- •Unit 1. Lesson1.
- •Vocabulary:
- •Lesson 2
- •1.Прочитайте и переведите текст. Water is life.
- •Vocabulary:
- •Lesson 3
- •1.Прочитайте и переведите текст. The hydrologic cycle.
- •Lesson 4.
- •1.Прочитайте и переведите текст. The water of the Earth
- •Lesson 5.
- •1. Прочитайте и переведите текст. Hydraulics.
- •Vocabulary:
- •Lesson 6.
- •1.Прочитайте и переведите текст.
- •Vocabulary:
- •Lesson 7.
- •1.Прочитайте и переведите текст. Water in Moscow.
- •Vocabulary:
- •Lesson 8.
- •1. Прочитайте и переведите текст. The spring water of Moscow
- •Vocabulary:
- •Lesson 9.
- •Прочитайте и переведите текст. Moscow waterworks.
- •Vocabulary:
- •Lesson 10.
- •1.Прочитайте и переведите текст Where Moscow’s water flows from
- •Vocabulary:
- •Lesson 11.
- •1.Прочитайте и переведите текст. Water: Pay More, Use Less.
- •Vocabulary:
- •Lessons 12-13.
- •1. Прочитайте и переведите текст.
- •Part 1.
- •Vocabulary:
- •Vocabulary:
- •Lessons 14-15. Water Supply and sewages
- •1.Прочитайте и переведите текст.
- •Vocabulary:
- •Part 4 .
- •Vocabulary:
- •Lesson16.
- •1.Прочитайте и переведите текст. How can the Aral Sea be saved?
- •Vocabulary:
- •Lesson 17.
- •1.Прочитайте и переведите текст. Keeping the Caspian clean.
- •Vocabulary:
- •Lesson 18.
- •1.Прочитайте и переведите текст. What is to be done with the Sea of Azov.
- •Vocabulary:
- •Lesson 19.
- •1. Прочитайте и переведите текст.
- •Volga water is not sufficient
- •Lesson 20.
- •1. Прочитайте и переведите текст. Watching the ecology.
- •Text 2 Sprinkler irrigation
- •Text 3 Subirrigation
- •Text 1 The perspective and objectives of irrigation
- •Irrigation methods and their selection
- •2.1 Compatibility
- •2.3.Topographical characteristics
- •2.4. Soils
- •2.5. Water supply
- •2.6.Crops
- •2.7. Social influences
- •2.8. External influences
- •2.9. Summary
- •3.1.2 Scope of the guide
- •3.1.3 Evolution of the practice
- •3.2 Surface irrigation methods
- •3.2.1 Basin irrigation
- •3.2.2 Border irrigation
- •3.2.4 Uncontrolled flooding
- •3.3 Requirements for optimal performance
- •3.3.1 Inlet discharge control
- •3.3.2 Wastewater recovery and reuse
- •3.4 Surface irrigation structures
- •3.4.1 Diversion structures
- •3.4.2 Conveyance, distribution and management structures
- •3.4.3 Field distribution systems
- •Text 4 Advantages and disadvantages of surface irrigation
- •4.1. Advantages
- •4.2. Disadvantages
- •Text 5.
- •5.1.Objective and scope of design
- •5.2 The basic design process
- •5.2.1. Preliminary design
- •5.2.2 Detailed design
- •5.3 Computation of advance and intake opportunity time
- •5.4 Furrow irrigation flow rates, cutoff times, and field layouts
- •5.4.1 Furrow design procedure for systems without cutback or reuse
- •5.4.2 Design procedure for furrow cutback systems
- •5.4.3 Design of furrow systems with tailwater reuse
- •5.4.4 Furrow irrigation design examples
- •5.5 Border irrigation design
- •5.5.1 Design of open-end border systems
- •5.5.2 Design of blocked-end borders
- •5.5.4 A blocked-end border design example
- •5.6 Basin irrigation design
- •5.6.1 An example of basin design
- •5.7 Summary
- •Text 6. Field measurements
- •Text 7. Determining water requirements
- •Figure 2 a perspective of the on-farm water balance
- •Figure3 The perspective of water balance at the field level
- •An example problem on soil moisture
- •Text 2 Environmental problems
- •Text 3 Aral Sea- What Was and What Is
- •Is the climate warming?
- •Conclusion.
- •Glossary of terms
- •Vocabulary
Irrigation methods and their selection
There are three broad classes of irrigation systems: (1) pressurized distribution; (2) gravity flow distribution; and (3) drainage flow distribution. The pressurized systems include sprinkler, trickle, and the array of similar systems in which water is conveyed to and distributed over the farmland through pressurized pipe networks. There are many individual system configurations identified by unique features (centre-pivot sprinkler systems). Gravity flow systems convey and distribute water at the field level by a free surface, overland flow regime. These surface irrigation methods are also subdivided according to configuration and operational characteristics. Irrigation by control of the drainage system, subirrigation, is not common but is interesting conceptually. Relatively large volumes of applied irrigation water percolate through the root zone and become a drainage or groundwater flow. By controlling the flow at critical points, it is possible to raise the level of the groundwater to within reach of the crop roots. These individual irrigation systems have a variety of advantages and particular applications which are beyond the scope of this paper. Suffice it to say that one should be familiar with each in order to satisfy best the needs of irrigation projects likely to be of interest during their formulation.
Irrigation systems are often designed to maximize efficiencies and minimize labour and capital requirements. The most effective management practices are dependent on the type of irrigation system and its design. For example, management can be influenced by the use of automation, the control of or the capture and reuse of runoff, field soil and topographical variations and the existence and location of flow measurement and water control structures. Questions that are common to all irrigation systems are when to irrigate, how much to apply, and can the efficiency be improved. A large number of considerations must be taken into account in the selection of an irrigation system. These will vary from location to location, crop to crop, year to year, and farmer to farmer. In general these considerations will include the compatibility of the system with other farm operations, economic feasibility, topographic and soil properties, crop characteristics, and social constraints (Walker and Skogerboe, 1987).
2.1 Compatibility
The irrigation system for a field or a farm must function alongside other farm operations such as land preparation, cultivation, and harvesting. The use of the large mechanized equipment requires longer and wider fields. The irrigation systems must not interfere with these operations and may need to be portable or function primarily outside the crop boundaries (i.e. surface irrigation systems). Smaller equipment or animal-powered cultivating equipment is more suitable for small fields and more permanent irrigation facilities.
2.2. Economics
The type of irrigation system selected is an important economic decision. Some types of pressurized systems have high capital and operating costs but may utilize minimal labour and conserve water. Their use tends toward high value cropping patterns. Other systems are relatively less expensive to construct and operate but have high labour requirements. Some systems are limited by the type of soil or the topography found on a field. The costs of maintenance and expected life of the rehabilitation along with an array of annual costs like energy, water, depreciation, land preparation, maintenance, labour and taxes should be included in the selection of an irrigation system.
