The Comparison of Solar-Powered Hydrogen Closed-Cycle System Capacities for Selected Locations

: The exhaustion of fossil fuels causes decarbonized industries to be powered by renewable energy sources and, owing to their intermittent nature, it is important to devise an efﬁcient energy storage method. To make them more sustainable, a storage system is required. Modern electricity storage systems are based on different types of chemical batteries, electromechanical devices, and hydrogen power plants. However, the parameters of power plant components vary from one geographical location to another. The idea of the present research is to compare the composition of a solar-powered hydrogen processing closed-cycle power plant among the selected geographical locations (Russia, India, and Australia), assuming the same power consumption conditions, but different insolation conditions, and thus the hydrogen equipment capacity accordingly. The number of solar modules in an array is different, thus the required hydrogen tank capacity is also different. The comparison of equipment requires building an uninterrupted power supply for the selected geographical locations, which shows that the capacity of the equipment components would be signiﬁcantly different. These numbers may serve as the base for further economic calculations of energy cost.


Introduction
Owing to industrialization and exponential population growth, the rate of energy use in the form of fossil fuel has been steadily growing over time [1]. The incremental exhaustion of fossil fuels may lead civilization to the point of having no hydrocarbons. A report states that, in 2014, total global carbon emissions were about 36 billion tons, about 1.6 times the levels in the 1990s [2]. A previous study has suggested that there will be an energy deficit of more than 1000 EJ globally by the end of 2050 [3]. The global carbonized industries are one of the main contributors to atmospheric pollution and global warming. In contrast to the pre-industrial period, the global temperature has risen from 1.5 to 4.5 • C [4]. The fact to be concerned about is the fossil fuel sources currently used, as the main energy source will get exhausted after 200-300 years of their usage. This period is estimated as the gap between the year 1800 when the mass consumption of oil started [5], and the forecast of British Petroleum Company for oil to be exhausted by the year 2070 [6]. Gas and coal reserves data can be retrieved from the same source and will be 50 and 150 years, respectively. This period is not remarkable, compared with at least the 2000 years of the history of mankind. Martins et al. [7] proved that there will be a depletion of oil, coal, and gas to 14%, new approach to energy sustainable development based on hybrid power systems (HPSs) combining renewable energy sources (RESs) and fuel cell (FC) systems. For instance, B. Schouten in his thesis discussed the hydrogen-oxygen combined cycle power plants based on renewables, showing the optimized fuel cell power density [48].
However, the studies on different insolation locations where the solar energy usage on the basis of hydrogen and power production equipment, which plays a vital role of uninterrupted power supplies, are not revealed. Thus, the idea of the present research is to gain an understanding of the ability of solar power generation and determine the PV equipment capacity depending on the geographical location of the selected regions, which are having the same energy consumption.
The specific task is to cover the constant 1 kW power consumption during the whole mean statistical year by PV solar panels in combination with the loop cycle hydrogenpowered power plant, i.e., to simulate the plant using water and solar energy in an electrolyzer for hydrogen production and storage, and fuel cell stack for extraction of power. Normally, the solar panels supply the consumer 1 kW constantly, 24 h a day, and run the electrolyzer. During the nights and cloudy days, the stored hydrogen to be used to cover the deficient power of fuel cells. The task is divided into two sub-tasks: - To simulate the hybrid photovoltaic-hydrogen power plant (PV-H PP) and determine the number of PV panels in the array for different locations using the Matlab/Simulink package. - To determine the volume of hydrogen storage tank assuming the same 1 kW constant consumption in each location.
The three locations chosen for the study are Russia, India, and Australia. Locations were selected because of their typical features like-Russia is located in the Northern Hemisphere, Australia is located in the Southern Hemisphere, and India is located close to the Equator. Any other location will be more or less similar to the ones in the selected points in terms of insolation and hydrogen volume requirement accordingly. The data on insolation for the year 2020 in Russia were obtained by a meteorological station located in Chelyabinsk, Russia, as shown in Figure 1. The measurements were carried out every 4 h each day. The simulation was adjusted for 10 s. Because the instantaneous value of solar radiation is known every 4 h, this mean value is taken as constant during the next 4 h, and so on. It reflects some average value. However, the resulting annual solar energy insolation data were verified by the value of monthly and annual cumulative solar radiation [49].  The solar insolation data for the year 2020 in Manipal, India were obtained based on photovoltaic geographical information system data [50], and is shown in Figure 2. Note: The initial data were presented in the form of mean monthly radiation (kWh/m 2 ) and then   The solar insolation data for the year 2020 in Manipal, India were obtained based on photovoltaic geographical information system data [50], and is shown in Figure 2. Note: The initial data were presented in the form of mean monthly radiation (kWh/m 2 ) and then re-calculated into the solar power (W/m 2 ) as mean daily values, constant from month to month.

