نوع مقاله : پژوهشی

نویسندگان

1 استاد گروه جغرافیای طبیعی، دانشکده ادبیات و علوم انسانی، دانشگاه محقق اردبیلی، اردبیل، ایران

2 دانشجوی کارشناسی‌ارشد ژئومورفولوژی، دانشکده ادبیات و علوم انسانی، دانشگاه محقق اردبیلی، اردبیل، ایران

3 دانشجوی دکتری ژئومورفولوژی، دانشکده جغرافیا، تبریز، ایران

4 دانشجوی دکتری علوم و مهندسی آبخیزداری، دانشکده منابع طبیعی، دانشگاه تربیت مدرس، نور، ایران

5 دانشیار گروه منابع طبیعی و عضو پژوهشکده مدیریت آب دانشکده کشاورزی و منابع طبیعی، دانشگاه محقق اردبیلی

چکیده

مورفولوژی رودخانه‌ها در حفاظت و مقابله با سیلاب به واسطه پیوند و ارتباط آن با زیستگاه‌های طبیعی و انتقال سیلاب از اهمیت خاصی برخوردار است. بنابراین در پژوهش حاضر، رودخانه حمزه‌خانلو بر اساس سیستم ژئومورفولوژیکی رزگن مورد بررسی قرار گرفت. در این پژوهش جمع‌آوری داده‌ها در خصوص موضوع مورد مطالعه به‌طور کلی به دو روش کتابخانه‌ای و میدانی انجام شد. جهت شبیه‌سازی رودخانه و استخراج پارامترهای مورد نیاز از دو دسته ابزارهای فیزیکی شامل نقشه‌های زمین‌شناسی، توپوگرافی و کاربری‌اراضی و ابزارهای مفهومی از جمله نرم‌افزارهای ArcGIS و HEC-RAS استفاده شد. نتایج به‌دست آمده از مدل رزگن نشان داد که رودخانه حمزه‌خانلو در قسمت‌هایی که مقاطع در طبقه C قرار گرفته‌اند دارای حساسیت به تلاطم و کنترل پوشش‌گیاهی بسیار بالا و پتانسیل بازیابی و تأمین رسوب بالا هستند، در حالی‌که قسمت‌هایی که در طبقه B قرار دارند درجه حساسیت به تلاطم و تأمین رسوب و تأثیر کنترل پوشش‌گیاهی متوسط و پتانسیل احیا عالی است. در نتیجه در انتهای بازه سوم و بیش‌تر بخش‌های بازه چهارم شیب رودخانه بین 2 تا 4/0 درصد قرار گرفته و رسوبات ماسه‌ای در کف رودخانه قابل مشاهده است که منجر به ایجاد دره‌های باریکی می‌شود که توسعه یک دشت وسیع سیلابی را محدود می‌کند. بنابراین الگوهای مجرای موجود در رودخانه و به تبع آن پارامترهای مؤثر در طبقه‌بندی و تفکیک مجراها با مدل رزگن مطابقت دارند.

کلیدواژه‌ها

عنوان مقاله [English]

Geomorphological classification and analysis of Hamzekhanloo River using the Rosgen classification model

نویسندگان [English]

  • Fariba Esfandiyari Darabad 1
  • Rasoul Bakhshandeh 2
  • Masoud Rahimi 3
  • Khadijeh Haji 4
  • Raoof Mostafazadeh 5

1 Professor, Department of Natural Geography, Faculty of Literature and Humanities, University of Mohaghegh Ardabili, Iran

2 M.Sc. Student of Geomorphology, Faculty of Literature and Humanities, University of Mohaghegh Ardabili, Iran.

3 Ph.D Student of Geomorphology, Faculty of Geography, University of Tabriz, Iran.

4 Ph.D Student of Watershed Management Engineering & Sciences, Faculty of Natural Resources, Tarbiat Modares University, Noor, Iran

5 Associate Professor,, Department of Natural Resources, and member of Water Management Research Center,, Faculty of Agricultural and Natural Resources, University of Mohaghegh Ardabili, Ardabil

چکیده [English]

