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Question 1 Report
(a) Describe two methods of irrigation agriculture in the Nile Valley
(b) Give three reasons for the development of irrigation agriculture in this region
(c) Highlight four problems associated with this type of agriculture in the Nile Valley
(a) Two methods of irrigation agriculture in the Nile Valley
(b) Three reasons for the development of irrigation agriculture in this region
(c) Four problems associated with irrigation agriculture in the Nile Valley
Answer Details
(a) Two methods of irrigation agriculture in the Nile Valley
(b) Three reasons for the development of irrigation agriculture in this region
(c) Four problems associated with irrigation agriculture in the Nile Valley
Question 2 Report
Study the map extract on a scale of 1:50,000 and attempt the following questions :
(a)(i) In your answer booklet draw to one third, the original scale, an outline of the map
(ii) What is the scale of the outline drawn?
(b) On your outline, show
(i) the settlement of Okeigbo and Omifunfun
(ii) a ridge east of Okeigbo
(iii) River Oni and its direction of flow
(iv) the minor road from ldare Omifunfun
(c) State two reasons why Okeigbo could be considered more important than Mafoworade
(d) State any land-use types found in the area
The extract is redrawn so that every length is reduced to one-third of its length on the original map, while the shape, orientation and relative positions of all features are kept exactly the same. The reduced outline, with the required features added for part (b), is shown below.
The original scale is 1:50,000, meaning 1 unit on the paper represents 50,000 units on the ground. When every distance on the paper is reduced to one-third, the same piece of ground is now shown by a paper length that is three times smaller, so each paper unit must represent three times as much ground:
\[ 50{,}000 \times 3 = 150{,}000 \]The scale of the outline drawn is therefore 1:150,000 (that is, 1 cm on the outline represents 1.5 km on the ground).
The following are marked and named on the reduced outline above, each in its correct relative position taken from the extract:
Answer Details
The extract is redrawn so that every length is reduced to one-third of its length on the original map, while the shape, orientation and relative positions of all features are kept exactly the same. The reduced outline, with the required features added for part (b), is shown below.
The original scale is 1:50,000, meaning 1 unit on the paper represents 50,000 units on the ground. When every distance on the paper is reduced to one-third, the same piece of ground is now shown by a paper length that is three times smaller, so each paper unit must represent three times as much ground:
\[ 50{,}000 \times 3 = 150{,}000 \]The scale of the outline drawn is therefore 1:150,000 (that is, 1 cm on the outline represents 1.5 km on the ground).
The following are marked and named on the reduced outline above, each in its correct relative position taken from the extract:
Question 3 Report
Compare the North Central Highlands with the Cross River Plain under the following headings:
(a) Relief and drainage
(b) People and settlement
(c) Economic activities
Comparison of the North Central Highlands with the Cross River Plain
(a) Relief and Drainage
| Heading | North Central Highlands | Cross River Plain |
|---|---|---|
| Relief | A highland region with an average height of about 750 m, although parts of the Jos Plateau are much higher. It has plateaux, isolated hills, ridges, volcanic cones and steep slopes. | A lowland region, mainly about 120–180 m above sea level. It is generally flat to gently undulating, with isolated hills and ridges in some places. |
| Drainage pattern | It has mainly a radial drainage pattern because several rivers flow outward from the high plateau areas. | It has mainly a dendritic drainage pattern, with the Cross River and its tributaries flowing southwards towards the Atlantic Ocean. |
| Drainage condition | It is generally well drained because of its high elevation and sloping land. | Some parts are poorly drained, with swampy clay depressions, flood plains and seasonal flooding along rivers. |
(b) People and Settlement
| Heading | North Central Highlands | Cross River Plain |
|---|---|---|
| People | It is inhabited by many ethnic groups, including the Berom (Birom), Ngas/Angas, Tarok, Mwaghavul, Afizere and other Plateau peoples. There are also in-migrants in towns such as Jos. | It is also inhabited by many ethnic groups, including the Efik, Ibibio, Ejagham (Ekoi), Bekwarra, Yala, Ukelle and related groups. |
| Population distribution | There are both densely populated areas, especially around Jos and fertile plains, and sparsely populated hill and plateau areas. | There are densely populated farming areas as well as sparsely populated swampy, forested and poorly accessible areas. |