Insolation Data for Manipal, India
The solar insolation data for the year 2020 in Manipal, India were obtained based on photovoltaic geographical information system data [50], and is shown in Figure 2. Note: The initial data were presented in the form of mean monthly radiation (kWh/m 2 ) and then re-calculated into the solar power (W/m 2 ) as mean daily values, constant from month to month.

Insolation Data for Gnaraloo, Australia
The solar insolation data for the year 2020 in Gnaraloo, Australia were obtained based on open source photovoltaic geographical information system data [50] and are presented in Figure 3.

Insolation Data for Gnaraloo, Australia
The solar insolation data for the year 2020 in Gnaraloo, Australia were obtained based on open source photovoltaic geographical information system data [50] and are presented in Figure 3.  The approaches of obtaining the instantaneous solar radiation are different, but all give adequate numbers that could be used as the base for simulation.

Consumer
The consumer is considered as a mean estimated middle class residential or small business entity and assumed constant in all selected locations on the level of 1 kW (1000 W) of constant power consumption, 24 h a day, 7 days a week, 365 days a year. This is the basic point for comparison of the supplying equipment capacity in different plant locations. The further analysis shows that the main idea of the study is to compare the same consumption for understanding the difference in the support hydrogen equipment capacity, and the rated consumption power can be estimated for all selected points being analyzed.  The approaches of obtaining the instantaneous solar radiation are different, but all give adequate numbers that could be used as the base for simulation.

Consumer
The consumer is considered as a mean estimated middle class residential or small business entity and assumed constant in all selected locations on the level of 1 kW (1000 W) of constant power consumption, 24 h a day, 7 days a week, 365 days a year. This is the basic point for comparison of the supplying equipment capacity in different plant locations. The further analysis shows that the main idea of the study is to compare the same consumption for understanding the difference in the support hydrogen equipment capacity, and the rated consumption power can be estimated for all selected points being analyzed.
The presently used power assumption was made based on the following data analyzed by Henrique Pombeiro et al. [51]. The average power consumption for social classes A-C is in general close to, but not exceeding 1 kW [51]. Similar numbers for the mean estimated power consumption for a small business and commercial users (excluding industrial) were also proved by the analysis of commercial small business electricity consumption [52].

Solar Module Array
HVL-360/HJT solar modules are assigned for the round-the-clock supply of the consumer [53]. The solar module consists of solar cells, as shown in Figure 4. Several modules form an array.
The consumer is considered as a mean estimated middle class residential or small business entity and assumed constant in all selected locations on the level of 1 kW (1000 W) of constant power consumption, 24 h a day, 7 days a week, 365 days a year. This is the basic point for comparison of the supplying equipment capacity in different plant locations. The further analysis shows that the main idea of the study is to compare the same consumption for understanding the difference in the support hydrogen equipment capacity, and the rated consumption power can be estimated for all selected points being analyzed.
The presently used power assumption was made based on the following data analyzed by Henrique Pombeiro et al. [51]. The average power consumption for social classes A-C is in general close to, but not exceeding 1 kW [51]. Similar numbers for the mean estimated power consumption for a small business and commercial users (excluding industrial) were also proved by the analysis of commercial small business electricity consumption [52].

Solar Module Array
HVL-360/HJT solar modules are assigned for the round-the-clock supply of the consumer [53]. The solar module consists of solar cells, as shown in Figure 4. Several modules form an array.  The technical parameters of the module are shown in Table 1. The insolation chart is entered in the Solar Energy Matlab/Simulink model subsystem, as shown in Figure 5. The technical parameters of the module are shown in Table 1. The insolation chart is entered in the Solar Energy Matlab/Simulink model subsystem, as shown in Figure 5. The scheme of an array of solar modules is presented in the following chart as shown in Figure 6. The scheme of an array of solar modules is presented in the following chart as shown in Figure 6.  The scheme of an array of solar modules is presented in the following chart as shown in Figure 6.

Electrolyzer
The VOLTIANA electrolyzer was selected for the simulation [54]. The technical characteristics are presented in Table 2.

