Wednesday, September 18, 2019
Prof. Qi Pu Invited to Popular TV Show of "Only You" (Tianjin TV)
Professor Qi Pu participated in the silver-hair section of the popular TV show, "Only You" of Tianjin Satellite TV in May 2018. Professor Qi Pu, 76 years old, is from the Lower Yellow River, near Zhengzhou, Henan Province in Central China. Since the 1960s, he has been committed to the research and governance of the Yellow River. He has presided over the Yellow River related Science-Technology Project of the National '8th Five-Year-Plan' of China, and won the second prize of scientific and technological progress in Henan Province. As the role model in his position, he was warmly received by the national and provincial leaders. During the show, Professor Qi Pu said: "The Yellow River has changed dramatically, and it's my sincere life-long wish that this river will no longer flood in the future."
Tuesday, August 27, 2019
Xiaolangdi Hydropower Project on the Lower Yellow River
The 1,836MW Xiaolangdi Project was completed in 2000, one year ahead of schedule, and is now generating 5.1 billion kWh of electricity a year. The World Bank reports that a total cost was $3.5 billion ($700 million lower than projected), with $1 billion on resettlement costs for about 200,000 people. Xiaolangdi Project, a key Chinese national project, is located 40km north of the ancient city of Luoyang in central China’s Henan Province. The project is the largest of its kind on the Yellow River and is second only to the Three Gorges Project on the Yangtze. It consists of underground generating units, silt-discharge channels, and a 1,317m-long, 154m-high dam.

Multipurpose Dam Project
Xiaolangdi is a multi-purpose project for flood control, ice control, dredging, industrial and municipal water supply and hydroelectric power. The region surrounding the lower reaches of China’s second longest river is densely populated and a major agricultural area. It has been subjected to devastating Yellow River floods, which China is determined to end. Xiaolangdi is one of 27 dams planned for the river. Yellow River projects are especially challenging because of local conditions. Rapid loss soil erosion upstream builds up into high sediment levels downstream. This raises the river bed and causes floods. The project’s 12.8km³ reservoir extends for 130km. It is designed to trap sediment for the first 20 years of operation and then reach equilibrium. A complex system of 15 large tunnels with an underground powerhouse makes it possible to flush sediments by creating controlled floods in the main river channel. Three silt-discharge tunnels were completed ahead of schedule in spring 1999 to ensure the project could cope during the summer flood season.

Hydro Turbines, Governors and Gates
Voith supplied the six hydro turbines, governors and gates for Xiaolangdi. During the flood season, the units will operate with sediment-laden flow under extremely hostile conditions. Pioneering coating techniques have been employed to protect the components from erosion in the heavily silt-laden water.
“China plans to increase its electric power capacity by between 8% and 9% per year to meet growing demand from both industry and private consumers.”
The plant will only be utilized at full capacity at periods of peak demand and during the flood season. At most times only two of the six generators will be online to limit water discharge to 400m³/s. While much of the Voith equipment was manufactured at the company’s plant in York, USA, the group’s new Chinese joint venture, Shanghai High-Technology Equipment Company (SHEC), also produced equipment for the project. (Voith and Siemens both support SHEC). Harbin Electric Machinery Co Ltd supplied the six 333MVA generators and Dongfang Electrical Machinery also supplied electrical equipment. Elin Energieversorgung of Austria engineered and supplied control and monitoring equipment.
Xiaolangdi Project Layout
Because the Xiaolangdi project had to meet a number of objectives the layout of the scheme is very complicated and rather different from straightforward hydropower plant.
The underground power room and all water conveyance tunnels are located in the left bank, which resulted in a complex layout and closely spaced underground excavations. The underground powerhouse complex consists of a 251.5m-long, 26.2m-wide and 61.44m-high powerhouse, a 150m-long, 15.2m-wide and 18.3m-high transformer chamber and a 15m-long, 15m-wide draft tube gate chamber. Six draft tube tunnels discharge into the draft tube gate chamber and three 12m-wide, 19m-high tailrace tunnels exit from the gate chamber.
Hydropower Project Costs
The total projected cost was $4.2 billion. The World Bank approved debt finance for the project in 1994, covering around 44% of the value of contracts with foreign construction groups. The $570 million Xiaolangdi loan is the Bank’s most important Chinese commitment. The US Export-Import Bank provided $58 million to cover US exports of turbines. Chinese state and provincial bodies funded the remainder of the project.
The power plant’s capacity is 1,836MW (six 306MW Francis turbines), generating 5.1 billion kWh of electricity a year. Preparatory work began in 1991. Main orders were placed in 1993 and 1994. One of the landmark events of the project involved diverting the Yellow River. This took place on 28 October 1997 and became a national occasion. The dam received state approval and started storing water in October 1999. The project was completed in 2000.