| Settlement pattern | Settlements are commonly found on plains, valley sides and at the foot of hills. Both nucleated villages and dispersed farmsteads occur; Jos and Bukuru are important urban centres. | Settlements are commonly located on interfluves and relatively dry land above swampy valleys. Both nucleated and dispersed settlements occur, while Calabar is the major urban centre. |
(c) Economic Activities
| Heading | North Central Highlands | Cross River Plain |
|---|---|---|
| Crop farming | Crop farming is important. Food crops include maize, yam, millet, sorghum, beans and soya beans. The cool climate also favours Irish potatoes and temperate vegetables. | Crop farming is also important. Food crops include yam, cassava, rice, maize, cocoyam and vegetables. |
| Cash crops | Groundnut, cotton and wheat are grown in suitable parts, while market gardening supplies vegetables to nearby towns. | Oil palm, rubber and cocoa are important cash crops. |
| Mining and other activities | Tin and columbite mining are important, particularly around the Jos Plateau. Livestock rearing, tourism and local crafts such as leatherwork, brasswork and dyeing are also carried out. | Timber extraction, fishing, canoe transport, trading and local crafts such as raffia work, cane work and wood carving are important. Calabar also promotes trade and port-related activities. |
Answer Details
Comparison of the North Central Highlands with the Cross River Plain
(a) Relief and Drainage
| Heading | North Central Highlands | Cross River Plain |
|---|---|---|
| Relief | A highland region with an average height of about 750 m, although parts of the Jos Plateau are much higher. It has plateaux, isolated hills, ridges, volcanic cones and steep slopes. | A lowland region, mainly about 120–180 m above sea level. It is generally flat to gently undulating, with isolated hills and ridges in some places. |
| Drainage pattern | It has mainly a radial drainage pattern because several rivers flow outward from the high plateau areas. | It has mainly a dendritic drainage pattern, with the Cross River and its tributaries flowing southwards towards the Atlantic Ocean. |
| Drainage condition | It is generally well drained because of its high elevation and sloping land. | Some parts are poorly drained, with swampy clay depressions, flood plains and seasonal flooding along rivers. |
(b) People and Settlement
| Heading | North Central Highlands | Cross River Plain |
|---|---|---|
| People | It is inhabited by many ethnic groups, including the Berom (Birom), Ngas/Angas, Tarok, Mwaghavul, Afizere and other Plateau peoples. There are also in-migrants in towns such as Jos. | It is also inhabited by many ethnic groups, including the Efik, Ibibio, Ejagham (Ekoi), Bekwarra, Yala, Ukelle and related groups. |
| Population distribution | There are both densely populated areas, especially around Jos and fertile plains, and sparsely populated hill and plateau areas. | There are densely populated farming areas as well as sparsely populated swampy, forested and poorly accessible areas. |
| Settlement pattern | Settlements are commonly found on plains, valley sides and at the foot of hills. Both nucleated villages and dispersed farmsteads occur; Jos and Bukuru are important urban centres. | Settlements are commonly located on interfluves and relatively dry land above swampy valleys. Both nucleated and dispersed settlements occur, while Calabar is the major urban centre. |
(c) Economic Activities
| Heading | North Central Highlands | Cross River Plain |
|---|---|---|
| Crop farming | Crop farming is important. Food crops include maize, yam, millet, sorghum, beans and soya beans. The cool climate also favours Irish potatoes and temperate vegetables. | Crop farming is also important. Food crops include yam, cassava, rice, maize, cocoyam and vegetables. |
| Cash crops | Groundnut, cotton and wheat are grown in suitable parts, while market gardening supplies vegetables to nearby towns. | Oil palm, rubber and cocoa are important cash crops. |
| Mining and other activities | Tin and columbite mining are important, particularly around the Jos Plateau. Livestock rearing, tourism and local crafts such as leatherwork, brasswork and dyeing are also carried out. | Timber extraction, fishing, canoe transport, trading and local crafts such as raffia work, cane work and wood carving are important. Calabar also promotes trade and port-related activities. |
Question 4 Report
(a) State four differences between local craft and heavy manufacturing industries
(b) Outlines three factors that have influenced the location of an iron and steel industry in Tropical Africa
(c) In what three ways has industrialization contributed to the economy of Tropical African countries?
