Skip to content
易运盈
  • 首页
  • 行业方案Expand
    • 汽配行业
    • 农机行业
    • 塑身衣行业
    • 机械行业
    • 细分工业品
    • 包装行业
    • 假发行业
    • 大型机械行业
    • 大蒜独立站
    • 金属粉末独立站
    • 钢材建站方案
    • 轮胎独立站方案
  • 定制建站
  • SEO优化Expand
    • SEO模块
    • 国家站群SEO
    • 独立站代运营
    • 易运盈AIGC
  • 运营指南Expand
    • 多语言SEO优化
    • B2B内容营销
    • 谷歌广告系统
    • Facebook运营
    • 阿里巴巴国际站
    • 外贸知识
  • 合作案例Expand
    • 建站案例
    • SEO案例
  • 公司新闻
  • 关于我们
  • 联系我们
易运盈

SolidFlex 2000: A New Benchmark in Balcony Energy Storage — Advantages and Analysis of Semi-Solid-State LFP Battery

2025年05月30日

Introduction

In Europe, persistently high electricity costs and the rising demand for household energy autonomy have sparked a boom in balcony photovoltaics. The rapid popularity of balcony PV systems across Europe—particularly explosive growth in Germany—can be attributed to their core advantage: easy installation without professional construction. This feature perfectly aligns with European households’ pursuit of energy solutions that are plug-and-play and flexibly deployable.

What’s more, as systems become more widespread, users are placing increasingly stringent demands on fire and explosion prevention as well as stability under extreme weather conditions. Safety has become the core consideration in product selection. From the early dominance of lithium iron phosphate (LFP) batteries to the emerging semi-solid-state LFP batteries, each technological iteration is reshaping the efficiency and safety of energy storage.

With its innovative design and outstanding performance, the SolidFlex 2000 semi-solid-state LFP battery redefines the benchmark for balcony energy storage. The following sections will analyze why SolidFlex 2000 is your ideal choice, based on its core advantages.

1. LFP Batteries: The Foundation of Balcony Energy Storage

Why has lithium iron phosphate (LiFePO₄) become the preferred choice for household energy storage in the balcony sector? The widespread adoption of this battery type is due to the combined effect of three core advantages:

  • Safety: The structure of LFP remains stable under high temperatures and overcharging, with a much lower risk of thermal runaway compared to ternary lithium batteries.
  • Economy: LFP batteries offer lower purchase costs, reduced lifecycle electricity costs, and nearly maintenance-free operation—making them a cost-efficiency benchmark for household storage.
  • Environmental Sustainability: Free of scarce metals like cobalt and nickel, LFP batteries have high recycling rates and meet the green energy demands under carbon neutrality goals.

2. Semi-Solid-State LFP Batteries: The Future of Balcony Storage

While traditional LFP batteries continue to dominate the market with their low cost and long lifespan, why is semi-solid-state LFP technology regarded as the future direction?

We will now explore the technical pain points that semi-solid-state batteries address in balcony applications:

Why does battery performance drop in winter?

  • Loss of Battery Activity
    In low-temperature environments (e.g., below 0°C), the electrolyte inside lithium-ion batteries becomes more viscous, reducing lithium-ion mobility and thus lowering capacity. Conventional lithium batteries can lose about 20% capacity at 0°C, and up to 50% at -10°C.
  • Suppressed Chemical Activity
    Low temperatures cause the electrode surface to become passivated, hindering lithium-ion intercalation/deintercalation, increasing polarization, and significantly reducing usable energy density.
  • Reduced Charging Efficiency
    Lower electrochemical reaction rates at low temperatures slow down charging and may damage battery lifespan if prolonged.

Why do impacts lead to smoke or fire in batteries?

  • Internal Short Circuit from Physical Damage
    Impact or puncture may rupture the separator, causing the anode and cathode to touch and short-circuit—releasing heat rapidly. Liquid electrolytes (e.g., carbonates) are highly sensitive to heat/sparks and may decompose rapidly, resulting in thermal runaway and potential fire/explosion.
  • Lithium Dendrites: The Hidden Killer
    Prolonged usage or overcharging can lead to dendrite formation in lithium metal anodes, which may pierce the separator and cause internal short circuits. Liquid electrolytes offer limited suppression of dendrites, exacerbating safety risks.
  • Difficult Thermal Containment
    Traditional battery packs transfer heat quickly between cells. If one cell undergoes thermal runaway, it may trigger a chain reaction. Liquid electrolytes spread heat rapidly, making containment difficult.

