Navigation Lock for Bonneville Dam, Columbia River, Oregon. Volume II. Appendix A. Pressures During Lock Operations.

Abstract

Tests were conducted on two different 1:25-scale models of the New Bonneville Lock located on the Columbia River in Oregon. The lock models were built to study the filling and emptying systems, which consisted of designs utilizing bottom longitudinal floor culverts. The first design studied, defined as the H-H pattern system, consisted of four longitudinal flood culverts in each end of the lock chamber. The second system studied had two longitudinal floor culverts in each end of the lock chamber and was defined as the H pattern system. In the H-H pattern system, the filling culverts, which were located under the lock chamber floor, connected to a crossover culvert with a horizontal splitter wall dividing the flow to upstream and downstream splitter manifolds were equal divisions led into four longitudinal flood culverts in each end of the lock chamber. With the type 6 (recommended) design and a 1-min valve opening time, the lock chamber filled in 8.7 min and emptied in 12.1 min. Due to differences in friction losses, the prototype can be expected to fill and empty about 20 percent faster than the model (7.0 min and 9.7 min, respectively). Modifications involving installing a slope in the lower sill and a v-notch design in the high sill were significant factors that resulted in fast filling and emptying times, low hawser forces, and only minor movement with various tow arrangements for different operating scenarios.

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Document Details

Document Type
Technical Report
Publication Date
Sep 01, 1996
Accession Number
ADA317855

Entities

People

  • John F. George
  • Richard L. Stockstill

Tags

DTIC Thesaurus Topics

  • Army
  • Army Corps Of Engineers
  • Columbia River
  • Elevation
  • Engineering
  • Engineers
  • High Lift
  • Hydraulic Models
  • Information Operations
  • Models
  • Navigation
  • Piezometers
  • Prototypes
  • Rivers
  • Scale Models
  • Tuning Forks
  • Waterways

Readers

  • Hydraulic Engineering.