Operational Issues of Contemporary Distribution Systems: A Review on Recent and Emerging Concerns
Abstract
:1. Introduction
1.1. Traditional vs. Contemporary PS Networks
1.2. Wind and PV Solar Trends and Contribution to Global Energy
1.3. DS Grid-Integration Challenges
- The difficulty to predict the system behaviour due to the fact that the optimal distribution network solutions must include the types of DG technologies, with their associated intricacies such as climatic conditions dependency and power generation compatibility.
- Energy storage capacity and location [18].
- Load demand scenarios and DR strategies for maximum possible utility and consumers’ benefits.
2. Research Methodology and Organization of the Paper
2.1. Paper Methodology
- Step 1: Relevance: using the above-mentioned keywords, run the search and obtain journal and conference papers that match the searching keywords. A total of 168 articles deemed to be relevant were collected at this stage.
- Step 2: Year of publication: from previous filter level results, only research papers of the last decade were selected, and 41 papers were excluded from step 1 selection. However, due to their strong relevance and valuable contribution to the topic in discussion, 17 papers out of this selection, published between 1994 and 2011 were rescued from the exclusion [1,2,6,19,20,21,22,23,24,25,26,27,28]. Figure 6 provides the collected data breakdown’s distribution based on the year of publication.
- Step 3: Titles and abstracts: the last step was concerned with filtering using paper titles and abstracts.
2.2. Contributions of the Paper
- The paper reviews and presents DG grid integration challenges with regards to techno-economic aspects. The challenges addressed include intermittency and the no-dispatch-ability of RES, network power quality, stability and reliability, electricity market penetration and (de)regulation.
- Existing solutions and strategies are aggregated, packaged and presented in ready-to-use formats that are simple to refer to. The discussed solutions include DR strategies, charging and discharging techniques of battery energy storage, optimization techniques used for DERs in smart grids, coordination of multiple renewable sources, storage systems and DRs to minimize distribution systems’ operational issues.
- The findings of this research paper will assist fellow PS renewable energy scholars and researchers to undertake further investigations and development in the field.
3. Highlights of RES Grid-Integration Challenges
3.1. Review of Past Reviews on DS Issues
3.2. Impacts of Operational Challenges
- Energy storage: operation strategies, coordination, optimization;
4. Solutions Strategies for DS Grid Integration
4.1. Optimal Integration and Planning of Renewable Distributed Generation
- The following, researched and presented by Georgilakis et al. in Ref. [107], are the mathematical formulations components for optimization approaches: a general problem statement, problem objectives whether single or multi, number of DGs and type of DG technology and a number of constraints to be considered.
- This is in the agreement that indeed, as mentioned by [32,94,95], the performance benefits depend mainly on the optimal sizing and location of the DG units, the DS configuration and the types of DG technologies used for conversion of energy. In Ref. [76], Esmaili was one of the earliest researchers to propose a multi-objective framework for placing and sizing DG units with the combination of the number of DGs, voltage stability margin and minimization of power loss into one objective function.
- In Ref. [108], the authors reviewed probabilistic optimization techniques (POT) in Smart Power Systems and noted that in order to account for uncertainties in optimization processes, stochastic optimization is essential. From their review, probabilistic optimization techniques were classified into stochastic optimization (SO), robust optimization (RO), distributionally robust optimization (DRO) and chance constraints optimization (CCO), each of which having their own advantages and drawbacks over the others, with the common drawback to all being their high computational requirements. Riaz et. al. [108] further proposed that the most advanced and less costly technique is the robust optimization in which a deterministic, set-based uncertainty model is used instead of a stochastic one. The authors suggest that POTs must be used in combination in order to deal with new challenges to achieve prolific outcomes.
- The authors in [92,101,102,103,109,110,111,112] have worked on various aspects related to DG grid integration optimization. The solutions proposed include the following benefits: more energy savings, improvement of voltage profile, reduced purchased power from the DGs, increased sold power to the distributed grid, decreased non-supply load, reduced overall cost of smart grid and mitigation of fault severity.
- Fast dispatch is one of the techniques that helps manage the variability of renewable generation because it reduces the need for regulating resources, improves efficiency and provides access to a broader set of resources to balance the system [33].
