万千商家帮你免费找货
0 人在求购买到急需产品
- 详细信息
- 询价记录
- 文献和实验
- 技术资料
- 库存:
1
- 国食药监械注册号:
/
- 保修期:
12个月
- 现货状态:
有
- 供应商:
上海塔望智能科技有限公司
- 规格:
根据实验需求/咨询电话:021-51537683/15221725700
| 规格: | 根据实验需求 | 产品价格: | ¥30000.0-¥230000.0 |
|---|---|---|---|
| 规格: | 咨询电话:021-51537683/15221725700 | 产品价格: | 询价 |
低压高低氧环境模拟舱模拟高海拔地区

低压高低氧环境模拟舱模拟高海拔地区用于模拟低压氧高原环境,压力可以根据需要自行设置,最高可模拟海拔高度12000米,本仪器综合了国外同类产品的优点,增加了高低浓氧的输入,使氧仓比过去的控氧时间大为缩短。在间歇工作模式下,使氧浓度上升曲线更好,实验流程增加GLP管理权限功能,从而使实验流程参数更为方便安全。综合了过去两种产品 (间歇性低压氧仓、常量氧低压氧仓) 。一台仪器有了多种用途。是低压低氧训练动物实验中模拟海拔高度的理想选择。
低压高低氧环境模拟舱模拟高海拔地区参数

1.在平原地区,模拟高原条件,同时能够自动调节氧 气浓度、海拔标定校准功能,同时可以做高低压环 境(高低压环境 0-5 个大气压),具有当地海拔补 偿功能; 报警功能: 温度、湿度、氧气、压力报警
2.舱体主体采用进口PMMA材料,整体透明,方便观察和采光,舱体容量在600L(内径尺寸1300mm (长)*680mm (宽)*680mm (高) ): 可容纳大鼠笼>4个或小鼠笼>8个
3.压力量程: 0- (-100) kpa 、精度等级: 1%、测氧量程: 0-99.99%、控制精度: 0.1%显示分辨率: 0.01%
4.进口氧气02浓度检测器,测量范围: 0-100%vol,测量分辨率: 0.01%,线性度好,检测准确、使用寿命长。具有温度补偿机制。控制精度: 0.1%;无限远程控制。高精度PID控制,氧气浓度高精度控制精度0.1%,实时显示氧气的流量和氮气流量,累计统计氧气和氮气的消耗量,提供氧气,氮气,温湿度压力的实时曲线和历史曲线。
5.高低报警点设置: 全量程任意设置,实现恒压控制6.温湿度测量范围: 温度: -20-80°C,湿度: 0-100RH%7.二氧化碳控制器(选配): 量程: 0-10000ppm,精度:1%FS,响应时间<30S,可直接控制实验箱内的氧气浓度和二氧化碳浓度,按照设定气体浓度自动配比气体,维持恒定的氧气浓度环境。无需在箱体外混合比例气体,确保实验氧/CO2浓度的准确,节省气源,能够直接监控低压氧舱内中的压力和氧气浓度,自动完成降压和升压过程,能够有恒定低压低氧模式、恒定常压低氧模式、阶梯式海拔切换模式、常压低氧模式几种模式,具有自动换气功能,系统自动换气
6.温度显示功能监测参数: 温度、湿度、氧气浓度、氧分压、舱内的压力、模拟海拔高度;氧气浓度变化动态曲线,直观了解氧气浓度变化的过程,海拔高度动态变化曲线,实时观测实验情况,低温循环功能(选配)
7.间歇性模式流量F1: 氧含量上限值 (如: 21%可设定) F2: 氧含量下限值 (如: 8.5%设定) T1 : 充氮气 流程时间 (如: 1分钟可设定) T2 : 保持 流程时间 (如: 1分30秒可设定) T3 : 充氧气 流程时间 (如: 1分钟可设定) T4: 保持 流程时间 (如: 1分30秒可设定10.通过国家质量体系认证,设备具有国家注册商标。
11.增加了高浓氧的输入,使氧仓比过去的控氧时间大为缩短。在间歇工作模式下,使氧浓度上升曲线更好,本仪器增加了多组时间设定,从而使实验参数的更改更为方便,本仪器综合了过去两种产品(间歇性低压氧仓、常量氧低压氧仓),一台仪器有了两种用途。低压低拿训练动物实验中模拟海拔高度是实现动态曲线及数据。
12.非色散红外 (NDIR) 二氧化碳传感器,测量范围: 0~20%,控制精度: 0.1%
13.温度检测:进口高精度数字铂电阻温度传感器