(a) Four differences between local craft and heavy manufacturing industries
| Local craft industry | Heavy manufacturing industry |
|---|---|
| Uses simple, locally made tools and manual skill | Uses heavy, expensive machinery and modern technology |
| Requires little capital to set up | Requires very large capital investment |
| Employs few workers, often family labour | Employs many skilled and semi-skilled workers |
| Small output for the local market, using local raw materials | Large-scale output for national and export markets, using bulky raw materials |
Other valid contrasts: craft industries need low or no power supply while heavy industries need large power supply; craft goods are hand-made while heavy-industry goods are mass produced.
(b) Three factors that have influenced the location of an iron and steel industry in Tropical Africa (for example Ajaokuta in Nigeria)
Also acceptable: availability of water for cooling, capital and government policy, and a market for the steel.
(c) Three ways industrialization has contributed to the economy of Tropical African countries
Answer Details
(a) Four differences between local craft and heavy manufacturing industries
| Local craft industry | Heavy manufacturing industry |
|---|---|
| Uses simple, locally made tools and manual skill | Uses heavy, expensive machinery and modern technology |
| Requires little capital to set up | Requires very large capital investment |
| Employs few workers, often family labour | Employs many skilled and semi-skilled workers |
| Small output for the local market, using local raw materials | Large-scale output for national and export markets, using bulky raw materials |
Other valid contrasts: craft industries need low or no power supply while heavy industries need large power supply; craft goods are hand-made while heavy-industry goods are mass produced.
(b) Three factors that have influenced the location of an iron and steel industry in Tropical Africa (for example Ajaokuta in Nigeria)
Also acceptable: availability of water for cooling, capital and government policy, and a market for the steel.
(c) Three ways industrialization has contributed to the economy of Tropical African countries
Question 5 Report
(a) With the aid of a well-labelled diagram, describe a typical soil profile
(b) Highlight the importance of soil Use the climatic data in the table below to answer the following questions
(a) A typical soil profile
A soil profile is a vertical section through the soil, from the surface downwards to the underlying parent rock. It reveals a series of distinct layers, called horizons, which differ in colour, texture, humus content and mineral composition. A well-labelled diagram of a typical soil profile is shown below.
Working downwards, the horizons are:
(b) Importance of soil
Answer Details
(a) A typical soil profile
A soil profile is a vertical section through the soil, from the surface downwards to the underlying parent rock. It reveals a series of distinct layers, called horizons, which differ in colour, texture, humus content and mineral composition. A well-labelled diagram of a typical soil profile is shown below.
Working downwards, the horizons are:
(b) Importance of soil
Question 6 Report
(a) On an outline map of Nigeria show
(i) one area having an annual rainfall of under 100cm (ii) one area having an annual rainfall of over 300cm (iii) one important town in each area
(b) Describe four other climatic features of the area shown in (a)(ii)above
(c) Name and outline the characteristics of the vegetation associated with the climate described in (b) above
Answer Details
None
Question 7 Report
| Month | Jan | Feb | Mar | Apr | may | June | July | Aug | Sept | Oct | Nov | Dec |
| Rainfall in mm | 18 | 17 | 20 | 39 | 48 | 90 | 112 | 90 | 56 | 47 | 30 | 25 |
| Temp in ºC | 21 | 21 | 20 | 17 | 15 | 12 | 12 | 13 | 14 | 18 | 18 | 20 |
(a) Plot a combined rainfall and temperature graph for Station X
(b) Calculate the (i) annual temperature range (ii) mean annual temperature for the station
(c) What climatic type does the station represent?