4.2. DER Coordination
- Energy scheduling with BESS cost [87];
- Energy management with electricity price;
- Accommodation of PV, DR and BESS [103];
- Solar PV with BESS under uncertain environment [112];
- Investment planning of DG resources with DR [102];
- DR analysis for optimal allocation of wind and solar [90];
- Optimal sizing of PV/wind and hybrid considering DSM [113];
- DR trends: users, network services, markets, and DERs [114];
- DR and intermittent RERs [115];
- Price-driven DR [53];
- Household appliances and DR [116];
- Joint allocation and operational management of DG and BESS in presence of DR [92];
- Pricing schemes, optimization objectives and solution methodologies of DSM [11];
- DR: Pricing, optimization and appliance scheduling [117];
- DSM model and optimization;
- Optimal planning and investment benefits of shared BESS;
- DGs, power losses and voltage stability.
4.3. Energy Storage Systems and Complementary Technologies
- Ref. [63] proposed an approach of optimal planning of shared energy storage based on cost–benefit analysis to minimize the electricity procurement of retailers. They found that ES can effectively reduce the cost of retailers and high matching degree can be used as the selection criterion to obtain greater benefits from the shared ES [63].
- Ref. [72] proposed a comprehensive optimal allocation model of BESS considering operation strategy with the optimal capacity problem solved by cost–benefit analysis taking into account the reliability improvement benefits of BESS.
- The authors in Ref. [72] proposed system reliability improvements with BESS in planning operation strategies. The optimal BESS capacity and sizing problem was solved by cost–benefit analysis. The authors concluded that from an economic point of view, the distributed mode is preferable to centralized modes and the benefits of BESS can be improved by increasing the peak–valley difference of electricity price within a certain range.
- Ref. [72] was one of the earlier studies that proposed a comprehensive optimal allocation model of BESS that considered reliability benefits.
5. Further Research Priorities and Conclusions
5.1. Further Research Priorities
- All-in-One multi-objective DER optimal planning solutions that include the coordination of various variables such as the type of DG technologies, the types of energy storage integration, DSM mechanisms and different DR strategies, for maximum benefits both for the utility and consumers have not yet been sufficiently researched.
- Further investigations are needed in establishing optimization techniques using hybrid techniques that combine analytical, metaheuristic and computational methods to achieve better results.
- The use of optimization algorithms, ensemble methods and weather forecasting to develop models that can predict renewable energy power output considering weather conditions and seasonal variation still need attention and focus from researchers.
- Development of robust models to quantify the impact of uncertainties related to intermittency of renewable DGs. There is a need to gather resources and tools for weather condition predictions.
5.2. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Energy Source/Activity | 2011 | 2016 | 2021 |
---|---|---|---|
Total Generation [billion kWh] | 21,226 | 23,971 | 27,295 |
Solar [billion kWh] | 66 | 341 | 1035 |
Wind [billion kWh] | 435 | 957 | 1808 |
Review Aspect | Paper Title | Ref. |
---|---|---|
Penetration issues | On the Path to Sun Shot: Emerging issues and Challenges in Integrating Solar with the Distribution System | [15] |
Integration of renewable distributed generators into the distribution system: a review | [32] | |
Integrating Variable Renewable Energy: Challenges and Solutions | [33] | |
Distributed generation: A review of factors that can contribute most to achieve a scenario of DG units embedded in the new distribution networks | [34] | |
On the Path to Sun Shot: Emerging issues and Challenges in Integrating High Levels of Solar into the Electrical Generation and Transmission System | [35] | |
A critical review of the integration of renewable energy sources with various technologies, | [36] | |
Photovoltaic penetration issues and impacts in distribution network—A review | [37] | |
Grid Integration Challenges and Solution Strategies for Solar PV Systems: A Review | [38] | |
Flexibility issues in DS | Research and Practice of Flexibility in Distribution Systems: A Review | [10] |
A review of demand side flexibility potential in Northern Europe | [40] | |
