StorageProductionController.java 8.6 KB

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  1. package classes;
  2. import classes.StorageElement;
  3. import classes.comparator.StorageElemCompOnCharge;
  4. import classes.comparator.StorageElemCompOnDistance;
  5. import java.util.ArrayList;
  6. import java.util.Collections;
  7. public class StorageProductionController {
  8. private ArrayList<StorageElement> storages;
  9. private float energyRequiredForPowerplantBlackstart;
  10. public StorageProductionController(ArrayList<StorageElement> storages, float energyRequiredForPowerplantBlackstart) {
  11. this.storages = storages;
  12. this.energyRequiredForPowerplantBlackstart = energyRequiredForPowerplantBlackstart;
  13. }
  14. public double currentPossibleStorageProduction() {
  15. return getPossibleProduction(storages);
  16. }
  17. // public float currentStorageProduction() {
  18. // float producedEnergy = 0;
  19. // for (StorageElement ele : storages) {
  20. // if (ele.getStatus().equals(StorageElement.Mode.EMIT)) {
  21. // // needed to no emit more than what is available
  22. // if(ele.getStateOfCharge() - ele.getEnergyPerElement() < 0){
  23. // ele.setEnergyPerElement(ele.getStateOfCharge());
  24. // }
  25. // producedEnergy += ele.getEnergyPerElement();
  26. // }
  27. // }
  28. // return producedEnergy;
  29. // }
  30. public void enableStorageDischarging(final double energyNeeded) {
  31. Collections.sort(storages, Collections.reverseOrder());
  32. // System.out.println("energy needed from storage" + energyNeeded);
  33. // int storagesLeft = storages.size();
  34. double energyLeftToEnabled = energyNeeded;
  35. for (StorageElement se: storages) {
  36. if(!se.chargeDepleted()){
  37. energyLeftToEnabled = energyLeftToEnabled - se.setStatusAndSetEnergy(
  38. StorageElement.Mode.EMIT, energyLeftToEnabled, energyRequiredForPowerplantBlackstart);
  39. }
  40. // storagesLeft = storagesLeft - 1;
  41. if(energyLeftToEnabled <= 0){
  42. System.out.println("enabled energy from storage");
  43. // assessFitness(1,1,1,energyNeeded);
  44. return;
  45. }/*else if(storagesLeft <= 0){
  46. System.out.println("nicht genug enabled");
  47. }*/
  48. }
  49. }
  50. public void setAllStorageToStandy() {
  51. for (StorageElement se : storages) {
  52. se.setStatusAndSetEnergy(StorageElement.Mode.STANDBY, 0, energyRequiredForPowerplantBlackstart);
  53. }
  54. }
  55. //TODO: selbe probleme wie discharging
  56. void enableStorageCharging(float energyAvailable){
  57. Collections.sort(storages, new StorageElemCompOnCharge());
  58. System.out.println("energy available to storage" + energyAvailable);
  59. double availableEnergyLeft = energyAvailable;
  60. for (StorageElement se: storages) {
  61. if(!se.fullyCharged()){
  62. availableEnergyLeft = availableEnergyLeft - se.setStatusAndSetEnergy(
  63. StorageElement.Mode.COLLECT, availableEnergyLeft, energyRequiredForPowerplantBlackstart);
  64. }
  65. if(availableEnergyLeft <= 0){
  66. System.out.println("storage charging");
  67. return;
  68. }
  69. }
  70. }
  71. // private void assessFitness(float w1, float w2, float w3, double energyNeeded){
  72. // double fitness = 0f;
  73. //
  74. // fitness = w1 * distanceFitness(energyNeeded) + w2 * supplyFitness(energyNeeded) + w3 * holdMaxPowerFitness();
  75. // System.out.println("Fitness score: " + fitness);
  76. // }
  77. //
  78. // private double distanceFitness(double energyNeeded){//TODO: nicht lieber mit wiederstand?
  79. // double distancePenalty = 0;
  80. // ArrayList<StorageElement> sortedElements = storages;
  81. // Collections.sort(sortedElements, Collections.reverseOrder());
  82. // for (StorageElement ele : sortedElements) {
  83. // if(!ele.chargeDepleted()){
  84. // if(ele.getStatus().equals(StorageElement.Mode.EMIT)) {
  85. // distancePenalty += goodDistance(energyNeeded ,ele);
  86. // energyNeeded -= ele.getEnergyPerElement();
  87. // }
  88. // }
  89. // }
  90. // return distancePenalty;
  91. // }
  92. //
  93. // private double goodDistance(double energyNeeded, StorageElement ele){
  94. // if(energyNeeded <= 0){
  95. // return 0;
  96. // }
  97. // if(energyNeeded >= ele.getCurrentMaxOutRatio()){
  98. // if(ele.getChargingRatio() < ele.getCurrentMaxOutRatio()){
  99. // return Math.abs(ele.getCurrentMaxOutRatio() - ele.getChargingRatio());
  100. // }else{
  101. // return 0;
  102. // }
  103. // }else{
  104. // if(ele.getChargingRatio() < energyNeeded){
  105. // return Math.abs(energyNeeded - ele.getChargingRatio());
  106. // }else{
  107. // return 0;
  108. // }
  109. // }
  110. // }
  111. // private double produceTooMuch(StorageElement ele){
  112. // if(avgUtilization() >= ele.getUtilization(energyRequiredForPowerplantBlackstart)){
  113. // return 0;
  114. // }else{
  115. // return Math.abs(avgUtilization() - ele.getUtilization(energyRequiredForPowerplantBlackstart));
  116. // }
  117. // }
  118. //
