EFFECT OF FLY ASH AND RICE-HUSK ASH ON LIME STABILIZATION OF EXPANSIVE SOILS FROM LOKPAUKWU AND AWGU, NIGERIA

EFFECT OF FLY ASH AND RICE-HUSK ASH ON LIME STABILIZATION OF EXPANSIVE SOILS FROM LOKPAUKWU AND AWGU, NIGERIA

ABSTRACT

Soil stabilization refers to the technique of altering the properties of a soil so as to improve its engineering performance. It aims at using chemical additives such as lime as a lone stabilizer or in combination with industrial residues (fly ash, rice husk ash, etc) to achieve this fit. This work investigates the effects of lime alone, lime-fly ash (LFA) and lime-rice husk ash (LRHA) blends in varying percentage mixtures on the engineering properties of expansive soils from Lokpaukwu (Ezeaku Formation) and Awgu (Awgu Formation) in Lower Benue Trough. The soils were stabilized with different percentages of lime (i.e. 2, 4, 6, 8, and 10%) and varying percentage ratio for lime-fly ash and lime-rice husk ash blends (i.e. 2 : 6, 2 : 8, 2.5:7.5, 2.5 : 10, 3 : 9, 3 : 12, 4 : 12, 4 : 16, 5 : 15 and 5:20).Liquid limit, plastic limit, linear shrinkage, compaction characteristics and California Bearing Ratio (CBR) tests were performed on the natural and lime-treated Lokpaukwu and Awgu soil samples while consistency limits and linear shrinkage tests only were performed on the lime-residue treated soil samples. Results of the study indicate that optimum reduction percentage of 24.14% and 30.56% (liquid limits), 72.22% and 74.42% (plasticity indices), 56.14% and 60.12% (linear shrinkages) and maximum percentage increase of 25.60 and 33.70 (Optimum Moisture Content (OMC)), 193.3 and 250 (unsoaked CBR), and 766 and 700 (soaked CBR) for Lokpaukwu and Awgu samples respectively were obtained on stabilizing the soils with 6% lime content. The results from lime-fly ash (LFA) and lime-rice husk ash (LRHA) blends indicate that liquid limits, plasticity indices and Linear Shrinkages decreased from 58 and 72 to 46 and 51, 36 and 43 to 11 and 12, 11.4 and 14.3 to 6.4 and 7.1, and from 58 and 72 to 45 and 51, 36 and 43 to 10 and 11, 11.4 and 14.3 to 6.4 and

7.1 for Lokpaukwu and Awgu samples respectively when treated with Lime-fly ash blend of 3 – 12% and lime-rice husk ash blend of 3 – 9%.  It could be concluded that improving the characteristics of expansive soils by lime-fly ash blend or lime-rice husk ash blend is successful and provides immense environmental and economic benefits.

 

CHAPTER ONE INTRODUCTION

  • Background of the Study

Soil is the fundamental and most economical of construction materials. It bears the loads of structures and pavements transmitted through foundations and subbases respectively. Researchers have shown that the suitability of a soil as a construction material is a function of its geotechnical properties (Bowels, 1984 and 1988; Head, 1984; Venkatramaiah, 2012). The use of the existing soil at a construction site for engineering purpose may be hindered by poor engineering properties including poor bearing capacity, higher compressibility, and the alternate shrink and swell behaviour of expansive soils.

Expansive soils with potentials to change in volume in correspondence to a change in the moisture or suction condition of the soil (shrink or swell) are normally excluded as engineering construction materials because this volume change causes a resultant deformation, cracking and the eventual collapse of lightweight structures. Incidentally, the collapse of civil structures in some prominent towns in southeastern Nigeria have been associated with the occurrence of expansive clays in these towns (Okeke, 2008; Okeke and Okogbue, 2010)

Improvement of sites with weak or high compressible or high swelling or any other such problematic soils is commonly done by removing the problematic soils and replacing them with more competent ones such as compacted gravel, crushed rock, or lightweight aggregates to increase the load bearing capacity (Kukko, 2000).  Although this is generally accepted as a good solution, the economic feasibility of an alternative construction material may not be guaranteed due to the excessive cost that may be incurred in long distance hauling of the alternative material, excavation of the insitu material and as well as refilling with the alternative material.

