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RBHG-160G

RBHG-160G

Categories:HEAT PUMP - Special high-temperature drying heat pump

Introduction:The high-temperature heat pump green drying machine utilizes heat pump technology. It can absorb the high-temperature and high-humidity exhaust gas emitted after drying linen through the evaporator of the heat pump. Then, the refrigerant is pressurized by the compressor to increase the temperature, and the heated air is passed through the condenser of the heat pump and enters the drum. Since the consumed electric energy is only for maintaining the circulation of the refrigerant and continuously transferring heat, it can obtain a greater amount of heat output with a smaller input of electric energy.

Advantages

Suitable for large washing industrial parks

RBHG-160G Technical Parameters
型号RBHG-160G
额定制热量150kw
额定输入功率42kw
应急电热功率15kw
额定放衣物量150kg
最高风温120℃
外形尺寸(mm)2040*2090*2620
净重2200kg
RBHG-160G Product Advantages

Traditional Washer-Dryer Working Principle & Energy Consumption

Current Energy Analysis: Most laundry industrial parks currently use gas-fired boilers to supply steam to the on-site laundry plants. However, natural gas prices continue to rise, and the drying and washing equipment used by these plants generally lacks heat recovery systems. As a result, energy costs remain persistently high.

Traditional washer-dryer working principle and energy consumption [Diagram: Traditional dryer steam piping — steam pipes, condenser, drying equipment, exhaust gas 50~80℃ waste heat]

Working Principle: Most traditional dryers use boilers to generate steam as the thermal medium. Steam is piped to each dryer, where a heat exchanger converts the steam energy into hot air (100~120℃) that is fed into the dryer drum. The exhaust air discharged after drying linen still reaches 50~80℃, wasting a significant amount of thermal energy.

Laundry Industry Production Process & Energy Retrofit Comparison

Laundry industry production process and energy retrofit comparison [Flowchart: Laundry sorting → Washer-extractor → Dehydrator → Dryer; Retrofit: Air/Water source high-temp heat pump producing 75℃ hot water, high-temp steam heat pump recovering exhaust waste heat]

Using air-source or water-source high-temperature heat pumps to produce 75℃ hot water injected directly into washing machines saves energy and boosts productivity.

Using high-temperature steam heat pumps to recover exhaust waste heat as a heat source for steam production — energy-efficient and cost-effective.

Zhongshengneng High-Temp Heat Pump Washer-Dryer Working Principle & Energy Consumption

Zhongshengneng high-temp heat pump washer-dryer working principle and energy consumption [Schematic: Heat pump cycle — compressor, condenser, expansion valve, evaporator, with temperature annotations at each point]

Energy-Saving Principle: The high-temperature heat pump green dryer uses heat pump technology to fully absorb heat from the high-temperature, high-humidity exhaust discharged after drying linen. The heat is absorbed through the evaporator, then the refrigerant is pressurized and temperature-boosted by the compressor, and the condenser heats the air entering the drum. Since the electrical energy consumed only maintains the refrigerant circulation — a continuous heat transfer process — a small electrical input yields a large heat output.

Zhongshengneng Green Heat Core — Super Steam Replacement Savings

To reduce energy costs, many laundry plants locate next to power plants where steam is generally cheaper, typically around 220~260 CNY/ton. If a laundry plant mainly operates during the day, electricity rates can reach 0.9 CNY/kWh, which limits the savings from a pure heat pump dryer. To address this, Zhongshengneng introduced the Green Heat Core washer-dryer, which saves significant costs even when steam prices are low.

Zhongshengneng Green Heat Core — Super steam replacement savings [Green Heat Core dual-energy heat pump schematic — steam + heat pump composite heating]

Energy-Saving Principle: The hot air entering the drum is heated in two stages: the low-temperature stage by the heat pump and the high-temperature stage by steam. According to heat pump principles, the smaller the difference between condensation and evaporation temperatures, the higher the energy efficiency. Heating the low-temperature stage keeps the condensation temperature low, while the addition of steam heat raises the exhaust temperature, which in turn raises the evaporation temperature. Therefore, the heat pump's energy efficiency is very high when heating the low-temperature stage — COP can reach 5.0, equivalent to producing 1 ton of steam using only 144 kWh. At 0.9 CNY/kWh, that's just 130 CNY/ton of steam, saving 110 CNY/ton compared to power plant steam (at 240 CNY/ton).