  119. // private double produceTooLittle(StorageElement ele){
  120. // if(avgUtilization() <= ele.getUtilization(energyRequiredForPowerplantBlackstart)){
  121. // return 0;
  122. // }else{
  123. // return Math.abs(avgUtilization() - ele.getUtilization(energyRequiredForPowerplantBlackstart));
  124. // }
  125. // }
  126. //
  127. // private double avgDistance(){
  128. // double totalDistance = 0;
  129. // for (StorageElement ele : storages) {
  130. // if(ele.getStatus().equals(StorageElement.Mode.EMIT)){
  131. // totalDistance += ele.getHighDistance() + ele.getLowDistance();
  132. // }
  133. // }
  134. // return totalDistance/activeStorages();
  135. // }
  136. //
  137. // private double avgUtilization(){
  138. // double totalUtilization = 0;
  139. // for (StorageElement ele : storages) {
  140. // if(!ele.chargeDepleted()){
  141. // totalUtilization += ele.getUtilization(energyRequiredForPowerplantBlackstart);
  142. // }
  143. // }
  144. // return totalUtilization/activeStorages();
  145. // }
  146. //
  147. // private double activeStorages(){
  148. // double activeStorages = 0;
  149. // for (StorageElement ele : storages) {
  150. // if(ele.getStatus().equals(StorageElement.Mode.EMIT)){
  151. // activeStorages++;
  152. // }
  153. // }
  154. // return activeStorages;
  155. // }
  156. // private double supplyFitness(double energyNeeded){
  157. // double activeStoragePower = 0;
  158. // for (StorageElement ele : storages) {
  159. // if(ele.getStatus().equals(StorageElement.Mode.EMIT)) {
  160. // activeStoragePower += ele.getEnergyPerElement();
  161. // }
  162. // }
  163. // if((int) activeStoragePower + 1 < energyNeeded){
  164. // return Math.pow(9000, 9000);//TODO:
  165. // }else{
  166. // return Math.abs(activeStoragePower - energyNeeded);
  167. // }
  168. // }
  169. //
  170. // private double holdMaxPowerFitness(){
  171. // double willNotHoldPower = 0;
  172. // for (StorageElement ele : storages) {
  173. // if(ele.getStatus().equals(StorageElement.Mode.EMIT)) {
  174. // willNotHoldPower += maxPowerNextIteration(ele);
  175. // }
  176. // }
  177. // return willNotHoldPower;
  178. // }
  179. //
  180. // private double maxPowerNextIteration(StorageElement ele){
  181. // if(ele.getStateOfCharge() - ele.getChargingRatio() >= ele.getNominalOutRatio()){//TODO:
  182. // return 0;
  183. // }else{
  184. // return ele.getNominalOutRatio() - (ele.getStateOfCharge() - ele.getChargingRatio());
  185. // }
  186. // }
  187. public void scheduleDischarging(final double energyNeeded){
  188. ArrayList<StorageElement> lowRisk = new ArrayList<StorageElement>();
  189. ArrayList<StorageElement> middleRisk = new ArrayList<StorageElement>();
  190. ArrayList<StorageElement> highRisk = new ArrayList<StorageElement>();
  191. //vorsortieren
  192. for (StorageElement ele : storages) {
  193. if(ele.getStateOfChargeInPercent() < 0.2){
  194. if(!ele.chargeDepleted()
  195. && ele.getStateOfCharge() - ele.getCurrentMaxOutRatio() < ele.getCurrentMaxOutRatio()){
  196. highRisk.add(ele);
  197. }else{
  198. middleRisk.add(ele);
  199. }
  200. }else{
  201. lowRisk.add(ele);
  202. }
  203. }
  204. double energyLeftToEnabled = energyNeeded;
  205. //activate with lowRisk
  206. lowRisk.sort(new StorageElemCompOnDistance());
  207. for (StorageElement ele : lowRisk) {
  208. energyLeftToEnabled -= ele.setStatusAndSetEnergy(
  209. StorageElement.Mode.EMIT, energyLeftToEnabled, energyRequiredForPowerplantBlackstart);
  210. if(energyLeftToEnabled <=0) {
  211. return;
  212. }
  213. }
  214. double middleRiskEnable = 0;
  215. middleRisk.sort(new StorageElemCompOnCharge());
  216. if(energyLeftToEnabled <=0){
  217. return;
  218. }else{
  219. for(StorageElement ele : middleRisk){
  220. energyLeftToEnabled -= ele.setStatusAndSetEnergy(
  221. StorageElement.Mode.EMIT, energyLeftToEnabled, energyRequiredForPowerplantBlackstart);
  222. if(energyLeftToEnabled <=0) {
  223. return;
  224. }
  225. }
  226. }
  227. energyLeftToEnabled -= middleRiskEnable;
  228. double highRiskenable = 0;
  229. //activate with highRisk
  230. if(energyLeftToEnabled <=0){
  231. return;
  232. }else {
  233. double possibleHighRiskProduction = getPossibleProduction(highRisk);
  234. for (StorageElement ele : highRisk) {
  235. highRiskenable = highRiskenable + ele.setStatusAndSetEnergy(
  236. StorageElement.Mode.EMIT,
  237. ele.getPossibleProduction(energyRequiredForPowerplantBlackstart)/possibleHighRiskProduction * energyLeftToEnabled,
  238. energyRequiredForPowerplantBlackstart);
  239. }
  240. }
  241. System.out.println("energy left to enable = " + energyLeftToEnabled + " highrisk enable = "+ highRiskenable);
  242. }
  243. private double getPossibleProduction(ArrayList<StorageElement> list){
  244. double production = 0;
  245. for (StorageElement ele: list) {
  246. production += ele.getPossibleProduction(energyRequiredForPowerplantBlackstart);
  247. }
  248. return production;
  249. }
  250. }