14.氧气浓度变化动态曲线,直观了解氧气浓度变化的过程
15.氧气浓度自动校准: 通过控制器对传感器快速校准
16.湿度传感器和除湿设计,能有效的降低动物实验过程中呼吸产生的水汽对动物的影响
17.特有的气体混合及循环机制,保证箱体内气体浓度的均一18.高性能电磁阀,性能稳定,超长寿命,支持定做空间尺寸,标配可容纳2个标准大鼠笼8个小鼠笼,适用于大小鼠,小型犬,猴等动物
低压高低氧环境模拟舱模拟高海拔地区拓展及特殊定制
- 动物生理指标监测
- 可实现的监测指标:心电图、心率、体温、血压、呼吸、血氧饱和度;
- 呼吸代谢监控功能
- 采血给药功能
- 视频监测功能
- 动物低氧跑台装置
- 低氧强迫游泳装置
- 温控功能
- 恒温功能,温度可控制,室温-40℃;
- 低温功能,4℃,温度可控制,室温-4℃;
- 可定制其它功能
低压高低氧环境模拟舱模拟高海拔地区应用领域
高原医学研究、肺水肿、脑水肿、肺动脉高压等疾病研究
低压高低氧环境模拟舱模拟高海拔地区型号说明
|
名称 |
型号 |
说明 |
|
动物低压氧舱 (标准版) |
ProOx-810 |
可以摆放2个大鼠笼/4个小鼠笼 |
|
动物低压氧舱 (恒温版) |
ProOx-811 |
可以摆放2个大鼠笼/4个小鼠笼,同时加上恒温功能 |
|
动物低压氧舱 (大容量版) |
ProOx-810L |
可以摆放4个大鼠笼/8个小鼠笼(可叠加) |
|
动物低压氧舱 (大容量版+恒温) |
ProOx-811L |
可以摆放4个大鼠笼/8个小鼠笼(可叠加),同时加上恒温功能 |
|
动物低压氧舱 基础款 |
ProOx-830 |
可以摆放1个大鼠笼/2个小鼠笼 |
低压高低氧环境模拟舱模拟高海拔地区代表客户名单

风险提示:丁香通仅作为第三方平台,为商家信息发布提供平台空间。用户咨询产品时请注意保护个人信息及财产安全,合理判断,谨慎选购商品,商家和用户对交易行为负责。对于医疗器械类产品,请先查证核实企业经营资质和医疗器械产品注册证情况。
- 作者
- 内容
- 询问日期
文献和实验[1] Drekolia M K, Mettner J, Wang D, et al. Cystine import and oxidative catabolism fuel vascular growth and repair via nutrient-responsive histone acetylation[J]. Cell Metabolism (IF 30.9), 2025.
[2] Wu L W, Chen M, Jiang C Y, et al. Inactivation of AXL in Cardiac Fibroblasts Alleviates Right Ventricular Remodeling in Pulmonary Hypertension[J]. Advanced Science (IF 14.1), 2025: e08995.
[3] Lei R, Gu M, Li J, et al. Lipoic acid/trometamol assembled hydrogel as injectable bandage for hypoxic wound healing at high altitude[J]. Chemical Engineering Journal (IF 13.4), 2024, 489: 151499.
[4] Li Z, Li H, Qiao W, et al. Multi-omics dissection of high TWAS-active endothelial pathogenesis in pulmonary arterial hypertension: bridging single-cell heterogeneity, machine learning-driven biomarkers, and developmental reprogramming[J]. International Journal of Surgery (IF 10.1), 10.1097.