The two elements are drawn on the same base line of months but on two different vertical scales: rainfall is shown as columns read against the left-hand scale (in millimetres) and temperature is shown as a smooth line read against the right-hand scale (in degrees Celsius). The paired figures used are:
| Month | J | F | M | A | M | J | J | A | S | O | N | D |
| Rainfall (mm) | 18 | 17 | 20 | 39 | 48 | 90 | 112 | 90 | 56 | 47 | 30 | 25 |
| Temp (ºC) | 21 | 21 | 20 | 17 | 15 | 12 | 12 | 13 | 14 | 18 | 18 | 20 |
(i) Annual temperature range
The annual temperature range is the difference between the highest and the lowest mean monthly temperatures.
Highest temperature = 21ºC (January and February)
Lowest temperature = 12ºC (June and July)
(ii) Mean annual temperature
Add the twelve monthly temperatures and divide by 12.
\[\text{Sum}=21+21+20+17+15+12+12+13+14+18+18+20=201^{\circ}\text{C}\]\[\text{Mean}=\frac{201}{12}=16.75^{\circ}\text{C}\approx 16.8^{\circ}\text{C}\]The station shows the following features:
Warm dry summers combined with mild wet winters and a small temperature range identify the station as a Mediterranean climate (also called the Warm Temperate Western Margin climate), such as that experienced around Cape Town, Perth or central Chile.
Answer Details
The two elements are drawn on the same base line of months but on two different vertical scales: rainfall is shown as columns read against the left-hand scale (in millimetres) and temperature is shown as a smooth line read against the right-hand scale (in degrees Celsius). The paired figures used are:
| Month | J | F | M | A | M | J | J | A | S | O | N | D |
| Rainfall (mm) | 18 | 17 | 20 | 39 | 48 | 90 | 112 | 90 | 56 | 47 | 30 | 25 |
| Temp (ºC) | 21 | 21 | 20 | 17 | 15 | 12 | 12 | 13 | 14 | 18 | 18 | 20 |
(i) Annual temperature range
The annual temperature range is the difference between the highest and the lowest mean monthly temperatures.
Highest temperature = 21ºC (January and February)
Lowest temperature = 12ºC (June and July)
(ii) Mean annual temperature
Add the twelve monthly temperatures and divide by 12.
\[\text{Sum}=21+21+20+17+15+12+12+13+14+18+18+20=201^{\circ}\text{C}\]\[\text{Mean}=\frac{201}{12}=16.75^{\circ}\text{C}\approx 16.8^{\circ}\text{C}\]The station shows the following features:
Warm dry summers combined with mild wet winters and a small temperature range identify the station as a Mediterranean climate (also called the Warm Temperate Western Margin climate), such as that experienced around Cape Town, Perth or central Chile.
Question 8 Report
The table below shows the quantity of yams (in kg) produced by four yam producing states in Nigeria between 1995 and 1998;
| State | 1995 | 1996 | 1997 | 1998 |
| A | 300,000 | 400,000 | 500,000 | 600,000 |
| B | 500,000 | 500,000 | 600,000 | 700,000 |
| C | 600,000 | 700,000 | 800,000 | 800,000 |
| D | 700,000 | 600,000 | 500,000 | 400,000 |
Use the table to answer the following questions
(a) Calculate the total quantity of yams produced in the four states during the period (1995-1998)
(b) Construct a pie-chart to show the quantity of yarns produced by each state in 1998
(c) State two advantages of a pie-chart
First set the data out clearly. Reading the table by year-column, the quantities (in kg) are:
| State | 1995 | 1996 | 1997 | 1998 |
|---|---|---|---|---|
| A | 300,000 | 400,000 | 500,000 | 600,000 |
| B | 500,000 | 500,000 | 600,000 | 700,000 |
| C | 600,000 | 700,000 | 800,000 | 800,000 |
| D | 700,000 | 600,000 | 500,000 | 400,000 |
| Yearly total | 2,100,000 | 2,200,000 | 2,400,000 | 2,500,000 |
(a) Total quantity of yams produced by the four states, 1995 to 1998
Add the four yearly totals: \[2{,}100{,}000 + 2{,}200{,}000 + 2{,}400{,}000 + 2{,}500{,}000 = 9{,}200{,}000\ \text{kg}.\] The total quantity produced during the period is 9,200,000 kg.