3. Can Solid-State Batteries Solve These Root Issues?

Solid-state batteries replace liquid electrolytes with solid-state electrolytes, fundamentally addressing the key pain points of traditional batteries:

Revolution in Safety

  • Solid Electrolytes: Materials such as sulfides and oxides are heat-resistant and non-volatile, effectively eliminating the risks of leakage and combustion.
  • Suppression of Lithium Dendrites: Solid electrolytes have high mechanical strength and can physically block dendrite growth, greatly reducing the chance of short circuits.
  • Improved Thermal Stability: All-solid-state batteries remain stable under extreme tests such as nail penetration and compression, with thermal runaway temperatures significantly higher.

Optimized Low-Temperature Performance

Solid electrolytes avoid the viscosity increase seen in liquid electrolytes at low temperatures, maintaining high ionic conductivity even in extremely cold environments.

Breakthrough in Energy Density

By using solid electrolytes and high-capacity lithium metal anodes, solid-state batteries significantly surpass traditional liquid lithium batteries in energy density.

4. Why Aren’t Solid-State Batteries Widely Adopted Yet? Is There an Alternative?

Currently, the cost of fully solid-state batteries is several times higher than that of liquid batteries. This is due to:

  • High material costs (e.g., sulfide electrolytes, LLZO).
  • Lack of large-scale production capabilities (global sulfide electrolyte capacity is under 100 tons/year).
  • Absence of standardized manufacturing equipment.

As a result, full solid-state batteries are not yet mainstream.

The Optimal Alternative: Semi-Solid-State Batteries

Semi-solid-state batteries combine the advantages of liquid and solid-state batteries, making them the most feasible replacement solution.

5. SolidFlex 2000 Balcony Storage System: The World’s First Semi-Solid-State LFP System Leading a New Era

With rising demands for safety and energy density in storage applications, semi-solid-state batteries are rapidly penetrating the market. At the 2025 EES Europe in Munich, INDEVOLT launched a revolutionary semi-solid-state LFP balcony storage system, offering multiple layers of protection even under extreme scenarios:

  • In the event of accidental impact or puncture, the solid skeleton limits electrolyte leakage, significantly reducing fire risk.
  • During summer heat or enclosed space exposure, internal temperature control is enhanced, preventing thermal runaway.
  • Comprehensive upgrades to household storage safety boundaries.

5.1 Extreme Safety Performance: Redefining Storage Safety Standards

Internal Short Circuit Protection (Nail Penetration Test)

When pierced with an 8mm steel needle, the semi-solid-state battery does not smoke, catch fire, or explode. Solid electrolytes suppress dendrite growth, and the low proportion of liquid electrolyte minimizes thermal runaway risk—solving the traditional “penetration equals explosion” issue.

High Temperature Tolerance (Thermal Chamber Test)

In a 160°C thermal chamber, the cell remains stable with no signs of thermal runaway. Compared to traditional liquid batteries, semi-solid technology raises the temperature threshold to beyond 160°C, making it suitable for hot regions and enclosed balconies.

Overcharge Protection (Electrical Safety Test)

Even when overcharged to 25V at a 0.5C rate (far beyond rated voltage), the battery remains safe. Coordinated action between the intelligent CEI/SEI interface layer and solid electrolyte prevents chain reactions and electrolyte gas expansion.

External Short Circuit Protection (Short Test)

When shorted with a <1mΩ wire, the battery shows no signs of thermal runaway. This is due to the battery’s low internal resistance and efficient heat dissipation design, preventing local overheating during short circuits.

5.2 Ultra-Long Cycle Life: Ensuring Economic Viability

Under standard conditions (25°C), the semi-solid-state battery achieves:

  • ≥80% capacity retention after 6000 cycles at 0.5P charge/discharge.
  • ≥70% capacity retention after 8000 cycles.

This greatly exceeds traditional LFP batteries and reduces lifecycle electricity cost in high-frequency applications like home energy storage and grid peak shaving.

5.3 Safety Comparison: Semi-Solid vs. Traditional Liquid Batteries

Extreme Safety Performance Comparison

ItemsSemi-Solid-State BatteryTraditional Liquid Battery
Cycle life (70% DOD)80006000
Short circuit after 150°C storageNo smoking, no fire, no explosionSmoking, no fire, no explosion
Overcharge + heat triggerTrigger at 123°CTrigger at 97°C
Overcharge at 280ANo thermal runawayThermal runaway and propagation

Additional Test:

  • Semi-solid cells placed in an explosion-proof box, stored at 150°C for 1 hour, then short-circuited → No thermal runaway observed.
  • 13-cell and 52-cell modules overcharged to 5.475V with 280A current → No smoke, fire, or explosion.