Electrolyzer
The VOLTIANA electrolyzer was selected for the simulation [54]. The technical characteristics are presented in Table 2. In a simplified form, the subsystem of the electrolyzer in Matlab/Simulink looks as shown in Figure 7, and the subsystem of the electrolyzer cell stack is shown in Figure 8.
The blocks (1/200 s + 1 and 1/100 s + 1) represent the transfer functions for power differences. They are used for smoothing the input values (in this case, simulating the system inertia) to imitate the real system behavior.
The principle of operation is as follows: when there is enough power for the consumer (solar-generated power exceeds 1 kW), the electrolyzer cells will switch on step by step, depending on the amount of power available.
For efficient operation of the plant, the electrolyzer cells must be configured so that the hydrogen production would be proportional to the available power. To achieve that, we entered 44 steps/conditions at 250 W each (11,000 Watt/44 = 250 W). When all conditions are triggered, the maximum output power of 11 kW is generated. Power consumption electric 11 kW In a simplified form, the subsystem of the electrolyzer in Matlab/Simulink looks as shown in Figure 7, and the subsystem of the electrolyzer cell stack is shown in Figure 8. The blocks (1/200 s + 1 and 1/100 s + 1) represent the transfer functions for power differences. They are used for smoothing the input values (in this case, simulating the system inertia) to imitate the real system behavior.
The principle of operation is as follows: when there is enough power for the consumer (solar-generated power exceeds 1 kW), the electrolyzer cells will switch on step by step, depending on the amount of power available.  system inertia) to imitate the real system behavior.
The principle of operation is as follows: when there is enough power for the consumer (solar-generated power exceeds 1 kW), the electrolyzer cells will switch on step by step, depending on the amount of power available.
For efficient operation of the plant, the electrolyzer cells must be configured so that the hydrogen production would be proportional to the available power. To achieve that, we entered 44 steps/conditions at 250 W each (11,000 Watt/44 = 250 W). When all conditions are triggered, the maximum output power of 11 kW is generated. The transfer functions are set up for graph smoothing. The upper 'fcn' block is configured to turn on the electrolyzer at an overall excess of 200 + 100 = 300 W (first and each next step for electrolyzer (200 W) plus power for water pump (100 W)). The output shows "1" when the condition is triggered. Otherwise, the output value tends to zero. Each next power step adds 200 W above the previous one. The maximum rated power consumption of the electrolyzer is 11,000 W. The lower 'fcn' unit is configured for an input power of less than 150 W (100 W is required for the operation of the pump at the fuel cell to pump hydrogen gas from the tank to the fuel cell). The production of hydrogen per hour is divided by 3600 as the entire calculation is carried out in seconds. When the electrolyzer is turned on, the production of hydrogen in cubic meters is activated, which is then pumped to the storage tank. The amount of storage capacity is to be determined. The subsystem of the electrolyzer cell stack with A and B input are shown in Figures  9 and 10. The input 'A' receives the power difference (energy output minus consumption). The transfer functions are set up for graph smoothing. The upper 'fcn' block is configured to turn on the electrolyzer at an overall excess of 200 + 100 = 300 W (first and each next step for electrolyzer (200 W) plus power for water pump (100 W)). The output shows "1" when the condition is triggered. Otherwise, the output value tends to zero. Each next power step adds 200 W above the previous one. The maximum rated power consumption of the electrolyzer is 11,000 W. The lower 'fcn' unit is configured for an input power of less than 150 W (100 W is required for the operation of the pump at the fuel cell to pump hydrogen gas from the tank to the fuel cell). The production of hydrogen per hour is divided by 3600 as the entire calculation is carried out in seconds. When the electrolyzer is turned on, the production of hydrogen in cubic meters is activated, which is then pumped to the storage tank. The amount of storage capacity is to be determined.

Fuel Cell
The ultra-light fuel stack AEROSTAK Horizon is selected as a sample for the current research [55] which is shown in Figure 11.

Fuel Cell
The ultra-light fuel stack AEROSTAK Horizon is selected as a sample for the current research [55] which is shown in Figure 11. The technical specifications of the AEROSTAK Horizon fuel cell stack are shown in Table 3. When the signal for switching on, the FC is activated, following which activates the corresponding subsystem. A signal equal to "1" is multiplied by the amount of hydrogen consumption and subtracted from the amount of accumulated hydrogen volume. The hy- The technical specifications of the AEROSTAK Horizon fuel cell stack are shown in Table 3.