For example: Air entering the drum is heated from 20℃ to 120℃ (a 100℃ rise), where 20℃~90℃ is heated by the heat pump (70℃ rise) and 90℃~120℃ by steam (30℃ rise). Additionally, the dual-energy green dryer requires less compressor power, reducing equipment cost.

Ultra-High-Temp Steam Heat Pump vs. Gas/Electric Boiler Steam — Cost Analysis

Ultra-high-temp steam heat pump vs. gas/electric boiler steam analysis [Bar chart: Electric 100%, Gas boiler 67%, Power plant steam 60%, High-temp heat pump 33%; Note: electricity at 0.7 CNY/kWh, gas at 4.0 CNY/m³, piped steam at 350 CNY/ton]

How to Choose Between Pure Heat Pump and Green Heat Core Washer-Dryers

Energy Savings Comparison: Pure Heat Pump & Green Heat Core Washer-Dryers vs. Steam Dryers

Electricity Price
CNY/kWh
100G Pure Heat Pump Washer-Dryer vs. Steam Dryer 120G Green Heat Core Dual-Energy Washer-Dryer vs. Steam Dryer
Steam Price 200 CNY/ton 240 CNY/ton 280 CNY/ton 320 CNY/ton 360 CNY/ton 400 CNY/ton Steam Price 200 CNY/ton 240 CNY/ton 280 CNY/ton 320 CNY/ton 360 CNY/ton 400 CNY/ton
0.5 Steam Cost 243 283 322 362 401 441 Savings 243 283 322 362 401 441
Washer-Dryer Cost 126 126 126 126 126 126 Green Heat Core Cost 126 138 150 161 173 185
Savings 117 157 196 236 275 315 Savings 117 145 173 200 228 256
Energy Saving Rate 48.1% 55.4% 60.9% 65.2% 68.6% 71.4% Energy Saving Rate 48.2% 51.3% 53.6% 55.4% 56.8% 58.0%
0.6 Steam Cost 252 292 331 371 410 450 Savings 252 292 331 371 410 450
Washer-Dryer Cost 151 151 151 151 151 151 Green Heat Core Cost 139 151 163 175 187 198
Savings 101 140 180 220 259 299 Savings 113 141 168 196 224 251
Energy Saving Rate 40.0% 48.1% 54.3% 59.2% 63.2% 66.4% Energy Saving Rate 44.8% 48.2% 50.8% 52.9% 54.5% 55.9%
0.7 Steam Cost 261 301 340 380 419 459 Savings 261 301 340 380 419 459
Washer-Dryer Cost 176 176 176 176 176 176 Green Heat Core Cost 152 164 176 188 200 212
Savings 85 124 164 203 243 283 Savings 109 136 164 192 219 247
Energy Saving Rate 32.4% 41.3% 48.1% 53.6% 57.9% 61.6% Energy Saving Rate 41.6% 45.4% 48.2% 50.5% 52.3% 53.9%
0.8 Steam Cost 270 310 349 389 428 468 Savings 270 310 349 389 428 468
Washer-Dryer Cost 202 202 202 202 202 202 Green Heat Core Cost 166 178 189 201 213 225
Savings 68 108 148 187 227 266 Savings 104 132 160 187 215 243
Energy Saving Rate 25.3% 34.9% 42.3% 48.1% 52.9% 56.9% Energy Saving Rate 38.6% 42.7% 45.8% 48.2% 50.2% 51.9%
0.9 Steam Cost 279 319 358 398 437 477 Savings 279 319 358 398 437 477
Washer-Dryer Cost 227 227 227 227 227 227 Green Heat Core Cost 179 191 203 215 226 238
Savings 52 92 131 171 211 250 Savings 100 128 155 183 211 239
Energy Saving Rate 18.7% 28.8% 36.7% 43.0% 48.1% 52.5% Energy Saving Rate 35.9% 40.1% 43.4% 46.1% 48.2% 50.0%
1 Steam Cost 288 328 367 407 446 486 Savings 288 328 367 407 446 486
Washer-Dryer Cost 252 252 252 252 252 252 Green Heat Core Cost 192 204 216 228 240 252
Savings 36 76 115 155 194 234 Savings 96 123 151 179 207 234
Energy Saving Rate 12.5% 23.1% 31.4% 38.1% 43.5% 48.1% Energy Saving Rate 33.3% 37.7% 41.2% 44.0% 46.3% 48.2%
1.1 Steam Cost 297 337 376 416 455 495 Savings 297 337 376 416 455 495
Washer-Dryer Cost 277 277 277 277 277 277 Green Heat Core Cost 206 219 229 241 253 265
Savings 20 59 99 139 178 218 Savings 91 119 147 175 202 230
Energy Saving Rate 6.7% 17.6% 26.3% 33.3% 39.1% 44.0% Energy Saving Rate 30.8% 35.4% 39.1% 42.0% 44.6% 46.5%
1.2 Steam Cost 306 346 385 425 464 504 Savings 306 346 385 425 464 504
Washer-Dryer Cost 302 302 302 302 302 302 Green Heat Core Cost 219 231 243 254 266 278
Savings 4 43 83 122 162 202 Savings 87 115 143 170 198 226
Energy Saving Rate 1.2% 12.5% 21.5% 28.8% 34.9% 40.0% Energy Saving Rate 28.5% 33.3% 37.0% 40.1% 42.7% 44.8%
1.3 Steam Cost 315 355 394 434 473 513 Savings 315 355 394 434 473 513
Washer-Dryer Cost 328 328 328 328 328 328 Green Heat Core Cost 232 244 256 268 280 291
Savings -13 27 67 106 146 185 Savings 83 111 138 166 194 222
Energy Saving Rate -4.0% 7.6% 16.9% 24.5% 30.8% 36.1% Energy Saving Rate 26.3% 31.2% 35.1% 38.3% 40.9% 43.2%