Overcharge Test (Single Cell)

TestMethodCell TypeResultTrigger TimeTempMax Temp
Overcharging0.5C to 25VSemi-solid LFPNo smokeNoneNone89.6°C
Overcharging—Traditional liquidSmoke1800s84°C306°C
  • Semi-solid: Smooth voltage curve, max temp 89.6°C, no smoke or runaway.
  • Liquid: Smoke after 1800s, max temp 306°C, severe safety risk.

5.3 Continued: Short Circuit & Puncture Test Results

External Short Circuit & Puncture Test Comparison

Test ItemTest MethodTest ResultTemperature
External ShortShort circuit (≤5mΩ resistance),No swelling, no valve release,31.7°C
Circuitcontinuous discharge to 0Vno fire, no explosion
5mm Penetration25mm/s puncture through the cell center,No swelling, no valve release,95.6°C
held for 1 hourno fire, no explosion
  • Visual inspection: No significant change in battery appearance before and after short circuit, structure remained intact.
  • Puncture results: Battery maintained structural stability, with no bulging or valve ejection—confirming safe performance.

Based on the fact that the battery remains structurally stable after the puncture test, it can be confirmed that it is in a safe condition (no swelling, valve spray, etc.).

Summary: Through parameter comparison and physical comparison diagrams, the safety and reliability of the battery under extreme conditions can be intuitively verified. Both types of extreme tests meet safety standards.

Module-Level Thermal Runaway Trigger Test

Test Method and Objects

Modules with 12 serial cells (no isolation between cells) were heated while monitoring:

  • Voltage
  • Side temperature (diffusion)
  • Pressure relief valve status
  • Thermal runaway indicators (smoke, fire)
ItemVoltage (V)Diffusion Temp (°C)Pressure ValveThermal RunawayResult
Regular Cell0311.8YesYesNot Passed
Semi-Solid Cell3.33581.5NoNo (light swell)Passed

Key Findings:

  • Traditional cell: Voltage dropped to 0V, side temperature exceeded 300°C, valve ejected, thermal runaway occurred (smoke/fire).
  • Semi-solid cell: Voltage remained at 3.335V, temperature ≤81.5°C, no valve ejection, no smoke/fire, only slight swelling—no thermal runaway.

Conclusion:

Even without cell isolation, semi-solid battery modules suppressed thermal runaway when heated—low temperature rise, no smoke/fire, valve intact, demonstrating excellent thermal safety and system reliability.

Overcharge Test at Module Level (280A)

Test Description

Both semi-solid and traditional liquid battery modules were overcharged with 280A current. The test compared:

  • Thermal runaway
  • Temperature rise
  • Physical appearance

Results Comparison

Semi-Solid-State Battery Module:

  • Temperature: Max 110°C
  • Thermal Runaway: None
  • Appearance: No smoke or fire; slight cable deformation; structure remained intact

Traditional Liquid Battery Module:

  • Phenomenon: Severe fire during overcharge (visible flames)
  • Thermal Runaway: Occurred
  • Safety: Poor

Conclusion:

Under overcharge, the semi-solid-state battery module maintained:

  • Lower max temperature (≤110°C)
  • No thermal runaway
  • Stable structure

Far superior to traditional liquid batteries, proving its excellent overcharge safety and enhanced reliability in extreme scenarios.

5.4 Energy Density Leap

Semi-solid batteries significantly improve energy density by:

  • Reducing liquid electrolyte ratio
  • Introducing solid electrolyte coating

This allows for:

  • Use of higher-capacity electrode materials
  • Reduced volume of inactive materials
  • Optimized internal battery space

Additionally, the system adopts high-capacity cells, reducing the need for parallel connections and simplifying integration—shrinking overall system size.

Industry Volume Comparison (kWh/m³)

BrandVolume Energy Density
Competitor 182 kWh/m³
Competitor 272 kWh/m³
INDEVOLT90 kWh/m³

6. Outlook: From Balcony Systems to a Zero-Carbon Lifestyle

Semi-solid LFP batteries, by replacing part of the liquid components with solid-state electrolytes, are shaping the future of safe, efficient, and durable energy storage.

