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Production of Starch From Cassava Maihot Esculanta and Its Cross Linked Derivatives

Production of Starch From Cassava (Maihot Esculanta) and Its Cross Linked Derivatives

Project / Seminar Material
Reference ID: PS-2961-TM

DEDICATION

This research work titled "Production of Starch From Cassava (Maihot Esculanta) and Its Cross Linked Derivatives" is dedicated to God for his enabling grace and to all computer enthusiasts who help to make life a pleasant experience.

ACKNOWLEDGEMENT

I owe my indebtedness to my Supervisor (Name of your Supervisor), the Head of Department (Name of your HOD), the Lecturers in the department of Biochemistry, Book Authors and Profound Scholars of existing/related research material for your moral support that facilitated the successful completion of my (Tertiary Institution level). I am grateful to God Almighty and my parent for their financial support in my career. I really appreciate you all for everything, Thank you very much.

TABLE OF CONTENTS

PRELIMINARY PAGES


CHAPTER ONE

INTRODUCTION


CHAPTER TWO

LITERATURE REVIEW

  • 2.1 Introduction

CHAPTER THREE

MATERIALS AND METHODS

  • 3.1 Introduction

CHAPTER FOUR

RESULTS AND DISCUSSION

  • 4.1 Introduction
  • 4.2 Results
  • 4.3 Discussion of Findings

CHAPTER FIVE

SUMMARY, CONCLUSION AND RECOMMENDATION

  • 5.1 Introduction
  • 5.2 Summary
  • 5.3 Conclusion
  • 5.4 Recommendation

REFERENCES

ABSTRACT

The study was carried out to examine the Production of Starch From Cassava (Maihot Esculanta) and Its Cross Linked Derivatives. In achieving this aim, the following specific objectives were laid out to investigate how different fermentation times influence the quality characteristics of Starch, produce Starch from cassava at controlled conditions of temperature, relative humidity and time, and monitor the fermentation time for breakdown and removal of cyanogenic compounds and cyanide. Starch can be obtained from cassava, sorghum, maize, sago and potatoes. But this project focused on the production of starch from cassava. Starch can be cross-linked a product that will be suitable for noodle, salad cream custard making. It is difficult to understand how cassava and cassava products such as cassava flour can be promoted without giving proper consideration to the fact that it contains cyanogens (linamarin) that liberates poisonous cyanide in the body. Consumption of cassava and its products containing amounts of cyanide can cause acute intoxication, with symptoms of dizziness, headache, nausea, vomiting, stomach pains, diarrhea and sometimes death. This present study considered the variability in the environment and fermentation conditions during fermentation of cassava mash as they affect quality characteristics of Starch. There is need to optimize the local cassava flour processing methods as well as its industrialization especially by reducing the fermentation time and achieving the elimination of cyanide while maintaining cassava flour quality.


Production of Starch From Cassava (Maihot Esculanta) and Its Cross Linked Derivatives

CHAPTER ONE

1.1 Introduction

Starch can be obtained from cassava, sorghum, maize, sago and potatoes. But this project focused on the production of starch from cassava. Starch can be cross-linked a product that will be suitable for noodle, salad cream custard making. Normally it is easier to make this product from corn and potatoe starch, but cassava which is readily available and cheap can be employed to meet the demand of the people. Other synthetic starch produced from cassava includes; carboxymethyl starch (which is produced when one of the hydrogen atom of the starch is replaced by carboxymethyl groups, starch acetate, starch xanthate and hydroxyl alkyl starch. These are used as thickening agents, sterbilizer and emulsifier in products. Cassava starch when treated with phosphate is used in frozen products when they are defrosted to prevent them from dripping. This study investigated the production of starch from cassava and preparation of cross-link derivatives.

As a prelude to other parts of this study, this chapter will discuss the background upon which this study was initiated, the statement of problems that led to this study, the Aim and Objectives of the study. Others are Significance of the study, Scope of work, Limitations of the Study and Definition of technical terms.


1.2 Background of Study

Cassava flour production till date is carried out at local levels mostly by local women who do so to enhance household food security (Fapojuwe, 2008), and according to Nweke et al. (2002), production of cassava flour remains labour-intensive. Large scale production of cassava flour in Nigeria failed probably due to the limited information on processing variables that promote detoxification in cassava, and fermentation to produce unique flavor characteristics associated with cassava flour (Achinewu and Owuamanam, 2001; Nweke et al., 2002).

Fresh cassava root contains a toxic compound (hydrogen cyanide), which is harmful for human consumption and apparently detrimental for the use of cassava in food industries (Iglesias et al., 2002). However, research have shown that processing techniques such as peeling, fermentation, soaking and drying can detoxify and reduce the cyanide content, improve palatability and add value to the root (Cardoso et al., 2005; Burns et al., 2012). Converting cassava root into food forms and raw materials such as fufu, cassava flour, tapioca, flour, chips and pellets can extend the shelf-life, facilitate trade and promote industrial use (Taiwo, 2006; Fadeyibi, 2012).

