{"version":"1.0","provider_name":"Silicon Saxony","provider_url":"https:\/\/silicon-saxony.de\/en\/","author_name":"publizer2silisax","author_url":"https:\/\/silicon-saxony.de\/en\/author\/publizer2silisax\/","title":"HTWD: Virtual Inertia for Grid Security - Silicon Saxony","type":"rich","width":600,"height":338,"html":"<blockquote class=\"wp-embedded-content\" data-secret=\"lZezG2FqcF\"><a href=\"https:\/\/silicon-saxony.de\/en\/htwd-virtual-inertia-for-grid-security\/\">HTWD: Virtual Inertia for Grid Security<\/a><\/blockquote><iframe sandbox=\"allow-scripts\" security=\"restricted\" src=\"https:\/\/silicon-saxony.de\/en\/htwd-virtual-inertia-for-grid-security\/embed\/#?secret=lZezG2FqcF\" width=\"600\" height=\"338\" title=\"&#8220;HTWD: Virtual Inertia for Grid Security&#8221; &#8212; Silicon Saxony\" data-secret=\"lZezG2FqcF\" frameborder=\"0\" marginwidth=\"0\" marginheight=\"0\" scrolling=\"no\" class=\"wp-embedded-content\"><\/iframe><script>\n\/*! This file is auto-generated *\/\n!function(d,l){\"use strict\";l.querySelector&&d.addEventListener&&\"undefined\"!=typeof URL&&(d.wp=d.wp||{},d.wp.receiveEmbedMessage||(d.wp.receiveEmbedMessage=function(e){var t=e.data;if((t||t.secret||t.message||t.value)&&!\/[^a-zA-Z0-9]\/.test(t.secret)){for(var s,r,n,a=l.querySelectorAll('iframe[data-secret=\"'+t.secret+'\"]'),o=l.querySelectorAll('blockquote[data-secret=\"'+t.secret+'\"]'),c=new RegExp(\"^https?:$\",\"i\"),i=0;i<o.length;i++)o[i].style.display=\"none\";for(i=0;i<a.length;i++)s=a[i],e.source===s.contentWindow&&(s.removeAttribute(\"style\"),\"height\"===t.message?(1e3<(r=parseInt(t.value,10))?r=1e3:~~r<200&&(r=200),s.height=r):\"link\"===t.message&&(r=new URL(s.getAttribute(\"src\")),n=new URL(t.value),c.test(n.protocol))&&n.host===r.host&&l.activeElement===s&&(d.top.location.href=t.value))}},d.addEventListener(\"message\",d.wp.receiveEmbedMessage,!1),l.addEventListener(\"DOMContentLoaded\",function(){for(var e,t,s=l.querySelectorAll(\"iframe.wp-embedded-content\"),r=0;r<s.length;r++)(t=(e=s[r]).getAttribute(\"data-secret\"))||(t=Math.random().toString(36).substring(2,12),e.src+=\"#?secret=\"+t,e.setAttribute(\"data-secret\",t)),e.contentWindow.postMessage({message:\"ready\",secret:t},\"*\")},!1)))}(window,document);\n<\/script>\n","description":"August 5, 2026. As part of the CapMon project, HTW Dresden is developing a monitoring system for large capacitor storage units designed to stabilize the power grid within seconds in the event of an emergency. The transition of the energy system to renewable energy sources involves significant technical challenges. A key task is to ensure the stability of the energy supply. While in conventional power plants the physical mass of rotating generators\u2014the flywheel mass\u2014briefly compensates for sudden frequency fluctuations in the grid through its kinetic energy, this so-called instantaneous reserve is not available in renewable power generation systems such as wind and solar plants. Therefore, measures must be taken to keep the grid frequency constant at 50 hertz even in the event of a potential disruption.","thumbnail_url":"https:\/\/cdn.pblzr.de\/dacbb27c-1270-4041-b681-e2b95f06f8a1\/2026\/08\/htwdresden-logo-400x300_TEXT.jpg"}