Note: Based on 12 hours/day operation drying 900 kg of dry linen, compared with an equivalent steam dryer

Save 70,000+ CNY/year (Based on steam at 360 CNY/ton, electricity at 0.9 CNY/kWh)

Green Heat Core — Earn 100% More

Save Money

Low linen drying cost — save 70,000+ CNY per unit per year

Easy Install

All-in-one installation, no pipework required

Save Energy

Waste heat recovery for higher efficiency, zero carbon, zero pollution

Worry-Free Drying

Even heat distribution, high-quality results, low reject rate

Less Labor

5G IoT connectivity for quick maintenance

Low Maintenance

Stable system, low failure rate, non-pressure vessel — inspection exempt

Laundry facility linen drying workshop [Workshop photo: Laundry facility linen drying workshop]

Scenario-Specific Drying Solutions

Built-in GDS+6S Dual System Core | Powerful Green Drying Engine | 6S Energy-Saving Super-Saver Mode

Denim Washing Special Dryer

No fraying! 6-Saver dual-channel drying system

Preserves soft texture, prevents high-temp stiffening; specially designed gentle drying curve protects denim color-fade and texture

Denim washing special dryerDenim drying illustration

Medical Fabric Special Dryer

Constant high temperature, hygienic green drying

High-temp sanitization without damaging fabric fibers; dedicated medical linen germ-reduction drying curve

Medical fabric special dryerMedical fabric scenario

Hotel Linen Special Dryer

Fluffy as new, white as fresh — heats air, not your budget!

Precise smart temperature & humidity control, prevents fiber hardening, yellowing, and odor residue from high heat

Hotel linen special dryerHotel linen drying illustration

Premium Garment Special Dryer

Constant-temp precision drying — tech-powered luxury care, 1 machine 6 savings!