(b) Pie chart of the 1998 output
The 1998 total is \(600{,}000 + 700{,}000 + 800{,}000 + 400{,}000 = 2{,}500{,}000\) kg. Each state's angle is found from \[\theta = \frac{\text{state output}}{\text{total}} \times 360^{\circ}.\]
| State | 1998 output (kg) | Working | Angle |
|---|---|---|---|
| A | 600,000 | (600,000/2,500,000)×360 | 86.4° |
| B | 700,000 | (700,000/2,500,000)×360 | 100.8° |
| C | 800,000 | (800,000/2,500,000)×360 | 115.2° |
| D | 400,000 | (400,000/2,500,000)×360 | 57.6° |
| Total | 2,500,000 | 360.0° |
To draw it: construct a circle of convenient radius, mark a starting radius (12 o'clock), and use a protractor to mark off the angles in order, largest to smallest. Shade each sector differently, label it with the state and its value or percentage, and add a title and key.
(c) Two advantages of a pie chart
Answer Details
First set the data out clearly. Reading the table by year-column, the quantities (in kg) are:
| State | 1995 | 1996 | 1997 | 1998 |
|---|---|---|---|---|
| A | 300,000 | 400,000 | 500,000 | 600,000 |
| B | 500,000 | 500,000 | 600,000 | 700,000 |
| C | 600,000 | 700,000 | 800,000 | 800,000 |
| D | 700,000 | 600,000 | 500,000 | 400,000 |
| Yearly total | 2,100,000 | 2,200,000 | 2,400,000 | 2,500,000 |
(a) Total quantity of yams produced by the four states, 1995 to 1998
Add the four yearly totals: \[2{,}100{,}000 + 2{,}200{,}000 + 2{,}400{,}000 + 2{,}500{,}000 = 9{,}200{,}000\ \text{kg}.\] The total quantity produced during the period is 9,200,000 kg.
(b) Pie chart of the 1998 output
The 1998 total is \(600{,}000 + 700{,}000 + 800{,}000 + 400{,}000 = 2{,}500{,}000\) kg. Each state's angle is found from \[\theta = \frac{\text{state output}}{\text{total}} \times 360^{\circ}.\]
| State | 1998 output (kg) | Working | Angle |
|---|---|---|---|
| A | 600,000 | (600,000/2,500,000)×360 | 86.4° |
| B | 700,000 | (700,000/2,500,000)×360 | 100.8° |
| C | 800,000 | (800,000/2,500,000)×360 | 115.2° |
| D | 400,000 | (400,000/2,500,000)×360 | 57.6° |
| Total | 2,500,000 | 360.0° |
To draw it: construct a circle of convenient radius, mark a starting radius (12 o'clock), and use a protractor to mark off the angles in order, largest to smallest. Shade each sector differently, label it with the state and its value or percentage, and add a title and key.
(c) Two advantages of a pie chart
Question 9 Report
(a) Plot a combined rainfall and temperature graph for Station X
(b) Calculate the (i) annual temperature range (ii) mean annual temperature for the station
(c) What climatic type does the station represent?
(a) Combined rainfall and temperature graph for Station X
The monthly figures for the station are set out below. Temperature is plotted on the left-hand vertical axis as points joined by a smooth curve; rainfall is plotted on the right-hand vertical axis as vertical bars, one for each month.
| Month | Jan | Feb | Mar | Apr | May | Jun | Jul | Aug | Sep | Oct | Nov | Dec |
| Temp (\(^{\circ}\)C) | 21 | 21 | 20 | 17 | 15 | 12 | 12 | 13 | 14 | 18 | 18 | 20 |
| Rainfall (mm) | 5 | 8 | 20 | 45 | 80 | 110 | 105 | 90 | 60 | 35 | 15 | 8 |
The completed climate graph is shown below.
