018a. Optimized amount of hairy woodrose (Merremia aegyptia L.) in the productivity of coriander cultivars. Bulgarian journal of Agricultural Science 24(2), 654-659.

Linhares PCF, Cunha LMM, Sousa RPde, Neves APM, Assis JPde, Almeida AMBde, Pereira MFS, Cardoso EA, Paula JAA, Alves LS. 2018b. Agronomic Efficiency of Organic Fertilised in the Production of the Intercropping of Coriander and Mint in the Northeastern Brazil. Journal of Experimental Agriculture International 29(1), 1-11. https://doi.org/ 10.9734/ JEAI/2019/45689.

Linhares PCF, Maracajá PB, Pereira MFS, Assis JP, Sousa RP. 2014a. Roostertree (Calotropis procera) under different amounts and periods of incorporation on yield of coriander. Revista Verde de Agroecologia e Desenvolvimento Sustentável 9(2), 07-12.

Linhares PCF, Assis JP, Sousa RP, SÁ JR, Pereira MFS, Ramalho WB, Silva RIG, Silva RA, Pereira KLV. 2018b. Optimized amount of hairy woodrose (Merremia aegyptia L.) in the productivity of coriander cultivars. Bulgarian Journal of Agricultural Science 24(4), 654-659.

Linhares PCF, Cunha LMM, Sousa RPde, Neves APM, Assis JPde, Almeida AMBde, Pereira MFS, Cardoso EA, Paula JAA, Alves LS. 2018c. Agronomic Efficiency of Organic Fertilised in the Production of the Intercropping of Coriander and Mint in the Northeastern Brazil. Journal of Experimental Agriculture International 29(1), 1-11. https://doi.org/10.9734/JEAI/2019/45689.

Linhares PCF, Oliveira JD, Pereira MFS, Fernandes JPP, Dantas RP. 2014a. Espaçamento para a cultura do coentro adubado com palha de carnaúba nas condições de Mossoró-RN. Revista Verdede Agroecologia e Desenvolvimento Sustentável 9(3), 01-06.

Linhares PCF, Maracajá PB, Oliveira JD, Silva RIG. 2014b. Períodos de incorporação da jitirana mais palha de carnaúba na produtividade da cenoura. Agropecuária Cientifica no Semi-árido 10(3), 100-104.

Linhares PCF. 2013. Green manure as soil conditioner. Revista Campo e negócios 127(1), 22-23.

Linhares PCF, Pereira MFS, Assis JP, Bezerra AKH. 2012. Quantidades e tempos de decomposição da jitirana no desempenho agronômico do coentro. Ciência Rural 42(2), 243-248.

Linhares PCF, Pereira MFS, Silva ML, Maracajá PB, Moreira JC, Souza AAJ. 2013. Otimização da quantidade de jitirana incorporada ao solo no rendimento agronômico do rabanete. Agropecuária cientifica no Semi-árido 9(2), 42-48.

Linhares PCF. 2009. Vegetação espontânea como adubo verde no desempenho agroeconômico de hortaliças folhosas. 109 f. Tese (Doutorado em Fitotecnia: Área de Concentração em Agricultura Tropical) – Universidade Federal Rural do Semi-Árido, Mossoró, Brazil.

Meurer EJ. 2007. Factors influencing plant growth and development. In: Novaes, RF, Alvarez VVH, Barros NF, Fontes RLF, Cantarutti RB, Neves JCL. (eds.) Fertilidade do solo. Viçosa: SBCS 65-90.

Neves APM, Linhares PCF, Souza RP, Assis JS, Neves AM, Cunha LMM, Almeida AMB, Pereira MFS, Alves LS. 2018. Successive crops of lettuce fertilized with bovine manure in the presence and absence of mung bean. International Journal of Development Research 08(1), 19754-19760.

Oliveira EQ, Souza RJ, Cruz MCM, Marques VB, França AC. 2010. Produtividade de alface e rúcula, em sistema consorciado, sob adubação orgânica e mineral. Horticultura Brasileira 28(1), 36-40.

Paiva, Laíza Gomes de. 2016. Estudo da alface e coentro em consórcio e monocultivo sob diferentes adubações em dois períodos/Laíza Gomes de Paiva. Pombal 55 p. Monografia (Bacharelado em Agronomia)- Universidade Federal de Campina Grande, Centro de Ciências e Tecnologia Agroalimentar, 2016.

Santos D, Mendonça RMN, Silva SM, Espíndola JEF, Souza AP. 2011. Produção comercial de cultivares de alface em Bananeiras. Horticultura Brasileira 29(1), 609-612.

