Conveying assembly for snowmaking apparatus
11092373 · 2021-08-17
Assignee
Inventors
Cpc classification
F25C3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B65G53/14
PERFORMING OPERATIONS; TRANSPORTING
B65G53/16
PERFORMING OPERATIONS; TRANSPORTING
B05B7/1404
PERFORMING OPERATIONS; TRANSPORTING
B65G53/4625
PERFORMING OPERATIONS; TRANSPORTING
International classification
F25C3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B65G53/14
PERFORMING OPERATIONS; TRANSPORTING
B65G53/46
PERFORMING OPERATIONS; TRANSPORTING
B05B7/14
PERFORMING OPERATIONS; TRANSPORTING
B65G53/16
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A snow conveying assembly for use with a snow making machine includes an impeller for receiving snow from the snow making machine and accelerating the snow; and an ejector tube, which receives the snow from the impeller, further accelerates the snow and discharges the snow from the assembly. The ejector tube contains a venturi throat. Snow from the impeller is conveyed via a snow inlet tube into the ejector tube immediately upstream of a venturi throat and air under pressure is blown into the ejector tube upstream of the venturi throat to further accelerate the snow.
Claims
1. A snow conveying assembly for use with a snow making machine comprising: an impeller for receiving snow from the snow making machine and for accelerating the snow; an ejector tube having an inlet end for receiving snow from said impeller, a venturi throat in said tube downstream of said inlet end in the direction of snow travel through the ejector tube, and an outlet end for discharging snow from the conveying assembly; a snow inlet tube extending into the ejector tube for introducing snow from said impeller into said ejector tube immediately upstream of said venturi throat in the direction of snow travel through the ejector tube; an air inlet in the inlet end of said ejector tube upstream of said venturi throat; and a fan for introducing air under pressure through said air inlet into said inlet end of the ejector tube; said snow inlet tube having a discharge end spaced apart from the venturi throat, creating a small gap between said discharge end and the venturi throat, whereby, when the air under pressure passes through said gap and then through said venturi throat, the resulting snow and air mixture is accelerated out of said outlet end of the ejector tube, and wherein said impeller includes: a tray having a cylindrical side wall, an open top end for receiving the snow from the snow making machine, and a closed circular bottom end; a rotatable transmission shaft extending through the center of said closed bottom end, wherein the transmission is in the form of a 90° gearbox connected to a motor; a plurality of blades connected to said shaft and extending radially outwardly therefrom to locations proximate and spaced apart from said cylindrical side wall for regrinding the snow; and a snow outlet tube extending tangentially from said side wall to an inlet end of said snow inlet tube for accelerating the snow out of the conveying assembly.
2. The snow conveying assembly of claim 1, wherein the gap between the discharge end of the snow inlet tube and the venturi throat is adjustable.
3. The snow conveying assembly of claim 1, wherein the outlet end of said ejector tube is cylindrical for insertion into one end of a hose.
4. The snow conveying assembly of claim 1, including a plurality of impellers for receiving snow from snow making machines, each impeller having an outlet tube for carrying snow to said snow inlet tube.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention is described in greater detail with reference to the accompanying drawings, which illustrate a preferred embodiment of the invention, and wherein:
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DETAILED DESCRIPTION OF THE INVENTION
(11) With reference to
(12) As best shown in
(13) As best shown in
(14) Air under pressure is introduced radially into the cylindrical end 24 of the ejector tube 20 via an inlet 28, which is connected to a centrifugal fan 29 (
(15) During operation, snow produced in the flake ice machine evaporator 1 falls into the impeller tray 5. The snow is partially reground in the impeller 4 and driven tangentially from the impeller by the blades 6. The snow passes through the snow inlet tube 17 and into the venturi section 26 of the ejector tube 20. Air entering the ejector tube 20 via the pipe 30 surrounds the column of snow, forming a tubular stream around the snow. The air and snow are discharged from the ejector tube 20 and the hose 38. Because of the kinetic energy imparted to the snow by the impeller 4, and passage through the annular jet pump defined by the snow inlet tube 17 and the ejector tube 20, the snow is driven a much larger distance from the conveying assembly and uses considerably less energy than existing apparatuses. In other words, the impeller 4 drives the snow into the ejector tube 20 at a first speed, e.g. 100 kilometers per hour, and the air entering the ejector 20 and passing through the venturi throat accelerates the snow to a higher speed of as much as 400 kph. With existing apparatuses utilizing pneumatic conveying only, a tremendous amount of energy would be required to achieve the same result.
(16) Referring to
(17) Another possible apparatus for feeding snow into the impeller includes a screw conveyor (not shown) for receiving the snow from one or more evaporators, and a funnel (not shown) beneath the discharge end of the screw conveyor for feeding the snow into the impeller.