Air-cooled condenser hail protection system
10690357 ยท 2020-06-23
Assignee
Inventors
Cpc classification
F24F1/58
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
C03B5/16
CHEMISTRY; METALLURGY
F24F1/58
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F1/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A system for protecting air cooled condensers from hailstone damage including system components and method of installation, in which a protective screen preferably of stainless steel mesh is draped over and supported above condenser components to degrade hailstone momentum by reducing both velocity and mass, and by exposing residual hail to heat energy of air exhausting from the condenser.
Claims
1. A system for protecting air cooled condenser from hail damage to elongate steam distribution ducts, duct support rings, and finned tubes components of the condenser, the condenser having a surrounding wind wall with side and end portions, the system comprising support posts mounted on the duct support rings of the condenser, the support posts extending above the ducts and extending in a line along the ducts, a longitudinal support beam carried by the support posts in said line above each of the ducts, a protective mesh screen draped over and supported by a support beam over each of the ducts in covering relation to condenser distribution ducts and finned tube components, screen anchors secured to the wind wall side portions, means interconnecting protective mesh screen and screen anchors for tensioning the screen across the support beams and above condenser components so that hailstones falling toward the condenser have momentum decayed by the protective screen.
2. A system as defined in claim 1 in which the protective screen is stainless steel.
3. A system as defined in claim 2 in which the protective screen is 304 stainless steel with one inch square openings, and an open area of approximately 78%.
4. A system as defined in claim 1 in which the protective screen is selected from a group consisting of stainless steel mesh, polyethylene mesh, aluminum 1100 mesh, aluminum 6061 mesh; galvanized steel mesh; and fiberglass consisting of air mesh, multigrid small, and multigrid large.
5. A method of protecting an air cooled condenser from hailstone damage the condenser having steam distribution ducts comprising the steps of: affixing support posts to stations along the length of steam distribution ducts; aligning the support posts above the steam ducts; mounting a longitudinal beam along the tops of the aligned support posts of each distribution duct, selecting a protective screen capable of decaying the momentum of hail stones falling toward the condenser, and reducing the hail stones, the screen having side edges, draping the protective screen over the condenser to be supported by the longitudinal beams, securing side edges of the screen to condenser wind wall, and tensioning the screen to avoid rubbing against condenser components.
Description
BRIEF DESCRIPTION OF THE DRAWING
(1) Preferred embodiment of the invention have been chosen for detailed description to enable those having ordinary skill in the art to which the invention appertains to readily understand how to construct and use the invention and is shown in the accompanying drawing in which:
(2)
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION OF PREFERRED EMBODIMENT
(8) Referring to the drawing,
(9) As shown in
(10) The hail protection mesh 10 preferably comprises steel mesh wire unrolled and draped over the top of the main beams 18 extending above the steam ducts 12. Each side 10a of the mesh is secured to elongate reinforcing plate 26 through which the mesh is anchored by suitable means such as turnbuckles 28 to the screen wind walls 16a on each side.
(11) The protection afforded by the mesh against damaging hailstones is to reduce momentum of hailstones falling on condenser by reducing their mass and their velocity. The preferred mesh selected is 304 stainless steel wire mesh with approximately 1-inch square openings resulting in a mesh open area of approximately 78%. Stainless steel mesh is readily available, has superior corrosion resistance, and higher strength than aluminum wire mesh.
(12) Condenser cooling air flowing through the mesh has a temperature as high as 150. The mesh so heated reduces (melts) the amount of hail that collects on the mesh. In addition, hail that does collect on the mesh melts quickly due to good heat transfer characteristics of metallic mesh as compared to non-metallic materials.
(13) Airflow through a typical air cooled condenser unit with fans running at full speed is approximately 11,070,000 ACFM. The protective screen installed will not decrease this flow significantly, however there is a slight increase in pressure to move the air. The protective screen has a tendency to make airflow more uniform across the unit.
(14) Referring to
(15) As shown in
(16) The drape of the mesh is determined by using basic catenary tension/sag equations to maintain a tension in the wire mesh that is approximately the same on each side of the steam duct support ring. The mesh is supported by structural posts 20, 22, and beams 18 above steam ducts to prevent damage caused by mesh rubbing on the duct as well as hail damage to the duct.
(17) In a typical air cooled condenser installation, the protective screen is generally rectangular with side edges and end edges spaced from corresponding side and end walls of the condenser wind wall. Tensioning of the protective screen takes place along side walls between screen plate and wind wall anchor plates using turnbuckles.
(18) In a further understanding of the invention, the protective screen is deployed on an air cooled condenser by a method including the following steps:
(19) affixing support posts to stations along the length of steam distribution ducts;
(20) aligning the support posts above the steam ducts;
(21) mounting a longitudinal beam along the tops of the support posts of each distribution duct,
(22) selecting a protective screen capable of decaying the momentum of hail stones falling toward the condenser, and reducing the hail stones,
(23) draping the protective screen over the condenser to be supported by longitudinal beams,
(24) securing edges of the screen to condenser wind wall, and
(25) tensioning the screen to avoid rubbing against condenser components.
(26) It is within the scope of the invention to include other embodiments of mesh, grid, and grate materials in addition to stainless steel mesh. Other materials include polyethylene mesh, wire meshes including aluminum, i.e., Al-1100 and Al 6061; galvanized steel; and fiberglass including air mesh, multigrid (small), and multigrid (large). The pros and cons of these and other materials not specifically listed including cost, material weight, strength, heat conductivity, corrosion resistance, ease of installation, ability to decay hail momentum, and ability to withstand condenser exhaust air temperatures and solar UV exposure are trade-offs which are all subject over time to relative improvement in comparison to preferred material, stainless steel mesh, and as such have potential to provide suitable hail protection systems for air cooled condensers.
(27) The invention provides permanent protection against damage hailstorms cause to air cooled condensers especially by crushing heat transfer components, and against thermodynamic and economic degradation of the host power plant caused by such storms.
(28) The term approximately for purposes of this application means plus or minus 10% of the values stated.
(29) Various changes may be made to the structure embodying the principles of the invention. The foregoing embodiments are set forth in an illustrative and not in a limiting sense. The scope of the invention is defined by the claims appended hereto.