富人和穷人节能效益的差异:基于数据的方法研究重庆强制性能源效率政策的公平性
Liu Chen1, Lina Ran1, Xia Wang2
1School of Management Science and Real Estate, Chongqing University, Chongqing, 400044, China.
Environmental science and pollution research international
|February 10, 2024
概括
强制性建筑能效设计标准 (BEEDS) 显示了不平等的好处. 高收入家庭比低收入家庭节省的能源要多得多,这凸显了能源政策中的公平问题.
科学领域:
- 环境政策 环境政策
- 能源经济学 能源经济学
- 不平等的社会学 不平等的社会学
背景情况:
- 强制性建筑能效设计标准 (BEEDS) 的公平性影响尚未得到充分研究,特别是在收入群体之间的差异方面.
- 现有的能源政策往往忽视了对弱势群体的差异性影响.
研究的目的:
- 评估BEEDS在不同收入水平的家庭能源消耗上的异质影响.
- 量化强制性建筑标准带来的节能效益的公平性.
主要方法:
- 利用来自中国重庆1196个家庭的家庭级数据.
- 使用比较分析来评估相对于没有BEEDS的基线相对的能源效率增长.
- 应用洛伦茨曲线来衡量节能效益分配中的不平等.
主要成果:
- 高收入家庭实现了47%的实际能源效率,而中等收入家庭达到32%,低收入家庭达到25%.
- 高收入群体的节能效益大约是低收入群体的两倍.
- 计算出0.25的不平等系数,表明福利分配存在显著差异.
结论:
- BEEDS表现出回归性影响,不成比例地使高收入家庭受益.
- 建筑能源效率的政策制定必须解决公平差距,以确保公平的利益分配.
- 需要进一步的研究和政策调整,以促进公平的能源效率成果.
相关概念视频
Production Efficiency
16.8K
Net production efficiency (NPE) is the efficiency at which organisms assimilate energy into biomass for the next trophic level. Due to low metabolic rates and less energy spent on thermoregulatory processes, the NPE of ectotherms (cold-blooded animals) is 10 times higher than endotherms (warm-blooded animals).
16.8K
Energy Conservation and Bernoulli's Equation
8.9K
Applying the conservation of energy principle or the work-energy theorem to an incompressible, inviscid fluid in laminar, steady, irrotational flow leads to Bernoulli's equation. It states that the sum of the fluid pressure, potential, and kinetic energy per unit volume is constant along a streamline.
All the terms in the equation have the dimension of energy per unit volume. The kinetic energy per unit volume is called the kinetic energy density, and the potential energy per unit volume is...
All the terms in the equation have the dimension of energy per unit volume. The kinetic energy per unit volume is called the kinetic energy density, and the potential energy per unit volume is...
8.9K
Efficiency of The Carnot Cycle
2.6K
The hypothetical Carnot cycle consists of an ideal gas subjected to two isothermal and two adiabatic processes. Since the internal energy of an ideal gas depends only on its temperature, which is the same before and after the completion of the Carnot cycle, there is no change in its internal energy. Hence, using the first law of thermodynamics, the total heat exchanged by the ideal gas equals the total work done. Thus, we can quantify the efficiency of the Carnot cycle via the heat exchanged...
2.6K
Energy Budgets
9.2K
Organisms must balance energy intake with the energy required for growth, maintenance and reproduction. These trade-offs result in a variety of survivorship and reproductive strategies, including semelparity and iteroparity. Semelparous species, like annual plants, have only one reproductive episode in their lifetimes and consequently have short lifespans. Iteroparous species, by contrast, have many reproductive events during their lifetimes but have relatively few offspring. These two...
9.2K
Mechanical Efficiency of Real Machines
691
The mechanical efficiency of a machine is a fundamental concept that describes how effectively a machine can convert input work into output work. According to this concept, the efficiency of a machine is equal to the ratio of the output work to the input work. An ideal machine, meaning a machine that has no energy losses, has an efficiency of one. This implies that the input work and the output work are equal.
However, in reality, no machine can be truly ideal, and all of them experience some...
However, in reality, no machine can be truly ideal, and all of them experience some...
691
Power and Energy
800
The power and energy delivered to an element are subjects of great significance in the field of electrical engineering. It is a well-known fact that a 100-watt light bulb emits more light than a 60-watt one. Therefore, power and energy calculations play a crucial role in the analysis of electrical circuits.
Power, defined as the time rate of expending or absorbing energy, is quantified in units called watts (W). The relation between power and energy is mathematically given as
Power, defined as the time rate of expending or absorbing energy, is quantified in units called watts (W). The relation between power and energy is mathematically given as
800