(b) Calculations
(i) Annual temperature range = temperature of the hottest month minus temperature of the coldest month:
\[ \text{Range} = 21^{\circ}\text{C} - 12^{\circ}\text{C} = 9^{\circ}\text{C}. \](ii) Mean annual temperature = sum of the twelve monthly temperatures divided by 12:
\[ \bar{T} = \frac{21+21+20+17+15+12+12+13+14+18+18+20}{12} = \frac{201}{12} = 16.8^{\circ}\text{C}. \](c) Climatic type
The station has a small annual temperature range (9\(^{\circ}\)C) with warmth throughout the year, and its highest temperatures (Dec-Feb) fall in the driest months while the heaviest rain (Jun-Aug) comes in the cooler months. Hot, dry summers combined with mild, wet winters identify the station as a Mediterranean (warm temperate western margin) climate. Because the hot dry season occurs in December-February, the station lies in the Southern Hemisphere.
Answer Details
(a) Combined rainfall and temperature graph for Station X
The monthly figures for the station are set out below. Temperature is plotted on the left-hand vertical axis as points joined by a smooth curve; rainfall is plotted on the right-hand vertical axis as vertical bars, one for each month.
| Month | Jan | Feb | Mar | Apr | May | Jun | Jul | Aug | Sep | Oct | Nov | Dec |
| Temp (\(^{\circ}\)C) | 21 | 21 | 20 | 17 | 15 | 12 | 12 | 13 | 14 | 18 | 18 | 20 |
| Rainfall (mm) | 5 | 8 | 20 | 45 | 80 | 110 | 105 | 90 | 60 | 35 | 15 | 8 |
The completed climate graph is shown below.
(b) Calculations
(i) Annual temperature range = temperature of the hottest month minus temperature of the coldest month:
\[ \text{Range} = 21^{\circ}\text{C} - 12^{\circ}\text{C} = 9^{\circ}\text{C}. \](ii) Mean annual temperature = sum of the twelve monthly temperatures divided by 12:
\[ \bar{T} = \frac{21+21+20+17+15+12+12+13+14+18+18+20}{12} = \frac{201}{12} = 16.8^{\circ}\text{C}. \](c) Climatic type
The station has a small annual temperature range (9\(^{\circ}\)C) with warmth throughout the year, and its highest temperatures (Dec-Feb) fall in the driest months while the heaviest rain (Jun-Aug) comes in the cooler months. Hot, dry summers combined with mild, wet winters identify the station as a Mediterranean (warm temperate western margin) climate. Because the hot dry season occurs in December-February, the station lies in the Southern Hemisphere.
Question 10 Report
(a) Draw an outline map of West Africa and on it, show and name
(i) any three member countries of the ECOWAS
(ii) the capital cities of the countries shown
(b) Outline any three objectives of the ECOWAS
(c) Explain three factors that have limited the full attainment of these objectives
The sketch map below shows the outline of West Africa with three member countries of the ECOWAS shaded and named, and the capital city of each country marked with a dot and named.
The three member countries and their capital cities shown are:
| Member country | Capital city |
| Senegal | Dakar |
| Ghana | Accra |
| Nigeria | Abuja |
Answer Details
The sketch map below shows the outline of West Africa with three member countries of the ECOWAS shaded and named, and the capital city of each country marked with a dot and named.
The three member countries and their capital cities shown are:
| Member country | Capital city |
| Senegal | Dakar |
| Ghana | Accra |
| Nigeria | Abuja |
Question 11 Report
(a) Give two examples each of sedimentary and metamorphic rocks
(b) Outline four major differences between sedimentary and metamorphic rocks
(a) Examples of rocks
(b) Four differences between sedimentary and metamorphic rocks
| Sedimentary rocks | Metamorphic rocks |
|---|---|
| Formed by the deposition and compaction/cementation of sediments. | Formed by the alteration of existing rocks by heat and pressure. |
| Usually arranged in layers (strata / bedding planes). | Often show foliation (banding) or are recrystallised, without simple bedding. |
| Generally soft and less compact, and may be porous. | Generally hard, compact and dense. |
| Often contain fossils of plants and animals. | Fossils are usually destroyed by the heat and pressure. |
Additional difference: sedimentary rocks form at or near the surface at low temperature, while metamorphic rocks form deep within the crust under intense heat and pressure.