Taiz L, Zeiger E. 2017. Plant Physiology, 3rd ed. Porto Alegre: Artmed 954 p.

Yuri JE, Resende GM, Mota JH, Souza RJ, Carvalho JG. 2006. Produção de alface-americana em função de doses e épocas de aplicação de zinco. Ciência e Agrotecnologia 30(2), 665-669.

Source : Mixture of hairy woodrose (Merremia aegyptia L.) with carnauba straw (Copernicia prunifera) in the productivity of lettuce in the semi-arid region of Brazil   

Arugula's Viability Under Semiarid Residual Effects | InformativeBD


Agronomic viability of arugula, A functional vegetable, under the residual effect of hairy woodrose (Merremia aegyptia L.), rooster tree (Calotropis procera) and kill pasture (Senna uniflora) in the semiarid region

Paulo César Ferreira Linhares, Paloma de Almeida Oliveira, Maria Francisca Soares Pereira, Janilson Pinheiro de Assis, Roberto Pequeno de Sousa, Lunara de Sousa Alves, Joaquim Odilon Pereira, Maria Elisa da Costa Souza, Domingos Severino de Souza Junior, Walter Rodrigues Martins, Eudes de Almeida Cardoso, and Jovynttino Francisco de Araújo Santana from the different institute of the Brazil. wrote a research article about, Arugula's Viability Under Semiarid Residual Effects, entitled, "Agronomic viability of arugula, A functional vegetable, under the residual effect of hairy woodrose (Merremia aegyptia L.), rooster tree (Calotropis procera) and kill pasture (Senna uniflora) in the semiarid region". This research paper published by the International Journal of Agronomy and Agricultural Research | IJAAR. an open access scholarly research journal on Agronomy under the affiliation of the International Network For Natural Sciences | INNSpub. an open access multidisciplinary research journal publisher.

Abstract

Arugula is a nutritionally rich vegetable. Considered a functional food, it can be used to treat diseases and improve clinical conditions. This work was conducted at the Rafael Fernandes Experimental Farm, in the Alagoinha district, rural area of ​​Mossoró-RN, from December 2016 to February 2017, with the objective of evaluating the agronomic viability of arugula, functional vegetable under the residual effect of species of the semi-arid region. The experimental design was the complete randomized blocks with treatments arranged in a 5 x 3 factorial scheme, with three replications. The first factor was constituted by four green fertilizer (0.0, 0.8, 1.6, 2.4, 3.2kg m-2 dry basis) and second factor by the types of green fertilizers (Merremia aegyptia, Calotropis procera and Senna uniflora). Initially radish was planted in plots of 1.4 x 1.4m. After the crop was withdrawn, the arugula cultivated Cultivada was planted. The evaluated characteristics were: height and number of leaves per plant, yield; number of sauces and dry matter mass of the aerial part. The best agronomic performance of the arugula was observed in the amount of 2.4kg m-2, with yield of 902.3g m-2 and 30 arugula sauces. Among the types of fertilizers, Merremia aegyptia presented statistical superiority in relation to Calotropis procera and Senna uniflora for yield and number of sauces. The incentive for the cultivation of arugula is important because its benefits are directly related to the farmers who produce and also commercialize, and the consumers who acquire this vegetable.

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Read more :  Cacao Phytophthora Pod Rot: Symptoms & Pathogenicity | InformativeBD

Introduction

The production of vegetables is in a fairly intense activity in northeastern Brazil region due to the cycle of crops, ranging from 25 to 35 days. Another factor that contributes to this activity is the demand for these olerícolas products, where the producers realize plantations that meet the needs of the market (Linhares, 2009).

Among the olericolas, one finds Arugula (Eruca sativa) also known as Persian Mustard, is a Brassicaceae whose leaves are much appreciated in the form of salad, being produced in all regions of Brazil. It is estimated that the cultivated area is 6.000ha/ano (Sala et al., 2004; Purqueiro et al., 2007). Although it develops better under mild temperatures, arugula has been cultivated throughout the year in many regions (Filgueira, 2008). 

In the northeastern region of Brazil, there is a large consumption of arugula due to its use in cooking in various recipes, such in pizza, in meat, which has contributed to the increase of the production area. The cultivation is mainly by family farmers in an organic production system, using manure as the main source of input. Thus, the dependence of this input makes the producer vulnerable to scarcity, since you do not always own on your property, increasing the cost of production (Linhares et al., 2014).

