Beta
145181

MODELING AND SIMULATION OF SMALL-SCALE BIOGAS DIGESTER BASED ON KITCHEN WASTE

Article

Last updated: 22 Jan 2023

Subjects

-

Tags

Engineering

Abstract

Anaerobic digestion (AD) is a collection of biological processes where the organic material is converted by microorganisms to produce a mixture of mainly methane and carbon dioxide (biogas) in the absence of oxygen. Methane is a very powerful greenhouse gas. The combustion of methane releases energy, which can be used to generate heat and electricity. AD proves to be a beneficial technology in various spheres. Biogas technology has the potential to meet the energy requirements in many places, it can be designed to meet the electrical and/or heat demand in rural areas. On the other hand, kitchen waste can be used to produce biogas due to its high biodegradability which can reduce the dependency on fossil fuels. This paper presents a proposed design, modeling and simulation of small-scale biogas digester based on kitchen waste. The biological processes of the AD are mathematically modeled to give a complete representation of the physic-chemical reactions depending on several aspects such as microbial activity, substrate degradation, and temperature. A small-scale family size kitchen waste digester is designed to utilize the kitchen waste of an average Egyptian family and provides the required cooking heat of the house. The model is then simulated in Matlab/Simulink environment. The proposed model is simulated under different conditions to investigate the impacts of digester temperature, feed type, and reaction time on biogas production. The simulation results identify the best parameters for the operation of the proposed model. The study explains that the suitable size for a biogas digester based on the kitchen waste of an average Egyptian family is 0.06 m3, with a diameter of 0.4 m and a height of 0.5 m. The results show that there is a regular increase in methane production at 30 ºC for about 18 days before it becomes constant, and best volume of methane equals to 0.05369 m3 /day.
Keywords: Organic wastes; Anaerobic digester; Kitchen waste, Biogas; Simulink modeling.
Nomenclature
b          Retention time factor,
BVS    Biodegradable Volatile Solids
Ffeed     Influent or feed flow (m3/d),
Fmeth    Methane gas flow (m3 CH₄/d),
k1         Yield factor obtained from experimental data,
k2         Yield factor obtained from experimental data,
k3         Yield factor corresponding to the growth rate of methane,
k5         A factor correlated to the methane flow and obtained from experimental data,
Kd        Specific death rate of acidogens (d⁻¹),
Kdc       Specific death rate of a methanogens (d⁻¹),
Ks        A constant represents Monod half-velocity for acidogens (Kg BVS/ m3),
Ksc       A constant represents Monod half-velocity for methanogens (Kg BVS/ m3),
Sbvs    Concentration of BVS in the AD digester (Kg BVS/ m3),
Sbvsin Concentration of BVS in the feed substrate (Kg BVS/ m3),
Svfa     Concentration of total VFA in the AD digester (Kg VFA/ m3),
Svfain   Concentration of total VFA in the feed substrate (Kg VFA/ m3),
Treac     Digester temperature (°C),
V         Effective digester volume (m3),
VFA    Volatile Fatty Acids
Xacid     Concentration of acidogens (Kg organism/ m3),
Xmeth    Concentration of methanogens (Kg organism/ m3),
μ          Growth rate of acidogens (d⁻¹),
μc         Growth rate of methanogens (d⁻¹),
μm(Treac)          Maximum growth rate for acidogens (d⁻¹),
μmc(Treac)         Maximum growth rate for methanogens (d⁻¹).
 

DOI

10.21608/jes.2019.145181

Authors

First Name

Amr M. H.

Last Name

Abbas

MiddleName

-

Affiliation

Children's Hospital, Mansoura University

Email

-

City

-

Orcid

-

First Name

Adel M. B.

Last Name

El-Shabasy

MiddleName

-

Affiliation

Faculty of Engineering, Ain Shams University

Email

-

City

-

Orcid

-

First Name

Magdy M. A. E

Last Name

l-Saadawi

MiddleName

-

Affiliation

Faculty of Engineering, Mansoura University

Email

-

City

-

Orcid

-

Volume

48

Article Issue

2

Related Issue

21423

Issue Date

2019-12-01

Receive Date

2019-12-31

Publish Date

2019-12-01

Page Start

37

Page End

66

Print ISSN

1110-0826

Online ISSN

2636-3178

Link

https://jes.journals.ekb.eg/article_145181.html

Detail API

https://jes.journals.ekb.eg/service?article_code=145181

Order

3

Type

Review Article

Type Code

599

Publication Type

Journal

Publication Title

Journal of Environmental Science

Publication Link

https://jes.journals.ekb.eg/

MainTitle

-

Details

Type

Article

Created At

22 Jan 2023