Hydrogen Storage System
When the signal for switching on, the FC is activated, following which activates the corresponding subsystem. A signal equal to "1" is multiplied by the amount of hydrogen consumption and subtracted from the amount of accumulated hydrogen volume. The hydrogen consumption in FC is given in units of L/min. In the FCN block, the value is converted to m 3 /s. The hydrogen storage tank is considered as the thermally isolated system with no weather influence because, in general, there is almost no difference in hydrogen storage equipment for the cold or warm climate, as the H 2 gas density changes in a very small range depending on the temperature [56]. Hydrogen production and pumping for fuel cell operation are shown in Figure 12.

Final Photovoltaic Powered Hydrogen Simulink Model
The complete model of the photovoltaic powered hydrogen generation system in Matlab/Simulink is presented by the following chart, Figure 13. The calculation is carried out in seconds (the abscissa axis on the graphs below). Accordingly, there are 60 × 60 × 24 × 365 s in a year. This value is entered in the calculation timeline.
To adjust the whole model and make it maximally adequate, the calibration of the output data is checked, comparing the values of solar module model output in W/m 2 and the alternative constant 1000 W/m 2 input, as shown in Figure 14.

Final Photovoltaic Powered Hydrogen Simulink Model
The complete model of the photovoltaic powered hydrogen generation system in Matlab/Simulink is presented by the following chart, Figure 13.

Final Photovoltaic Powered Hydrogen Simulink Model
The complete model of the photovoltaic powered hydrogen generation system in Matlab/Simulink is presented by the following chart, Figure 13. The calculation is carried out in seconds (the abscissa axis on the graphs below). Accordingly, there are 60 × 60 × 24 × 365 s in a year. This value is entered in the calculation timeline.
To adjust the whole model and make it maximally adequate, the calibration of the output data is checked, comparing the values of solar module model output in W/m 2 and the alternative constant 1000 W/m 2 input, as shown in Figure 14. The calculation is carried out in seconds (the abscissa axis on the graphs below). Accordingly, there are 60 × 60 × 24 × 365 s in a year. This value is entered in the calculation timeline.
To adjust the whole model and make it maximally adequate, the calibration of the output data is checked, comparing the values of solar module model output in W/m 2 and the alternative constant 1000 W/m 2 input, as shown in Figure 14. Matlab/Simulink.
The calculation is carried out in seconds (the abscissa axis on the graphs below cordingly, there are 60 × 60 × 24 × 365 s in a year. This value is entered in the calcu timeline.
To adjust the whole model and make it maximally adequate, the calibration output data is checked, comparing the values of solar module model output in W/m the alternative constant 1000 W/m 2 input, as shown in Figure 14.  The solar insolation data were obtained on the horizontal surface. The constant slope of the solar module, equal in the general case to geographic latitude, increases the insolation values by 15% on average. To count this increment, an additional block was added.
The power output by the array of 10 solar modules is shown in Figure 15.
P array = P module ·N module ·K slope = 360 × 10 × 1.15 (1) where P array -the power of the solar array; N module -the number of solar modules in an array; P module -the power of one solar module; and K slope -the approximate slope factor, for re-calculation of insolation and/or power from a horizontal surface to the optimal constant slope angle. The solar insolation data were obtained on the horizontal surface. The constant slope of the solar module, equal in the general case to geographic latitude, increases the insolation values by 15% on average. To count this increment, an additional block was added.
The power output by the array of 10 solar modules is shown in Figure 15.
where Parray-the power of the solar array; Nmodule-the number of solar modules in an array; Pmodule-the power of one solar module; and Kslope-the approximate slope factor, for re-calculation of insolation and/or power from a horizontal surface to the optimal constant slope angle. Equation (1) shows the power output of solar modules in an array.

Implementation and Safety
The implementation of the equipment similar to the one mentioned was realized in Russia back in 2013. The safety of the real equipment used as a prototype for the simulation was reported E. Solomin [57]. Overall, the safety system counts 11 sensors that block the hydrogen supply in case of any gas leakage, in six places (before and after the electrolyzer, fuel cell stack, and storage tank).

Processing Data
The results of the simulation of solar-powered hydrogen generation and utilizing Equation (1) shows the power output of solar modules in an array.

