IP Library › Granted Patent US 11,486,606
Granted Patent B2
US 11,486,606 · App. 17/043,871 · Granted Nov 1, 2022

Method of forecasting heat output of solar collectors

Inventor: Joakim Byström (Härnösand, SE)
Assignee: ABSOLICON SOLAR COLLECTOR AB
F24S50/80F24S23/74G01W1/10G01W1/12F24S2201/00
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Quick Facts
Patent No.
US 11,486,606
App. No.
17/043,871
Granted
Nov 1, 2022
Kind
B2
Abstract

Method of forecasting heat output of a solar collector. First, heat output for a plurality of solar collectors is simulated, located at respectively different geographic locations but having the same solar collector settings as the solar collector to be forecasted. The simulation is performed by calculating a dataset of theoretical heat outputs for the plurality of solar collectors, based on acquired 802 related weather data. From the calculated dataset a function is adjusted 810 , the function defining the theoretical heat output of any solar collector related to its geographic location, e.g. latitude, solar Direct Normal Irradiation, DNI, and collector settings, e.g. operation temperature, and forecasting the heat output of the solar collector based on the adjusted function.

Claims (17)

1. A method of forecasting heat output of a solar collector, the forecasting being based on the solar collector's location and solar Direct Normal Irradiation (DNI), according to a function, the function resulting from in advance performed, wherein the method comprises:

simulation of a heat output for a plurality of solar collectors located at respectively different geographic locations, wherein each of the plurality of solar collectors are of a same type and have same solar collector settings as the solar collector to be forecasted, by, with a simulation software ran on a computer, calculating a dataset of theoretical heat output for each of the plurality of solar collectors based on acquired related weather data of each of the plurality of solar collectors, and

adjustment of the theoretical heat output for each of the plurality of solar collectors, with the computer, wherein the adjusted theoretical heat output of each of the plurality of solar collectors is based on a geographic location of each of the plurality of solar collectors, solar DNI, and solar collector settings,

wherein the simulation is performed for acquired related weather data having a higher time resolution than the solar DNI,

wherein each of the plurality of solar collectors uses one or more of mirrors and lenses to focus solar radiation in form of a point or a line onto a receiver which contains a heatable transport fluid.

2. The method according to claim 1 , wherein when adjusting the theoretical heat output,

the geographic location of each of the plurality of solar collectors comprises a latitude, and

the solar collector settings comprises an operation temperature.

3. The method according to claim 1 , further comprising in advance calculating a shaded matrix map of Q-values of geographic locations according to the adjusted theoretical heat output, wherein the forecasting is performed for a geographic location selected from the shaded matrix map.

4. A computer program stored on a non-transitory computer readable medium, comprising instructions which, when executed on at least one processor, cause the at least one processor to carry out the method according to claim 1 .

5. A method of forecasting heat output of each of a plurality of solar collectors, the forecasting being based on the solar collector's location and solar Direct Normal Irradiation (DNI), according to a heat output function, the method comprising:

simulating the heat output for each of the plurality of solar collectors located at respectively different geographic locations, by, with a simulation software running on a computer, calculating a dataset of theoretical heat output for each of the plurality of solar collectors, based on acquired related weather data associated with solar radiation and ambient temperature, and

adjusting the theoretical heat output for each of the plurality of solar collectors, with the computer, wherein the adjusted theoretical heat output of each of the plurality of solar collectors is based on a geographic location of each of the plurality of solar collectors, solar DNI data and solar collector settings,

wherein the simulating is performed for the acquired related weather data which has a higher time resolution than the solar DNI data,

wherein each of the plurality of solar collectors uses one or more of mirrors and lenses to focus solar radiation in form of a point or a line onto a receiver which contains a heatable transport fluid.

6. The method of claim 5 , wherein the acquired related weather data has a one-hour time resolution and the solar DNI data has a one-year time resolution.

7. The method of claim 5 , wherein each of the plurality of solar collectors is a parabolic trough collector which is pivotable to track the sun during the day.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 30, 2020
From: BYSTRÖM, JOAKIM
To: ABSOLICON SOLAR COLLECTOR AB
Reel/Frame 053933/0900 →
Priority Claims (1)
SE 1850370-6 · Apr 3, 2018 · national
Continuity (1)
Related Publication 20210140683A1 · May 13, 2021