Gentle, meticulous drying that preserves the natural texture and precious feel of premium fabrics

Premium garment special dryerPremium garment scenario

Zhongshengneng Heat Pump Washer-Dryer vs. Standard Steam Dryer — Investment Analysis

Category Zhongshengneng Heat Pump Washer-Dryer Standard Steam-Heated Dryer
Energy Cost
(drying 1 kg dry linen, 45% moisture)
0.28 kWh, energy cost = 0.9 × 0.28 = 0.252 CNY (incl. drum fan power) 1.1 kg steam + 0.1 kWh power, energy cost = 0.486 CNY
Daily Energy Cost
12h operation, 900 kg dried
227 CNY 437 CNY
Daily Savings 437 − 227 = 210 CNY
Environmental Cost Electricity only — zero pollution, zero emissions, no site restrictions Power plant steam is expensive; gas boiler requires boiler room space, dedicated staff, and annual inspection
Initial Equipment Investment 125,800 CNY/unit — only requires power connection and exhaust vent Main unit 35,000 + boiler piping allocation 30,000 = 65,000 CNY/unit total
Economic Benefit Save 210 CNY/day, 6,300 CNY/month, 75,600 CNY/year; payback in 1.7 years for replacement, under 1 year for new purchase

Based on case studies: Zhongshengneng high-temp heat pump green dryer uses no more than 0.3 kWh per kg of dry linen (at 45% moisture content).

How to Obtain Lower Electricity Rates:

Most laundry plants operate mainly during daytime, using peak-rate electricity at 0.9~1.0 CNY/kWh. To secure lower rates even during daytime operation, Zhongshengneng partners with solar PV and energy storage investment companies — at no cost to the laundry plant — to provide electricity at rates below 0.7 CNY/kWh.

Multiple Cooperation Models — Choose What Fits & Start Your Green Transition

1. Lease-to-Own Financing Model

20% down payment, balance financed over 3 years

Zhongshengneng has signed strategic agreements with multiple financial leasing companies. Customers ordering Zhongshengneng high-temperature heat pump energy-saving dryers can use lease-to-own installment plans to easily acquire the equipment.

Equipment Price 20% Down Payment 3-Year Balance + Interest Monthly Payment Monthly Equipment Savings Net Monthly Profit After Payment
125,800 CNY 25,160 CNY 100,640 CNY 2,980 CNY 5,940 CNY 2,680 CNY

This plan carries zero risk. After deducting the down payment and installments over 3 years, each unit earns 24,000 CNY/year net. After 3 years, the equipment is essentially free, and each unit continues to earn over 70,000 CNY/year. Actual figures subject to bank calculations.

2. Pure Leasing Model (Simplified Energy Management Contract)

Zhongshengneng provides 1 washer-dryer for side-by-side testing against your existing dryer. If the Zhongshengneng unit saves at least 2,980 CNY/month more than your current equipment, after deducting the lease fee you still save 2,520 CNY/month. You then pay a monthly rental for the energy-saving dryer. If business shrinks, you can return some equipment at any time; if business grows, you can purchase the leased units.

With this plan, the laundry facility pays nothing upfront — no credit check, zero risk, zero investment — and immediately saves substantial energy costs with Zhongshengneng's energy-saving dryer.

How to Calculate Hourly Savings of the Zhongshengneng Heat Pump Washer-Dryer

Hourly savings = Weight of linen dried per hour × (Current equipment energy cost per kg − Zhongshengneng heat pump energy cost per kg). Calculation steps:

1. Determine your energy prices
2. Calculate current equipment energy cost per kg of dry linen
3. Calculate Zhongshengneng heat pump washer-dryer energy cost per kg of dry linen

Heat Pump Hot Water — The Finishing Touch for Laundry Energy Savings

Laundry plants need hot water at appropriate temperatures for washing. Most facilities currently use steam to heat water, resulting in persistently high energy costs. How to further reduce energy expenses?
Using heat pump technology for hot water production + wastewater heat recovery can dramatically cut energy costs.

Heat pump hot water production + heat recovery system diagram[Diagram: Heat pump hot water production + heat recovery system]
Item Steam Heat Pump Notes
Energy Required per Ton of Hot Water 0.092 tons 18.3 kWh Heat pump COP 3.5
Energy Unit Cost 360 CNY/ton 0.9 CNY/kWh
Cost per Ton of Hot Water 33 CNY 16.5 CNY Savings per ton: 16.5 CNY
Return on Investment Based on 1 ton/day hot water production, 8,000 CNY installation cost — payback: 485 days = 1.35 years
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