Implementation and Safety
The implementation of the equipment similar to the one mentioned was realized in Russia back in 2013. The safety of the real equipment used as a prototype for the simulation was reported E. Solomin [57]. Overall, the safety system counts 11 sensors that block the hydrogen supply in case of any gas leakage, in six places (before and after the electrolyzer, fuel cell stack, and storage tank).

Processing Data
The results of the simulation of solar-powered hydrogen generation and utilizing equipment for different locations with different insolation (Russia, India, Australia) are shown in Figures 15-21. The parameters of hydrogen storage in every case are optimized so that the hydrogen stored volume should be about zero (utilized in full) at the end of the studied year. The model does not contain the servicing time, assuming that it can be done in 1-2 days, which would not influence the overall results.
It is considered that the consumer is the same for all locations as per the estimation made in Section 2.2.1. Consumer, and its consumption everywhere is constant for a better understanding of the difference in the equipment required capacity. The constant consumption parameters (current 20.83 A under 48VDC voltage and power 1 kW) are shown in Figure 16.

Simulation Results (Russia)
The result of the calculations for the location Chelyabinsk, Russia is shown in Figure  17.
The first two graphs display the output current and power of the solar modules array, respectively. The third graph shows the power consumed by the electrolyzer. The fourth graph shows the volume of hydrogen in the tank. This graph allows us to determine the maximum volume of accumulated hydrogen per year in the uncompressed state; the specific tank capacity required for Russia is ≈2000 m 3 . The lowest fifth graph shows the output power of the fuel cell stack. It operates during no insolation (in the nights, cloudy weather, and so on).
The optimized number of solar modules in an array is 35 pieces. It can be seen from the graphs that the minimal insolation during September to November leads to a significant increase in the hydrogen storage volume (≈2000 m 3 ).
The optimization of the solar module number in the array in combination with the hydrogen stored volume tending to zero by the end of the year gives a clear understanding of the required equipment parameters.
The following graphs are scaled/zoomed for one month (April) just for a better understanding of energy and hydrogen production. Figure 18 shows the result of the simulation and calculation of the required hydrogen tank capacity for Chelyabinsk, Russia (April only).

Simulation Results (Russia)
The result of the calculations for the location Chelyabinsk, Russia is shown in Figure 17.

Simulation Results (Russia)
The result of the calculations for the location Chelyabinsk, Russia is shown in Figure  17.
The first two graphs display the output current and power of the solar modules array, respectively. The third graph shows the power consumed by the electrolyzer. The fourth graph shows the volume of hydrogen in the tank. This graph allows us to determine the maximum volume of accumulated hydrogen per year in the uncompressed state; the specific tank capacity required for Russia is ≈2000 m 3 . The lowest fifth graph shows the output power of the fuel cell stack. It operates during no insolation (in the nights, cloudy weather, and so on).
The optimized number of solar modules in an array is 35 pieces. It can be seen from the graphs that the minimal insolation during September to November leads to a significant increase in the hydrogen storage volume (≈2000 m 3 ).
The optimization of the solar module number in the array in combination with the hydrogen stored volume tending to zero by the end of the year gives a clear understanding of the required equipment parameters.
The following graphs are scaled/zoomed for one month (April) just for a better understanding of energy and hydrogen production. Figure 18 shows the result of the simulation and calculation of the required hydrogen tank capacity for Chelyabinsk, Russia (April only).  The first two graphs display the output current and power of the solar modules array, respectively. The third graph shows the power consumed by the electrolyzer. The fourth graph shows the volume of hydrogen in the tank. This graph allows us to determine the maximum volume of accumulated hydrogen per year in the uncompressed state; the specific tank capacity required for Russia is ≈2000 m 3 . The lowest fifth graph shows the output power of the fuel cell stack. It operates during no insolation (in the nights, cloudy weather, and so on).
The optimized number of solar modules in an array is 35 pieces. It can be seen from the graphs that the minimal insolation during September to November leads to a significant increase in the hydrogen storage volume (≈2000 m 3 ). The optimization of the solar module number in the array in combination with the hydrogen stored volume tending to zero by the end of the year gives a clear understanding of the required equipment parameters.
The following graphs are scaled/zoomed for one month (April) just for a better understanding of energy and hydrogen production. Figure 18 shows the result of the simulation and calculation of the required hydrogen tank capacity for Chelyabinsk, Russia (April only).

