用于电信应用的GreenShelter:新一代用于电信应用的shelter,集成了燃料电池备用电源和一种新的冷却方法

G. Gianolio, I. Rosso, L. Mercante, F. Pedrazzo, G. Simonato, F. Ceriani
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引用次数: 5

摘要

设计并制造了新一代的电信应用屏蔽体。基本方法是克服当前技术在冷却需求、能源消耗、维护成本和备份自主性方面的限制。从这个角度来看,我们考虑了以下几个因素:采用能耗极低的主动冷却或被动冷却,以燃料电池为基础的动力系统作为备用设备,尽可能地整合这两种技术。使用自然冷却和相变材料(PCM)可以在没有空调的情况下进行遮蔽冷却。基于燃料电池的动力系统在广泛的可接受工作温度范围(从-5摄氏度到45摄氏度)和非常低的维护需求方面具有优势。基于燃料电池的动力系统已经由几个不同的电信运营商进行了测试,但到目前为止,为了完全整合到庇护所中,只进行了非常小的活动。在这个应用中,一个3千瓦的电力系统为安装在避难所的所有设备提供24小时的自主权。为了完成一个完整的集成工作,新一代的电力系统已经产生:新版本包括一个19rdquo核心组件,配备燃料电池,电源管理和控制系统和一个独立的热分裂,以消散工作期间产生的热量(备用)。结果是新一代的庇护所具有非常有趣的规格。对人造绿色庇护所的实验测试正在进行中。初步结果证实,在相同的温度和散热条件下,与传统的空调遮蔽物相比,绿色遮蔽物解决方案的能量增益可高达70%。同样重要的是,资本支出和运营支出的增长可能分别在10%和50% / 70%左右。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
GreenShelter for telecom applications a new generation of shelters for telecom applications integrating fuel cell electric backup and a new cooling approach
A new generation of shelter for telecom application has been designed and manufactured. The basic approach was to overcome the limit of the current technology regarding cooling needs and energy consumption as well as maintenance costs and backup autonomy. In this perspective the following elements have been considered: to implement an active cooling with very low energy consumption or passive cooling, to backup the apparatus with fuel cell based power system, to integrate as much as possible both the technologies. Shelter cooling without air conditioning is possible with free-cooling and phase changing materials (PCM). Fuel cell based power systems give advantages in terms of wide range of accepted working temperature (from -5degC to 45degC) and very low maintenance needs. The fuel cell based power systems have been tested by several different Telecom operators but up to now very small activities have been performed for a complete integration into the shelter. In this application a 3 kW power system provides 24 hours of autonomy to all the equipments installed in the shelter. To accomplish to a complete integration work a new generation of power system has been generated: the new release consist in a 19rdquo core component equipped with fuel cell, power management and control system and a separated thermal split to dissipate the heat generated during the working time (backup). The result is a new generation of shelter with very interesting specifications. Experimental tests on the manufactured GreenShelter are in progress. Preliminary results confirm that in the same conditions of temperature and heat dissipation, the energetic gain of the GreenShelter solution can be up to 70% with respect to a traditional shelter with air conditioning. Not less important, the gain in terms of CapEx and OpEx could assest around 10% and 50divide70%, respectively.
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