i,I′-[2,2′-Dimethyl-5,5′-bis(1-methylethyl)[1,1′-biphenyl]-4,4′-diyl] dihypoiodite Thermodynamic Properties vs Temperature (CAS 552-22-7)

Analyze how thermophysical properties change over a temperature range at a constant pressure of 1 atm.

Related Calculators for i,I′-[2,2′-Dimethyl-5,5′-bis(1-methylethyl)[1,1′-biphenyl]-4,4′-diyl] dihypoiodite

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Property Profile for i,I′-[2,2′-Dimethyl-5,5′-bis(1-methylethyl)[1,1′-biphenyl]-4,4′-diyl] dihypoiodite

Calculated properties vs. Temperature

Profile Data

Equilibrium Thermodynamic and Transport Properties of i,I′-[2,2′-Dimethyl-5,5′-bis(1-methylethyl)[1,1′-biphenyl]-4,4′-diyl] dihypoiodite at 1.01325 bar over -23.15–226.85 °C
Temperature (°C)Specific heat capacity (kJ/kg·K)Density (kg/m³)Dynamic viscosity (cP)Thermal conductivity (W/m·K)Prandtl number ()Molar volume (m³/kmol)Specific enthalpy (kJ)Specific entropy (kJ/kg·K)Phase
-23.150.6826061873.82N/A N/A N/A 0.293632-36.1154-0.131762s
-18.0480.6967421871.61N/A N/A N/A 0.293978-32.5967-0.117829s
-12.94590.7109371869.41N/A N/A N/A 0.294324-29.0057-0.103892s
-7.843880.7251921867.21N/A N/A N/A 0.294671-25.3421-0.0899488s
-2.741840.7395081865N/A N/A N/A 0.295019-21.6057-0.0759994s
2.36020.7538851862.8N/A N/A N/A 0.295368-17.796-0.0620425s
7.462240.7683221860.6N/A N/A N/A 0.295718-13.9129-0.0480774s
12.56430.7828211858.39N/A N/A N/A 0.296069-9.95591-0.0341033s
17.66630.7973821856.19N/A N/A N/A 0.29642-5.9248-0.0201193s
22.76840.8120041853.99N/A N/A N/A 0.296772-1.81925-0.00612472s
27.87040.8266881851.79N/A N/A N/A 0.2971252.361060.0078811s
32.97240.8414351849.58N/A N/A N/A 0.2974796.616450.0218988s
38.07450.8562431847.38N/A N/A N/A 0.29783410.94720.0359291s
43.17650.8711141845.18N/A N/A N/A 0.2981915.35370.0499726s
48.27860.8860481842.97N/A N/A N/A 0.29854619.83630.0640298s
53.38060.9010451840.77N/A N/A N/A 0.29890324.39510.0781013s
58.48270.9161041838.57N/A N/A N/A 0.29926129.03070.0921876s
63.58470.9312261836.36N/A N/A N/A 0.2996233.74330.106289s
68.68670.9464121834.16N/A N/A N/A 0.2999838.53310.120407s
73.78880.961661831.96N/A N/A N/A 0.30034143.40060.13454s
78.89080.9769721829.75N/A N/A N/A 0.30070348.34610.148691s
83.99290.9923471827.55N/A N/A N/A 0.30106553.36980.162859s
89.09491.007791825.35N/A N/A N/A 0.30142958.47220.177044s
94.19691.023291823.15N/A N/A N/A 0.30179363.65350.191247s
99.2991.038851820.94N/A N/A N/A 0.30215868.9140.205469s
104.4011.054481818.74N/A N/A N/A 0.30252474.25410.219709s
109.5031.070181816.54N/A N/A N/A 0.30289179.67420.233968s
114.6051.085931814.33N/A N/A N/A 0.30325985.17440.248247s
119.7071.101751812.13N/A N/A N/A 0.30362790.75520.262546s
124.8091.117641809.93N/A N/A N/A 0.30399796.41690.276864s
129.9111.133591807.72N/A N/A N/A 0.304367102.160.291203s
135.0131.14961805.52N/A N/A N/A 0.304739107.9840.305563s
140.1151.165681803.32N/A N/A N/A 0.305111113.8910.319943s
145.2171.181821801.12N/A N/A N/A 0.305484119.8790.334345s
150.3191.198021798.91N/A N/A N/A 0.305858125.950.348768s
155.4211.214291796.71N/A N/A N/A 0.306233132.1040.363213s
160.5231.230621794.51N/A N/A N/A 0.306609138.3410.37768s
165.6261.247021792.3N/A N/A N/A 0.306986144.6610.392169s
170.7281.263481790.1N/A N/A N/A 0.307364151.0660.406681s
175.831.280011787.9N/A N/A N/A 0.307743157.5540.421215s
180.9321.29661785.69N/A N/A N/A 0.308122164.1270.435772s
186.0341.313251783.49N/A N/A N/A 0.308503170.7850.450352s
191.1361.329971781.29N/A N/A N/A 0.308884177.5280.464955s
196.2381.346751779.09N/A N/A N/A 0.309267184.3560.479582s
201.341.36361776.88N/A N/A N/A 0.30965191.270.494233s
206.4421.380511774.68N/A N/A N/A 0.310035198.270.508907s
211.5441.397491772.48N/A N/A N/A 0.31042205.3570.523605s
216.6461.414531770.27N/A N/A N/A 0.310806212.5310.538328s
221.7481.431631768.07N/A N/A N/A 0.311194219.7910.553075s
226.851.44881765.87N/A N/A N/A 0.311582227.1390.567846s

