تأثیر شرایط جریان بر توپوگرافی بستر قوس 180 درجه توأم با گروه پایه‌های 6 تایی کج-عمودی و در حالت عمود بر جریان

نوع مقاله : پژوهشی اصیل (کامل)

نویسندگان
دانشگاه خلیج فارس
چکیده


امروزه احداث پایه ­های کج در پل­های بسیاری در سراسر جهان به چشم می­خورد. در حالی که مطالعات محدودی پیرامون آبشستگی این گونه پایه­ها انجام شده است. نظر به اهمیت صدمات جدی پدیده آبشستگی، ساخت گروه پایه­های عمودی-کج و مجهول بودن اثرات آن بالاخص در مسیرهای دارای خم، این موضوع مورد بررسی قرار گرفت. در این پژوهش، اثر چیدمان متفاوت پایه پل عمودی و کج در گروه پایه­های 6 تایی، در کنار تأثیر شرایط جریان و موقعیت قرارگیری گروه پایه در قوس 180 درجه تند در آزمایشگاه بررسی شد. نتایج نشان می­دهد که حداکثر عمق آبشستگی و تراز رسوبگذاری در موقعیت 60 درجه و شرایط بستر زنده رخ می­دهد. این مقادیر به ترتیب معادل 2/4 و 2/3 برابر قطر پایه اندازه­گیری شد. در هر سه موقعیت استقرار گروه پایه­ها در قوس، حداکثر عمق آبشستگی ناشی از قرارگیری گروه پایه همگرا-عمودی می­باشد. در حالی که حداکثر تراز رسوبگذاری در حالت استقرار گروه پایه واگرا-عمودی ایجاد شده است.

کلیدواژه‌ها

موضوعات


عنوان مقاله English

The Effect of Flow Conditions on Bed Topography in a 180 Degree Bend Containing 6- Inclined-Vertical Pier Groups in a Vane Perpendicular to the Flow

نویسندگان English

Leila Eghbalnik
Mohammad Vaghefi
Mohammad Reza Golbaharhaghighi
Persian Gulf University
چکیده English

Construction of inclined piers has been observed in a great number of bridges worldwide today. With installation of the bridge piers on river path, the simple and steady flow pattern reaching the pier undergoes intense and complicated changes. Complicated vortex systems created around the pier dig around the pier a hole called a scour hole. Expansion of such a hole around the piers empties the foundations from beneath, leading to consequent destruction of the foundations and the bridge. Whereas, few studies have been conducted to address scour at inclined piers. This issue was investigated in light of the significance of severe damages caused by the scouring phenomenon, the construction of vertical-inclined piers and their untold effects specifically in meandering paths. In this study, the effect of different arrangements of inclined and vertical bridge piers (in convergent and divergent fashions), installed at the vane vertical to the flow, was analyzed along with the effect of flow conditions and the position of the pier groups at the 180 degree sharp bend on parameters such as the maximum scour depth, the maximum sedimentation level, the scour hole dimensions, etc. in the laboratory. To conduct the experiments, a channel consisting of a 180 degree sharp bend was utilized. Due to its 2-meter-long central curvature radius, it is classified as a sharp bend. The channel contains upstream and downstream straight ends respectively as long as 5 and 6.5 meters. The experiments were carried out under clear water (where u/uc is equal to 0.87), incipient motion (u/uc = 0.98), and mobile bed (u/uc = 1.03) conditions. Two vertical and four inclined piers formed the pier group. The diameter of the piers was selected 5 cm and their inclination angle was 21 degrees. The pier groups were placed at the 60, 90, and 120 degree positions of the bend. Results indicated that the maximum scour depth and level of sedimentation occurred at the 60 degree position under live bed conditions. These values were measured equal to 4.2 and 3.2 times the pier diameter. In every three position of the installation of the piers at the bend, the maximum scour depth occurred due to position of the convergent-vertical pier group. However, the maximum sedimentation level occurred in the case of positioning the divergent-vertical pier group. In both pier groups, the maximum scour depth occurred in the vicinity of the inclined pier near the outer bank in the first row. Changing the position of the piers from the 60 to 90 and 120 degree angles leads the maximum sedimentation level to occur at a distance closer to the vicinity of the pier group. Such a distance was obtained in those three positions to be respectively 42, 28, and 22 times the pier diameter on the average. In both pier groups, the minimum area of the scour hole occurred at the 120 degree position. Further, the maximum area was observed in the experiments on the 60 degree position. Shifting the flow regime from the clear flow to incipient motion resulted in an increase in the area of the scour hole. Such an increase is observed in every three position per both pier groups.