Aggregation of Demand-Side Flexibilities: A Comparative Study of Approximation Algorithms | [39] | |
Wind and hybrid-systems operational issues | Solar–wind hybrid renewable energy system: A review | [58] |
Hybrid renewable energy systems for off-grid electric power: Review of substantial issue | [59] | |
Wind Resources and Future Energy Security: Environmental, Social, and Economic Issues, | [60] | |
Protection issues | Renewable Energy Integration Challenge on Power System Protection and its Mitigation for Reliable Operation | [16] |
Renewable distributed generation: The hidden challenges—A review from protection perspective | [17] | |
A comprehensive review on issues, investigations, control and protection trends, technical challenges and future directions for Microgrid technology | [41] | |
A review of protection systems for distribution networks embedded with renewable generation | [42] | |
Voltage stability and voltage regulation | Voltage Stability Analysis with High Distributed Generation (DG) Penetration, | [43] |
A comprehensive review of the voltage stability indices | [44] | |
Impact of distributed generation on protection and voltage regulation of distribution systems: A review | [45] | |
Grid-connected photovoltaic system in Malaysia: A review on voltage issues, | [46] | |
DR programs and DSM strategies | Survey on Demand Response Programs in Smart Grids: Pricing Methods and Optimization Algorithms | [31] |
Residential peak electricity demand response—Highlights of some behavioural issues | [49] | |
Particle Swarm Optimization in Residential Demand-Side Management: A Review on Scheduling and Control Algorithms for Demand Response Provision | [50] | |
Residential Sector Demand Side Management: A Review | [51] | |
A Survey of Efficient Demand-Side Management Techniques for the Residential Appliance Scheduling Problem in Smart Homes | [52] | |
A review on price-driven residential demand response, | [53] | |
Vehicles grid system integration and applications | Comprehensive review & impact analysis of integrating projected electric vehicle charging load to the existing low voltage distribution system | [56] |
A comprehensive analysis of Vehicle to Grid (V2G) systems and scholarly literature on the application of such systems, | [55] | |
A review on the state-of-the-art technologies of electric vehicle, its impacts and prospects | [57] | |
Unintentional Islanding | A review on islanding operation and control for distribution network connected with small hydro power plant | [54] |
Ref. | Design and Integration of the System | Power Quality and Voltage Stability | Protection Coordination | Optimal DG Allocation | Penetration | Energy Storage |
[5] | ✓ | ✓ | ||||
[43] | ✓ | ✓ | ✓ | |||
[69] | ✓ | ✓ | ||||
[98] | ✓ | ✓ | ||||
[33] | ✓ | |||||
[7] | ✓ | ✓ | ||||
[8] | ✓ | ✓ | ||||
[16] | ✓ | ✓ | ✓ | |||
[38] | ✓ | |||||
[45] | ✓ | ✓ | ✓ | ✓ | ||
[71] | ✓ | ✓ | ✓ | |||
[105] | ✓ | ✓ | ✓ | |||
[106] | ✓ | ✓ |
Ref. | Challenges or Issues | Solution Methodology | Research Objectives | Constraints/Objective Function | Paper Contribution |
---|---|---|---|---|---|
[90] |
| MISOCP |
|
|
|
[16] |
| Adaptive Over Current Protection (AOCP) |
|
| |
[119] |
|
|
| ||
[115] |
|
|
|
|
|
[74] |
|
|
|
|
|
[86] |
|
|
|
|
|
[87] |
|
|
|
|
|
[92] |
|
|
|
|
|
[120] |
|
|
|
|
|
[53] |
|
|
| ||
[51] |
|
|
| ||
[110] |
|
|
|
| |
[103] |
|
|
|
| |
[118] |
|
|
|
| |
[105] |
|
|
| ||
[80] |
|
|
|
| |
[76] |
|
|
|
|
|
[102] |
|
|
|
|
|
[32] |
|
|
| ||
[72] |
|
|
| ||
[62] |
|
| |||
[106] |
|
|
| ||
[63] |
|
|
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Share and Cite
Loji, K.; Sharma, S.; Loji, N.; Sharma, G.; Bokoro, P.N. Operational Issues of Contemporary Distribution Systems: A Review on Recent and Emerging Concerns. Energies 2023, 16, 1732. https://doi.org/10.3390/en16041732
Loji K, Sharma S, Loji N, Sharma G, Bokoro PN. Operational Issues of Contemporary Distribution Systems: A Review on Recent and Emerging Concerns. Energies. 2023; 16(4):1732. https://doi.org/10.3390/en16041732
Chicago/Turabian StyleLoji, Kabulo, Sachin Sharma, Nomhle Loji, Gulshan Sharma, and Pitshou N. Bokoro. 2023. "Operational Issues of Contemporary Distribution Systems: A Review on Recent and Emerging Concerns" Energies 16, no. 4: 1732. https://doi.org/10.3390/en16041732
APA StyleLoji, K., Sharma, S., Loji, N., Sharma, G., & Bokoro, P. N. (2023). Operational Issues of Contemporary Distribution Systems: A Review on Recent and Emerging Concerns. Energies, 16(4), 1732. https://doi.org/10.3390/en16041732