日韩福利电影在线_久久精品视频一区二区_亚洲视频资源_欧美日韩在线中文字幕_337p亚洲精品色噜噜狠狠_国产专区综合网_91欧美极品_国产二区在线播放_色欧美日韩亚洲_日本伊人午夜精品

Search

Solar

Monday
18 Nov 2024

Lowest Cost of Heat for Modular Sodium CSP? A “Billboard” Solar Receiver With a “Cartesian” Heliostat Layout

18 Nov 2024   

High-temperature liquid sodium receivers able to run at over 700°C may allow use of modular multi-tower system configurations similar to that being developed by the Australian concentrated solar firm Vast for next-generation sodium-based concentrating solar power (CSP). Unlike today’s one tall central tower encircled by one large heliostat field, a liquid sodium-based CSP system enables consideration of multiple small solar-field-and-tower subsystems feeding into centralized storage and power block systems.

The key to multiple modular solar fields is the wide working range of liquid sodium between 100°C and 880°C. Compared to the more restricted operating temperature range of nitrate salts such as HITEC (150 to 600°C), a sodium heat transfer fluid is more suitable to being run through the more extensive piping needed to connect multiple solar fields to a single power block.

Vast has demonstrated the effectiveness of modular sodium-based CSP at temperatures up to 560°C. CSIRO researchers Daniel Potter and Yen Chean Soo Too are investigating sodium’s performance at 700°C to marry it to a next-generation supercritical CO2 power cycle, presenting their findings in the paper “Design of modular high temperature sodium solar collection subsystems.”

The research is being conducted at CSIRO as part of an Australian Solar Thermal Research Initiative (ASTRI) project.

As the leading developer of the Heliosim software used in the analysis, Potter leveraged software creation skills honed during a PhD in aerospace engineering.

“I was happy to be able to apply those skills to a field of research with a direct impact on a greener future for our planet,” said Potter.

Heliosim is used in day-to-day operations at CSIRO Newcastle to design, operate, and simulate the experimental receivers. Potter and Soo Too used Heliosim to optimize the design of high-temperature modular sodium systems and determine the levelized cost of heat (LCOH).

Why the study looked at the LCOH of just the solar collection system

An LCOE (Levelized Cost of Electricity) analysis would include the capital cost of an entire CSP plant, including thermal energy storage and a power block. However, for a modular system, this would vary depending on how many modules it incorporates. So, the study first determined the levelized cost of just the heat captured by one single subsystem, solar field / solar receiver, to get the LCOH of just the solar heat collection.

“The focus was trying to design a modular heliostat field and tower and receiver system to optimize the tower height, the heliostat field, and the receiver geometry to produce the lowest cost of heat for that subsystem,” he noted.

The 11.7 MW receiver design was based on a scaled-up version of the 700 kW ASTRI demonstration sodium receiver that will soon be tested at the CSIRO’s solar thermal research facility in Newcastle. The site considered in the study was the remote Pilbara region of Western Australia. This ideal site for CSP has a world-leading annual insolation of 2738 kWh/m2 and is close to the mining industry, which is largely dependent on generators for energy.

Potter assessed the pros and cons, including sodium’s more efficient solar delivery weighed against the extra cost of the extra piping gathering heat from multiple solar fields, considering that smaller solar fields can have receivers on shorter—and lower-cost—steel lattice towers.??Which receiver and which solar field layout?

The critical aspect of the study was to compare the pros and cons of a billboard or a cavity receiver with the solar field configured either Cartesian (in grid formation) or radially (in concentric rings). There are trade-offs.

On a billboard receiver, sodium flows up and down within narrow piping on a flat plane. “So one of the difficulties with sodium in a sodium billboard receiver is that you have to keep the flow velocity below maybe around three meters per second. Otherwise, they significantly accelerate corrosion of the tubes,” said Potter.

Cavity receivers can have higher performance due to the cavity geometry reducing convective, reflection and re-radiation losses. However, they can be more costly because the optics, based on a single focal point, require the pipe banks to be a bit larger compared to a billboard receiver.

There are complex trade-offs in solar fields, too. For example, a Cartesian solar field with its typically taller receiver tower can have the most compact land footprint, reducing pipe networking costs. However, a taller receiver tower also increases the cost of the steel lattice construction and the vertical sodium piping.

Although cavity receivers are more efficient, in this sodium-based collector system, the LCOH was lowest with the billboard receiver

“Billboard receivers are a good option for sodium systems,” he said. “That’s not immediately obvious because, at higher temperatures, you do have higher thermal radiation losses. The previous logic has been that if you’re going to have higher temperatures, you need to minimize thermal radiation losses by using a cavity. But we found that this isn’t necessarily the case for sodium when the levelized cost of heat is considered.”

Although the study found that the overall lowest LCOH would be achieved by combining a billboard receiver on an 80 meter tall tower with a Cartesian solar field layout, reasonable LCOH could also be achieved at tower heights under 70 meters by using the radially staggered solar field layout.

