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ABSTRACT
The importance of pushing the performance envelope of disk drives continues to grow in the enterprise storage market. One of the most fundamental factors impacting disk drive design is heat dissipation, since it directly affects drive reliability. Until now, drive manufacturers have continued to meet the 40% annual growth target of the internal data-rates (IDR) by increasing RPMs and shrinking platter sizes, both of which have counteracting effects on the heat dissipation within a drive. In this article, we shall show that we are getting to a point where it is going to be very difficult to stay on this roadmap. We first present detailed models that capture the close relationships between capacity, performance, and thermal characteristics over time. Using these models, we quantify the drop-off in IDR growth rates over the next decade if we are to adhere to the thermal design envelope. We motivate the need for continued improvements in IDR by showing that the response times of real workloads can be improved by 30--60% with a 10K increase in the RPM for disks used in their respective storage systems. We then present two dynamic thermal management (DTM) techniques that can be used to buy back some of this IDR loss. The first DTM technique exploits the thermal slack between what the drive was intended to support and the currently lower operating temperature to ramp up the RPM. The second DTM technique assumes that the drive is only designed for average case operation and dynamically throttles its activities to remain within the thermal envelope.
REFERENCES
Note: OCR errors may be found in this Reference List extracted from the full text article. ACM has opted to expose the complete List rather than only correct and linked references.
| |
1
|
Alvarez, G., Keeton, K., Riedel, E., and Uysal, M. 2001. Characterizing data-intensive workloads on modern disk arrays. In Proceedings of the Workshop on Computer Architecture Evaluation Using Commercial Workloads.
|
| |
2
|
|
| |
3
|
Ashar, K. 1997. Magnetic Disk Drive Technology: Heads, Media, Channel, Interfaces, and Integration. IEEE Press.
|
| |
4
|
Charrap, S., Lu, P., and He, Y. 1997. Thermal stability of recorded information at high densities. IEEE Trans. Magnetics 33, 1 (Jan.), 978--983.
|
| |
5
|
Chen, J. and Moon, J. 2001. Detection signal-to-noise ratio versus bit cell aspect ratio at high areal densities. IEEE Trans. Magnetics 37, 3 (May), 1157--1167.
|
| |
6
|
Christen, E. and Bakalar, K. 1999. VHDL-AMS---A hardware description language for analog and mixed-signal applications. IEEE Trans. Circuits Syst. II: Analog and Digital Signal Processing 46, 10 (Oct.), 1263--1272.
|
| |
7
|
Clauss, N. 1988. A computational model of the thermal expansion within a fixed disk drive storage system. M.S. thesis, University of California, Berkeley.
|
| |
8
|
Dammers, D., Binet, P., Pelz, G., and Voßkämper, L. 2001. Motor modeling based on physical effect models. In Proceedings of the IEEE/ACM International Workshop on Behavioral Modeling and Simulation (BMAS), 78--83.
|
| |
9
|
Damon, D. and Christen, E. 1996. Introduction to VHDL-AMS---Part 1: Structural and discrete time concepts. In Proceedings of the International Symposium on Computer-Aided Control System Design, 264--269.
|
| |
10
|
Eibeck, P. and Cohen, D. 1988. Modeling thermal characteristics of a fixed disk drive. IEEE Trans. Components, Hybrids, and Manufacturing Technology 11, 4 (Dec.), 566--570.
|
| |
11
|
Ganger, G., Worthington, B., and Patt, Y. 1999. The DiskSim Simulation Environment Version 2.0 Reference Manual. http://www.ece.cmu.edu/ganger/disksim/.
|
| |
12
|
|
| |
13
|
Grochowski, E. 2004. Hitachi GST, San Jose Research Center. Private Correspondence.
|
| |
14
|
|
 |
15
|
|
| |
16
|
Gurumurthi, S., Sivasubramaniam, A., and Natarajan, V. 2005. Disk drive roadmap from the thermal perspective: A case for dynamic thermal management. Tech. Rep. CSE-05-001, The Pennsylvania State University.
|
| |
17
|
Harris, E., Depp, S., Pence, W., Kirkpatrick, S., Jayantha, M. S., and Troutman, R. 1995. Technology directions for portable computers. In Proceedings of the IEEE 83, 4 (April), 636--658.
|
| |
18
|
Herbst, G. 1997. IBM's drive temperature indicator processor (Drive-TIP) helps ensure high drive reliability. In IBM Whitepaper.
|
| |
19
|
Hetzler, S. 2004. IBM Almaden Research Center. Private Correspondence.
|
| |
20
|
Hitachi Global Storage Technologies---HDD Technology Overview Charts. Hitachi Global Storage Technologies---HDD Technology Overview Charts. http://www.hitachigst.com/hdd/technolo/overview/storagetechchart.html. 2006a.
|
| |
21
|
Hitachi Global Storage Technologies---Research and Technology Overview. Hitachi Global Storage Technologies---Research and Technology Overview. http://www.hitachigst.com/hdd/research/storage/pm/. 2006b.
