Prefabricated, prestressed bridge module

US10895047B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10895047-B2
Application numberUS-201715813423-A
CountryUS
Kind codeB2
Filing dateNov 15, 2017
Priority dateNov 16, 2016
Publication dateJan 19, 2021
Grant dateJan 19, 2021

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

A method for making a prefabricated, prestressed module includes arranging one or more steel beams atop a supporting formwork element in a direction transverse to the supporting formwork element and arranging one or more precast deck elements across the one or more steel beams to create a substantially continuous surface. The one or more precast deck elements have pockets for receiving connectors that protrude from the one or more steel beams. The method also includes arranging the supporting formwork element to allow the one or more steel beams to bend into a cambered shape to impart compressive stresses to a bottom flange of the one or more steel beams and tension stresses to a top flange of the one or more steel beams and inserting grout into the pockets to hold the cambered shape and to bond the one or more precast deck elements to the connectors and the top flange.

First claim

Opening claim text (preview).

The disclosure claimed is: 1. A method for making a prefabricated, prestressed module comprising the steps of: arranging one or more steel beams atop an inner supporting formwork element disposed between a pair of opposing outer supporting formwork elements and atop the pair of opposing outer supporting formwork elements in a direction transverse to the inner supporting formwork element and the pair of opposing outer supporting formwork elements; arranging at least three precast deck elements across and above the one or more steel beams to exert a compressive load on the one or more steel beams and to create a substantially continuous surface, wherein the at least three precast deck elements each have grout pockets for receiving connectors that protrude from the one or more steel beams, wherein the at least three precast deck elements include a secondary precast deck element disposed above the inner supporting formwork element, a primary precast deck element disposed above one of the pair of opposing outer supporting formwork elements, and a tertiary precast deck element disposed above another of the pair of the opposing outer supporting formwork elements; arranging the inner supporting formwork element and the pair of opposing outer supporting formwork elements so that the inner supporting formwork element has a greater height than the pair of opposing outer supporting formwork elements to allow the one or more steel beams to bend into a cambered shape, as a result of the compressive load, to impart compressive stresses to a bottom flange of the one or more steel beams and tension stresses to a top flange of the one or more steel beams; and inserting grout into the grout pockets of the at least three precast deck elements to hold the cambered shape and to bond the at least three precast deck elements to the connectors and the top flange, wherein the grout in the grout pockets maintains the one or more steel beams and the at least three precast deck elements in the cambered shape after the inner and the pair of opposing outer supporting formwork elements are removed. 2. The method of claim 1 , further comprising: applying an overlay to the substantially continuous surface while the inner supporting formwork element has a greater height than the pair of opposing outer supporting formwork elements such that a compressive load exerted by the overlay on the one or more steel beams also holds the cambered shape; curing the grout and the overlay; and removing the inner supporting formwork element and the pair of opposing outer supporting formwork elements. 3. The method of claim 1 , further comprising: placing shims atop top flanges of the one or more steel beams and between the one or more steel beams and the at least three precast deck elements to form annular recesses for receiving grout between lower surfaces of the at least three precast deck elements and upper surfaces of the one or more steel beams; and filling the annular recesses with grout. 4. The method of claim 1 , wherein the step of arranging the inner supporting formwork element and the pair of opposing outer supporting formwork elements so that the inner supporting formwork element has a greater height than the pair of opposing outer supporting formwork elements to allow the one or more steel beams to bend into a cambered shape to impart compressive stresses to a bottom flange of the one or more steel beams and tension stresses to the top flange of the one or more steel beams includes lowering each of the pair of opposing outer supporting formwork elements relative to the inner supporting formwork element. 5. The method of claim 1 , wherein the step of arranging the inner supporting formwork element and the pair of opposing outer supporting formwork elements so that the inner supporting formwork element has a greater height than the pair of opposing outer supporting formwork elements to allow the one or more steel beams to bend into a cambered shape to impart compressive stresses to the bottom flange of the one or more steel beams and tension stresses to the top flange of the one or more steel beams includes raising the inner supporting formwork element. 6. The method of claim 4 , further comprising: applying external loads to the one or more steel beams at each of the pair of opposing outer supporting formwork elements. 7. The method of claim 1 , wherein the connectors include shear studs. 8. The method of claim 7 , wherein each of the at least three precast deck elements includes concrete. 9. The method of claim 1 , wherein the step of arranging the inner supporting formwork element and the pair of opposing outer supporting formwork elements so that the inner supporting formwork element has a greater height than the pair of opposing outer supporting formwork elements to allow the one or more steel beams to bend into a cambered shape to impart compressive stresses to a bottom flange of the one or more steel beams and tension stresses to a top flange of the one or more steel beams step is performed before the step of inserting grout into the grout pockets of the at least three precast deck elements to hold the cambered shape and to bond the at least three precast deck elements to the connectors and the top flange, wherein the grout in the grout pockets maintains the one or more steel beams and the at least three precast deck elements in the cambered shape after the inner and the pair of opposing outer supporting formwork elements are removed. 10. The method of claim 1 , wherein the grout has a compressive strength of at least 14,500 psi and a modulus of elasticity of at least 6,300 ksi. 11. The method of claim 1 , including providing supports spaced apart horizontally, and placing the prefabricated, prestressed module on the supports to form a bridge spanning between the supports. 12. The method for making a prefabricated, prestressed module of claim 1 , wherein the step of arranging at least three precast deck elements across and above the one or more steel beams to exert a compressive load on the one or more steel beams and to create a substantially continuous surface, wherein the at least three precast deck elements each have grout pockets for receiving connectors that protrude from the one or more steel beams, wherein the at least three precast deck elements include the secondary precast deck element disposed above the inner supporting formwork element, the primary precast deck element disposed above one of the pair of opposing outer supporting formwork elements, and the tertiary precast deck element disposed above another of the pair of the opposing outer supporting formwork elements includes the step of: arranging at least seven precast deck elements across and above the one or more steel beams to exert a compressive load on the one or more steel beams and to create a substantially continuous surface, wherein the at least seven precast deck elements each have grout pockets for receiving connectors that protrude from the one or more steel beams, wherein the at least seven precast deck elements include the secondary precast deck element disposed above the inner supporting formwork element, the primary precast deck element disposed above one of the pair of opposing outer supporting formwork elements, and the tertiary precast deck element disposed above another of the pair of the opposing outer supporting formwork elements, a first pair of precast deck elements disposed between the primary precast deck element and the secondary precast deck element, and a second pair of precast deck elements disposed between the secondary precast deck element and the tertiary precast deck element. 13. The

Assignees

Inventors

Classifications

  • Structural or constructional details of bridges · CPC title

  • Composite concrete-metal · CPC title

  • prestressed · CPC title

  • Methods or apparatus specially adapted for erecting or assembling bridges · CPC title

  • Concrete · CPC title

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Frequently asked questions

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What does patent US10895047B2 cover?
A method for making a prefabricated, prestressed module includes arranging one or more steel beams atop a supporting formwork element in a direction transverse to the supporting formwork element and arranging one or more precast deck elements across the one or more steel beams to create a substantially continuous surface. The one or more precast deck elements have pockets for receiving connecto…
Who is the assignee on this patent?
Valmont Industries
What technology area does this patent fall under?
Primary CPC classification E01D19/12. Mapped technology areas include Fixed Constructions.
When was this patent published?
Publication date Tue Jan 19 2021 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 4 related publications on this page (citations in our corpus or others sharing the same primary CPC).