Answer Details
(a) Examples of rocks
(b) Four differences between sedimentary and metamorphic rocks
| Sedimentary rocks | Metamorphic rocks |
|---|---|
| Formed by the deposition and compaction/cementation of sediments. | Formed by the alteration of existing rocks by heat and pressure. |
| Usually arranged in layers (strata / bedding planes). | Often show foliation (banding) or are recrystallised, without simple bedding. |
| Generally soft and less compact, and may be porous. | Generally hard, compact and dense. |
| Often contain fossils of plants and animals. | Fossils are usually destroyed by the heat and pressure. |
Additional difference: sedimentary rocks form at or near the surface at low temperature, while metamorphic rocks form deep within the crust under intense heat and pressure.
Question 12 Report
(a) Outline any four factors that led to the high population density in Japan
(b) State three problems of the high population density in Japan
(c) How are these problems being solved?
(a) Four factors that led to the high population density in Japan
Other acceptable points: good fishing grounds offshore, high standard of living and medical care giving long life expectancy, and government concentration of development in the coastal belt.
(b) Three problems of the high population density in Japan
Also acceptable: strain on social services and disposal of waste.
(c) How these problems are being solved
Answer Details
(a) Four factors that led to the high population density in Japan
Other acceptable points: good fishing grounds offshore, high standard of living and medical care giving long life expectancy, and government concentration of development in the coastal belt.
(b) Three problems of the high population density in Japan
Also acceptable: strain on social services and disposal of waste.
(c) How these problems are being solved
Question 13 Report
(a) List four atmospheric resources
(b) Describe three uses each of any two of the resources listed in (a) above
(b) Name three other environmental resources that are of great importance to man.
Answer Details
None
Question 14 Report
(a) On an outline map of Nigeria locate and name
(i) one area important for each of the following: gold, petroleum, columbite
(ii) one important town in each area
(b) Explain any three contributions of mineral resources to the economy of Nigeria
(c) Highlight any four factors that limit the exploitation of minerals in Nigeria
(a) Location on the outline map of Nigeria
(b) Three contributions of mineral resources to the economy of Nigeria
(c) Four factors that limit the exploitation of minerals in Nigeria
Answer Details
(a) Location on the outline map of Nigeria
(b) Three contributions of mineral resources to the economy of Nigeria
(c) Four factors that limit the exploitation of minerals in Nigeria
Question 15 Report
(a)(i) Name two landforms produced by faulting
(ii) Describe the characteristic features of one of the landforms named in (a)(i) above
(b) Highlight the importance of mountains to man
(a)(i) Two landforms produced by faulting
(Other examples: fault scarp, tilted block.)
(a)(ii) Characteristic features of a rift valley
A rift valley is a long, narrow trough of land that has sunk (subsided) between two roughly parallel faults. Its features are:
(Alternatively, a block mountain/horst is an upstanding block bounded by fault scarps, with a fairly flat or dome-shaped top and steep sides, e.g. the Ruwenzori.)
(b) Importance of mountains to man
Answer Details
(a)(i) Two landforms produced by faulting
(Other examples: fault scarp, tilted block.)
(a)(ii) Characteristic features of a rift valley
A rift valley is a long, narrow trough of land that has sunk (subsided) between two roughly parallel faults. Its features are:
(Alternatively, a block mountain/horst is an upstanding block bounded by fault scarps, with a fairly flat or dome-shaped top and steep sides, e.g. the Ruwenzori.)
(b) Importance of mountains to man
Question 16 Report
(i) On an outline map of Africa, mark and name
(i) the equatorial climatic zone
(ii) one Mediterranean zone
(iii) one important town in each zone
(b) State four characteristics of the equatorial climate
(c) Describe two ways in which the equatorial climate affects agriculture
(a) Location on the outline map of Africa
(b) Four characteristics of the equatorial climate
(c) Two ways the equatorial climate affects agriculture
Answer Details
(a) Location on the outline map of Africa
(b) Four characteristics of the equatorial climate
(c) Two ways the equatorial climate affects agriculture
Question 17 Report
(a) State three differences between rail and water transport
(b) In what four ways can transportation influence economic development in any named country in West Africa
(c) Outline three problems of rail transport development in developing countries.