Property Profiles for i,I′-[2,2′-Dimethyl-5,5′-bis(1-methylethyl)[1,1′-biphenyl]-4,4′-diyl] dihypoiodite

Heat Capacity (Cp) vs Temperature

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Density vs Temperature

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Thermodynamic Property Profile at Constant Pressure

This page presents the temperature-dependent thermodynamic and transport properties of i,I′-[2,2′-Dimethyl-5,5′-bis(1-methylethyl)[1,1′-biphenyl]-4,4′-diyl] dihypoiodite (CAS 552-22-7) calculated at a constant pressure of 1 atm (101325 Pa) over the temperature range 250-500 K.

The properties shown - specific heat capacity (Cp), density (ρ), dynamic viscosity (μ), thermal conductivity (k), Prandtl number (Pr), molar volume (Vm), specific enthalpy (H), and specific entropy (S) - are among the most commonly used parameters in chemical engineering calculations, process simulation, and thermal system design.

All values are generated programmatically using validated thermodynamic correlations and equations of state and represent equilibrium properties at the specified pressure.


Understanding the Property Trends

  • Specific heat capacity (Cp) indicates the amount of energy required to raise the temperature of i,I′-[2,2′-Dimethyl-5,5′-bis(1-methylethyl)[1,1′-biphenyl]-4,4′-diyl] dihypoiodite and is critical for energy balance and heat-exchanger design.
  • Density (ρ) and molar volume (Vm) describe volumetric behavior and are required for flow calculations, equipment sizing, and storage design.
  • Dynamic viscosity (μ) governs fluid flow resistance, influencing Reynolds number and pressure drop.
  • Thermal conductivity (k) and Prandtl number (Pr) are essential inputs for convective heat-transfer correlations.
  • Specific enthalpy (H) and specific entropy (S) are fundamental thermodynamic properties used in process modeling, compression, and expansion analysis.

Property trends with temperature may vary depending on molecular structure, intermolecular interactions, and phase stability.


Engineering Applications

The temperature-dependent properties of i,I′-[2,2′-Dimethyl-5,5′-bis(1-methylethyl)[1,1′-biphenyl]-4,4′-diyl] dihypoiodite at atmospheric pressure are commonly required in:

  • Heat exchanger and reactor design
  • Process simulation and thermodynamic modeling
  • Fluid flow and pressure-drop calculations
  • Energy balance and equipment sizing
  • Chemical engineering education and research

These profiles are particularly useful when evaluating system performance over a wide operating temperature range under near-ambient pressure conditions.


Frequently Asked Questions

At what pressure are these properties calculated?
All properties on this page are calculated at a constant pressure of 1 atm (101325 Pa).

Can these values be used in process simulation software?
Yes. The data is suitable for preliminary design, validation, and educational use. For licensed simulators, vendor-specific property packages should be referenced.

Can I change the pressure or temperature range?
Yes. Use the interactive controls above to generate custom property profiles at different pressures or temperature ranges.


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