In the future, as every safe, high-performance semi-solid-state battery becomes part of household balconies, we will witness the seamless integration of green living and smart grids.

SolidFlex 2000 is a compelling choice for those seeking a safer, more economical, and flexible balcony energy storage system. Its innovative use of semi-solid-state LFP batteries not only enhances energy storage efficiency but also deepens the commitment to safety and sustainability.

Post navigation

Previous Previous
灌装机独立站SEO优化方案
NextContinue
SolidFlex 2000: A Game-Changer in Home Energy
文章导航
  • Introduction
  • Why does battery performance drop in winter?
  • Why do impacts lead to smoke or fire in batteries?
  • Revolution in Safety
  • Optimized Low-Temperature Performance
  • Breakthrough in Energy Density
  • The Optimal Alternative: Semi-Solid-State Batteries
  • 5.1 Extreme Safety Performance: Redefining Storage Safety Standards
  • 5.2 Ultra-Long Cycle Life: Ensuring Economic Viability
  • 5.3 Safety Comparison: Semi-Solid vs. Traditional Liquid Batteries
  • Overcharge Test (Single Cell)
  • 5.3 Continued: Short Circuit & Puncture Test Results
  • Module-Level Thermal Runaway Trigger Test
  • Overcharge Test at Module Level (280A)
  • 5.4 Energy Density Leap

分享文章

  • Share on Facebook
  • Share on Skype
  • Share on X
  • Share on WhatsApp
  • Share on Pinterest
  • Email this Page
  • Share on LinkedIn
  • Share on LINE

文章分类

  • 建站案例
  • SEO案例
  • 运营指南
  • 公司新闻
联系我们
扫码添加微信

相关文章

    • Uncategorized

    INLUX SOLAR 外贸独立站 SEO 优化战略白皮书

    By yiyunying • 2025-06-08
    以下是针对INLUX SOLAR(www.inluxsolar.com)的SEO优化战略白皮书方案,涵盖优劣势分析、问题诊断、优化方向与重点市场本地化战略建议。内容聚焦于冷门目标市场的精细化SEO打法,帮助企业在竞争激烈的环境中精准发力,提升询盘质量与品牌曝光。 ——深耕中东、非洲与新兴市场的本地化搜索策略 现状评估与优势肯定 ✅ 已具备的优化基础: 核心问题诊断 ❌ 问题一:英文主关键词竞争过高,SEO排名乏力 行业关键词如 “solar street light”,“all in one solar light” 等竞争异常激烈,INLUX虽然产品页面丰富,但仍难以突破排名瓶颈。 ❌ 问题二:博客内容话题宽泛,吸引力不足 当前博客内容多为“科普类”话题,例如“路灯多高”、“路灯什么时候开”,虽有流量潜力,但与目标客户的采购行为关联度不高,难以形成转化。 ❌ 问题三:多语言分站结构分散权重,效果不佳 使用子域名(如 es.inluxsolar.com)使每个语言站点成为独立SEO实体,无法共享主站权重,导致西语、法语站的关键词表现较弱。同时,语言并未精准对应目标国家(如法语并不能覆盖非洲市场)。 ❌ 问题四:目标市场(非洲、中东、岛国)未实现本地化SEO布局 这些区域虽是重点市场,但受限于语言、文化与搜索行为差异,当前网站未能有效打入本地搜索体系。缺乏“Local Search”思维,未建立国家级站点、未使用本地语言优化,也未接入Google My Business。 优化建议与战略方向 1. 明确SEO内容定位,转型为“采购驱动型内容营销” 优化方向: 建议主题示例: 内容类型 示例标题 行业应用类 Cómo elegir farolas solares para zonas rurales en África 采购指南类 Guía completa para comprar farolas solares…
    阅读更多
    • Uncategorized

    Automatic CZ Purlin Roll Forming Machine: The 2025 Complete Guide

    By yiyunying • 2025-06-08
    Overview: What is an Automatic CZ Purlin Roll Forming Machine? Let’s kick this off with a simple question—what exactly is an automatic CZ purlin roll forming machine? Well, if you’re in the steel construction business or anything remotely close to structural framework, you’ve probably come across these alphabet-soup terms like C purlins and Z purlins….
    阅读更多
    • Uncategorized

