IP Library Granted Patent US 10,414,959
Granted Patent B2
US 10,414,959 · App. 14/424,153 · Granted Sep 17, 2019

Artificial snow at ambient temperature

Inventor: Yingui Sun (Beijing, CN)
C09K3/24B01J2/006B22F1/02B22F9/04E01C13/12F25C3/04H01F1/01H01F1/28C22C33/0278C22C2202/02
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,414,959
App. No.
14/424,153
Granted
Sep 17, 2019
Kind
B2
Abstract

Artificial snow at ambient temperature is used for skiing and is composed of grains of artificial snow at ambient temperature that include magnetic solid grains. The producing method comprises the following steps: (1) using a crushing apparatus to crush a magnetic material into solid grains; (2) using a mesh sieve to sieve the solid grains at a certain particle size; and (3) bonding a layer of material capable of modifying surface property to the surface of the solid grains obtained from sieving. A trail comprises the artificial snow at ambient temperature.

Claims (27)

1. Artificial snow at ambient temperature for skiing, composed of grains of artificial snow at ambient temperature,

wherein each grain of the artificial snow consists of a magnetic solid grain and a material layer that is bonded to a surface of the magnetic solid grain, has a substantively even surface, and modifies a surface property of the grain of the artificial snow to have a lubricating property, the grains of artificial snow aggregate together with adjacent grains contacting each other through the material layer of each grain of the artificial snow, and residual magnetism of the magnetic solid grain is within a range of 2,000-2,300 Gs and a grain size of the magnetic solid grain is 1-3 mm to allow the grains of artificial snow to be reshaped and dispersed with damping under external force and form a stable distribution in specific shapes configured to adhere to trails at different gradients;

wherein the material layer is a metal coating.

2. The artificial snow at ambient temperature as described in claim 1 , wherein, the artificial snow at ambient temperature is applicable to skiing in a ski resort, and is paved massively on trails at different gradients.

3. The artificial snow at ambient temperature as described in claim 1 , wherein, the magnetic solid grain consists of a main body made of a non-magnetic material and containing a magnetic material, and the non-magnetic material is a material selected from metal materials, organic materials, and inorganic non-metal materials.

4. The artificial snow at ambient temperature as described in claim 3 , wherein, the magnetic material is dispersed in the non-magnetic material that forms the main body.

5. The artificial snow at ambient temperature as described in claim 1 , wherein, the magnetic solid grain is made of a ferrite material, ferromagnetic material, or rare earth permanent magnetic material.

6. The artificial snow at ambient temperature as described in claim 1 , wherein solid grains of the grains of artificial snow comprise at least two kinds of magnetic material.

7. The artificial snow at ambient temperature as described in claim 6 , wherein the at least two kinds of magnetic materials comprise a ferrite material and an Nd—Fe—B rare earth permanent magnetic material.

8. A trail, comprising artificial snow, wherein the artificial snow is at the ambient temperature as described in claim 1 .

9. The trail as described in claim 8 , further comprising a strong magnetic layer composed of several permanent magnet blocks, which are arranged in a uniform polarity orientation on the foundation of the trail and thereby forms a strong magnetic layer under the artificial snow at ambient temperature.

10. A method for producing artificial snow at ambient temperature, each grain of the artificial snow consisting of a magnetic solid grain and a material layer that is bonded to a surface of the magnetic solid grain, having a substantively even surface, and modifies a surface property of the grain of the artificial snow to have a lubricating property, the grains of artificial snow aggregate together with adjacent grains contacting each other through the material layer of each grain of the artificial snow, comprising the following steps:

(1) using a crushing apparatus to crush a magnetic material into solid grains;

(2) using a mesh sieve to sieve the solid grains at a certain grain size, and then bonding the material layer to surfaces of the solid grains obtained from the sieving; and

(3) magnetizing the solid grains obtained from the sieving by charging magnetism;

wherein residual magnetism in the solid grains is within a range of 2,000-2,300 Gs and a grain size of the magnetic solid grain is 1-3 mm to allow the grains of artificial snow to be reshaped and dispersed with damping under external force and form a stable distribution in specific shapes for adhering to trails at different gradients;

wherein, the material layer is a metal coating.

11. The method as described in claim 10 , further comprising: coloring the material layer which has been bonded to the solid grains.

12. A method for producing artificial snow at ambient temperature, each grain of the artificial snow consisting of a magnetic solid grain and a material layer that is bonded to a surface of the magnetic solid grain having a substantively even surface, and modifies a surface property of the grain of the artificial snow to have a lubricating property, the grains of artificial snow aggregate together with adjacent grains contacting each other through the material layer of each grain of the artificial snow, comprising the following steps:

(1) producing solid grains consisting of a main body made of a non-magnetic material and containing a magnetic material;

(2) using a mesh sieve to sieve the solid grains at a certain grain size, and then bonding the material layer to surfaces of the solid grains obtained from the sieving; and

(3) magnetizing the solid grains obtained from the sieving by charging magnetism;

wherein the residual magnetism in the solid grains is within a range of 2,000-2,300 Gs and a grain size of the magnetic solid grain is 1-3 mm to allow the grains of artificial snow to be reshaped and dispersed with damping under external force and form a stable distribution in specific shapes configured to adhere to trails at different gradients;

wherein, the material layer is a metal coating.

13. The method as described in claim 12 , further comprising: coloring the material layer which has been bonded to the solid grains.

14. The method as described in claim 12 , wherein, the step of producing solid grains consisting of a main body made of a non-magnetic material and containing a magnetic material comprises: mixing a crushed or molten magnetic material with a molten non-magnetic material and then pelleting, to obtain solid grains consisting of a main body made of the non-magnetic material and containing the magnetic material.

15. The method as described in claim 14 , wherein, the step of producing solid grains consisting of a main body made of a non-magnetic material and containing a magnetic material further comprises: magnetizing the main body material by charging magnetism when the main body material is still in a molten state, and utilizing the strong magnetic force of a magnetic field to enable the magnetic material contained in the main body to align automatically orderly or enable the magnetic material contained in the main body to have the same polarity orientation.

Continuity (1)
Related Publication 20150307760A1 · Oct 29, 2015