Also, rise in global population tends to exert pressure on land which is limited in supply (Oramah, 2006), resulting to a very high demand for the available land and consequent rise in its cost (Rama-Subbarao et al., 2011).  Considering these factors improving the available soil at a site to meet the desired objective becomes the most viable alternative.

Soil improvement can be realized through several methods including the process of stabilization which aims at using chemical additives to achieve this improvement. Cement and lime are the most widely used stabilizing materials. However, the rise in the cost of these industrially manufactured soil improving additives (cement, lime, etc.) with a corresponding increase in the cost of construction on or with cement or lime stabilized soils has led to investigations and the subsequent adoption and usage of industrial wastes (rice husk ash, fly ash, kiln dust, etc.) as alternative materials for the total replacement (i.e. self cementitious e.g, Class C fly ash) or partial replacement (i.e. pozzolans) of cement and lime in engineering constructions (Uzal et al.; 2007; Sata et al. 2007; Yazici, 2008; Okafor and Okonkwo, 2009; Okeke and Enwelu, 2011; Baldino et al., 2014)

Industrial wastes such as fly ash and rice husk ash that accrues from the processing and, utilization of coal and rice abounds in Southeastern Nigeria due mainly to coal deposits and rice cultivation in the area.  Harnessing these industrial wastes as soil treatment materials tend to provide an immense benefit to mankind as it reduces the cost of construction with stabilized soils, and as well as reduction in the environmental hazards caused by these wastes (Muntohar and Hantoro, 2000; Zumrawi and Hamza, 2014).  Therefore, the whole process of soil stabilization with pozzolanic materials is invariably an industrial waste management strategy.

  • Problem Statement

The long-term performance of any construction project depends on the soundness of the underlying soils (NLA, 2004).  Expansive soil has been reported as a threat to engineering structures (Ola, 1987; Gutschick, 1967), and to occur mostly and extensively in tropical countries (Holtz and Gibbs, 1956; Katti, 1979; Ola, 1983; Garrido and Castenada, 1992; O’Connel and

Gourley, 1993; Uduji et al., 1994; Okeke, 2008; Lucian, 2008).

 

Immense damages to civil structures have been attributed to the occurrence of this soil in Nigeria and beyond (Skempton, 1954; Barber, 1956; Youssef et al., 1957; Hammer and Thompson, 1966; Jones and Holtz, 1973, US Army, 1983; Attewell and Taylor, 1984;).  Okeke (2008) reported the occurrence of this problem soil in several towns of Southeastern Nigeria.

On the other hand, industrially developed and emergent nations of the world including Nigeria generate enormous industrial wastes, which constitute environmental hazards.  The utilization of these industrial wastes for soil improvement has been identified as sustainable and cost effective method compared to the conventional method with lime or cement (Rama-Subbarao et al., 2011).  In view of this, this work tends to investigate the stabilization of expansive soils – first with lime and secondly with industrial wastes as percentage substitutes for lime.

  • Main Objective

 

The study aims at utilizing the industrial wastes of Rice-Husk Ash (RHA) and Fly ash (FA) to improve and enhance the geotechnical properties of expansive soils in the study area in relation to their uses in engineering construction, thereby reducing the environmental hazards associated with the wrongful disposal of these wastes.

The specific objectives of the study are to:

  • evaluate the effect of lime on the geotechnical characteristics of the expansive soils from Lopkaukwu and Awgu.
  • evaluate the influence of rice husk ash on lime stabilization of the expansive soils.
  • evaluate the influence of fly ash on lime stabilization of the expansive soils.
  • determine the optimum contents for lime, lime-fly ash and lime-rice husk ash admixtures.

