Sustainable Valorisation of Biowaste for Soilless Cultivation of Salvia Officinalis in a Circular Bioeconomy

被引:9
|
作者
Greco, Carlo [1 ]
Comparetti, Antonio [1 ]
Febo, Pierluigi [1 ]
La Placa, Giulia [2 ]
Mammano, Michele Massimo [3 ]
Orlando, Santo [1 ]
机构
[1] Univ Palermo, Dept Agr Food & Forest Sci, I-90128 Palermo, Italy
[2] Univ Palermo, Dept Biol Chem & Pharmaceut Sci & Technol, I-90128 Palermo, Italy
[3] Council Agr Res & Agr Econ Anal CREA, Res Ctr Plant Protect & Certificat, I-90011 Bagheria, Italy
来源
AGRONOMY-BASEL | 2020年 / 10卷 / 08期
关键词
Renewable Energy Sources (RES); vermicompost; compost; digestate; peat; nutraceutical species; GROWTH; VERMICOMPOST; VERMIWASH;
D O I
10.3390/agronomy10081158
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
The aim of this work is to assess the usefulness of biowaste deriving from Circular Bioeconomy (CBE) processes (i.e., vermicompost, compost and digestate), as growing substrates for the partial or total replacement of peat, by measuring the vegetation biometric parameters of sage (Salvia officinalisL.)-leaf area; Soil Plant Analysis Development (SPAD) value (index of chlorophyll concentration); fresh and dry weight of leaves; stem weight; root length. The results showed that vermicompost positively influenced most of above parameters (+16.7% for leaf area, +7.3% for fresh leaf weight, +6.4% for dry leaf weight, +8.5% for fresh stem weight, +0.9% for dry stem weight, +16% for root length) and, therefore, can be used as a sustainable growing substrate, alternative to peat, for the sage soilless cultivation. Yet, the results of some biometric parameters are better with peat rather than with compost (-7.2% for SPAD value, -47.3% for fresh leaf weight, -46.8% for dry leaf weight, -32.9% for fresh stem weight, -39.1% for dry stem weight, -52.4% for fresh root weight, -56.6% for dry root weight) and digestate (-30.2% for fresh leaf weight, -33.6% for dry leaf weight, -23.9% for fresh stem weight, -27% for dry stem weight, -51.8% for fresh root weight, -34.4% for dry root weight, -16% for root length). Therefore, these results are interesting for potted plants in nursery activity, while the above differences must be verified also after the transplanting of the tested plants in open field. However, the use of all the above growing substrates alternative to peat allows the sustainable valorization of food industry by-products, plant biomass, animal manure and the Organic Fraction of Municipal Solid Waste (OFMSW).
引用
收藏
页数:13
相关论文
共 50 条
  • [1] Biowaste valorisation in a future circular bioeconomy
    Vea, Eldbjorg Blikra
    Romeo, Daina
    Thomsen, Marianne
    25TH CIRP LIFE CYCLE ENGINEERING (LCE) CONFERENCE, 2018, 69 : 591 - 596
  • [2] Innovative blends to wastewater sludge energy valorisation towards a sustainable circular bioeconomy
    de Almeida, Carlos Andre Silvestre M.
    da Silva, Ivo
    Peiter, Fernanda S.
    Salomon, Karina Ribeiro
    INTERNATIONAL JOURNAL OF ENVIRONMENTAL TECHNOLOGY AND MANAGEMENT, 2022, 25 (1-2) : 122 - 133
  • [3] Valorisation of agro-industrial wastes: Circular bioeconomy and biorefinery process - A sustainable symphony
    Wagh, Mrunal S.
    Sowjanya, S.
    Nath, Pinku Chandra
    Chakraborty, Arnab
    Amrit, Rajshree
    Mishra, Bishwambhar
    Mishra, Awdhesh Kumar
    Mohanta, Yugal Kishore
    PROCESS SAFETY AND ENVIRONMENTAL PROTECTION, 2024, 183 : 708 - 725
  • [4] Agriculture waste valorisation as a source of antioxidant phenolic compounds within a circular and sustainable bioeconomy
    Jimenez-Lopez, C.
    Fraga-Corral, M.
    Carpena, M.
    Garcia-Oliveira, P.
    Echave, J.
    Pereira, A. G.
    Lourenco-Lopes, C.
    Prieto, M. A.
    Simal-Gandara, J.
    FOOD & FUNCTION, 2020, 11 (06) : 4853 - 4877
  • [5] The Sustainable Path to a Circular Bioeconomy
    Kershaw, Eleanor Hadley
    Hartley, Sarah
    McLeod, Carmen
    Polson, Penelope
    TRENDS IN BIOTECHNOLOGY, 2021, 39 (06) : 542 - 545
  • [6] Bioconversion of municipal solid waste into bio-based products: A review on valorisation and sustainable approach for circular bioeconomy
    Yaashikaa, P. R.
    Kumar, P. Senthil
    Saravanan, A.
    Varjani, Sunita
    Ramamurthy, Racchana
    SCIENCE OF THE TOTAL ENVIRONMENT, 2020, 748
  • [7] POSITIONING THE CROATIAN LINEAR BIOECONOMY TOWARDS SUSTAINABLE AND CIRCULAR BIOECONOMY
    Kulisic, Biljana
    Horvatincic, Karolina
    Oplanic, Milan
    Pohajda, Ines
    Radic, Tajana
    Simek, Zeljko
    Tisma, Sanja
    Vukovarac, Lana
    CONFERENCE PROCEEDINGS OF THE 2ND INTERNATIONAL CONFERENCE ON THE ECONOMICS OF DECOUPLING, ICED 2021, 2021, : 379 - 400
  • [8] Limits to circular bioeconomy in the transition towards decentralized biowaste management systems
    Angouria-Tsorochidou, Elisavet
    Teigiserova, Dominika Alexa
    Thomsen, Marianne
    RESOURCES CONSERVATION AND RECYCLING, 2021, 164
  • [9] Sustainability, circular economy and bioeconomy: A conceptual review and integration into the notion of sustainable circular bioeconomy
    Rojas-Serrano, Fatima
    Garcia-Garcia, Guillermo
    Parra-Lopez, Carlos
    Sayadi-Gmada, Samir
    NEW MEDIT, 2024, 23 (02): : 3 - 22
  • [10] Demonstration of an Integrated Methodology for the Sustainable Valorisation of Bakery Former Food Products as a Pig Feed Ingredient: A Circular Bioeconomy Paradigm
    Malamakis, Apostolos
    Patsios, Sotiris I.
    Melas, Lefteris
    Dedousi, Anna
    Kontogiannopoulos, Konstantinos N.
    Vamvakas, Konstantinos
    Tsotsolas, Nikos
    Koutsouraki, Eleni
    Sossidou, Evangelia N.
    Banias, George F.
    SUSTAINABILITY, 2023, 15 (19)