IP Library › Granted Patent US 12,557,823
Granted Patent B2
US 12,557,823 · App. 17/904,757 · Granted Feb 24, 2026

Dehydrating apparatus and method

Inventor: Mahdieh Aliaslkhiabani (Burnaby, CA)
Assignee: CANDRY TECHNOLOGIES INC.
A23B2/97F26B3/305F26B15/06F26B21/02F26B25/22
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Quick Facts
Patent No.
US 12,557,823
App. No.
17/904,757
Granted
Feb 24, 2026
Kind
B2
Abstract

A dehydrating apparatus suitable for dehydrating food and other biomass products comprises a dehydrating chamber, a vacuum assembly, a magnetron assembly, an infrared heating assembly, a heated air circulation assembly, and a controller. The magnetron assembly is electromagnetically coupled to the dehydrating chamber and is operable to transmit microwave energy into the dehydrating chamber. The vacuum assembly is fluidly coupled to the dehydrating chamber and is operable to reduce the air pressure within the dehydrating chamber. The infrared heating assembly is thermally coupled to the dehydrating chamber and is operable to radiate infrared energy into the dehydrating chamber. The heated air circulation assembly is fluidly coupled to the dehydrating chamber and is operable to circulate heated air within the dehydrating chamber. The controller is communicative with and programmed to operate the magnetron assembly, vacuum assembly, infrared heating assembly and heated air circulation assembly to first reduce pressure within the chamber, then simultaneously transmit microwave energy, radiate infrared energy, and circulate heated air inside the dehydrating chamber upon specific dried product drying procedure.

Claims (17)

1 . A biomass dehydrating apparatus comprising:

(a) a dehydrating chamber for containing a biomass product to be dehydrated;

(b) a magnetron assembly electromagnetically coupled to the dehydrating chamber and operable to transmit microwave energy into the dehydrating chamber;

(c) a vacuum assembly fluidly coupled to the dehydrating chamber and operable to reduce an air pressure within the dehydrating chamber;

(d) an infrared heating assembly thermally coupled to the dehydrating chamber and operable to radiate infrared energy into the dehydrating chamber;

(e) a heated air circulation assembly fluidly coupled to the dehydrating chamber and operable to circulate heated air within the dehydrating chamber; and

(f) a controller communicative with and programmed to operate the magnetron assembly, vacuum assembly, infrared heating assembly and heated air circulation assembly to reduce pressure, then simultaneously transmit microwave energy, radiate infrared energy, and circulate heated air inside the dehydrating chamber, wherein a power of each of the magnetron assembly, infrared heating assembly, and heated air circulation assembly is selected so that interior and exterior portions of the biomass product are simultaneously dehydrated.

2 . The apparatus as claimed in claim 1 further comprising a rotatable tray assembly inside the dehydrating chamber for rotatably supporting the biomass product.

3 . The apparatus as claimed in claim 2 wherein the rotatable tray assembly comprises multiple vertically spaced plates, an axle connected to each plate, and a motor rotatably coupled to the axle such that the multiple plates can be rotated.

4 . The apparatus as claimed in claim 1 wherein the heated air circulation assembly comprises at least one heating element inside the dehydrating chamber, at least one heating pad contacting a wall of the dehydrating chamber, and at least one fan inside the dehydrating chamber, and wherein the controller is programmed to operate the at least one heating pad to maintain the wall at a selected temperature range, and to operate the heating element and fan to heat and circulate air within the dehydrating chamber.

5 . The apparatus as claimed in claim 4 wherein the controller is programmed to operate the at least one heating pad to maintain temperature of the dehydrating chamber wall between 36.7° C. and 41.2° C.

6 . The apparatus as claimed in claim 1 wherein the vacuum assembly comprises a vacuum pump, and the controller is programmed to operate the vacuum pump to reduce the pressure inside the dehydrating chamber to 0.9-1.2 psi (6.2-8.3 kPa).

7 . The apparatus as claimed in claim 6 wherein the vacuum assembly comprises a pneumatic valve, and the controller is programmed to operate the pneumatic valve to keep the pressure of the dehydrating chamber at a target set-point pressure.

8 . The apparatus as claimed in claim 1 wherein the dehydrating chamber comprises openings communicative with the magnetron assembly and infrared heating assembly such that microwave and infrared energy can pass into the dehydrating chamber.

9 . The apparatus as claimed in claim 8 wherein the magnetron assembly comprises at least one magnetron and an associated waveguide extending between the at least one magnetron and one of the openings in the dehydrating chamber.

10 . The apparatus as claimed in claim 1 further comprising temperature and pressure sensors coupled to the dehydrating chamber and communicative with the controller.

11 . The apparatus as claimed in claim 1 further comprising a user control interface communicative with the controller and operable to manually control operation of one or more of the magnetron assembly, vacuum assembly, infrared heating assembly, and heated air circulation assembly.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 7, 2025
From: ALIASLKHIABANI, MAHDIEH
To: CANDRY TECHNOLOGIES INC.
Reel/Frame 072823/0155 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 22, 2022
From: HAMZEHALI, AMIR; KHIABANI, MAHYA ALIASL
To: CANDRY TECHNOLOGIES INC.
Reel/Frame 060859/0527 →
Continuity (2)
Provisional Application 62980948 · Feb 24, 2020
Related Publication 20230040871A1 · Feb 9, 2023
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