 

 

 

  • Justification of the Study

There have been cases of structural failures resulting from unstable foundation soils, as well as reports of huge volumes of industrial wastes dumped on open fields, constituting health and environmental hazards. It is against this backdrop that this project was conceived so as to reveal by concrete investigation, the efficacy of these industrial wastes in soil stabilization as an efficient waste management strategy.

Scope of the Study

The Study involved the collection of soil samples and soil additives including lime, rice-husk ash and fly ash.

It was limited to field sampling observations and laboratory analyses of the soil samples with reference to the various additives by measuring the necessary geotechnical properties (parameters); Attterberg limits (liquid limit, plastic limit and plasticity index), linear shrinkage, compaction characteristics (maximum dry density and optimum moisture content), and California bearing ration (CBR).

 

Download Full Material-N5000

Leave a Reply

Your email address will not be published. Required fields are marked *

Related Post

QUALITY MANAGEMENT IN CONSTRUCTION INDUSTRY Role of Construction Manager

QUALITY MANAGEMENT IN CONSTRUCTION INDUSTRY Role of Construction Manager

ABSTRACT

This paper is a discussion paper on implementation of quality management by construction managers in three Major Australian construction firms. The study examines the importance of quality management of construction project and how the construction managers ensure quality management.  It also takes into consideration the importance of top management commitment towards quality management in the construction industry. This is a qualitative study. Primary data was collected through questionnaire surveys and interviews from 30 construction managers from three construction firms.

The study reveals that as much as the construction managers try to achieve quality management of projects, there are various challenges ranging from, organizational challenges such as lack of top management support of its implementation to unwillingness of construction staff to accept the quality management systems among others. Due to the sample size, and limited time for the research, the study provides areas of further research which can provide generalized results in the context of Australian construction Industry

Download Full Material-N5000

Investigation Of Defects In New Buildings In Nigeria

Investigation Of Defects In New Buildings In Nigeria

CHAPTER ONE

 

INTRODUCTION

 

1.1          General Introduction

 

In this modern era, there are more and more-high rise buildings being developed by the clients or the contractors due to the reason of insufficient land use and high population of people. New buildings mean different thing to different people. In fact, there is not exact definition for what is meant by new building. However, the definition is centre around the age of the buildings. While some might considered building less than five years old as new building some might considered building less than ten years old as new. In this research project, new building is defined as building within the defects liability period. In Nigeria , the defects liability period is from 12 months to 24 months which is 1 to 2 years (Minter, 2016). After that, the buildings will be defined as new which is free from DLP.

 

A building is a place where people accommodate and work together or for an organisation to conduct its work (Seeley, 1987 in Olanrewaju & Abdul-Aziz, 2015). Moreover, the purpose of a building is to give a comfortable and healthy surrounding for people to conduct activities, to provide security, sustain load and environmental shelter or control (Olli, 2004). Besides that, buildings can be differentiated by its function, number of stories, purposes and there are various types of buildings. For example, residential building, commercial building, educational building, industrial building, government building and etc. (De-Chiara and Chrosibie (2001) in Olanrewaju & Abdul-Aziz, 2015).

 

However, there is occurrence of cracks and failures in school buildings due to various causes and building defects are still one of the major issue which construction industry need to deal with (Ahmad, 2004). For instance, honeycombs, hairline cracks at beams, faulty design, construction materials, structural cracks in walls, reinforcement bars of columns became rusty due to expose to sunlight and rainwater and etc. Apart from that, unnecessary effort was needed in order to correct the construction error which is rework (Josephson et. al., 2002). Rework will affect the performance and also the cost for construction industry. According to research from the Construction Industry Institute (CII), it shows that the direct costs cause by the rework is amount to 5% of total construction costs (CII, 2005).