[5] Pei Y, Huang L, Wang T, et al. Bone marrow mesenchymal stem cells loaded into hydrogel/nanofiber composite scaffolds ameliorate ischemic brain injury[J]. Materials Today Advances (IF 10), 2023, 17: 100349.
[6] Wang Q, Liu J, Li R, et al. Macrophage κ-opioid receptor inhibits hypoxic pulmonary hypertension progression and right heart dysfunction via an SCD1-dependent anti-inflammatory response[J]. Genes & Diseases (IF 9.4), 2025: 101604.
[7] Wang Y, Zhang R, Chen Q, et al. PPARγ Agonist Pioglitazone Prevents Hypoxia-induced Cardiac Dysfunction by Reprogramming Glucose Metabolism[J]. International Journal of Biological Sciences, 2024, 20(11): 4297.
[8] Wang Y, Shen P, Wu Z, et al. Plasma Proteomic Profiling Reveals ITGA2B as a key regulator of heart health in high-altitude settlers[J]. Genomics, Proteomics & Bioinformatics, 2025: qzaf030.
[9] Lan Y, Zhao S, Song Y, et al. Physicochemical properties of selenized quinoa protein hydrolysate and its regulatory effects on neuroinflammation and gut microbiota in hypoxic mice[J]. Journal of Future Foods, 2025.
[10] Pan Z, Yao Y, Liu X, et al. Nr1d1 inhibition mitigates intermittent hypoxia-induced pulmonary hypertension via Dusp1-mediated Erk1/2 deactivation and mitochondrial fission attenuation[J]. Cell Death Discovery, 2024, 10(1): 459.
[11] Zhou Y, Ni Z, Liu J, et al. Gut Microbiota‐Associated Metabolites Affected the Susceptibility to Heart Health Abnormality in Young Migrants at High‐Altitude: Gut Microbiota and Associated Metabolites Impart Heart Health in Plateau[C]//Exploration. 2025: 20240332.
[12] Li C, Zhao Z, Jin J, et al. NLRP3-GSDMD-dependent IL-1β Secretion from Microglia Mediates Learning and Memory Impairment in a Chronic Intermittent Hypoxia-induced Mouse Model[J]. Neuroscience, 2024, 539: 51-65.
[13] Yang W, Li M, Ding J, et al. High-altitude hypoxia exposure inhibits erythrophagocytosis by inducing macrophage ferroptosis in the spleen[J]. Elife, 2024, 12: RP87496.
[14] You Z, Huang Q, Zeng L, et al. Rab26 promotes hypoxia-induced hyperproliferation of PASMCs by modulating the AT1R-STAT3-YAP axis[J]. Cellular and Molecular Life Sciences, 2025, 82(1): 1-16.
[15] Pei C, Shen Z, Wu Y, et al. Eleutheroside B Pretreatment Attenuates Hypobaric Hypoxia‐Induced High‐Altitude Pulmonary Edema by Regulating Autophagic Flux via the AMPK/mTOR Pathway[J]. Phytotherapy Research, 2024, 38(12): 5657-5671.
[16] Duan H, Han Y, Zhang H, et al. Eleutheroside B Ameliorates Cardiomyocytes Necroptosis in High-Altitude-Induced Myocardial Injury via Nrf2/HO-1 Signaling Pathway[J]. Antioxidants, 2025, 14(2): 190.
[17] Song J, Zheng J, Li Z, et al. Sulfur dioxide inhibits mast cell degranulation by sulphenylation of galectin-9 at cysteine 74[J]. Frontiers in Immunology, 2024, 15: 1369326.
[18] Jia N, Shen Z, Zhao S, et al. Eleutheroside E from pre-treatment of Acanthopanax senticosus (Rupr. etMaxim.) Harms ameliorates high-altitude-induced heart injury by regulating NLRP3 inflammasome-mediated pyroptosis via NLRP3/caspase-1 pathway[J]. International Immunopharmacology, 2023, 121: 110423.