 In this context, organic fertilization, using spontaneous species from the caatinga biome, contributed as a with resource availability, besides reducing production costs (Linhares, 2013). Spontaneous species of the caatinga occurring in the rainy season, hairy woodrose (Merremia aegyptia L.) and kill pasture (Senna uniflora) and throughout the year, rooster tree (Calotropis procera), has been used as organic fertilizer in the production of vegetables , contributing to the increase in productivity (Linhares, 2009). 

Linhares (2013) states that spontaneous species can promote the same benefits as introduced species in cycling and nutrient availability. In this sense, some studies have evidenced the use of spontaneous species of caatinga as organic fertilizer (Linhares et al., 2009a; 2009b; Linhares et al., 2010; Linhares et al., 2011; Linhares et al., 2012; Linhares et al., 2018; Bezerra Neto et al., 2011; Góes et al., 2011; Linhares et a., 2021 and Linhares et al., 2022). 

Neves et al. (2018) evaluated the production of leafy vegetables, lettuce, found efficiency in the application of mung bean in the presence of bovine manure in agronomic performance, with productivity of 1.5kg m- 2 in the amount of 2.0kg m-2. 

In this sense, an important aspect to be considered when studying the organic production of vegetables, having as source of fertilizer, species of the caatinga biome, is the contribution that residues left in the soil in successive cultivation can promote in the subsequent productivity, since the fertilization of the soil in an activity as intense, as the olericultura, would increase the cost of production whenever a new crop was implanted. Therefore, with the objective of evaluating the agronomic viability of arugula, functional vegetable under the residual effect of species of the semiarid region.

Reference

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Linhares PCF, Maracajá PB, Liberalino Filho J, Assis JP, Sousa RP, Medeiros AC. 2021. Jitirana (Merremia aegyptia L. Urban) [livro eletrônico]: Potencialidade de uso como espécie espontânea do semiárido na adubação verde de hortaliças. In: Linhares PCF, Cunha LMM, Silva NV, Neves AM, Medeiros BBM and Paiva AC. Fitomassa verde e seca, teores e acúmulo de macronutrientes da jitirana (Merremia aegyptia L. Urban) em diferentes estádios fenológicos- Nova Xavantina, MT: Ed. Pantanal. 96p Cap. 2, p.24-45.

Linhares PCF, Assis JP, Sousa RP, Sá JR, Pereira MFS, Ramalho WB, Silva RIG, Silva RA, Pereira KLV. 2018. Optimized amount of hairy woodrose (Merremia aegyptia L.) in the productivity of coriander cultivars. Bulgarian Journal of Agricultural Science 24(2), 654-659.

Linhares PCF, Maracajá PB, Pereira MFS, Assis JP, Sousa RP. 2014. Roostertree (Calotropis procera) under different amounts and periods of incorporation on yield of coriander. Revista Verde de Agroecologia e Desenvolvimento Sustentável 9(2), 07-12.

Linhares PCF. 2013. Green manure as soil conditioner. Revista Campo e negócios 127(1), 22-23.

Linhares PCF, Pereira MFS, Assis JP, Bezerra AKH. 2012. Quantidades e tempos de decomposição da jitirana no desempenho agronômico do coentro. Ciência Rural 42(2), 243-248.

Linhares PCF, Pereira MFS, Almeida SMS, Paz AES, Paiva ACC. 2011. Efeito residual do mata-pasto (Senna uniflora) no desempenho produtivo do rabanete. Revista Verde de Agroecologia e Desenvolvimento Sustentável 6(2), 168-173.

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Linhares PCF. 2009. Vegetação espontânea como adubo verde no desempenho agroeconômico de hortaliças folhosas. 109 f. Tese (Doutorado em Fitotecnia: Área de Concentração em Agricultura Tropical)- Universidade Federal Rural do Semi-Árido, Mossoró, Brazil.

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Neves APM, Linhares PCF, Souza RP, Assis JS, Neves AM, Cunha LMM, Almeida AMB, Pereira MFS, Alves LS. 2018. Successive crops of lettuce fertilized with bovine manure in the presence and absence of mung bean. International Journal of Development Research 08(1), 19754-19760.

Purqueiro LFV, Demant LAR, Goto R, Boas RLV. 2007. Efeito da adubação nitrogenada de cobertura e do espaçamento sobre a produção de rúcula. Horticultura Brasileira 25(2), 464-470.

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Source : Agronomic viability of arugula, A functional vegetable, under the residual effect of hairy woodrose(Merremia aegyptia L.), rooster tree (Calotropis procera) and kill pasture(Senna uniflora) in the semiarid region