کلیدواژه‌ها English

scour
6- Pier groups
Bed topography
Sharp 180-degree bend
u/uc
[1] Simons D. B. & Senturk F. 1992 Sediment transport technology: water and sediment dynamics. Technology & Engineering, Water Resources Publication, Littleton, Colorado, USA.
[2] Parker, G. W. 1998 Comparison of erosion and channel characteristics. Water Resources Engineering, 315-319.
[3] Dargahi B. 1990 Controlling mechanism of local scouring. Journal of Hydraulic Engineering, 116(10), 1197-1214.
[4] Chabert J. & Engeldinger P. 1956 Etude des affouillements autour des piles des ponts. Report Laboratoire National d’Hydraulique, Chatou, France.
[5] Shen H. W., Schneider V. R. & Karaki S. S. 1966 Mechanics of local scour. Institute for Applied Technology, U.S. Department of Commerce. National Bureau of Standards.
[6] Chiew Y. M. & Melville B. W. 1987 Local scour around bridge piers. Journal of Hydraulic Research, 25(1), 15-26.
[7] Melville B. W. & Sutherland A. J. 1988 Design method for local scour at bridge piers. Journal of Hydraulic Engineering, 114(10), 1210-1226.
[8] Dey S., Bose S. K. & Sastry G. L. 1995 Clear water scour at circular piers: a model. Journal of Hydraulic Engineering, 121(12), 869-876.
[9] Melville B. W. & Chiew Y. M. 1999 Time scale for local scour at bridge piers. Journal of Hydraulic Engineering, 125(1), 59-65.
[10] Oliveto G. & Hager W. H. 2002 Temporal evolution of clear-water pier and abutment scour. Journal of Hydraulic Engineering, 128(9), 811-820.
[11] Sheppard, D.M. and Miller Jr, W. 2006 Live-bed local pier scour experiments. Journal of Hydraulic Engineering, 132(7), 635-642.
[12] Fael C., Lança R. & Cardoso A. 2016 Effect of pier shape and pier alignment on the equilibrium scour depth at single piers. International Journal of Sediment Research, 31(3), 244-250.
[13] Masjedi A. M., Bejestan S. & Kazemi H. 2010 Effects of bridge pier position in a 180 degree flume bend on scour hole depth. Journal of Applied Sciences, 10(8), 670-675.
[14] Vaghefi M., Tabib Nazhad Motlagh M. J., Hashemi S. S. & Moradi S. 2018 Experimental study of bed topography variations due to placement of a triad series of vertical piers at different positions in a 180° bend. Arabian Journal of Geosciences, 5(11), 102.
[15] Bozkus Z. & Yildiz O. 2004 Effects of inclination of bridge piers on scouring depth. Journal of Hydraulic Engineering, 130(8), 827-832.
[16] Bozkus Z. & Çeşme M. 2010 Reduction of scouring depth by using inclined piers. Canadian Journal of Civil Engineering, 37(12), 1621-1630.
[17] Eghbalnik L, Vaghefi M. & Golbaharhaghighi M. R. 2016 Experimental investigation of scour pattern around the group of three divergent-vertical and convergent-vertical bridge piers in a 180 degree sharp bend. Journal of Hydraulics, 11(3), 73-79, (in Persian).
[18] Vaghefi M., Ghodsian M. & Salimi S. 2016 The effect of circular bridge piers with different inclination angles toward downstream on scour. Sadhana, 41(1), 75-86.
[19] Vaghefi M., Ghodsian M. & Salimi S. 2016 Scour formation due to laterally inclined circular pier. Arabian Journal for Science and Engineering, 41(4), 1311-1318.
[20] Ben Mohammad Khajeh S., Vaghefi M. & Mahmoudi A. 2017 The scour pattern around an inclined cylindrical pier in a sharp 180-degree bend: an experimental study. International Journal of River Basin Management, 15(2), 207-218.
[21] Leschziner M. A. & Rodi W. 1979 Calculation of strongly curved open channel flow, Journal of the Hydraulics Division, 105(10), 1297-1314.
[22] Raudkivi A. J. & Ettema R. 1983 Clear-water scour at cylindrical piers. Journal of Hydraulic Engineering, 109(3), 339-350.
[23] Chiew Y. M. 1984 Local scour at bridge piers. PhD Thesis, University of Auckland.