[19] Huang Q, Han X, Li J, et al. Intranasal Administration of Acetaminophen-Loaded Poly (lactic-co-glycolic acid) Nanoparticles Increases Pain Threshold in Mice Rapidly Entering High Altitudes[J]. Pharmaceutics, 2025, 17(3): 341.
[20] Wu Y, Tang Z, Du S, et al. Oral quercetin nanoparticles in hydrogel microspheres alleviate high-altitude sleep disturbance based on the gut-brain axis[J]. International Journal of Pharmaceutics, 2024, 658: 124225.
[21] Zhou Z, Zhao Q, Huang Y, et al. Berberine ameliorates chronic intermittent hypoxia‐induced cardiac remodelling by preserving mitochondrial function, role of SIRT6 signalling[J]. Journal of Cellular and Molecular Medicine, 2024, 28(12): e18407.
[22] Shang W, Huang Y, Xu Z, et al. The impact of a high-carbohydrate diet on the cognitive behavior of mice in a low-pressure, low-oxygen environment[J]. Food & Function, 2025, 16(3): 1116-1129.
[23] Pei C, Jia N, Wang Y, et al. Notoginsenoside R1 protects against hypobaric hypoxia-induced high-altitude pulmonary edema by inhibiting apoptosis via ERK1/2-P90rsk-BAD ignaling pathway[J]. European Journal of Pharmacology, 2023, 959: 176065.
[24] Xie L, Wu Q, Huang H, et al. Neuroregulation of histamine of circadian rhythm disorder induced by chronic intermittent hypoxia[J]. European Journal of Pharmacology, 2025: 177662.
[25] Ding Y, Liu W, Zhang X, et al. Bicarbonate-Rich Mineral Water Mitigates Hypoxia-Induced Osteoporosis in Mice via Gut Microbiota and Metabolic Pathway Regulation[J]. Nutrients, 2025, 17(6): 998.
[26] Gu N, Shen Y, He Y, et al. Loss of m6A demethylase ALKBH5 alleviates hypoxia-induced pulmonary arterial hypertension via inhibiting Cyp1a1 mRNA decay[J]. Journal of Molecular and Cellular Cardiology, 2024.
[27] Luan X, Zhu D, Hao Y, et al. Qibai Pingfei Capsule ameliorated inflammation in chronic obstructive pulmonary disease (COPD) via HIF-1 α/glycolysis pathway mediated of BMAL1[J]. International Immunopharmacology, 2025, 144: 113636.
[28] Jiang H, Lu C, Wu H, et al. Decreased cold‐inducible RNA‐binding protein (CIRP) binding to GluRl on neuronal membranes mediates memory impairment resulting from prolonged hypobaric hypoxia exposure[J]. CNS Neuroscience & Therapeutics, 2024, 30(9): e70059.
[29] Chang P, Xu M, Zhu J, et al. Pharmacological Inhibition of Mitochondrial Division Attenuates Simulated High‐Altitude Exposure‐Induced Memory Impairment in Mice: [30] Involvement of Inhibition of Microglia‐Mediated Synapse Elimination[J]. CNS Neuroscience & Therapeutics, 2025, 31(6): e70473.
[30] Liu C, Qu D, Li C, et al. miR‐448‐3p/miR‐1264‐3p Participates in Intermittent Hypoxic Response in Hippocampus by Regulating Fam76b/hnRNPA2B1[J]. CNS Neuroscience & Therapeutics, 2025, 31(2): e70239.
[31] Wu L W, Chen M, Jiang D J, et al. TCF7 enhances pulmonary hypertension by boosting stressed natural killer cells and their interaction with pulmonary arterial smooth muscle cells[J]. Respiratory Research, 2025, 26(1): 202.
[32] Xie L, Wu Q, Huang H, et al. Neuroregulation of histamine of circadian rhythm disorder induced by chronic intermittent hypoxia[J]. European Journal of Pharmacology, 2025: 177662.
[33] Cai S, Li Z, Bai J, et al. Optimized oxygen therapy improves sleep deprivation-induced cardiac dysfunction through gut microbiota[J]. Frontiers in Cellular and Infection Microbiology, 2025, 15: 1522431.