1-Introduction
The changes in river processes due to river discharge and sedimentation as a primary principle driving force can affect the geometry of rivers. Determining the amount of sediment and floodplain and water quality study are prerequisites for river management operations. Any change in the steady-state of the rivers will result in physical changes in the rivers and a new reaction to the rivers' behavior. Morphological studies to determine the quantity and quality of river response will predict future river behavior. The downstream river reaches of the Hamzekhanloo River basin is one of the most important agricultural areas of Germi city due to its fertile flood plains and sufficient water availability, which has undergone many changes in recent years. In this study, the Hamzekhanloo River was investigated based on the Rosgen stream classification scheme.
2-Methodology
The Hec-Ras hydrodynamic model was used to simulate the Hamzekhanloo River cross-sections and floodwater capacity. The processing of the required data for modeling purposes was performed at the ArcGIS software; the classification of stream reaches was done using the Rosgen stream classification system. Rosgen classification system predicts river behavior based on morphology and hydraulic relationship and flow sediment with specific morphology. Based on Rosgen's method, morphological characteristics of rivers are investigated at four different levels but focuses more on two

 
levels of general geomorphic properties and morphological description. Level 1 (General Classification): Describes the morphological characteristics of the river obtained by combining information on catchment, landform, and valley morphology. Level two (descriptive classification) of the river.
3-Results and Discussion
The results of the Rosgen classification scheme showed that the studied river had been classified at the C class in some river reaches, which had high flood sensitivity, high vegetation control, high sediment recovery, and sediment supply potential. Also, these reaches had narrow to wide valleys, constructed from alluvial deposition with a well-developed floodplain. Meanwhile, some sections of the study river fall in the B class according to the Rosgen classification. These reaches exist primarily on moderately steep to gently sloped terrain, resulting in narrow valleys that limit the development of a wide floodplain. These streams display a low channel sinuosity, and streambank erosion rates are normally low. The sensitivity to flooding and sediment supply is high; the influence of moderate vegetation control and recovering potential is excellent. Moreover, the cross-section patterns in the river and the parameters affecting the classification and segmentation of reaches are consistent with the overall pattern on the Rosgen classification model.
4-Conclusions
The river bed of the Hamzekhanloo River is a combination of rubble, gravel, and sand. Farmers and gardeners dig the riverbed and store water to irrigate the orchard fields and gardens during the summer, and crop cultivation is observed in the river bed and floodplain. Sand mining is a common activity in the river bed to carry out the development and construction purposes of the area. Sand removal from the riverbed has led to the formation of ponds within the basin, and such alterations have altered the bed and morphology of the Hamzekhanloo River. Thus, Rosgen's model can predict the geomorphic quantification of the Hamzekhanloo River and rivers with similar conditions. This type of river channel morphological classification can be used to develop engineering designs and management implications and river restoration.

کلیدواژه‌ها [English]

  • Flood zone
  • Rosgen model
  • Hec-Ras hydrodynamic model
  • Hamzekhanloo River
Abdollahzadeh, A., Ownegh, M., Sadoddin, A., & Mostafazadeh., R. (2016). Constraints to residential land use development arising from flood ‎and runoff coefficient in a land use planning framework, case study: ‎Ziarat Watershed, Golestan Province. Watershed Engineering and Management, 8(2), 221-235. (In Persian)
Angela, C.B., Javier, C.J., Teresa, G.M., & Marisa, M.H. (2015). Hydrological evaluation of a peri-urban stream and its impact on ecosystem services potential. Global Ecology and Conservation, 3, 628-644.
 
Ariayi, H., & Lashkar-Ara, B. (2018). Geomorphological classification of the Balaroud River using Rosgen theory. 11th International River Engineering Conference, Ahvaz, Shahid Chamran University of Ahvaz, 1-9. (In Persian)
 