 

Therefore, this research’s aim is to evaluate the causes and prevention of cracks on school building  in Nigeria  and this chapter contain the objectives which are to identify the causes, types and solutions for cracks in school buildings.

 

 

1.2          Background of Study

 

The construction industry is getting more modern, technologies advance and growing day by day around the global including Nigeria. Construction Industry has a great impact on the economy of all countries (Leibing, 2001). According to Sun and Olawale (2010), the construction industry is contributed towards to the GDP due to continuous development.

 

New buildings mean different thing to different people. In fact, there is not exact definition for what is meant by new building. However, the definition is centre around the age of the buildings. While some might considered building less than five years old as new building some might considered building less than ten years old as new. In this research project, new building is defined as building within the defects liability period. In Malaysia, the defects liability period is from 12 months to 24 months which is 1 to 2 years (Minter, 2016). After that, the buildings will be defined as new which is free from DLP.

 

Other than that, new buildings can be classifies into residential building, commercial building, educational building, industrial building and etc. (Olanrewaju & Abdul-Aziz 2015). In addition, construction of high-rise building is on-going in Malaysia and buildings can be classify into purposes, function, and types. The purpose of a building is to provide a comfortable working and living environment for people. In addition, the function of a building is depends on the design of a building, to conduct activities, to provide security and environmental shelter. There are many types of buildings but in terms of height, it consists of high-rise building, low-rise building, and mix-development building. High-rise building is defined as a building which it is more than 20 stories. However, various types of defects can be found inside the buildings.

 

A crack is generally described as deterioration, damages, default or deficiency (Olanrewaju & Abdul Aziz, 2015). According to Ahmad (2004), there are usually various causes and types of cracks that affect the performance of a building. For example, design deficiencies and construction deficiencies. The causes of cracks  in the school buildings  can occur due to chemical reactions in construction materials, changes in temperature and climate, foundation movements and settling of buildings, environmental stresses like nearby trains, earth quakes etc. Faulty design, bad quality materials, wrong method of construction, weather effects and lots of wear and tear can create cracks in walls, floors and ceilingsAll these causes have given an impact of rework to the construction industry. Rework is meant by doing something at least more than one time due to the reason not fulfilling the requirements as stated by the Construction Industry Development Agency (1995). In addition, the cost of rework is amount to 5% of the total construction costs (CII, 2005). For an example, the construction industry of United States expended $1,502 billion in 2004 for total construction cost (Bureau of Economic Analysis 2006) and $75 billion was wasted by rework cost in year 2004.

 

Besides, there are few stages of defects in building which are patent stage, latent stage, progression stage and recurring stage. The patent stage and latent stage defects often can be seen in new buildings and the defects occur throughout the building life cycle (Olanrewaju & Abdul-Aziz, 2015).

 

On the other hand, the types of defects that affect the building is poor workmanship, construction material, lack of supervision and maintenance, limited time and cost, faulty design, climatic condition, and external environment (Ahmad, 2004). The reason why defect occurs in the buildings might have due to non-compliance with the Building Code and does not follow the standard procedure when constructing the work. Therefore, maintenances are needed in order to prevent these types of defects from occurring.

 

Maintenance of building is essential in order to sustain and preserve the building to an acceptable condition. Acceptable standards mean to sustain the utility and value of the facility. Moreover, the purpose of maintaining the building is to retain the value of investment, maintain the building in a good condition so that it can provides its function fully and have a good appearance (Al-Hammad, 2014). However, the expenditure cost for maintaining the building is high and it will continues or even to increase the cost in the future. According to Rendeau et al. (2006); Booty (2006), it shows that 70% of the operating costs from the building is contributed towards to maintenance considering the fact that more than 90% of the life time of a building project, it requires maintenance work.