Yellow River Water and Hydroelectric Power Development Corporation
The Yellow River Water and Hydroelectric Power Development Corporation (YRWHDC) is responsible for the project, which was designed by the Reconnaissance, Planning, Design and Research Institute (RPDRI) in Zhengzhou, Henan. The Xiaolangdi Engineering Consulting Company (XECC) has been set up to manage the overall project and to provide site supervision. These three companies are all responsible to the Ministry of Water Resources of China. The Canadian International Project Managers (CIPM) Ltd are acting as consultants to the employer.
Construction Contracts
Three European-led international joint venture companies split the construction contracts. The contracts, worth a total of $883 million according to World Bank estimates, were let in 1994. Yellow River Contractors, formed by Impregilo, Hochtief, Italstrada and Bureau 14, won the construction contract for the river closure works, the 51.8m x 106m main dam and associated structures. Xiaolangdi Joint Venture, comprising Dumez, Philip Holzman and Construction Bureau 5, won work related to the underground power structures. CGIC, a joint venture of Ed Zublin, Strabag, Wayss & Freytag, Del Favero, Salini and Bureaux 7 and 11, won the contract for intake and outlet works, the tunnels which discharge water and sediment and the flood overflow. Spie Batignolles has since replaced Del Favero. Early problems and disputes for the Zublin group, which initially delayed progress, have now been resolved.
Hydropower in China
China plans to increase its electric power capacity by between 8% and 9% per year to meet growing demand from both industry and private consumers. More than 17% of China’s total electricity production is supplied by hydropower, but only about 15% of the country’s technically feasible hydropower potential has been developed to date. 24 hydropower-generating units with a combined capacity of 5,300MW came on stream in China in 1999. This increased the installed hydropower capacity by 8.3% to almost 70,000MW at the start of 2000.
Wednesday, July 24, 2019
Part II: 5th International Conference on Hydraulic and Civil Engineering (ICHCE 2019) in Nanjing, China
Professor Qi Pu was invited to give a talk on the recent flood
risk of the lower Yellow River after Xiaolangdi Reservoir was operated in 2000.
The abstract of my paper is: Great Changes on Flood Control of Lower Yellow River after Operation of
Xiaolangdi Reservoir.
Representing the most important
influence on the land-ocean sediment fluxes in the world, dams and reservoirs
alter the continuity of sediment transport and decrease the supply of sediment
to downstream reaches. After the operation of Xiaolangdi Reservoir, channel bed
of the lower Yellow River has been strongly eroded, and the discharge capacity
increased gradually. In recent decades, the trend of flow and sediment alters
due to the massive harnessing projects on the upper and middle reaches. The
amount of sediment entering the lower reach has been gradually reduced
significantly, and there are no big flood events. There are no floods exceeding
the warning water stage, thus the flood control situation of the downstream
reach has changed dramatically. In addition, the volume of sediment which is
transported to the estuary has also been greatly reduced, so as the siltation
and extension at the river mouth, thus its impact on the upper reaches can be
ignored. With the multi-year sediment regulation of Xiaolangdi Reservoir, we
can take full advantage of sediment discharge by flood to further scour the
riverbed of the lower reach. The current downstream reach becomes one of the
most secure rivers in the world, which will inevitably affect the future
prospects of governing the Yellow River basin. In order to prevent situations
similar to the excessive river management in North China, which can cause the
environment of the lower Yellow River to deteriorate, we should maintain the
healthy life of the river, and it is necessary to adjust the scale of
harnessing projects on the upper and middle reaches, as well as to construct
Taohuayu Project in the lower reach for better control of floods.
The presentation was
well-received by the audience, and the participants from the conference joined
in-depth discussion after my talk. Everyone was very interested in the reasons for the great changes in the flooding of the lower Yellow River after the completion of Xiaolangdi Reservoir. This is also a good learning opportunity and communication effect for young hydraulic workers and researchers.
Tuesday, June 11, 2019
Part I: 5th International Conference on Hydraulic and Civil Engineering (ICHCE 2019) in Nanjing, China
The 5th International Conference on Hydraulic and Civil Engineering (ICHCE 2019) was held from May 10th to 12th, 2019 at Hohai University, Nanjing, China. It was hosted by Hohai University, co-organized by the Hydraulic Structures Committee of Chinese Hydraulic Engineering Society, Tsinghua University, the China Institute of Water Resources and Hydropower Research and some other societies, universities and research institutes. The theme of the conference is ‘One Belt and One Road’ and Innovation and Cooperation in Hydraulic and Civil Engineering. It mainly focuses on the research fields of water conservancy and civil engineering and is dedicated to provide the experts, scholars, engineers, etc. from different colleges and universities, research institutes, enterprises and institutions from home and abroad, with an academic platform for sharing of academic research findings, exploration of the cutting-edge engineering issues and discussion on the current opportunities and challenges, in a concerted effort to promote international cooperation and communication and the industrialization of scientific research results.