[34] Wang X, Xie Y, Niu Y, et al. CX3CL1/CX3CR1 signal mediates M1-type microglia and accelerates high-altitude-induced forgetting[J]. Frontiers in Cellular Neuroscience, 2023, 17: 1189348.
[35] He Y, Wang Y, Duan H, et al. Pharmacological targeting of ferroptosis in hypoxia-induced pulmonary edema: therapeutic potential of ginsenoside Rg3 through activation of the PI3K/AKT pathway[J]. Frontiers in Pharmacology, 2025, 16: 1644436.
[36] Guo Y, Qin J, Sun R, et al. Molecular hydrogen promotes retinal vascular regeneration and attenuates neovascularization and neuroglial dysfunction in oxygen-induced retinopathy mice[J]. Biological Research, 2024, 57.
[37] Liu L, Zhang J, Song S, et al. Paraventricular nucleus neurons: important regulators of respiratory movement in mice with chronic intermittent hypoxia[J]. Annals of Medicine, 2025, 57(1): 2588664.
[38] Ma Q, Ma J, Cui J, et al. Oxygen enrichment protects against intestinal damage and gut microbiota disturbance in rats exposed to acute high-altitude hypoxia[J]. Frontiers in Microbiology, 2023, 14.
[39] Lan J, Lin J, Guo Y, et al. Sequencing and bioinformatics analysis of exosome-derived miRNAs in mouse models of pancreatic injury induced by OSA[J]. Frontiers in Physiology, 2025, 16: 1712442.
[40] Feng X, Li C, Zhang W, et al. Mechanism of retinal angiogenesis induced by HIF-1α and HIF-2α under hyperoxic conditions[J]. Scientific Reports, 2025, 15(1): 36049.
[41] Yao Y, Chen Y, Li Y, et al. TGM2 Enhances Hypobaric Hypoxia-mediated Brain Injury Via Regulating NLRP3/GSDMD Signaling[J]. Neurochemical Research, 2025, 50(6): 1-11.
[42] Yang A, Guo L, Zhang Y, et al. MFN2-mediated mitochondrial fusion facilitates acute hypobaric hypoxia-induced cardiac dysfunction by increasing glucose catabolism and ROS production[J]. Biochimica et Biophysica Acta (BBA)-General Subjects, 2023: 130413.
[43] Chu H, Jiang W, Zuo N, et al. Astrocyte activation: A key mediator underlying chronic intermittent hypoxia-induced cognitive dysfunction[J]. Sleep Medicine, 2025: 106692.
[44] Xu A, Huang F, Chen E, et al. Hyperbaric oxygen therapy attenuates heatstroke-induced hippocampal injury by inhibiting microglial pyroptosis[J]. International Journal of Hyperthermia, 2024, 41(1): 2382162.
[45] Zhang Z, Zheng X, He Y, et al. Hyperbaric oxygen ameliorates neuroinflammation in heat-stressed BV-2 microglial cells: potential involvement of EAAT2 regulation[J]. International Journal of Hyperthermia, 2025, 42(1): 2583133.
[46] Jinyu F, Huaicun L, Yanfei Z, et al. Nogo-A Protein Mediates Oxidative Stress and Synaptic Damage Induced by High-altitude Hypoxia in the Rat Hippocampus[J]. 2024.
[47] Su L, Ni T, Fan R, et al. An attention to the effect of intravitreal injection on the controls of oxygen-induced retinopathy mouse model[J]. Experimental Eye Research, 2024, 248: 110094.
[48] Xu Y, Xu J, Li J, et al. Interplay of HIF-1α, SMAD2, and VEGF signaling in hypoxic renal environments: impact on macrophage polarization and renoprotection[J]. Renal Failure, 2025, 47(1): 2561784.
[49] Zhang D, Bian W, Gao Z. Impact of Obstructive Sleep Apnea on Endometrial Function in Female Rats: Mechanism Exploration[J]. Nature and Science of Sleep, 2025: 2485-2499.