 

The contractor also responsible for repairing the defects that have appeared in the contractor works within 12 or 24 months from the date or practical completion (Minter, 2016). During this 12 or 24 months, any defects that occur under the contractor works, the contractor need to repair it immediately under the contractual obligations. Usually the defects occur in the new buildings are due to the designer latent stage defect and also the contractor patent stage defect (Olanrewaju & Abdul-Aziz, 2015).

 

In Nigeria, high-rise buildings less than 10 years old would have structural defect in terms of cracks  that can cause danger to the residents and also to the public (Anthony, 2013). In fact, all new buildings have problems in defects like surface cracks .The reason why many defects occur in the new high-rise buildings was due to poor workmanship of the labour, lack of skilled supervision and etc. The most important is many new high-rise buildings have defects from the moment of completion.

 

Based on the research done by Anthony (2013), he has inspected more than hundreds of old and new high-rise school buildings in the nationwide and found out that many cracks  occur in the buildings that they have inspected

 

In a nutshell, school management should always conduct inspection in order to prove safety for the school building and they can identify any defects at the early stage and rectify it to provide safety and health for the residents. By thus, the purpose of this research is to determine the causes and prevention of cracks school buildings in Nigeria and also to determine the possible solutions for the cracks.

 

1.3          Problem Statement

Construction deficiencies such as poor workmanship and low quality of materials, design deficiencies like not according to the specification and faulty design, limited time and cost, external environment and etc. lead to various types of cracks in school buildings. In Nigeria, cracks in school building are too many unabated and the impacts of cracks  are high maintenance costs, poor user satisfactions, dangerous to the students and the buildings cannot function properly. While there is information on defects/cracks in buildings in general, such is not available for new buildings, though theoretically, new buildings should be free from defects/cracks. Therefore, this research project aim to evaluate the causes defects of cracks in school buildings.

1.4          Aim

This research aimed to evaluate the causes and prevention of cracks on school building.

1.5          Objectives

In order to achieve the aim of this research the objective has been listed as follow:

     To determine the causes of cracks/defects in school buildings

     To determine the types of cracks/defects in school buildings

     To determine the solutions for cracks/defects in school buildings

1.6          Research Scope and Limitation

 

This research is mainly focus causes, types and solutions for cracks/defects in school buildings in Nigeria. Qualitative method which is interview will be used to collect the data from the interviewees. The limitation of this research is limited of time. Therefore, the interview can only be carried out at some selected schools which is located in Nigeria.

1.7          Significant of the study

 

The significant of this study is to find out the major causes of cracks that occures  in the schoolnbuildings and determine a possible solution in order to minimize the cracks. Other than that, the reason why I select this topic for my research study is because I personally interest in understanding the problems in a deeper manner and want to gain more knowledge and also experience so that it would be useful for me.

 

Download Full Material-N5000

Assessment Of Effect Of Aggregate Sizes On The Comprehensive Strength Property Of Concrete Work

ABSTRACT

Problems arising from limited coarse aggregate sizes where by coarse aggregates are gotten from long distance quarry sites which have led to high cost of coarse aggregates and in turn resulted to high cost of construction. A synergistic combination of three sizes of coarse aggregates for concrete works was investigated in this research. For the purpose of this work, three sizes of coarse aggregates, 10mm, 14mm, and 20mm were used. Each of the sizes were cast which served as the control. The three aggregate sizes were also combined based on percentage proportion and cast. For each combined sizes of coarse aggregates, 21cubes (150×150mm) were cast to allow the compressive strength to be monitored at 7, 14 and 28 days respectively. Results showed that third test of the combined coarse aggregates which contained 30% 10mm, 20% 14mm and 50% 20mm had the highest compressive strength of 25N/mm2. Statistical T-Test analysis was introduced in this research to compare each of the control mixes with the concrete made with combined aggregates. It was seen from the analysis that, the value obtained which is 12.12 and

4.51 is greater than the T critical (4.303 at 5% level of significance) which also indicated that the third test of the combined aggregate had the highest compressive strength of concrete.

Download Full Material-N5000