|
| |
22
|
Hitachi Power and Acoustic Management---Quietly Cool 2004. Hitachi Power and Acoustic Management---Quietly Cool. In Hitachi Whitepaper. http://www.hitachigst.com/tech/techlib.nsf/productfamilies/White_Papers.
|
| |
23
|
Ho, H. 1997. Fast servo Bang-Bang seek control. IEEE Trans. Magnetics 33, 6 (Nov.), 4522--4527.
|
| |
24
|
|
| |
25
|
HP News Release. 2003. HP announces “smart” cooling solution for data centers. http://www.hp.com/hpinfo/newsroom/press/2003/030304b.html.
|
 |
26
|
|
| |
27
|
Huang, R. and Chung, D. 2002. Thermal design of a disk-array system. In Proceedings of the InterSociety Conference on Thermal and Thermomechanical Phenomena in Electronic Systems, 106--112.
|
| |
28
|
Hughes, G. 2004. Center for Magnetic Recording Research, University of California, San Diego. Private Correspondence.
|
| |
29
|
Levy, H. and Lessman, F. 1992. Finite Difference Equations. Dover Publications.
|
| |
30
|
Mallary, M., Torabi, A., and Benakli, M. 2002. One Terabit per square inch perpendicular recording conceptual design. IEEE Trans. Magnetics 38, 4 (July), 1719--1724.
|
| |
31
|
Ottesen, H. and Smith, G. 2001. Servo format for disk drive data storage devices. In United States Patent 6,775,081.
|
 |
32
|
David A. Patterson , Garth Gibson , Randy H. Katz, A case for redundant arrays of inexpensive disks (RAID), Proceedings of the 1988 ACM SIGMOD international conference on Management of data, p.109-116, June 01-03, 1988, Chicago, Illinois, United States
|
 |
33
|
R. H. Patterson , G. A. Gibson , E. Ginting , D. Stodolsky , J. Zelenka, Informed prefetching and caching, Proceedings of the fifteenth ACM symposium on Operating systems principles, p.79-95, December 03-06, 1995, Copper Mountain, Colorado, United States
|
| |
34
|
Reed, I. and Solomon, G. 1960. Polynomial codes over certain finite fields. J. Soc. Indus. Appl. Math. 8, 300--304.
|
| |
35
|
Riedel, E. 2004. Device trends---Where disk drives are headed. In Proceedings of the Information Storage Industy Consortium (INSIC) Workshop on the Future of Data Storage Devices and Systems (DS2).
|
| |
36
|
Ruemmler, C. and Wilkes, J. 1991. Disk shuffling. Tech. Rep. HPL-91-156, HP Laboratories.
|
| |
37
|
Schirle, N. and Lieu, D. 1996. History and trends in the development of motorized spindles for hard disk drives. IEEE Trans. Magnetics 32, 3 (May), 1703--1708.
|
| |
38
|
Seagate Cheetah 15K.3 SCSI Disc Drive: ST3734553LW/LC Product Manual, vol. 1. http://www.seagate.com/support/disc/manuals/scsi/100148123b.pdf.
|
 |
39
|
Kevin Skadron , Mircea R. Stan , Wei Huang , Sivakumar Velusamy , Karthik Sankaranarayanan , David Tarjan, Temperature-aware microarchitecture, Proceedings of the 30th annual international symposium on Computer architecture, June 09-11, 2003, San Diego, California
|
| |
40
|
Sri-Jayantha, M. 1995. Trends in mobile storage design. In Proceedings of the International Symposium on Low Power Electronics, 54--57.
|
| |
41
|
Storage Review---Reference Guide. http://storagereview.com/guide2000/ref/hdd/op/formIn25.html.
|
| |
42
|
Tarnopolsky, G. 2004. Hard disk drive capacity at high magnetic areal density. IEEE Trans. Magnetics 40, 1 (Jan.), 301--306.
|
| |
43
|
UMass Trace Repository. http://traces.cs.umass.edu.
|
| |
44
|
Viswanath, R., Wakharkar, V., Watwe, A., and Lebonheur, V. 2000. Thermal performance challenges from silicon to systems. Intel Technol. J.
|
| |
45
|
|
| |
46
|
Wood, R. 2000. The feasibility of magnetic recording at 1 Terabit per square inch. IEEE Trans. Magnetics 36, 1 (Jan.), 36--42.
|
 |
47
|
Bruce L. Worthington , Gregory R. Ganger , Yale N. Patt , John Wilkes, On-line extraction of SCSI disk drive parameters, Proceedings of the 1995 ACM SIGMETRICS joint international conference on Measurement and modeling of computer systems, p.146-156, May 15-19, 1995, Ottawa, Ontario, Canada
|
| |
48
|
John Zedlewski , Sumeet Sobti , Nitin Garg , Fengzhou Zheng , Arvind Krishnamurthy , Randolph Wang, Modeling Hard-Disk Power Consumption, Proceedings of the 2nd USENIX Conference on File and Storage Technologies, March 31-31, 2003, San Francisco, CA
|
|