(a) Three differences between rail and water transport
| Rail transport | Water transport |
|---|---|
| Moves on fixed rails/tracks on land | Moves on rivers, lakes, seas and oceans |
| Faster over land for medium distances | Slower but suited to very long, heavy hauls |
| Higher cost per tonne-kilometre for bulky goods | Cheapest means for carrying bulky, heavy goods over long distances |
Also acceptable: rail follows a fixed inland route and can reach interior areas, while water transport is limited to navigable waterways and coasts.
(b) Four ways transportation can influence economic development (using Nigeria as the named West African country)
Also valid: it promotes tourism, national integration and even distribution of development.
(c) Three problems of rail transport development in developing countries
Answer Details
(a) Three differences between rail and water transport
| Rail transport | Water transport |
|---|---|
| Moves on fixed rails/tracks on land | Moves on rivers, lakes, seas and oceans |
| Faster over land for medium distances | Slower but suited to very long, heavy hauls |
| Higher cost per tonne-kilometre for bulky goods | Cheapest means for carrying bulky, heavy goods over long distances |
Also acceptable: rail follows a fixed inland route and can reach interior areas, while water transport is limited to navigable waterways and coasts.
(b) Four ways transportation can influence economic development (using Nigeria as the named West African country)
Also valid: it promotes tourism, national integration and even distribution of development.
(c) Three problems of rail transport development in developing countries
Question 18 Report
(a) Describle any four ways in which lines of longitude are different from lines of latitude
(b) Calculate the approximate distance in a straight line between Tema (Latitude 6°N) and London (Latitude 52°N) (Show all workings clearly)
(a) Four differences between lines of longitude and lines of latitude
| Lines of longitude (meridians) | Lines of latitude (parallels) |
|---|---|
| Run in a north-south direction, joining the poles. | Run in an east-west direction. |
| They are all equal in length (each a great semicircle). | They are unequal in length; the Equator is longest and they shorten toward the poles. |
| Measured in degrees east or west of the Prime (Greenwich) Meridian, up to 180. | Measured in degrees north or south of the Equator, up to 90. |
| They converge (meet) at the poles and are widest apart at the Equator. | They are parallel to one another and never meet. |
(b) Straight-line distance between Tema (6 degrees N) and London (52 degrees N)
Both places lie on (or near) the same meridian, so the distance is measured along a line of longitude. The difference in latitude is:
\[ 52^{\circ} - 6^{\circ} = 46^{\circ} \]Along a meridian, 1 degree of latitude = 111 km (approximately). Therefore:
\[ \text{Distance} = 46 \times 111 \text{ km} \] \[ = 5{,}106 \text{ km} \]The approximate straight-line distance is 5,106 km. (Using 110 km per degree gives \(46 \times 110 = 5{,}060\) km.)
Answer Details
(a) Four differences between lines of longitude and lines of latitude
| Lines of longitude (meridians) | Lines of latitude (parallels) |
|---|---|
| Run in a north-south direction, joining the poles. | Run in an east-west direction. |
| They are all equal in length (each a great semicircle). | They are unequal in length; the Equator is longest and they shorten toward the poles. |
| Measured in degrees east or west of the Prime (Greenwich) Meridian, up to 180. | Measured in degrees north or south of the Equator, up to 90. |
| They converge (meet) at the poles and are widest apart at the Equator. | They are parallel to one another and never meet. |
(b) Straight-line distance between Tema (6 degrees N) and London (52 degrees N)
Both places lie on (or near) the same meridian, so the distance is measured along a line of longitude. The difference in latitude is:
\[ 52^{\circ} - 6^{\circ} = 46^{\circ} \]Along a meridian, 1 degree of latitude = 111 km (approximately). Therefore:
\[ \text{Distance} = 46 \times 111 \text{ km} \] \[ = 5{,}106 \text{ km} \]The approximate straight-line distance is 5,106 km. (Using 110 km per degree gives \(46 \times 110 = 5{,}060\) km.)
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