More News

Loading……
亚洲久久久久| 大桥未久女教师av一区二区| 国产v综合v亚洲欧| 香港伦理在线| 蜜乳av一区二区| 免费女人黄页| 久久97超碰国产精品超碰| av黄色在线| 亚洲最新视频在线观看| 蜜桃一区二区| 影视先锋av资源站| 亚洲国产二区| 黄动漫在线看| 视频一区中文字幕国产| av福利在线导航| 日韩欧美亚洲成人| 国产亚洲在线| 91社区在线高清| 一区二区免费看| 欧美日韩亚洲一区三区| 妞干网2018| 久久精品国产精品亚洲红杏| 僵尸再翻生在线观看免费国语| 一区二区在线观看视频| 久久93精品国产91久久综合| 欧美新色视频| 亚洲精品视频免费看| 欧美专区福利免费| www.久久精品| y111111国产精品久久久| 天天摸日日操| 亚洲天堂成人在线观看| 亚洲一区二区伦理| 成人h动漫免费观看网站| 天天摸日日操| 婷婷一区二区三区| 99人久久精品视频最新地址| 日本高清成人vr专区| 九九99九九精彩| 五月天亚洲精品| 久久亚洲一级片| 亚洲一区二区三区免费在线观看| 青青草国产一区二区三区| 在线播放亚洲一区| 麻豆精品在线观看| 日韩电影精品| 亚洲大胆精品| 91久久精品一区二区三区| 老司机免费视频久久| 久久资源中文字幕| 97超碰免费在线| 先锋影音av资源在线| 国产精品区一区二区三| 国产一区91精品张津瑜| 1024成人| 精品国产成人| 欧美aa视频| 亚洲综合色视频在线观看| 狠狠色噜噜狠狠狠狠97| 国产精品一区二区在线观看不卡 | 一区二区三区四区在线免费观看| 99久久久无码国产精品| 国产一区二区三区在线观看免费 | 69久久夜色精品国产69蝌蚪网| 狠狠久久亚洲欧美专区| 亚洲国产精品v| 国产欧美日韩精品在线| 国产精品久久久久久久久动漫 | 972aa.com艺术欧美| 亚洲乱码视频| 久久久久国产精品一区三寸| 一区二区三区日本久久久| 欧美三级午夜理伦三级小说| 国产区在线观看| 9999精品成人免费毛片在线看 | 伊人久久大香线蕉综合影院首页| 久久视频www| 国产www.大片在线| 免费在线观看av电影| 蝌蚪视频在线播放| 一二三区高清| 色视频网站在线| 欧美日韩在线精品一区二区三区激情综| 欧美日韩国产中文字幕在线| 国产真实生活伦对白| 你懂的好爽在线观看| 国产乱码精品一区二三赶尸艳谈| 国产精品亚洲d| 久久99久久人婷婷精品综合 | 亚洲精品三级| 粉嫩av一区二区三区在线播放 | 在线视频手机国产| 亚洲成a人v欧美综合天堂麻豆| 日本大胆在线观看| 国产成人精品亚洲线观看| 国产亚洲精品自拍| 中文字幕+乱码+中文字幕一区| 亚洲美腿欧美偷拍| 精品毛片网大全| 在线影视一区二区三区| 97影院在线观看| 欧美大片黄色| 久草精品在线观看| 国产精品系列在线观看| 青娱乐精品在线视频| 亚洲黄色影院| 麻豆国产精品777777在线| 性欧美长视频| 欧美激情自拍偷拍| 亚洲欧美日韩中文字幕一区二区三区| 日本美女一区二区| 国产白丝网站精品污在线入口 | 亚洲精品国产a| 欧美一卡2卡三卡4卡5免费| 精品黄色免费中文电影在线播放| 国产一区二区三区| 国产一区二区三区国产| 国产精品你懂的| 一区二区三区四区在线免费视频| 一区二区高清不卡| 久久美女视频| 欧美国产日韩a欧美在线观看| 久久久久久亚洲综合| 国产成人免费网站| 一区2区3区在线看| 成人高清在线| 欧美国产综合| 亚洲视频一区二区在线| 免费高清完整在线观看| 91精品福利| 1024成人网色www| 日韩激情av| 久久影视一区| 欧美日韩一区精品| 日本一级理论片在线大全| 色综合中文网| 又紧又大又爽精品一区二区| 99re6热在线精品视频播放| 久久免费资源| 久久久777精品电影网影网 | 第四色在线一区二区| 国产成人自拍高清视频在线免费播放| 欧美人伦禁忌dvd放荡欲情| 日韩精品一级| 亚洲 欧美综合在线网络| 在线毛片观看| 狠狠色丁香婷综合久久| 国产日韩精品在线看| 蜜乳av一区二区三区| 亚洲成人基地| 久久久蜜桃一区二区人| 欧美欧美欧美欧美| www.成人在线视频| av电影天堂一区二区在线| 日本电影在线观看| 国产精品国产自产拍在线| 国产人妖一区| 中文字幕第一区综合| 欧洲亚洲精品| 一区二区三区日韩欧美精品| 中文字幕这里只有精品| 亚洲成在人线免费| 日本欧美国产| 精品人在线二区三区| 国产亚洲高清视频| 国产区在线观看| 亚洲欧洲综合另类| 欧美人与物videos另类xxxxx| 伊人开心综合网| 国产电影一区二区在线观看| 宅男在线国产精品| 久久激情综合| 欧美成人精品一区二区男人看| 国产精品欧美经典| 精品视频99| av在线收看| 色综合天天性综合| 日韩精品影视| 特级毛片在线观看| 日韩激情av在线| 视频在线这里都是精品| 中文字幕第一区第二区| 日本a口亚洲| 免费在线观看视频| 国产一区二区剧情av在线| www.51av欧美视频| 日韩视频一区在线观看| 日韩影院精彩在线| 日韩精品一区国产| 中文字幕在线观看第一页| 91麻豆精东视频| 久久要要av| 日韩漫画puputoon| 在线视频毛片| 在线观看国产精品网站| 成人毛片老司机大片| 日韩理论片av| 北岛玲精品视频在线观看| 国产二区视频在线观看| 4438x亚洲最大成人网|