[50] Zhang N, Wei F, Ning S, et al. PPARγ Agonist Rosiglitazone and Antagonist GW9662: Antihypertensive Effects on Chronic Intermittent Hypoxia-Induced Hypertension in Rats[J]. Journal of Cardiovascular Translational Research, 2024: 1-13.
[51] Zhang Y, Zhang A, Yang J, et al. Hypoxic Mesenchymal Stem Cell Exosome‐Derived SLC25A3 Ameliorates Bronchopulmonary Dysplasia by Modulating Macrophage Polarization and Oxidative Stress[J]. Cell Biochemistry and Function, 2025, 43(12): e70152.
[52] Lan J, Wang Y, Liu C, et al. Genome-wide analysis of m6A-modified circRNAs in the mouse model of myocardial injury induced by obstructive sleep apnea[J]. BMC Pulmonary Medicine, 2025, 25(1): 158.
[53] Zhang L, Liu X, Wei Q, et al. Arginine attenuates chronic mountain sickness in rats via microRNA-144-5p[J]. Mammalian Genome, 2023, 34(1): 76-89.
[54] Wei J, Hu M, Chen X, et al. Hypobaric Hypoxia Aggravates Renal Injury by Inducing the Formation of Neutrophil Extracellular Traps through the NF-κB Signaling Pathway[J]. Current Medical Science, 2023: 1-9.
[55] Zhang L, Li J, Wan Q, et al. Intestinal stem cell-derived extracellular vesicles ameliorate necrotizing enterocolitis injury[J]. Molecular and Cellular Probes, 2025, 79: 101997.
[56] Liao Y, Ke B, Long X, et al. Abnormalities in the SIRT1-SIRT3 axis promote myocardial ischemia-reperfusion injury through ferroptosis caused by silencing the PINK1/Parkin signaling pathway[J]. BMC Cardiovascular Disorders, 2023, 23(1): 582.
[57] Wang M, Wen W, Chen Y, et al. TRPC5 channel participates in myocardial injury in chronic intermittent hypoxia[J]. Clinics, 2024, 79: 100368.
[58] Li J, Ye J. Chronic intermittent hypoxia induces cognitive impairment in Alzheimer’s disease mouse model via postsynaptic mechanisms[J]. Sleep and Breathing, 2024: 1-9.
[59] Binbin L I, Haizhen L I, Houhuang C, et al. Utilizing Hyperbaric Oxygen Therapy to Improve Cognitive Function in Patients With Alzheimer’s Disease by Activating Autophagy-Related Signaling Pathways[J]. Physiological Research, 2025, 74(1): 141.
[60] Han J, Wang L, Wang L, et al. 5-Hydroxytryptamine Limits Pulmonary Arterial Hypertension Progression by Regulating Th17/Treg Balance[J]. Biological and Pharmaceutical Bulletin, 2025, 48(5): 555-562.
[61] Nan L, Kaisi F, Mengzhen Z, et al. miR-375-3p targets YWHAB to attenuate intestine injury in neonatal necrotizing enterocolitis[J]. Pediatric Surgery International, 2024, 40(1): 63.
[62] Liu B, Zheng W, Tang C, et al. Scutellarein-containing novel formula attenuates hypoxia through inhibiting apoptosis[J]. 2025.
商品鱼类上市、鱼苗鱼种各地区之间的转移,都需要在运输中保持鱼类健康鲜活状态。由于鱼类呼吸方式不同于陆地动物,往往需要带水运输和一些特殊设备,增大了运输成本,因此,在尽量降低运输成本的同时保持鱼类健康,是活鱼运输的要求。 鲜活的鱼类无细菌腐败,安全性强,能最大限度保留原有的营养价值,使得鲜活鱼类越来越受到国内外市场青睐,活鱼与冰鲜鱼价差几乎达一倍以上。如香港人均年消费水产品40 kg,其中90 %是活鲜品,日本进口活鱼量每年都以5 % 的速度增长。我国
技术资料需要更多技术资料 索取更多技术资料