Globally, there is a notable increase in demand and price of cereals, especially wheat, which consequently influences the price of cereal-based products (FAO, 2013). The rising cost of importing wheat flour for food in many developing countries such as Nigeria has spurred the need for research to develop suitable flour from local agricultural materials such as cassava, which are cheaper but also possesses suitable quality attributes and functional properties. Furthermore, wheat flour contains gluten which causes celiac disease especially to gluten intolerant persons (Briani et al., 2008). Studies have recommended gluten-free diet as a suitable treatment for patients with celiac disease, gluten intolerance and wheat allergic reactions (Gaesser & Angadi, 2012; Alvarez & Boye, 2014). Therefore, non-wheat gluten-free flour developed from root and tuber crops such as sweet potato (Ipomoea batatas), cassava (Manihot esculenta), potato (Solamum tuberosum), yam (Dioscorea spp) and cocoyam (Xanthosoma sagitifolium) offer the potential to alleviate the double burden of rising cereal prices and gluten intolerance (Aryee et al., 2006; Ammar et al., 2009; Sanful & Darko, 2010). In particular, the use of gluten-free flour from high quality cassava root as composite flour in highly sought after foods such as bread has gained popularity in many developing countries (Eddy et al., 2007).

High quality cassava flour is white or creamy, unfermented and gluten-free flour obtained from cassava root and it is used in the food industry for the production of pasta and confectionery (Taiwo, 2006; Shittu et al., 2008). When wheat was substituted by up to 20% in bread, Eddy et al. (2007) found that cassava flour added no foreign odour or taste to the product formed and no significant changes were observed in other bread characteristics. The physicochemical properties of cassava flour offer the benefit of good functionality as raw material for the manufacturing of various food products. For instance, the high starch content of cassava flour contributes to crispy texture of processed products (Falade & Akingbala, 2010), while its low fat content is an excellent attribute for controlling rancidity and enhancing shelf-life stability of the product (Charles et al., 2005; Eleazu et al., 2011). Flour and other materials used in manufacturing food products need to be packaged and stored properly prior to utilisation to ensure the quality, safety and storage stability. To realise the full potential of cassava flour in food processing, either alone or in combination with other raw materials such as wheat flour, knowledge of the effects of package types and storage conditions on quality and shelf-life stability of cassava flour is important.

Therefore, in Nigeria where the research was carried out, the activities that was conducted is to know the Production of Starch from Cassava (maihot Esculanta) and Its Cross Linked Derivatives.


1.3 Statement of Problems

Traditional processing of cassava by fermentation is centered on reduction of cyanide in the resultant product through extended period of fermentation for up to 7days as important strategy for the safety of product (Sanni, 2005). However, the traditionally processed cassava flour contain varied amount of residual cyanide because of the tendency by local processors to shorten the duration of fermentation in order to meet growing market demand (Nweke et al., 2002).

It is difficult to understand how cassava and cassava products such as cassava flour can be promoted without giving proper consideration to the fact that it contains cyanogens (linamarin) that liberates poisonous cyanide in the body. Consumption of cassava and its products containing amounts of cyanide can cause acute intoxication, with symptoms of dizziness, headache, nausea, vomiting, stomach pains, diarrhea and sometimes death (Oluwole et al., 2003).


1.4 Aim and Objectives of Study

The main aim of the study is to examine Production of Starch from Cassava (maihot Esculanta) and Its Cross Linked Derivatives. In achieving this aim, the following specific objectives were laid out as follows:

  1. To investigate how different fermentation times influence the quality characteristics of Starch;
  2. To produce Starch from cassava at controlled conditions of temperature, relative humidity and time; and
  3. To monitor the fermentation time for breakdown and removal of cyanogenic compounds and cyanide.

1.5 Significance / Justification of Study

This present study considered the variability in the environment and fermentation conditions (temperature, relative humidity and duration of fermentation) during fermentation of cassava mash as they affect quality characteristics of Starch. There is need to optimize the local cassava flour processing methods as well as its industrialization especially by reducing the fermentation time and achieving the elimination of cyanide while maintaining cassava flour quality.

This study will be of immense benefit to other researchers who intend to know more on this study and can also be used by non-researchers to build more on their research work. This study contributes to knowledge and could serve as a guide for other study.


1.6 Scope of Study

The scope of this research is focused on the determination of the Production of Starch from Cassava (maihot Esculanta) and Its Cross Linked Derivatives.


1.7 Limitations of the Study

During the course of this study, many things militated against its completion, some of which are:

  1. Time Constraint: The time frame given to accomplish this project was very short due to school academic calendar and it was carried out under pressure which made the researcher not to implement some necessary features.
  2. Research material: availability of research material is a major setback to the scope of the study.
  3. Frequent power failure: This made the researcher append more money on fuel to ensure sustainable power.
  4. Financial Constraint: Insufficient fund tends to impede the efficiency of the researcher in sourcing for the relevant materials, literature or information and in the process of data collection (internet).

CHAPTER TWO

2.0 Literature Review

2.1 Introduction

This chapter focuses on the review of related literature. A literature review includes the current knowledge as well as theoretical and methodological contributions to a particular topic. It documents the state of the art with respect to the topic you are writing. It surveys the literature in the topic selected. In this research work the literature review includes the …

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