    NOVOTEK 外贸独立站 SEO 优化白皮书

    By yiyunying • 2025-06-08
    问题诊断综述 在对NOVOTEK企业网站进行全面SEO审查与竞争分析后,我们发现当前独立站在以下四个关键维度存在结构性问题,这些问题正制约着品牌在国际市场的自然流量增长与询盘转化能力: 1. 多语言页面未完成翻译,造成重复内容与SEO风险 虽然网站已配置小语种功能,但大量语言版本页面未进行实际翻译,内容仍为英文。这类重复页面不仅无法覆盖多语言关键词,还可能被搜索引擎判定为重复内容(Duplicate Content),影响整体网站权重。 2. 内容营销体系缺失,未覆盖采购决策全周期 目前网站内容以产品介绍为主,缺乏“教育型、应用型、比较型”等内容来引导潜在客户认知、比较、选择,从而错失大量搜索用户。机械设备采购决策周期长、信息需求大,内容结构单一无法满足不同阶段客户的需求。 3. 过度依赖Google广告投放,获客成本高达1000元/询盘 目前询盘主要依赖Google Ads广告,CPC高企,平均每条询盘成本超1000元,ROI偏低。广告投放存在落地页转化率低、投放结构不清晰等问题,广告预算未形成有效转化闭环。 4. 缺乏本地化国家站点策略,目标市场覆盖不精准 目前网站采取“大一统”式全球覆盖策略,未根据重点出口市场设立定制化国家站点。而同行如 rollformingmachine.us 已建立美国独立站,80%流量来自美国,精准覆盖本地客户,形成本地化优势。 逐项优化解决方案 多语言内容优化:消除重复,实现本地关键词覆盖 预计效果:6个月内多语言页面收录增长30%,自然流量增长20%-50%,提升曝光和小语种关键词排名。 内容营销优化方案 ——助力NOVOTEK构建冷弯行业采购决策内容闭环 问题定义:内容结构单一,缺乏采购链路全周期覆盖 目前NOVOTEK网站内容基本集中于“产品介绍页”,以展示设备参数、功能为主,缺乏面向潜在客户教育、引导、比较、选择的内容。 ❶ 典型表现问题: ❷ 导致结果: 内容营销战略框架:建立采购决策全周期内容闭环 我们建议NOVOTEK围绕“客户采购链路”构建三大内容层级,覆盖从认知、比较到转化的全过程。 1. 教育型内容(Awareness 阶段) 目标:帮助客户建立对产品的初步认知,解决“它是什么、有什么用、适合我吗”的基本问题。 核心主题示例: 关键词类型:初级信息类关键词(what, how, why) 内容形式: 2. 比较型内容(Consideration 阶段) 目标:引导客户进行理性比较,帮助其评估品牌、型号、价格、功能等维度。 核心主题示例: 关键词类型:对比性关键词(vs, best, top, compare) 内容形式: 3. 转化型内容(Decision 阶段) 目标:促使客户采取行动,如留下询盘、下载资料、联系销售人员等。 核心主题示例:…
    阅读更多
    • Uncategorized

    SolidFlex 2000: A Game-Changer in Home Energy

    By yiyunying • 2025-05-30
    As more and more families install solar panels and battery storage systems on their balconies, the dream of generating and storing clean energy at home is becoming a reality. But as time passes, many home users start running into a frustrating issue — your battery system just doesn’t seem to last as long or work…
    阅读更多

免费获得定制营销方案

添加微信号: uncleB

关注公众号
添加微信

SEO优化

  • 服务介绍
  • 国家站群SEO优化
  • 独立站代运营
  • 易运盈AIGC

文章分类

  • 公司新闻
  • 建站案例
  • SEO案例
  • B2B运营指南

联系我们

  • +86 186 6178 2596
  • [email protected]
  • 咨询中心:山东省威海市高区东方新天地

2024 © 山东易运盈

  • 首页
  • 行业方案
    • 汽配行业
    • 农机行业
    • 塑身衣行业
    • 机械行业
    • 细分工业品
    • 包装行业
    • 假发行业
    • 大型机械行业
    • 大蒜独立站
    • 金属粉末独立站
    • 钢材建站方案
    • 轮胎独立站方案
  • 定制建站
  • SEO优化
    • SEO模块
    • 国家站群SEO
    • 独立站代运营
    • 易运盈AIGC
  • 运营指南
    • 多语言SEO优化
    • B2B内容营销
    • 谷歌广告系统
    • Facebook运营
    • 阿里巴巴国际站
    • 外贸知识
  • 合作案例
    • 建站案例
    • SEO案例
  • 公司新闻
  • 关于我们
  • 联系我们