Bakhshandeh, R. (2020). Geomorphological analysis of Hamze Khanloo River channel by using the Rosgen model (Case study: from Ini Olya village to Tappeh Bashi village). M.Sc Thesis, Natural Geographical, Geomorphology, 110 p. (In Persian)
Bellos, V., Tsakiris, V.K., Kopsiaftis, G, & Tsakiris, G. (2020). Propagating dam breach parametric uncertainty in a river reach using the HEC-RAS software. Hydrology, 7(4), 72.
Brunner, G.W. (2010). HEC-RAS River analysis system hydraulic reference manual, us army corps of engineers, version 4.1.
Deputy for strategic planning and supervision. 2012. Guidelines river morphology studies, Publication No. 592, pp. 1-66.
Esfandiary Darabad, F., Rahimi, M., Lotfy, K., & Elhameh, E. (2020). Lateral change detection of Ghezlozan river channel from 1993 to 2013. Researches in Geographical Sciences, 20(57), 113-124. (In Persian)
Goodarzi, M.R., & Fatehifar, A. (2019). Statistical distributions analysis for estimating of climate change effects on future floods (case Study: Azarshahrchay Basin). Hydrogeomorphology, 5(20), 57-78. (In Persian)
Kheirizadeh Arough, M., Rezaei Moghaddam, M.H., Daneshfaraz, R., & Rajabi, M. (2018). Morphological analysis of Zarrineh-Roud river using Rosgen model. Physical Geography Research Quarterly, 50(1), 101-122. (In Persian)
Kheirizadeh Arough, M., Rezaei Moghaddam, M.H., Rajabi, M., & Daneshfaraz, R. (2017). Analyzing lateral changes of the Zarrineh-Roud river channel using geomorphometric techniques. Quantitative Geomorphological Research, 5(4), 76-102. (In Persian)
Kleinhans, M.G., & Van den Berg, J.H. (2011). River channel and bar patterns explained and predicted by an empirical and physics-based method. Earth Surface Processes and Landforms, 36, 721-738.
Kondolf, G.M, and Piegay, H. (2003). Tools in fluvial geomorphology. John Wiley & Sons Ltd, 688 P.
Layeghi, S., & Karam, A. (2014). Hydrogeomorphological classification of Jajrood river with Rosgen model. Quantitative Geomorphological Research, 3(3), 130-143. (In Persian)
Mollazehi, A., Pudineh, M., Khosravi, M., Armesh, M., & Dehvari, A. (2020). Assessment of the potential flood risk in Sarbaz drainage basin. Researches in Geographical Sciences, 20 (58), 241-260. (In Persian)
Mostafazadeh, R., Haji, Kh., & Zabihi, M. (2018). Analysis of monthly flow discharge occurrence pattern using Power Laws Analysis in some hydrometric stations of Mazandaran province. Iranian Journal of Soil and Water Research, 48(5), 1073-1085. (In Persian)
Nasiri Khiavi, A., Faraji, A., & Mostafazadeh, R. (2020). Streamflow response to rainfall changes using the climate elasticity index in some watersheds of Ardabil province. Hydrogeomorphology, 6(21), 1-22. (In Persian)
Natural Resources Conservation Service (2008). Stream restoration design (National Engineering Handbook 654), Technical Supplement 3E: Rosgen Stream Classification Technique Supple mental Materials, United States Department Agriculture. (In Persian)
Nayyeri, H., Osati, KH., & Osmani, P. (2017). Geomorphological equilibrium by Rosgen and river style framework methods (Case study: Tarwal River, Kurdistan). Physical Geography Research Quarterly, 49(3), 541-556. (In Persian)
Pregun, C. (2016). Ecohydrological and morphological relationships of a regulated lowland river; based on field studies and hydrological modeling. Ecological Engineering, 94, 608-616.
Rezaei Moghadam, M.H., Nikjoo, M.R., Yasi, M., & Rahimi, M. (2017). Geomorphological analysis of Gara Sou river channel using Hierarchical Rosgen model (from Sabalan Dam to confluence of Ahar-Chay River). Quantitative Geomorphological Research, 6(2), 1-14. (In Persian)
Rosgen, D.L. (1994). A classification of natural rivers. Catena, 22, 169-199.
Rosgen, D.L. (1997). A geomorphological approach to restoration of incised rivers. Proceedings of the Conference on Management of Landscapes Disturbed by Channel Incision, pp: 1-11
Shroder, J.F. (2013). Treatise on geomorphology: treatise on fluvial geomorphology. Vol. 9, Elsevier Inc, 860p.
Splinter, D.K., & Dauwalter, D.C. (2016). Frequency of large in-channel wood in eastern Oklahoma ecoregions and its association with channel morphology. Geomorphology, 269, 175-185.
Yaghoob Nejad ASL, N., Esfandiary Darabad, F., Asghari, S., & Karam, A. (2020). Evaluation of morphological status of Taleghan River from 2006 to 2016. Quantitative Geomorphological Researches, 9(1), 67-85. (In Persian)
Yamani, M., Maghsoudi, M., Mohammad Khan, SH., & Mordai, A. (2015). Morphological classification of Telvar river waterway based on Rosgen method and its efficiency (distance between Kichigord village to Hasankhan). Journal of Researches in Earth Sciences, 23, 1-18. (In Persian)