Agenda and the keynote speakers of this conference include:
| Schedule | ||
| May 10 | 10:00-22:00 | Registration |
| May 11 | 08:00-12:00 | Speeches of Keynote Speakers |
| 12:00-14:00 | Lunch | |
| 14:00-17:30 | Oral Presentations | |
| 18:00-19:30 | Banquet | |
| May 12 | 08:30-12:00 | Oral Presentations |
| 12:00-14:00 | Lunch | |
| 14:00-17:30 | Academic Investigation | |
| 18:00-19:30 | Banquet | |
Chen Houqun (China Institute of Water Resources and Hydropower Research, Academician)-陈厚群(中国水利水电科学研究院,院士)
Lin Gao (Dalian University of Technology, Academician)-林 皋(大连理工大学,院士)
Zhang Chuhan (Tsinghua University, Academician)-张楚汉(清华大学,院士)
Wu Zhongru (Hohai University,Academician)-吴中如(河海大学,院士)
Zheng Shouren (Changjiang Water Resources of the Ministry of Water Resources , Academician)-郑守仁(长江水利委员会,院士)
Ma Hongqi (Haneng Lancang River Hydropower INC., Academician)-马洪琪(华能澜沧江水电有限公司,院士)
Zhang Chaoran (China Three Gorges Corporation, Academician)-张超然(中国长江三峡集团公司,院士)
Wang Hao(China Institute of Water Resources and Hydropower Research,Academician)-王 浩(中国水利水电科学研究院,院士)
Zhong Denghua (Tianjin University,Academician)-钟登华(天津大学,院士)
Wang Chao (Hohai University,Academician)-王 超(河海大学,院士)
Zhang Jianyun (Dean of Nanjing Hydraulic Research Institute,Academician)-张建云(南京水利科学研究院院长,院士)
Niu Xinqiang (Dean of Changjiang Institute of Survey,Planning,Design and Research,Academician)-钮新强(长江勘测规划设计研究院院长,院士)
Hu Chunhong (China Institute of Water Resources and Hydropower Research,Academician)-胡春宏(中国水利水电科学研究院,院士)Nie Jianguo (Tsinghua University,Academician)-聂建国(清华大学,院士)
Wang Jianguo (Southeast University,Academician)-王建国(东南大学,院士)
Kong Xianjing (Dalian University of Technology,Academician)-孔宪京(大连理工大学,院士)
Zhang Jianmin,(Tsinghua University,Academician)-张建民(清华大学,院士)
Deng Mingjiang (Bureau of Xinjiang Ertix River Construction Administration,Academician)-邓铭江(新疆额河建管局局长,院士)
Li Huajun (Vice-principal of Ocean University of China,Academician)-李华军(中国海洋大学副校长,院士)
Martine Wieland(Chairman of Seismic Commission of ICOLD)-Martine Wieland(国际大坝委员会ICOLD抗震专委会主席)
Tang Hongwu (Secretary of the Party Committee of Hohai University, the National Science Fund for Distinguished Young Scholars, Professor)-唐洪武(河海大学党委书记,杰青,教授)
Wednesday, May 22, 2019
Wednesday, April 24, 2019
Wednesday, March 20, 2019
CCTV Vintage Video: Grand Canal of China (1986)
The Grand Canal, known to the Chinese as the Jing–Hang Grand Canal (Chinese: 京杭大运河; or 'Beijing–Hangzhou Grand Canal'), a UNESCO World Heritage Site, is the longest as well as the oldest canal or artificial river in the world. Starting at Beijing, it passes through Tianjin and the provinces of Hebei, Shandong, Jiangsu and Zhejiang to the city of Hangzhou, linking the Yellow River and Yangtze River. The oldest parts of the canal date back to the 5th century BC, but the various sections were first connected during the Sui dynasty (581–618 AD). Dynasties in 1271–1633 significantly rebuilt the canal and altered its route to supply their capital Beijing.
The total length of the Grand Canal is 1,776 km (1,104 mi). Its greatest height is reached in the mountains of Shandong, at a summit of 42 m (138 ft). Ships in Chinese canals did not have trouble reaching higher elevations after the pound lock was invented in the 10th century, during the Song dynasty (960–1279), by the government official and engineer Qiao Weiyue. The canal has been admired by many throughout history including Japanese monk Ennin (794–864), Persian historian Rashid al-Din (1247–1318), Korean official Choe Bu (1454–1504), and Italian missionary Matteo Ricci (1552–1610).
In contrast, the Delaware and Raritan Canal (D&R Canal) is a canal in central New Jersey, United States, built in the 1830s, that served to connect the Delaware River to the Raritan River. It was an efficient and reliable means of transportation of freight between Philadelphia and New York City, especially coal from the anthracite fields in eastern Pennsylvania. The canal allowed shippers to cut many miles off the existing route from the Pennsylvania coal fields, down the Delaware River, around Cape May, and up along the (occasionally treacherous) Atlantic Ocean coast to New York City.
Monday, February 4, 2019
Happy Chinese New Year 2019
The first line (on your right): In the old days, due to flooding of the Yellow River, people have no means to make a living.
The second line (on your left): In nowadays, we have completely tamed the Yellow River, so people can enjoy a safe, secure and happy life.
The horizontal line (in the middle): Great changes on the Yellow River.
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