Simulation Results (India)
The result of the calculations for the location Manipal, India is shown below ( Figure  19).[ Figure 19. The result of the simulation and calculation of the required hydrogen tank capacity for the location Manipal, India.
The first two graphs show the output current and power of the solar modules array, respectively. The third graph shows the power consumed by the electrolyzer. The fourth graph shows the volume of hydrogen in the storage tank. This graph allows us to determine the maximum volume of accumulated hydrogen per year in the uncompressed state; the tank required capacity is ≈600 m 3 . This is almost three times less than the tank capacity required for Russia because of lower integral insolation. The lowest fifth graph shows the

Simulation Results (India)
The result of the calculations for the location Manipal, India is shown below (Figure 19).

Simulation Results (India)
The result of the calculations for the location Manipal, India is shown below ( Figure  19).[ Figure 19. The result of the simulation and calculation of the required hydrogen tank capacity for the location Manipal, India.
The first two graphs show the output current and power of the solar modules array, respectively. The third graph shows the power consumed by the electrolyzer. The fourth graph shows the volume of hydrogen in the storage tank. This graph allows us to determine the maximum volume of accumulated hydrogen per year in the uncompressed state; the tank required capacity is ≈600 m 3 . This is almost three times less than the tank capacity required for Russia because of lower integral insolation. The lowest fifth graph shows the output power of the fuel cell stack. Again, they operate similar to Russian equipment dur- graph shows the volume of hydrogen in the storage tank. This graph allows us to determine the maximum volume of accumulated hydrogen per year in the uncompressed state; the tank required capacity is ≈600 m 3 . This is almost three times less than the tank capacity required for Russia because of lower integral insolation. The lowest fifth graph shows the output power of the fuel cell stack. Again, they operate similar to Russian equipment during no or lack of sunlight.
The optimized number of solar modules in an array is 32 pieces. The following graphs are scaled for the one month (April) just for a better understanding of the energy and hydrogen production, as shown in Figure 20. The optimized number of solar modules in an array is 32 pieces. The following graphs are scaled for the one month (April) just for a better understanding of the energy and hydrogen production, as shown in Figure 20.

Simulation Results (Australia)
The result of the calculations for the location Gnaraloo (Cape Cuvier), Australia is shown in Figure 21. The first two graphs show the output current and power of the solar modules array, respectively. The third graph shows the power consumed by the electrolyzer. The fourth graph shows the volume of hydrogen in the tank. This graph allows us to determine the maximum volume of accumulated hydrogen per year in the uncompressed state. The tank required ca-

Simulation Results (Australia)
The result of the calculations for the location Gnaraloo (Cape Cuvier), Australia is shown in Figure 21. The optimized number of solar modules in an array is 32 pieces. The following graphs are scaled for the one month (April) just for a better understanding of the energy and hydrogen production, as shown in Figure 20.

Simulation Results (Australia)
The result of the calculations for the location Gnaraloo (Cape Cuvier), Australia is shown in Figure 21. The first two graphs show the output current and power of the solar modules array, respectively. The third graph shows the power consumed by the electrolyzer. The fourth graph shows the volume of hydrogen in the tank. This graph allows us to determine the maximum volume of accumulated hydrogen per year in the uncompressed state. The tank required ca-  The first two graphs show the output current and power of the solar modules array, respectively. The third graph shows the power consumed by the electrolyzer. The fourth graph shows the volume of hydrogen in the tank. This graph allows us to determine the maximum volume of accumulated hydrogen per year in the uncompressed state. The tank required capacity is ≈800 m 3 . This is almost two times less than that tank capacity required for Russia, but about 30% higher than that of India. The lowest fifth graph shows the output power of the fuel cell stack.
The optimized number of solar modules in an array is 23 pieces. The following graphs are scaled for the one month (April) just for a better understanding of the energy and hydrogen production ( Figure 22). about 30% higher than that of India. The lowest fifth graph shows the output power of the fuel cell stack. The optimized number of solar modules in an array is 23 pieces. The following graphs are scaled for the one month (April) just for a better understanding of the energy and hydrogen production ( Figure 22).

Results of Simulation
The analysis shows the following results: - The solar-powered hydrogen uninterrupted power plant in Australia requires 1.5 times fewer solar modules (23 pcs) for supplying the same 1 kW power consumer than it would require for Russia (35 pcs). - The hydrogen storage tank for Russia is almost twice as large as that for Australia and three times more than that for India, owing to more constant insolation in Manipal. - The electrolyzer power consumption also differs from location to location and reflects the time of its operation. In Russia, it works less; however, more solar modules should be used to drive it.

Results of Optimizing
The optimization of the solar modules number in array leads to the optimization of the electrolyzer operation time and hydrogen storage tank volume. The higher and more plentiful the insolation, the fewer solar modules in an array and the shorter the operation time of the electrolyzer, which also means lower volume of the storage tank. The comparison results are presented in Table 4.
The simulation shows that the optimization does not influence the operating time and capacity of the fuel cell stack.

Results of Simulation
The analysis shows the following results: - The solar-powered hydrogen uninterrupted power plant in Australia requires 1.5 times fewer solar modules (23 pcs) for supplying the same 1 kW power consumer than it would require for Russia (35 pcs). - The hydrogen storage tank for Russia is almost twice as large as that for Australia and three times more than that for India, owing to more constant insolation in Manipal. - The electrolyzer power consumption also differs from location to location and reflects the time of its operation. In Russia, it works less; however, more solar modules should be used to drive it.

Results of Optimizing
The optimization of the solar modules number in array leads to the optimization of the electrolyzer operation time and hydrogen storage tank volume. The higher and more plentiful the insolation, the fewer solar modules in an array and the shorter the operation time of the electrolyzer, which also means lower volume of the storage tank. The comparison results are presented in Table 4.
The simulation shows that the optimization does not influence the operating time and capacity of the fuel cell stack.
In general, the generating equipment (solar modules number) for the locations close to the Equator are of lesser capacity than others. At the same time, the hydrogen storage capacity does not differ much (three times higher in Russia than in India and two times higher than in Australia). Metal organic based hydrogen storage can be applied to enhance storage capacity [58].

Conclusions
The exhaustion of fossil fuels will inevitably lead mankind to the global usage of renewable energy sources, which will have to be developed in the sufficient quantities in about 30 years from now before oil and gas will run out. As renewables have the intermittent behavior, the hydrogen storage becomes one of the important areas for engineering development and, among all types of energy storage. It is considered as the mainstream direction to be realized before the hydrocarbons' apocalypse.
It is interesting how the solar generation and hydrogen storage equipment capacity parameters change from country to country and from one geographical location to another. To demonstrate the difference between location capabilities, three locations were selected in this study: Russia (as a country in the Northern Hemisphere), India (as a country near the Equator), and Australia (as the symmetrical country with India relative to the Equator, but in the Southern Hemisphere).
The study was based on the simulation in Matlab/Simulink with the conversion of power into electrical energy using the optimized number of solar modules and further generation of hydrogen gas by storing it in the tank. The main objective was to determine the optimal number of solar modules and maximal volume of hydrogen tank required, considering the same power consumption in each location.
The results obtained during the research are considered to be preliminary with much more analysis is needed in future. The comparison of the solar power capacity depending on the geographical location for the same hydrogen loop cycle equipment and identical consumption demonstrates the ability to use the unified solar, hydrogen, and fuel cell power generating equipment, and the results shows the difference between the solar module number, electrolyzer operating time, and maximal capacity of hydrogen storage tank depending on the insolation intensity.
The difference between location capabilities is rather considerable. Having the same consuming characteristics (1 kW power constant consumption), the power plant in Russia would require 35 solar modules against 23 in Australia and a three times bigger hydrogen tank. In India, almost the same number of solar modules (32) as in Russia (35) which makes it possible to reduce the hydrogen tank twofold. However, in terms of hydrogen equipment capacity, there is small difference between India and Australia, but there is large difference in terms of solar modules-32 against 23. This indicates that there is better insolation in Australia, notwithstanding that the points are located at almost similar latitudes, but on different sides of the equator. The study shows that the appropriate financial expenses on the same power consumption/generation in Australia will be 1.5 times less than in India and almost 3 times less than in Russia. This in turn means that, in general, business and residence expenses will be comparable.
Further research will be devoted in optimizing the solar modules number, hydrogen tank capacity, and electrolyzer operating time in automatic duty cycles, using the same Matlab/Simulink, but with automated optimized conditions. Several other locations are to be selected for comparison purposes (North and South America, Africa, China, areas closed to the North and South Poles, and so on). Moreover, the authors have an idea of building an interactive calculator of the required solar array, power of electrolyzer, fuel cell stack, and hydrogen tank volume, depending on geographical location and power consumption graphs. The separate research area would be an extension of the experimental activity in the Arctic where the authors installed the wind-powered hydrogen equipment in 2013.
Funding: This research received no external funding.